Showing posts with label growth hormone. Show all posts
Showing posts with label growth hormone. Show all posts

Saturday, October 15, 2011

Why supplement and monitor zinc?

Jett just tested low on zinc so I thought I'd do some research. OMG...  Needless to say, we are buying him zinc TOMORROW morning!!! It is absolutely ridiculous that this paper, The Role of Zinc in Down’s Syndrome by Eastland Roxanne, was written 10 years ago and that zinc isn't a mandatory supplement for everyone with DS. 

I just reviewed the (recently revised) Clinical Report on the Health Supervision for Children With Down Syndrome written by the American Academy of Pediatrics to see what they say about zinc. Guess how many times zinc is mentioned? ZERO. I'm going to rewrite the Guidelines for Treatment of DS myself. (Okay, so it's on my to-do list…) You are welcome to listen to the AAP, but I feel that us parents have our children's best interest at heart and seriously wonder about whomever is on the board that created our present guidelines. Of course, I will share my Guidelines with you! (I'm sorry, I am soooooooo angry right now!!) My notes are in italics.

Of course, once I supplement zinc and possibly copper, I have to add l-carnosine to protect his brain. (See Q's post at http://gotdownsyndrome.blogspot.com/2011/10/31-for-21-l-carnosine.html for an explanation.)

Excerpts from: The Role of Zinc in Down’s Syndrome
Eastland Roxanne 2001
Please find the full article as a pdf here:
http://www.dsrf-uk.org/library/documents/The_Role_of_Zinc_in_Downs_Syndrome.pdf


Conclusion
...The conclusions have been drawn from a critical review of all the research papers available on the subject of DS and zinc.

It appears that the majority of DS individuals are zinc deficient, and that they exhibit symptoms classically associated with zinc deficiency:

• Thyroid dysfunction
• Immunodeficiency
• Retarded growth
• Faulty DNA repair

Supplementation will raise DS zinc status to normal. Correction of zinc deficiency seems to:

• Improve thyroid function, though it is not clear yet what parameters are being affected
• Raise active thymulin levels and concomitantly lower inactive thymulin
• Possibly increase lymphocyte proliferation
• Possibly restore delayed hypersensitivity
• Improve neutrophil function
• Possibly normalise lymphocyte subset distribution
• Possibly minimise growth retardation
• Regulate DNA repair
• Regulate myeloid cell differentiation and apoptosis

There several possible reasons behind DS zinc deficiency, which are most likely to be working in some combination:


• Over-expression of genes
• Malabsorption
• Dysfunction of transport proteins
• Food choices
...As it is possible for too much zinc to suppress the immune system it would be wise to regularly test an immune parameter, such as lymphocyte proliferation, or to alternate periods of supplementation and periods without. It is possible that zinc therapy could benefit DS babies from birth, but at present it is not possible to recommend this as there is no evidence even as to its safety. It may be that the typical DS diet is low in zinc-rich foods, and it is vital to find ways of preparing such foods so as to appeal to a DS person and to educate individuals to incorporate such food in their diet.
It could also be sagacious to investigate such potential sources of malabsorption as food allergies, hypochlorhydria, and pancreatic insufficiency.

Dosage
The average adult daily intake of zinc from the diet is 10 mg. Evidence suggests this dietary intake will always be inadequate for patients who are at risk, like those who have Down's syndrome.
Zinc deficiency can result in many health problems and we believe it may be the root cause for the universal brain injury we see in Down's syndrome from a very early age. Medical research is needed to find the best treatment therapy. 25 mg per day of zinc may be needed to prevent zinc deficiency in young people and adults with Down's syndrome. Even higher doses (up to 60 mg per day) has been suggested for adults with DS. Babies and young children would get a much smaller dose rate based on body weight.In the autism community, the dosage is one mg per pound, plus twenty mg. This is the dosage I will go with until Jett's next blood draw. -Andi
Pumpkin seeds are high in zinc but can be hard to digest. I like soaked pumpkin seed butter.

For zinc products, please see the DS Day to Day amazon store.

(All of this is my addition. -Andi)

I'm researching these brands:

Gluten free and contains the amino acid methionine (L-methionine):

Life Extension Optizinc-- 30 mg - 90 Vegetarian Capsules
Vitacost L-OptiZinc® -- 30 mg - 200 Capsules is soy free


Has monomethionine:
Douglas Labs OptiZinc™Uses monomethionine. Other ingredients include cellulose, gelatin (capsule), and vegetable stearate. This product contains no yeast, wheat gluten, soy protein, milk/dairy, corn, sodium, sugar, starch, artificial coloring, preservatives, or flavoring.

Source Naturals OptiZinc® has monomethionine and 300 mcgs of copper and is soy free

Solaray-OptiZinc as Zinc Monomethionine and has 20 mgs of B6

---


Standard Process Zinc Many chiros carry this brand.



Eastland Roxanne 2001:

Zinc and its links with Down's Syndrome
...The importance of zinc is suggested by the many disease states found in DS that have also been observed in subjects with zinc deficiency. These include diabetes mellitus, dwarfism, hypogonadism, atherosclerosis, vitamin A deficiency night blindness, cirrhosis of the liver, myeloid leukaemia (Milunsky, 1970), and hyperthyroidism and hypothyroidism (Napolitano et al, 1990). Fabris et al (1993) cite the importance of zinc in the homeostatic networks found to be altered in DS, namely nervous, neuroendocrine and immune, and their interrelationship, plus a reduced turnover of this mineral, leading to the hypothesis that zinc deficiency could be implicated in at least some of the DS phenotype.
“Zinc forms part of the composition of at least 160 different enzymes. Indeed, zinc is the most widely used mineral in enzymes” (Graham and Odent, 1986).
It is vital for protein, essential fatty acid and carbohydrate metabolism, and for DNA synthesis, and can be used to detoxify lead and mercury (ibid.). The body only has a small pool of biologically available zinc, and a rapid turnover, meaning that deficiency signs appear very quickly (Passwater and Cranton, 1983).
 

Zinc status in Down's syndrome
It is this author’s opinion that taken as a whole the research to date indicates that it is likely that DS individuals have a low zinc status. Several papers reported normalisation of low zinc levels following zinc supplementation (Björkstén et al, 1980; Franceschi et al, 1988; Lockitch et al, 1989; Napolitano et al, 1990; Stabile et al, 1991; Licastro et al, 1992, 1993, 1994; Brigino et al, 1996; Trubiani et al, 1996; Bucci et al, 1999). This indicates a prevalence of zinc deficiency. If zinc status were already at an optimum level it is unlikely that homeostatic mechanisms would allow supplementation to raise zinc levels...
Importance of the Thyroid
Most investigators have found hypothyroidism in the DS population, with estimates of prevalence as high as 50% (Pueschel, 1990). This means that hypothyroidism is sometimes interpreted as being part of the ‘Down’s Syndrome Gestalt’, and that thyroid function should
be one system that is regularly monitored and treated as appropriate (ibid). ...Pueschel also states that failure to recognise thyroid dysfunction early enough can lead to further disturbances to
the central nervous system.
It should be noted that, although hypothyroidism is by far the most common thyroid dysfunction in DS and the one with which most researchers choose to work, a higher incidence than hyperthyroidism has also been reported (Pozzan et al, 1990). As certain parameters of thyroid function were universally found to be abnormal it is this author’s opinion that both hypo- and hyperthyroidism in DS could very well have the same root cause.
Function of the thyroid and thyroid hormones
The thyroid hormones regulate oxygen use and basal growth rate, cellular metabolism, and growth and development. There are two thyroid hormones under consideration in relation to DS (the third, calcitonin, is unrelated), T3 and T4. T4, also known as thyroxine, is manufactured in the thyroid from a glycoprotein, thyroglobulin, and is the inactive form. T3, triiodothyronine, is the active form and is made from T4. Reverse T3 (rT3) is also made from T4 but is inactive. This may be a mechanism for disposing of excessive amounts of T4.
Thyroid hormones are hydrophobic molecules which usually travel in the blood bound to a protein - specialised alpha globulin or albumin - and are inactive until released. A tiny fraction of the total T3 and T4 is free T3 and T4 (FT3 and FT4), and it is the concentration of free thyroid hormones that determines the effectiveness of these hormones. As they are lipophilic, the thyroid hormones are able to diffuse across plasma membranes and bind to receptors within the cell. This binding increases a receptor’s affinity for specific DNA sequences, controlling the rate of transcription of the appropriate gene. Secretion of T3 and T4 is stimulated by thyroid stimulating hormone (TSH, also known as thyrotropin), the secretion of which is stimulated in turn by thyrotropin releasing hormone (TRH). The release of TRH depends on blood levels of TSH, T3, glucose, and on the body’s metabolic rate.

