Showing posts with label toxicity. Show all posts
Showing posts with label toxicity. Show all posts

Sunday, December 29, 2013

Yohimbine & Berberine Protect From Death Due to LPS Intoxication; BCAAs Inhibit Serotonin Metabolism & Cause Anxiety, Tryptophan but not SSRIs Help; Sweet Tea Leaves Are PPAR-G Antagonists & Battle High Lipid + Leptin Levels

Skip the fireworks invest the money in some quality ingredients for a fondue or whatever you like and invest the (often non-negligible) rest of the money in a gym membership for the next year.
Actually my figure of the week is 115,000,000 EUR (~152,000,000 US Dollar), which is the sum my fellow country men and women are about to waste on pyrotechnics this year. And a scientifically unconfirmed addition based on my personal observation: 90% of the worst offenders as far as spending money for fireworks goes are at least overweight. Would be interesting to see, if the use of pyrotechnics on New Years Eve is directly associated with fat mass...

I mean, it could be that they spent so much money on their fireworks that they feel they can