Thyroid dysfunction in Down’s Syndrome
Research into thyroid function and zinc therapy in DS is still in its infancy and a clear picture has yet to form. The patterns that have emerged so far are that DS subjects exhibit:
• Elevated levels of TSH (Napolitano et al, 1990; Pozzan et al, 1990; Licastro et al,
1992, 1993; Sustrová and Strbák, 1994; Bucci et al, 1999)
• Reduced levels of rT3 (Lejeune, 1990; Licastro et al, 1992, 1993a)
• Normal levels of total T3 and total T4 (Franceschi et al, 1988; Napolitano et al, 1990;
Pozzan et al, 1990; Licastro et al, 1992, 1993a)
• Only a small percentage of disfunctional thyroids explained by antithyroid autoantibodies (Napolitano et al, 1990; Pozzan et al, 1990; Bucci et al, 1999)
The causes of these unusual ratios of hormones are as yet unknown. However, several authors make similar suggestions as to why TSH would be raised and T3 and T4 levels normal - i.e. why the thyroid has not been stimulated to release excess thyroid hormones. It is possible that there is some kind of dysfunction of communication between the hormone and its receptor.
Napolitano et al mention some kind of resistance syndrome, Pozzan et al posit the possibility of a less active TSH, and Sustrová and Strbák also put forward the idea, amongst others, of a hormone resistance. Licastro et al (1992) have a different approach, suggesting that there may be an increased rate of T4 degradation in the periphery, and that the body needs to secrete increased amounts of T4 to maintain a homeostasis.
Licastro et al (1992) put forward two possible reasons for the lowered amounts of rT3 found
in DS subjects: a decrease in formation T4 due to most of the T5 transforming into T3; or an increased conversion of rT3 into T2 (one of the precursors of T3 and T4). The latter is interesting as Lejeune states that excess SOD1 (discussed later) experimentally increases the transformation of rT3 into (inactive form) T2.
Sustrová’s and Strbák’s paper adds an interesting dimension to this picture as they separated their subjects by age into 3 groups: DS1 = 1-6 years, DS 2 = 6-15 years, and DS3 = 15-35 years. They found that all three groups had high TSH levels, high thyroxine binding globulin (TBH) levels, and low FT3 and FT4 levels. However, the T3 and T4 results told a more complicated story. DS1 had high levels of T3 and T4, DS 2 had high T3 and low T4, and DS 3 had T4 and T3 which were in lower concentration than the controls. Were the other researchers finding ‘normal’ levels of thyroid hormones because they were combining the high levels of the youngest subjects with the low measurements of the oldest? This could be true of Napolitano et al and Bucci et al whose DS subjects spanned the Sustrová’s and Strbák’s groups, though Bucci did find a significant inverse correlation between age and both T3 and FT3 levels. Licastro et al (1993a) fail to give the ages of the “children” in their 1993 paper - they could be as old as 17 or 18- but in their 1992 paper their DS subjects are 6-15 years old. Though this is the same age as the DS 2 group, Licastro et al (1993a) found normal T3 and T4 levels, thus contradicting Sustrová and Strbák. However, the idea that thyroid hormone production declines with age in DS people is worth further investigation and if true would beg many questions. Does TSH effectiveness decline? Does the ability of the thyroid to manufacture its hormones decline?
How could thyroid dysfunction be associated with the pathology of Down’s syndrome?
The thyroid hormones, along with insulin and human growth hormone, are responsible for accelerating body growth. It has been found that low rT3 levels could impair growth hormone stimulation (Lejeune), and that all DS children with elevated TSH exhibit more severe growth delay (Bucci et al). Increased weight gain often becomes apparent in many individuals with DS (Pueschel), a common symptom of hypothyroidism as the thyroid controls basal metabolic weight. Indeed Pueschel states that one cause of weight gain in DS is a decreased intracellular metabolic rate. Thyroid dysfunction interferes with the hypothalamic-pituitary-thyroid axis which modulates thymic activity, thus affecting immunity (Napolitano et al) and DS subjects are characterised by an unbalanced immune control including poor performance by the thymus (Serra and Neri, 1990). Both thyroid hormone deficiency (Barnes and Galton) and DS (Lejeune) are associated with mental retardation. Lejeune discusses the role of the thyroid in directing tubulin organisation, and points out that only three conditions exhibit neurofibrillary tangles: Alzheimer’s disease, hypothyroidism, and DS. It is interesting that many of the physical characteristics of cretinism (extreme thyroid deficiency during foetal or early life) correspond with those of DS such as enlarged tongue, open mouth, broad face and flat nose.
What role does zinc play?
Altered zinc levels have been observed in both DS subjects and in hypothyroid patients when compared to controls (Napolitano et al; Bucci et al), though the roles zinc plays are only beginning to be teased out.
Thyroid hormone receptors require zinc ions (Licastro et al, 1992; Sustrová and Strbák) which facilitate folding into their active shape (Bucci et al). Zinc is also required for binding thyroid hormone receptors to the target DNAs, called thyroid response elements (Licastro, 1992; Bucci et al). A zinc deficiency may require more of a hormone to be secreted in order that enough is taken up. Sustrová and Strbák suggest that if the pituitary receptors were affected, normal thyroid hormone concentrations would not inhibit TSH secretion. This author wonders whether TSH receptors are rendered less active by zinc deficiency, meaning more TSH must be secreted to maintain a normal level of T3 and T4.
Zinc is required by thyroid hormone deiodinase, which modulates the deiodination activity vital for the homeostasis of the thyroid hormones. Thyroid hormone deiodinase converts T4 to T3, and removes the iodine ions from excess T1 and T2 (thyroid hormone precursors) to be reused in the synthesis of more T3 and T4. Perhaps a zinc deficiency would affect the rate of conversion of T4 to rT3 via the deiodinising enzyme? It is impossible to ignore the connection between the function of the thyroid and of the thymus, especially when discussing the importance of zinc. There is a close correlation between zinc, the thymic hormone and the pituitary-thyroid axis. Thymulin - the thymic hormone - is associated with an improvement in thyroid function (Bucci et al) and each thymulin molecule contains a zinc ion (thymic function is discussed in more detail further on). Zinc may affect the action of the binding proteins that carry thyroid hormones, and this could interfere with the pituitary-thyroid axis (Napolitano et al). Zinc deficiency appears to affect the utilisation of thyroid hormones in the peripheral tissues (Licastro et al, 1992).


What effect does zinc supplementation have on thyroid function?
Every piece of research this author found which measured the effects of zinc supplementation on DS thyroid function found significant changes. However these changes were different in almost every case, and sometimes contradictory. Each piece of research supplemented the subjects by os, that is 1mg of supplement per kg body weight per day. Though most stated the use of zinc sulphate, some, such as Licastro (1992), did not make clear whether the measurement was of elemental zinc or a zinc compound. This would affect the amount of elemental zinc the children were receiving. This could be one of the reasons behind variations in results. 1mg per kg per body weight is a high dose when compared with the governmental Estimated Average Requirement for the normal population. Using growth charts for children with DS (Cronk et al, 1988) to estimate bodyweight a 1-3 year old would be given 12.5mg while the EAR is 3.8mg per day, and a 15 year old would be supplemented with 55mg instead of the EAR 7.3mg. In both their 1992 and 1993 papers, Licastro et al found that TSH levels returned to normal with zinc supplementation. Bucci et al note that it was the hypozincaemic DS subjects which exhibited high TSH and that they experienced a significant decrease after supplementation. Conversely, Napolitano et al found that TSH remained the same after 6 months supplementation and Sustrová and Strbák found that after a year of alternating three months with supplementation with three months off, ending on three months off, the TSH levels were found to rise. The only papers to measure rT3, both by Licastro et al, found a rise to normal levels after supplementation. These papers also found T3 and T4 remained the same while Napolitano et al found a rise in T3, and Sustrová and Strbák found a drop in T4. Napolitano et al found a drop in FT3 after zinc treatment, and Bucci et al found that FT4 levels reduced significantly, also reducing the FT4/FT3 ratio.


Immunodeficiency - The Thymus
“Patients with Down’s syndrome suffer from frequent infections and have an increased
mortality in infectious diseases compared to a normal population. Several laboratory studies
have demonstrated abnormalities of cell-mediated and humoral immune capacity and of
phagocyte function.” (Björkstén et al, 1980). As zinc is vital for the functioning of the
immune system (Meek, 1996) it makes sense to consider the role of zinc when questioning
why the DS immune system is weak, and how it can be supported. It has been found that
young animals and humans, when receiving insufficient zinc, exhibit:
• Rapid thymic atrophy
• Decreased production of thymic hormones
• Impaired lymphocyte proliferation after phytomitogen stimulation
• a) decreased number of, and dysfunction of, T-lymphocytes b) abnormal T-
helper and/or suppressor cell function
• Deficiency of natural killer cells
• Significantly reduced antibody and cell-mediated responses
• Delayed hypersensitivity reaction
• Decreased spleen and lymph nodes
• Generalised defective development of lymph tissue
(Franceschi et al, 1988; Stabile et al, 1991; Brigino et al, 1996)
The significance of the thymus
“The majority of immune alterations observed in DS subjects seem to depend on defective
thymic function.” (Fabris et al, 1993). This would include low levels of thymulin; a reduction
in and/or disruption to the subset division of, T-lymphocytes; a reduction in B-lymphocytes
(the proliferation of which is controlled by the T helper cells) and diminished delayed
hypersensitivity — all part of what is known as the adaptive immune system. Napolitano et al
(1990) claim that low zinc levels are responsible for the early atrophy of the thymus. One
obvious link between the thymus and low zinc status is that zinc is required to transport
vitamin A from the liver, and vitamin A is necessary for the growth hormone which
maintains the thymus (Meek, 1996).


The importance of functional assays
Before the effects of zinc supplementation on these parameters is considered, a ground-
breaking piece of research by Fabris et al in 1984 must be considered. Having realised that
plasma concentrations of thymic factors are not necessarily a reliable index of the functional
activity of the gland, the investigators measured the levels of active thymulin and the levels
of thymulin inhibitory activity in young DS subjects and in healthy controls. They then added
zinc sulphate in vitro and assayed again. The finding was that the DS individuals and the
normal subjects over 50 years old had an inverse correlation between plasma active thymulin
and thymulin-inhibitory activity. In normal people up to 20 years old thymulin levels were
highest of all those measured and thymulin-inhibitory activity was not detected in healthy
subjects until they reached 30. Conversely thymulin-inhibitory activity was high even in the
youngest DS children. In both the elderly people and DS subjects plasma zinc was below the
normal range for healthy adults. Once zinc sulphate was added to the plasma samples from
both these groups the active thymulin levels become the same as those found in healthy
young adults and the thymulin-inhibitory activity completely disappeared. These inhibitory
factors have not yet been identified, though some experiments suggest an anti-thymulin anti-
body is involved. However, as Fabris et al point out, this is highly unlikely in their work, as
there is a strict inverse correlation between the thymulin and the thymulin inhibitory activity,
which is reversed by the addition of zinc sulphate. Their interpretation is that the inhibitory
substance is in fact biologically inactive thymulin, which is still able to bind to thymulin
receptor sites, and that the thymulin is activated by zinc. This is a very neat assumption,
which accords with other research. Interestingly, though the DS active/inactive thymulin ratio
was completely corrected by the addition of zinc sulphate, in the normal subjects this was
only partial, suggesting that in physiological ageing other factors interfere with thymulin
turnover. The overall picture is that DS people’s thymuses do produce sufficient thymulin,
that insufficient zinc is available to activate it, and, importantly, simply measuring levels of
thymulin in the plasma was not telling the whole story. This paper plainly shows that
measuring levels and counting numbers is not the same as assaying what is biologically
available. In deed Lockitch et al acknowledge in their paper that “lymphocyte number and
subset distribution are relatively static indexes of immune system capability and that
functional assays such as in vitro antibody or interleukin production may be more sensitive
indicators for future studies.”

Does zinc improve the functioning of the immune system in Down’s syndrome?
Franceschi et al found that zinc significantly raised active thymulin and lowered inactive
thymulin, echoing Fabris’s findings, but Brigino found no increase in thymulin levels despite
normalised cellular zinc levels. These findings can not really be compared as Brigino used
only 5 subjects, all of whom presented with recurrent infections such as pneumonias and
chronic otitis media. It is quite possible that such conditions, which did improve with
supplementation, were utilising the extra available zinc. Franceschi et al used 18 subjects and
Fabris et al used 72, all off whom were basically healthy.
Zinc supplementation appears to increase lymphocyte proliferation (Stabile et al, Licastro et
al, Brigino et al), which may be because zinc is essential for cell division. This is because
DNA polymerase is the enzyme central to DNA replication, and cannot function without zinc.
The aforementioned three papers also all found a reduced incidence of recurrent infections.
Lockitch et al however, found no improvement in the frequency of infections. It is this
author’s opinion that the methods of assessing frequency of infectious episodes prior to and
after zinc supplementation were far too inexact to be useful. For example Licastro et al asked
parents to remember the number and type of infections their child had had the previous year
and Stabile et al give no indication how they collected the information. The parents in
Lockitch’s investigation were instructed in detail how to fill in an infection log, which lends
more credence to this research, but still relied on parental judgement on what would be
considered normal. Possibly more objective means of assessing day-to-day infectious status,
such as a daily temperature chart, should be investigated.
Other papers found improvements such as increased T-lymphocytes (Franceschi et al),
improved skin responsiveness (Björkstén), or improved utilisation of interleukin 2 (IL-2)
(Licastro et al), but until these tests are repeated it is not possible for this author to
confidently comment on their validity. Lockitch et al found no improvement in any of the
parameters they measured, and indeed found that lymphocyte proliferation decreased even
further. The researchers themselves suggest that “although low doses raise serum zinc values,
a much higher intake is needed to correct cellular deficiencies,” but Licastro et al propose the
possibility that “the zinc supplementation was given for a longer period (6 months in the
[Lockitch] study). Prolonged zinc administration (6 months versus [Licastro’s] 4 months)
might suppress immune functions. An excessive zinc intake has indeed been shown to
impair... lymphocyte [proliferation] in humans, polymorphonuclear migration response to the
chemotactic factors and granulocyte phagocytosis of opsonized bacteria.”

...

Immunodeficiency - Leukocyte Function
It has been found that the chemotaxis, phagocytosis, and other anti-foreign microorganism
actions of leukocytes are reduced (Fabris et al, 1993). Licastro et al (1993b, 1994)
investigated the ability of DS neutrophils to produce chemically active molecules, such as the
superoxide anion, when stimulated. They observed that chemical activity was low before
supplementation but after zinc therapy neutrophil reaction to a stimulus was normalised. The
authors point out that protein kinase C is believed to play an important role in the activation
of human neutrophils, including superoxide generation, and that the activity of protein kinase
C is regulated by zinc ions. Possibly the actual fault is an impaired activation of protein
kinase C because of a poor supply of zinc ion. Rates of infection amongst the subjects were
found to decrease with supplementation, but the same problems with this data apply as
previously discussed, especially the compilation of a record of each child’s infection history
for the year preceding the experiment from what the parents recalled.
Neutrophil chemotaxis was also found to be reduced in DS patients by about 30%, but
normalised after zinc therapy (Björkstén et al, 1980). Björkstén et al relate zinc enhancement
of neutrophil activity to possible membrane phenomena and also mention intracellular
activity, as leukocyte locomotion is very complex. Licastro et al (1993) also followed up their
subjects a year after ceasing zinc therapy and found that neutrophil activity had dropped
again, supporting their assumption that zinc had improved their functioning. Unfortunately
Björkstén did not follow up his subjects so a similar comparison is not available.
That zinc supplementation may improve neutrophil deadliness is very important in attempting
to understand how to reduce the incidence of infection in DS people. Further investigation to
expand understanding in this area could prove very fruitful, including investigation into the
role of protein kinase C and its relationship with zinc.

Maturation of blood cells
Differentiation is the process by which subsets of a family of cells are formed from parent, or
‘stem’ cells by the acquisition of specific functions. It is of particular importance in
haemopoiesis, the process by which blood cells are formed, and the consequent development
of T-lymphocytes. Differentiation is a gradual process with cells passing through various
stages before achieving maturity, and is stimulated by various growth factors. Apoptosis is a
mechanism of programmed cell death, which occurs as a response to an external factor or the
withdrawal of a growth factor. It is an important part of cell differentiation for both the
immune system and haemopoiesis as it culls excess cells to maintain a suitable subset balance. The enzymes concerned in breaking apart DNA fragmentation during apoptosis are
endonucleases.

Inefficient cell maturation

DS individuals have been found to have an unusual presence of immature myeloid cells
(found in the earliest stages of haemopoiesis) in peripheral blood circulation associated with
low levels of zinc plasma (Trubiani et al, 1996a, 1996b). Both pieces of research found that
six months of zinc therapy induced the disappearance of the immature myeloid cells, but the
authors offer different possible explanations:
• That zinc is required for the process of programmed cell suicide: “ The results here show that zinc therapy in Down’s patients induces cell death of undifferentiated and ineffective myeloid cells, recovering a mechanism related to cellular differentiation of the haemopoietic system”  (1996a)
• That zinc is required for normal cell differentiation: “Since leukocytes contain high
levels of zinc and this level varies with cell maturity, being lowest in the most
immature cells, we suggest that low plasma zinc levels in DS subjects could be
responsible for a reduced rate of myeloid differentiation resulting in accumulation and
in escape from the bone marrow of immature cells reaching the peripheral blood”
(1996b)
• These reasons are not mutually exclusive and most likely zinc supplementation is
supporting both processes (Trubiani et al, 1996a).

Inappropriate apoptosis

A paper was published the following year, by essentially the same researchers (Antonucci et al, 1997), which evaluated the presence of apoptosis in the peripheral blood cells in DS subjects before and after six months of zinc supplementation. It was found that there were signs of programmed cell death before the zinc treatment, which decreased in all the patients following supplementation. The authors state that endonucleases are inhibited by normal plasma zinc concentrations and suggest that in DS individuals low levels of plasma zinc activate the endonucleases. Zinc therapy would therefore inhibit the apoptotic process leading to a decrease in the number of apoptotic cells.

Meanings of these results
It would appear that programmed cell suicide is happening at an inappropriately high rate in
mature DS peripheral blood cells. This author believes that when combined with the
weakened cell maturation process discussed above these findings represent a serious decrease
in the numbers of healthy, efficient blood cells in circulation, and the apparent success in
treating this deficiency with zinc has important implications for supporting DS people’s
health. Murphy et al (1995) found that DS spleens are markedly missing T cells “suggesting
the inefficient release of mature T cells from the DS thymus to the DS spleen”. Could this
lack of mature T cells be related to a poor rate of stem cell maturation? Or to a rapid
destruction of healthy, mature cells by a high rate of apoptosis? Or both? How does this
confusion of the cell differentiation process relate to the 10 to 20 times higher risk DS people
have of developing myeloid leukaemia (Milunsky et al, 1970)? The question must also be
asked as to why these scientists found that zinc deficiency appears to reduce programmed cell death in immature cells and promote it in mature cells. It is unfortunate that at present one
group of investigators has done all the research and it is hoped that in the future other
scientists will pick up the baton.

DNA Repair
Premature ageing is a universal problem for DS people, including a far higher risk of
developing Alzheimer’s disease (Opitz and Gilbert-Barness, 1990). This observation suggests
a fault in the integrity of the DNA repair system. Chiricolo et al (1993) investigated whether
zinc supplementation affected the maintenance of DNA integrity by damaging lymphocyte
DNA with radiation in vitro, before and after four months of zinc supplementation, and
observing the rates of repair. The finding was that before supplementation the DNA damage
(which was normal) was repaired extraordinarily rapidly when compared with the cells from
normal children. The authors suggest that persistent oxidative stress may mean that DNA
repair enzymes are activated in higher numbers in DS, a possible explanation for the
increased rate of repair. It may even be that zinc deficiency contributes to this oxidative
stress. They also suggest that the high speed of repair is likely to mean more mistakes are
made and that “it could contribute to neurodegeneration and precocious ageing which are
both hall-marks of the system.” (Chiricolo et al). After the period of zinc therapy the damage
received by the DS lymphocytes was the same as before, but the rate of DNA repair was
significantly reduced, back down to a normal, and presumably more accurate, speed.
Thus the paper shows that zinc does not appear to have a protective effect against DNA
damage - at least not radiation damage - but rather modulates the speed of repair and so
probably its accuracy. The authors speculate that this is because four months of zinc therapy
was enough time to reduce the oxidative stress, but this author believes it is also possible that
zinc is a requirement for one or more enzymes which regulate DNA repair. Possibly this
could be investigated in vitro, without zinc supplementation in vivo, to observe the effect of
immediate availability of zinc ions rather than a slow build up of effects associated with a
gradual rise of zinc status to normal. Though this is only one paper it appears to be the first
that demonstrates a nutritional intervention apparently affecting DNA repair, and so is a
ground-breaking paper.


Growth Delay
“Growth retardation is a cardinal characteristic of Down syndrome” (Annerén et al, 1990). It
is not known what the underlying mechanism is responsible for the retardation of growth. DS
children have normal levels of human growth hormone (hGH) and low levels of
somatomedin C — also called insulin-like growth factor (IGF-1). IGF-1 is regulated by hGH
postnatally, and it appears that in DS there is a delayed, possibly incomplete, transfer from
foetal IGF-1 to the hGH regulated IGF-1 (Annerén et al, 1990). Growth is mainly restricted
between the ages of 6 months (when hGH starts to regulate growth) and 3 years. Some, but
not all, researchers have found that growth after this age is near to normal, just starting from a
smaller stature (Annerén et al, 1993). Napolitano et al (1990) found that the level of IGF-1
rose after zinc supplementation, especially in children over 7. Zinc levels diminish with age
in DS people, as with normal people, though this happens earlier in DS, so it is conceivable
that the results were more pronounced with older children as they had a greater need for extra
zinc. The effect of zinc supplementation
Strangely, despite the well documented link between zinc deficiency and growth delay
(Passwater and Cranton, 1983), this author found only one paper investigating the effects of
zinc supplementation on growth in DS children. Napolitano et al studied 22 DS children
whose growth velocity was calculated for the six months before the period of
supplementation and during the six months of therapy. They were supplemented by os, and
their rate of growth compared with special growth charts for DS children (Cronk et al, 1988).
It was found that 15 of the subjects moved into a higher centile in their growth charts and,
interestingly, that the children older than 7 years showed a greater differential in growth
velocities before and during supplementation than the children aged 4-7 years. This
particularly noteworthy when compared to the finding that suppressed growth occurs earlier.
Unfortunately, no children under 3.8 years were included. The results for children under 4
years, and over 10 years (girls) or12 years (boys) were considered separately to avoid
interference by first childhood and pubertal growth spurts.
This author considers that there could be huge potential for zinc therapy to minimise growth
retardation. Zinc is essential for DNA and RNA polymerase and thus for cell proliferation; it
is necessary for protein metabolism; and as it is essential for the functioning of hormone
receptors (such as protein kinase C) zinc is possibly required for hGH and/or any of the hGH
regulated growth factors to function efficiently. The results of Napolitano et al’s work are
encouraging, but need to be repeated with measurements of the foetal variant form of IGF-1,
and assays into numbers and activity of hGH binding sites in DS would be useful.  Further
research using younger children would be extremely valuable in illuminating the role of zinc
in hGH functioning, transfer to hGH regulated IGF-1, and growth delay. Napolitano et al
suggest the possibility that thymus hormones may have a role in regulating the secretion of
hGH in DS children. Considering the importance of the thymus and thymic factors already
discussed, this link raises many more possibilities.
 


Gene over-expression as a drain on zinc
Extra SOD-1 gene

The best known gene mapped to chromosome 21 is that for copper-zinc superoxide dismutase
(SOD-1), and it is estimated that 99% of DS people have three copies of this gene (de Haan et
al, 1997). Most researchers found an elevated level of zinc in the erythrocytes (Milunsky et
al, 1970; Nève et al, 1983, 1984; Purice et al, 1988) and as there is believed to be a 50%
increase in SOD-1 activity in DS subjects (Jeziorowska et al, 1988), it seems “highly
probable that the increase of red cell... zinc levels in trisomy 21 is partly attributable to the
increased SOD-1 activity” (Nève et al, 1983). Kadrobova et al point out that “adaptations for
permanent oxidative stress and changed biochemical functions in DS may lead to the
increased requirements of an organism for zinc” (1996). This means that it is highly likely
that DS people have an increased need for zinc as they use a larger percentage of that
available for manufacturing SOD-1. It also alludes to the effects of increased SOD-1 activity.The function of SOD-1
The task of SOD-1 is to remove the superoxide radical, but it performs only half of the
process of clearing up by transforming the free radical into a much less volatile free radical
called hydrogen peroxide. It is glutathione peroxidase (and possibly catalase) which finishes
the process by dismantling hydrogen peroxide, otherwise prone to forming the hydroxy
radical, the most destructive of the free radicals. While SOD-1 activity is elevated because of
gene dosage, glutathione peroxidase and catalase are only present in the normal quantities,
quite possibly leading to an accumulation of hydrogen peroxide which could result in
considerable oxidative damage.

Zinc as an antioxidant
As well as its role in the formation of SOD-1, zinc has an antioxidant effect in its own right,
and stabilises cell membranes (Kadrobova et al, 1996). It is possible that the permanent
oxidative stress of excess production of hydroxy radicals uses up a higher proportion of zinc
than is used for antioxidant activity in normal people. If oxidative stress were to be a drain on
zinc resources it could be expected that exercise would increase this load, as exercise
increases oxygen metabolism thus increasing the production of free radicals. Two pieces of
research look at the effects of exercise on the plasma and erythrocyte zinc levels. The first, by
Laires et al (1994) found that exercise did not change these measurements, but the period of
exercise was only twenty minutes rowing. As the paper reports that DS people find such a
length of time of concentrated exercise difficult, it is quite possible that many subjects either
did not complete twenty minutes, or did so in smaller sections. The second paper, by
Monteiro et al (1997), looks instead at the effects of aerobic exercise over the period of time.
The subjects’ regime was increased gradually until they were performing 25 minutes of
aerobic activity 3 times a week. After 16 weeks their plasma zinc and erythrocyte zinc levels
were compared with their starting values, and the plasma zinc was found to be significantly
lower. The authors suggest either an activated expression of antioxidant mechanisms or
elevated sweat loss as possible reasons. This author considers sweat loss less likely because
sweat, as well as having a cooling action, is a mechanism for excreting excess ions. There is
no evolutionary advantage to excreting a trace element that is already in short supply. There
is of course a possibility that DS people have a faulty sweat mechanism but this author found
no mention of this in relation to zinc status in any papers. Thus this author considers this
research supportive of the possibility that excess SOD-1 is placing a drain on zinc supplies.


Not all DS subjects express excess SOD-1
It should be added that some researchers have found that it is possible for the clinical features
of DS to exist without elevated levels of SOD-1 (Jeziorowska et al, 1988; De La Torre et al,
1996) — a reminder that “among numerous abnormalities reported in DS no finding except
for the extra chromosomal material is constant” (Jeziorowska et al). However it is this
author’s opinion that excess SOD-1 is likely to be a factor in the majority of DS people.

Over-expression of other proteins
Another known gene on chromosome 21 is that for the protein subunit S100ß. An increase of
this could also increase the requirements for zinc (Lejeune, 1990). According to Lejeune it is also possible that there is excessive adenosine formation, mainly produced by a zinc-
requiring enzyme, which could be another drain on the available zinc. Trubiani et al  (1996)
also mention other zinc binding proteins which appear to be over-expressed in DS subjects:
polymerase and various kinases which are necessary for cellular metabolism and
differentiation.

The possibility of malabsorption
A common explanation for nutritive deficiencies in subjects with a normal diet is that of
malabsorption, and several authors consider it a possible reason for low serum zinc in DS
(Bruhl et al, 1987; Kanavin et al, 1988; Licastro et al, 1993). Sylvester (1984) considers
malabsorption to be a significant reason behind low levels of nutrients. He states that the
shortages of some trace metals to which DS people are prone are lifelong, and points out that
their absorption from the intestines, measured using the xylose absorption test, has been
found to be reduced. Abalan et al (1990) measured the absorption in 4 DS patients by
microscopically examining their stools for meat fibres after a measured diet. The meat was
minced to negate the effect of insufficient chewing due to poor dentition – DS children are
prone to abnormalities of tooth formation, and to periodontal disease (Pueschel, 1990). The
finding was a high meat fibre count, strongly supporting the malabsorption hypothesis. As
Abalan et al point out, this test does not indicate what the cause of the malabsorption could
be, suggesting as possibilities pancreatic insufficiency, reduced intestinal absorptive capacity,
or other causes. This author would add hypochlorhydria, and food allergies as possible causes. In the wake of reports of a high incidence of coeliac disease in DS, Strong (1993) performed a study which found all of his ten subjects displayed raised IgE and IgG to one or more of 13 common food allergens. Though only a preliminary study this indicates a possible role of allergies in DS malabsorption. Both of these studies are small-scale, uncontrolled investigations; larger, controlled investigations would provide valuable data regarding DS absorptive status.
A cautious note is struck by Licastro et al who point out that some elements, such as copper and magnesium, are found in the normal range in DS, an argument against malabsorption as an explanation for low zinc levels.


Transportation
Zinc ions need to be bound to a carrier to travel in the bloodstream.
... It is also possible that carriers are transporting the wrong ions; the concentrations of heavy metals is beyond the remit of this paper, but it is known that cadmium, aluminium, and copper are zinc antagonists and can replace zinc ions.
This author believes that problems with transport proteins could play a role in DS low zinc status, and the way forward is to measure the activity of all the proteins known to be
involved.



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Friday, April 22, 2011

Astragalus Promotes Growth Hormone Release

I've been interested in astragalus for Jett because it helps with anemia (which Jett was borderline), Alzheimer's Disease, can act as a laxative and promotes growth hormone release (See Growth Hormone & Astragalus below). In one year, exactly today, (August 23, 2011) Jett had his heart surgery. Since then, he has only gained two pounds and lost one. 

IMPORTANT NOTE: Since I wrote what is above and directly below, I've realized that I gave Jett natural dessicated thyroid for the two weeks that Jett's doctor changed his thyroid meds from T3 to T4, since it takes 2 weeks for the synthetic meds to work... It was during these two weeks that Jett grew so much... I took him off the natural in lieu of the synthetic. The growth stopped... Now, he's back on the natural (NutraMeds--see the thyroid post) and low and behold, he is growing again! So, it appears that it is the NutraMeds thyroid and may or may not be the astragalus. I am continuing the astragalus anyway--may as well finish the bottle! 


But, I've been giving astragalus to him for seven days and he has gained a pound over these seven days! I repeat, in A YEAR he has gained 2 pounds and lost 1, and in 7 days on astragalus, he has gained 1 pound!! Additionally, Jett has been constipated since he was 3-4 months old... In these 7 days, Jett has gone on his potty every single day!! So this is the first time he's gone 7 days in a row in 13-14 months!! I must note that I gave Jett a couple of drops for a week to see if he'd have a reaction. I didn't see anything so I went ahead and gave him 15 drops the first day and increased it to 10 drops in the morning, 10 in the afternoon and 6 at night through the course of these 7 days. The second day, he vomited twice and actually had three bowel movements. Jett has never had diarrhea except the day after heart surgery because of the antibiotics. And these 3 BMs looked normal, but did cause him much stomach distress. (I'm sure he needed to be cleaned out a bit!) After this second day, there's been no vomiting and just one normal looking BM a day (actually at night). 
Needless to say, I'm very optimistic about this treatment! I tried to measure him but he was not cooperative at all and I actually got numbers that were less than 7 days ago. I know he didn't shrink, so I'll get my husband to help me tomorrow. 



Update: After two weeks on astragalus: He gained another pound! So he's up to 18 lbs!!!Update. September 20: He's lost 1/2 a pound when we traveled to Wisconsin. So, since I've been giving him astragalus, he's gained 2 lbs, lost 1/2, and grew an inch and grew 1 centimeter in head circumference, in less than a month!Update (restarted the thyroid meds): December 1: He's up to 19.8 lbs! And his head circumference increased 1/2 an inch!
I talked to Jett's TCM (Traditional Chinese Medicine) practitioner, and she said that it made perfect sense to her that it would be working for him. (Because it increases chi and something about water, etc.??) She cautioned that in TCM, they use a blend of herbs and not just the straight herb. She said if he's tugging at his ears, then he's getting too much and needs a couple of days off. She said maybe 3 days on, 1 day off. Or 9 days on, 3 days off. She said since he may have pulmonary hypertension, I need to take him off 10 days before any tests on his heart and lungs so that it won't interfere with the results. He's getting his heart/lungs tested soon, so I went ahead and took him off. Since taking him off, he's only had one BM on his own and one that we forced in two weeks. :( After his tests, I'll put him back on.



New update (2/2014)

I tried astragalus again just because I had some left over from another family member... This time, Jett had recently been growing because of new thyroid meds. But Jett had a new side effect this time, what was happening was that Jett woke up all night long soooo thirsty! I turns out that the first time I gave it to him, he was still hypothyroid, which could be described as "congested" with "foggy brain" and "cold" or "cold and moist"... But, now that he's not hypothyroid, (clear congestion/brain) he reacted to astragalus differently. I looked it up and found this from http://chakra4online.com/herbs-for-immune-support/the-benefits-of-astragalus:


Even though Astragalus is safe and non-toxic, its energy is warm and dry. If you are cold and moist, Astragalus is well suited to your constitution. However, people who tend to run hot and are thirsty all the time may become hotter and drier when using Astragalus, unless you offset the action with other herbs.
It is important to customize the way you use herbs to be compatible with your own unique body type and constitution. There are other herbs you can use to enhance the effectiveness of the remedy and not aggravate your condition.
If you tend to be hot and dry:
Combine Astragalus with Marshmallow root, which is cool and moist
If you are female, especially during the menopausal years, combine with Shatavari, a female tonic herb from India
Make a tea of Peppermint and Chickweed, add Astragalus tincture, serve cool


If you run hot and moist, bitter herbs tend to be cool and dry in action, and can offset the warmth of Astragalus. Oregon Grape root, Dandelion root are two good examples.

If you’re cold and dry:
Add Licorice root to Astragalus tea; Licorice is warm and moist
Combine with Ginger and Marshmallow root 


Overview

Astragalus (Astragalus membranaceus) has been used in Traditional Chinese Medicine for thousands of years, often in combination with other herbs, to strengthen the body against disease. Astragalus is an adaptoge, meaning it helps protect the body against various stresses, including physical, mental, or emotional stress. It may help protect the body from diseases such as cancer and diabetes. It contains antioxidants, which protect cells against damage caused by free radicals, byproducts of cellular energy. Astragalus is used to protect and support the immune system, for preventing colds and upper respiratory infections, to lower blood pressure, to treat diabetes and to protect the liver.

Astragalus has antibacterial, and anti-inflammatory properties. It is sometimes used topically for wounds. In addition, studies have shown that astragalus has antiviral properties and stimulates the immune system, suggesting that it is indeed effective at preventing colds.

In the United States, researchers have investigated astragalus as a possible treatment for people whose immune systems have been compromised by chemotherapy or radiation. In these studies, astragalus supplements have been shown to speed recovery and extend life expectancy. Research on using astragalus for people with AIDS has produced inconclusive results.

Recent research in China indicates that astragalus may offer antioxidant benefits to people with severe forms of heart disease, relieving symptoms and improving heart function. At low-to-moderate doses, astragalus has few side effects, although it does interact with a number of other herbs and prescription medications. Astragalus may also have mild diuretic (rids the body of excess fluid) activity.

Medicinal Uses and Indications

Traditional uses include the treatment of the following:

* Adaptogen - protects the body from stress
* Colds and influenza
* Persistent infection
* Fever
* Multiple allergies
* Asthma
* Chronic fatigue
* Fatigue or lack of appetite associated with chemotherapy
* Anemia
* Wounds
* Heart disease
* Kidney disease
* Hepatitis
* Stomach ulcers

It is also used to treat general digestive disturbances, including diarrhea, gas, and bloating.

For products I use for Jett, see the DS Day to Day Store

Dosage

Pediatric

Astragalus may be given to children to support the immune system. A child with fever, however, should not be given astragalus because, according to Traditional Chinese Medicine, the herb may make the fever last longer or grow stronger. 

There is not enough scientific data to recommend a certain dose for use in children. But a dose can be determined by adjusting the recommended adult dose to account for the child's weight. Most herbal dosages for adults are calculated on the basis of a 150 lb (70 kg) adult. Therefore, if the child weighs 50 lb (20 - 25 kg), the appropriate dose of astragalus would be 1/3 of the adult dosage. However, because strengths and concentrations will vary with different preparations, dosages should be determined on an individual basis. Any long-term dosage should be determined by your doctor.

Note: In theory, consumption of the tragacanth (gummy sap derived from astragalus) may reduce absorption of drugs taken by mouth, and should be taken at separate times.


Adult

Doses from 1 - 25 g per day are sometimes used. Higher doses may suppress the immune system. For best results, it is recommended to use a standardized astragalus supplement. Recommended doses are as follows:

* Standardized extract: 250 - 500 mg, three to four times a day standardized to 0.4% 4-hydroxy-3-methoxy isoflavone 7-sug.
* Decoction (strong boiled tea): 3 - 6 g of dried root per 12 oz water, three times per day
* Fluid extract (1:1) in 25% ethanol: 2 - 4 mL, three times a day
* Powdered root: 500 - 1,000 mg, three or four times per day
* Ointment: 10% astragalus applied to surface of wound. Do not apply to open wound without your doctor's supervision.
* Tincture (1:5) in 30% ethanol: 3 - 5 mL, three times a day

General use by mouth: In Chinese medicine, astragalus is used in soups, teas, extracts, and pill form. In practice and in most scientific studies, astragalus is one component of multi-herb mixtures. Therefore, precise dosing of astragalus alone is not clear. Safety and effectiveness are not clearly established for any particular dose. Various doses of astragalus have been used or studied, including 250 to 500 milligrams of extract taken 4 times daily; 1 to 30 grams of dried root taken daily (doses as high as 60 grams have been reported); or 500 to 1000 milligrams of root capsules taken 3 times daily. Dosing of tinctures or fluid extracts depends on strength of preparations.

The below doses are based on scientific research, publications, traditional use, or expert opinion. Many herbs and supplements have not been thoroughly tested, and safety and effectiveness may not be proven. Brands may be made differently, with variable ingredients, even within the same brand. The below doses may not apply to all products. You should read product labels, and discuss doses with a qualified healthcare provider before starting therapy.

Based on anecdotal reports and preliminary laboratory research, astragalus may increase the risk of bleeding. Caution is advised in patients with bleeding disorders or taking drugs that may increase the risk of bleeding. Dosing adjustments may be necessary.

Preliminary reports of human use in China have noted decreased blood pressure at doses below 15 grams and increased blood pressure at doses above 30 grams. Animal research suggests possible blood pressure lowering effects. Due to a lack of well-designed studies, no firm conclusions can be drawn. Nonetheless, people with abnormal blood pressure or taking blood pressure medications should use caution and be monitored by a qualified healthcare professional. Palpitations have been noted in human reports in China.

Standardization

Standardization involves measuring the amount of certain chemicals in products to try to make different preparations similar to each other. It is not always known if the chemicals being measured are the "active" ingredients. Anecdotal reports have recommended astragalus to be standardized to a minimum of 0.4% 4-hydroxy-3-methoxy-isoflavone-7-glycoside per dose. However, since astragalus is often added to herbal mixtures with unclear amounts used, standardization is not always possible.

Benefits

Uses based on scientific evidence

Anti-viral activity

Anti-viral activity has been reported with the use of astragalus in laboratory and animal studies. Limited human research has examined the use of astragalus for viral infections in the lung, heart (pericarditis), liver (hepatitis B and C), cervix (papilloma virus), and in HIV disease. Studies have included combinations of astragalus with the drug interferon, or as a part of herbal mixtures. However, most studies have been small and poorly designed. Due to a lack of well-designed research, no firm conclusions can be drawn.

Cancer

Although early laboratory and animal studies report increased immune cell function and reduced cancer cell growth associated with the use of astragalus, there is no reliable human evidence in these areas. Due to a lack of well-designed research, a firm conclusion cannot be drawn.

Chemotherapy side effects

In Chinese medicine, astragalus-containing herbal mixtures are sometimes used with the intention to reduce side effects of cancer treatments. Due to a lack of well-designed research, a firm conclusion cannot be drawn.

Coronary artery disease

In Chinese medicine, herbal mixtures containing astragalus have been used to treat heart diseases. There are several human case reports of reduced symptoms and improved heart function, although these are not well described. High quality human research is necessary before a conclusion can be drawn.

Heart failure

In Chinese medicine, herbal mixtures containing astragalus have been used to treat various heart diseases. There are several human case reports of reduced symptoms and improved heart function, and diuretic ("water pill") effects, although these are not well described. High quality human research is necessary before a conclusion can be drawn.

Immune stimulation

Astragalus has been suggested as an immune system stimulant in preliminary laboratory and animal research, and in traditional accounts. Reliable human studies are lacking. High quality human research is necessary before a firm conclusion can be drawn.

Liver protection

Several animal and human studies report that astragalus may protect the liver from damage related to toxins or hepatitis B and C. Overall, this research has been poorly designed and reported. Astragalus alone has not been well evaluated. Better quality research is necessary before a conclusion can be drawn.

Low white blood cell count

Astragalus has been suggested as an immune system stimulant in preliminary laboratory and animal research, and in traditional accounts. There are published reports from China of white blood cell counts increasing during the use of astragalus preparations, although details are limited. Reliable scientific study has not been conducted in this area. High quality human research is necessary before a firm conclusion can be drawn.

Myocarditis/endocarditis (heart infections)

Anti-viral activity has been reported in laboratory studies and animal models of myocarditis/endocarditis. Human research is limited in this area, and further research is necessary before a conclusion can be drawn.

Renal failure

Several animal and human studies report that kidney damage from toxins and kidney failure may be improved with the use of astragalus-containing herbal mixtures. Overall, this research has been poorly designed and reported. Astragalus alone has not been well evaluated. Better quality research is necessary before a conclusion can be drawn.

Upper respiratory tract infection

Astragalus is often used in Chinese medicine as a part of herbal mixtures to prevent or treat upper respiratory tract infections. Anti-viral activity has been reported in laboratory and animal studies, and in limited human reports. However, most studies have been small and poorly designed. Due to a lack of well-designed research, no firm conclusions can be drawn.

Uses based on tradition or theory

The below uses are based on tradition or scientific theories. They often have not been thoroughly tested in humans, and safety and effectiveness have not always been proven. Some of these conditions are potentially serious, and should be evaluated by a qualified healthcare provider.

Adrenal insufficiency (Addison's disease), aging, AIDS/HIV, allergies, Alzheimer's disease, anemia, angina, ankylosing spondylitis, anorexia, antifungal, anti-inflammatory, antimicrobial, antioxidant, asthma, blood thinner, bone-marrow suppression from cancer or HIV, bronchitis, cardiac ischemia, cervicitis, "chi deficiency" (fatigue, weakness, loss of appetite), chronic fatigue syndrome, chronic hepatitis, cleanser, cyclosporine-induced immune suppression, cytomegalovirus, dementia, demulcent, denture adhesive (astragalus sap), dermatitis, diabetes, diabetic foot ulcers, diabetic neuropathy, diarrhea, digestion enhancement, diuretic (urination stimulant), edema, fatigue, fever, gangrene, gastrointestinal disorders, genital herpes, graft-versus-host disease, hearing damage from toxins/gentamicin, heart attack, hemorrhage (bleeding), hemorrhoids, herpes simplex keratitis, high blood pressure, high cholesterol, HIV/AIDS, hyperthyroid, insomnia, irregular menstruation, joint pain, laxative, leprosy, leukemia, liver disease, low blood platelets, lung cancer, memory, menstrual disorders, metabolic disorders, minimal brain dysfunction, myalgia (muscle pain), myasthenia gravis, nephritis, night sweats, palpitations, pelvic congestion syndrome, postpartum fever, postpartum urinary retention, prostatitis, rectal prolapse, rotovirus enterocolitis (infants), shortness of breath, smoking cessation, smoking withdrawal symptoms, sperm motility, stamina/endurance enhancement, stomach ulcer, stroke, sweating (excessive), systemic lupus erythematosus (SLE), tissue oxygenation, uterine prolapse, uterine bleeding, weight loss, wound healing.


Immunity Benefits

"November 17, 2008 Astragalus compound slows telomere shortening in T lymphocytes Telomeres are protective regions at the end of the cells' chromosomes, which shorten each time a cell divides. When telomeres become sufficiently short, cells reach a stage known as replicative senescence in which they can no longer divide. The enzyme known as telomerase prevents telomeres from shortening when activated. Unlike most of the body's cells, immune system cells upregulate telomerase with their activation. However, with aging or chronic infection with HIV, there is an increase in the proportion of dysfunctional CD8 T-cells with short telomeres, demonstrating that telomerase has a limited effect. "The problem is that when we're dealing with a virus that can't be totally eliminated from the body, such as HIV, the T-cells fighting that virus can't keep their telomerase turned on forever," explained UCLA AIDS Institute member Rita Effros. "They turn off, and telomeres get shorter and they enter this stage of replicative senescence." In a study described in the November 15, 2008 issue of the Journal of Immunology, Dr Effros and her colleagues tested a compound known as TAT2, originally derived from the Chinese herb astragalus, on CD8 T-cells from HIV-infected individuals. They found that TAT2 retarded the shortening of the cells' telomeres as well as improved their production of chemokines and cytokines that help inhibit HIV replication. "The ability to enhance telomerase activity and antiviral functions of CD8 T-lymphocytes suggests that this strategy could be useful in treating HIV disease, as well as immunodeficiency and increased susceptibility to other viral infections associated with chronic diseases or aging," the authors write. Dr Effros added, "This has the potential to be either added to or possibly even replace the HAART (highly active antiretroviral therapy), which is not tolerated well by some patients and is also costly." http://www.facebook.com/l/13e6d;www.lef.org/whatshot/2008_11....-T-lymphocytes"

Growth Hormone & Astragalus

Arch Pharm Res. 2003 Jan;26(1):34-9.
Induction of growth hormone by the roots of Astragalus membranaceus in pituitary cell culture.
Kim C, Ha H, Kim JS, Kim YT, Kwon SC, Park SW.

Source
Drug Research and Development Team, Korea Institute of Oriental Medicine, 129-11 Chungdam-dong, Kangnam-ku, Seoul, Korea. cskim@kiom.re.kr

Abstract
The traditional Asian medicinal herb, roots of Astragalus (A.) membranaceus (Leguminosae), is used for many purposes, some of which are purported to stimulate the release of growth hormone in vivo. Extracts of A. membranaceus were tested to determine whether they stimulate the release of growth hormone in rat pituitary cell culture. A. membranaceus was extracted sequentially with 80% ethanol (fraction A), n-hexane (fraction B); the test compound from the herbal extraction was isolated using silica gel column chromatography and was identified with spectral data. Test compound was also extracted by traditional boiling water methods. Induction of growth hormone in pituitary cell culture was conducted with isolated compounds and extracted fractions of A. Radix (dried roots of A. membranaceus). The fraction A was not active in the rat pituitary cell culture, but the fraction B derived from the ethanol fraction stimulated the release of growth hormone in
culture. Six compounds from fraction B (1-6) were isolated and identified previously. The compounds 1,2-benzendicarboxylic acid diisononylester (1), beta-sitosterol (2), and 3-O-beta-D-galactopyranosyl-
beta-sitosterol (5) did not induce growth hormone release in the culture. Formononetin (3), 9Z,12Z-octadecadienoic acid (4), stigmast-4-en-6beta-ol-3-one (6) and 98-E, a mixture of 1'-9,12-octadecadienoic acid (Z,Z)-2',3'-dihydroxy-propylester (7) and 1'-hexadecanoic acid-2',3'-dihydroxy-propylester (8) stimulated the release of growth hormone in the rat pituitary cell culture significantly compared to the control.

In conclusions, four compounds isolated from extracts of A. Radix induced growth hormone release in the rat pituitary cell culture. The 98-E isolate was the most active inducer of growth hormone release.

PMID:
12568355
___
Herbs that Stimulate Growth Hormones

The growth hormones play a critical role in human development and remain important across the lifespan. Released mainly by the pituitary gland, growth hormones circulate throughout the body, affecting many processes. People can inject synthetic forms of growth hormones or increase their natural levels by behavioral means. Some herbs, for example, naturally enhance growth hormones. Yet this research remains preliminary, and you should consult your doctor before ingesting such herbs.

Yellow Leader

The herb Astragalus membranaceus is a perennial plant critical to Chinese traditional medicine also known as yellow leader. People use this supplement as a general tonic with positive roles in aging, immunity, and digestion.

A report by C. Kim and co-workers published in January 2003 edition of "Archives of Pharmacal Research" looked at the potential ability of Astragalus membranaceus to increase growth hormone. These scientists first identified four active ingredients from the herb. Those chemicals were then tested on rat pituitary glands maintained in culture. The data showed each substance stimulated the release of growth hormone. Such findings suggest that Astragalus membranaceus may increase growth hormones in humans. Yet results obtained in animal studies do not necessarily generalize, and the long-term safety of yellow leader remains unknown.

Licorice Root

Southern European cultures have traditionally used Glycyrrhizae radix to treat mild lung conditions such as bronchitis. Commonly referred to as licorice root, the supplement has demulcent and expectorant properties, making it useful as a cough syrup. Glycyrrhizae radix may also bolster the immune system and help the body fight cancer.

A study by H. Y. Lee and associates presented in the November 2007 issue of "Journal of Biochemistry and Molecular Biology" identified another potential benefit of Glycyrrhizae radix. The scientists first isolated several active ingredients in the root. They then tested those substances on cultured pituitary cells and in intact rats. In all cases, the components of Glycyrrhizae radix increased growth hormone production. These findings remain preliminary and unreplicated. Chronic use of licorice root may also cause unwanted side effects. Therefore, you should not take licorice root until more testing is done.

Chinese Yam

The yam Dioscorea batatas, found in the hilly regions of China, may have several medicinal properties. People use Chinese yams as a general cure and combine it with other traditional herbs, creating potent elixirs. The yam contains the steroid diosgenin, which affects the estrogen and progesterone systems. It can, for example, be an effective contraceptive.

Another study by H. Y. Lee and colleagues offered in the November 2007 issue of "Journal of Biochemistry and Molecular Biology" assessed the impact of the Chinese yam on growth hormone in rats. These authors first isolated an active component from Dioscorea batatas. This substance, dioscin, was then applied onto rat pituitary cells and injected into live rats. Both protocols resulted in large increases in growth hormone production. Nutritional supplements made from intact yams may produce different results, especially in human subjects. In addition, no long-term experiment has properly assessed the safety and toxicy of Dioscorea batatas.
References

* "Archives of Pharmacal Research"; Induction of Growth Hormone by the Roots of Astragalus membranaceus in Pituitary Cell Culture; C. Kim et al.; January 2003
* Journal of Biochemistry and Molecular Biology: Induction of Growth Hormone Release by Glycyrrhizae radix on Rat
* Journal of Biochemistry and Molecular Biology: Induction of Growth Hormone Release by Dioscin from Dioscorea batatas DECNE


Read more: http://www.livestrong.com/article/306110-herbs-that-stimulate-growth-hormones/#ixzz1KIXbFwjW

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Precautions

At recommended doses, astragalus has no serious side effects and can generally be used safely. It does interact with other herbs and medications (see Possible Interactions section).

If you are pregnant or breast-feeding, you should talk to your doctor before taking any medication, including herbs.

Possible Interactions

If you are being treated with any of the following medications, you should not use astragalus without first talking to your health care provider:

Antiviral medications -- Astragalus may increase the effects of some antiviral medications such as acyclovir and interferon.

Drugs that suppress the immune system -- Astragalus may counteract the immune-suppressing effects of cyclophosphamide, a medication used to reduce the chances of rejection in transplant recipients, as well as corticosteroids.

Diabetes medications -- Astragalus may lower blood sugar, making the effects of diabetes drugs stronger.

High blood pressure medication -- Astragalus may lower blood pressure, making the effects of these drugs stronger.

Diuretics (water pills) -- Astragalus is a diuretic and may make the effects of other diuretics stronger.

Anti-coagulants(blood thinners) -- Astragalus may make the effects of these drugs stronger, increasing the risk of bleeding and stroke.

Drug Interactions:
Cyclophosphamide

Astragalus products are derived from the roots of Astragalus membranaceus or related species, which are native to China. In traditional Chinese medicine, astragalus is commonly found in mixtures with other herbs, and is used in the treatment of numerous ailments, including heart, liver, and kidney diseases, as well as cancer, viral infections, and immune system disorders. Western herbalists began using astragalus in the 1800s as an ingredient in various tonics. The use of astragalus became popular in the 1980s based on theories about anti-cancer properties, although these proposed effects have not been clearly demonstrated in reliable human studies.

Some medicinal uses of astragalus are based on its proposed immune stimulatory properties, reported in preliminary laboratory and animal experiments, but not conclusively demonstrated in humans. Most astragalus research has been conducted in China, and has not been well designed or reported.

Gummy sap (tragacanth) from astragalus is used as a thickener (ice cream), emulsifier, denture adhesive and anti-diarrheal agent.

Possible Interactions:

If you are being treated with any of the following medications, you should not use astragalus without first talking to your health care provider:

Drugs that suppress the immune system -- Astragalus may counteract the immune-suppressing effects of cyclophosphamide, a medication used to reduce the chances of rejection in transplant recipients, as well as corticosteroids.
Alternative Names:

Astragalus membranaceus; Astragalus mongholicus; Huang-qi; Milk-vetch root

* Reviewed last on: 8/25/2008
* Steven D. Ehrlich, NMD, private practice specializing in complementary and alternative medicine, Phoenix, AZ. Review provided by VeriMed Healthcare Network. Also reviewed by Ernest B. Hawkins, MS, BSPharm, RPh, Integrative Health Resources, Asheville, NC.

Supporting Research

Chen KT, Su CH, Hsin LH, et al. Reducing fatigue of athletes following oral administration of huangqi jianzhong tang. Acta Pharmacol Sin. 2002;23(8):757-761.

Duan P, Wang ZM. [Clinical study on effect of Astragalus in efficacy enhancing and toxicity reducing of chemotherapy in patients of malignant tumor]. Zhongguo Zhong Xi Yi Jie He Za Zhi.2002;22(7):515-517.

Hao Y, Qiu QY, Wu J. [Effect of Astragalus polysaccharides in promoting neutrophil-vascular endothelial cell adhesion and expression of related adhesive molecules]. Zhongguo Zhong Xi Yi Jie He Za Zhi. 2004;24(5):427-430.

Hei ZQ, Zhang JJ, Lin SQ, et al. [Effects of Astragalus membranaceus injection on nitric oxide and endothelin concentration of intestinal mucosa after hemorrhage shock-reperfusion in rats]. Zhongguo Zhong Yao Za Zhi. 2004;29(5):444-447.

Kim SH, Lee SE, Oh H, et al. The radioprotective effects of bu-zhong-yi-qi-tang: a prescription of traditional Chinesemedicine astragalus. J Chin Med. 2002;30(1):127-137.

Mao SP, Cheng KL, Zhou YF. [Modulatory effect of Astragalus membranaceus on Th1/Th2 cytokine in patients with herpes simplex keratitis]. Zhongguo Zhong Xi Yi Jie He Za Zhi. 2004;24(2):121-123.

Shao BM, Xu W, Dai H, et al. A study on the immune receptors for polysaccharides from the roots of Astragalus membranaceus, a Chinese medicinal herb. Biochem Biophys Res Commun. 2004;320(4):1103-1111.

Shi FS, Yang ZG, Di GP. [Effect of Astragalus saponin on vascular endothelial cell and its function in burn patients]. Zhongguo Zhong Xi Yi Jie He Za Zhi. 2001;21(10):750-751.
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Evidence

These uses have been tested in humans or animals. Safety and effectiveness have not always been proven. Some of these conditions are potentially serious, and should be evaluated by a qualified healthcare provider.



Safety

The U.S. Food and Drug Administration does not strictly regulate herbs and supplements. There is no guarantee of strength, purity or safety of products, and effects may vary. You should always read product labels. If you have a medical condition, or are taking other drugs, herbs, or supplements, you should speak with a qualified healthcare provider before starting a new therapy. Consult a healthcare provider immediately if you experience side effects.

Allergies

In theory, patients with allergies to members of the Leguminosae (pea) family may react to astragalus. Cross-reactivity with quillaja bark (soapbark) has been reported for astragalus gum tragacanth.

Side Effects and Warnings

Some species of astragalus have caused poisoning in livestock, although these types are usually not used in human preparations (which primarily include Astragalus membranaceus ). Livestock toxicity, referred to as "locoweed" poisoning, has occurred with species that contain swainsonine ( Astragalus lentiginosus, Astragalus mollissimus, Astragalus nothrosys, Astragalus pubentissimus, Astragalus thuseri, Astragalus wootoni ), or in species that accumulate selenium ( Astragalus bisulcatus, Astragalus flavus, Astragalus praelongus, Astragalus saurinus, Astragalus tenellus ).

Overall, it is difficult to determine the side effects or toxicity of astragalus, because it is most commonly used in combination with other herbs. There are numerous reports of side effects ranging from mild to deadly in the United States Food and Drug Administration computer database, although most of these are with multi-ingredient products, and cannot be attributed to astragalus specifically. Astragalus used alone and in recommended doses is traditionally considered to be safe, although safety is not well studied. The most common side effects appear to be mild stomach upset and allergic reactions. In the United States, tragacanth (astragalus gummy sap) has been classified as GRAS (generally recognized as safe) for food use, but astragalus does not have GRAS status.

Based on preliminary animal studies and limited human research, astragalus may decrease blood sugar levels. Caution is advised in patients with diabetes or hypoglycemia, and in those taking drugs, herbs, or supplements that affect blood sugar. Serum glucose levels may need to be monitored by a healthcare professional, and medication adjustments may be necessary.

Based on anecdotal reports and preliminary laboratory research, astragalus may increase the risk of bleeding. Caution is advised in patients with bleeding disorders or taking drugs that may increase the risk of bleeding. Dosing adjustments may be necessary.

Preliminary reports of human use in China have noted decreased blood pressure at doses below 15 grams and increased blood pressure at doses above 30 grams. Animal research suggests possible blood pressure lowering effects. Due to a lack of well-designed studies, no firm conclusions can be drawn. Nonetheless, people with abnormal blood pressure or taking blood pressure medications should use caution and be monitored by a qualified healthcare professional. Palpitations have been noted in human reports in China.

Based on animal study, astragalus may act as a diuretic and increase urination. In theory, this may lead to dehydration or metabolic abnormalities. There is one report of pneumonia in an infant after breathing in an herbal medicine powder including Astragalus sarcocolla .

Astragalus may increase growth hormone levels.

Pregnancy and Breastfeeding

There is not enough scientific evidence to recommend the safe use of Astragalus membranaceus during pregnancy or breastfeeding. Studies of toxic astragalus species, such as Astragalus lentiginosus or Astragalus mollissimus (locoweed) have reported harmful effects during animal pregnancies, leading to abortions or abnormal heart development.

Most herbs and supplements have not been thoroughly tested for interactions with other herbs, supplements, drugs, or foods. The interactions listed below are based on reports in scientific publications, laboratory experiments, or traditional use. You should always read product labels. If you have a medical condition, or are taking other drugs, herbs, or supplements, you should speak with a qualified healthcare provider before starting a new therapy.

Interactions with Drugs

Based on preliminary animal studies and limited human research, astragalus may decrease blood sugar levels. Caution is advised in patients with diabetes or hypoglycemia, and in those taking drugs that affect blood sugar. Serum glucose levels may need to be monitored by a healthcare provider, and medication adjustments may be necessary.

Preliminary reports of human use in China have noted decreased blood pressure at doses below 15 grams and increased blood pressure at doses above 30 grams. Animal research suggests possible blood pressure lowering effects. Although well-designed studies are not available, people taking drugs that affect blood pressure should use caution and be monitored by a qualified healthcare professional. It has been suggested that beta-blocker drugs such as propranolol (Inderal®) or atenolol (Tenormin®) may reduce the effects on the heart of astragalus, although this has not been well studied.

Based on anecdotal reports, astragalus may increase the risk of bleeding when taken with drugs that increase the risk of bleeding. Some examples include aspirin, anticoagulants ("blood thinners") such as warfarin (Coumadin®) or heparin, anti-platelet drugs such as clopidogrel (Plavix®), and non-steroidal anti-inflammatory drugs such as ibuprofen (Motrin®, Advil®) or naproxen (Naprosyn®, Aleve®).

Based on animal research and traditional use, astragalus may act as a diuretic and increase urination. In theory, this may lead to dehydration or metabolic abnormalities (low blood sodium or potassium), particularly when used in combination with diuretic drugs such as furosemide (Lasix®), chlorothiazide (Diuril®), or spironolactone (Aldactone®).

Based on laboratory and animal studies, astragalus may possess immune stimulating properties, although research in humans is not conclusive. Some research suggests that astragalus may interfere with the effects of drugs that suppress the immune system, such as steroids or agents used in organ transplants. Better research is necessary before a firm conclusion can be reached.

Some sources suggest other potential drug interactions, although there is no reliable scientific evidence in these areas. These include reduced effects of astragalus when used with sedative agents such as phenobarbital or hypnotic agents like chloral hydrate; increased effects of astragalus when taken with colchicine; increased effects of paralytics such as pancuronium or succinylcholine when used with astragalus; increased effects of stimulants such as ephedrine or epinephrine; increased side effects of dopamine antagonists such as haloperidol (Haldol®); and increased side effects of the cancer drug procarbazine.

Interactions with Herbs and Dietary Supplements

Based on preliminary animal studies and limited human research, astragalus may decrease blood sugar levels. Caution is advised in patients with diabetes or hypoglycemia, and in those taking herbs or supplements that affect blood sugar. Possible examples include Aloe vera , American ginseng, bilberry, bitter melon, burdock, fenugreek, fish oil, gymnema, horse chestnut seed extract (HCSE), marshmallow, milk thistle, Panax ginseng, rosemary, Siberian ginseng, stinging nettle and white horehound. Serum glucose levels may need to be monitored by a healthcare provider, and dosing adjustments may be necessary.

Preliminary reports of human use in China have noted decreased blood pressure at doses below 15 grams and increased blood pressure at doses above 30 grams. Animal research suggests possible blood pressure lowering effects. Although well-designed studies are not available, people taking herbs or supplements that affect blood pressure should use caution and be monitored by a qualified healthcare professional. Herbs that may lower blood pressure include aconite/monkshood, arnica, baneberry, betel nut, bilberry, black cohosh, bryony, calendula, California poppy, coleus, curcumin, eucalyptol, eucalyptus oil, ginger, goldenseal, green hellebore, hawthorn, Indian tobacco, jaborandi, mistletoe, night blooming cereus, oleander, pasque flower, periwinkle, pleurisy root, shepherd's purse, Texas milkweed, turmeric, and wild cherry.

Based on anecdotal reports, astragalus may increase the risk of bleeding when taken with herbs or supplements that increase the risk of bleeding. Multiple cases of bleeding have been reported with the use of Ginkgo biloba and fewer cases with garlic and saw palmetto. Numerous other agents may theoretically increase the risk of bleeding, although this has not been proven in most cases. Some examples include: alfalfa, American ginseng, angelica, anise, Arnica montana , asafetida, aspen bark, bilberry, birch, black cohosh, bladderwrack, bogbean, boldo, borage seed oil, bromelain, capsicum, cat's claw, celery, chamomile, chaparral, clove, coleus, cordyceps, danshen, devil's claw, dong quai, evening primrose, fenugreek, feverfew, flaxseed/flax powder (not a concern with flaxseed oil), ginger, grapefruit juice, grapeseed, green tea, guggul, gymnestra, horse chestnut, horseradish, licorice root, lovage root, male fern, meadowsweet, nordihydroguairetic acid (NDGA), onion, papain, Panax ginseng, parsley, passionflower, poplar, prickly Ash, propolis, quassia, red clover, reishi, Siberian ginseng, sweet clover, rue, sweet birch, sweet clover, turmeric, vitamin E, white willow, wild carrot, wild lettuce, willow, wintergreen, and yucca.

Based on animal research and traditional use, astragalus may act as a diuretic and increase urination. In theory, this may lead to dehydration or metabolic abnormalities (low blood sodium or potassium), particularly when used in combination with herbs or supplements that may possess diuretic properties. Examples include artichoke, celery, corn silk, couchgrass, dandelion, elder flower, horsetail, juniper berry, kava, shepherd's purse, uva ursi, and yarrow.

Based on laboratory and animal studies, astragalus may possess immune stimulating properties, although research in humans is not conclusive. It is not known if astragalus interacts with other agents that are proposed to affect the immune system. Examples include bromelain, calendula, coenzyme Q10, echinacea, ginger, ginseng, goldenseal, gotu kola, lycopene, maitake mushroom, marshmallow, polypodium, propolis, and tea tree oil.


Sources
http://chakra4online.com/herbs-for-immune-support/the-benefits-of-astragalus
http://www.livestrong.com/article/306110-herbs-that-stimulate-growth-hormones/#ixzz1KIXbFwjW

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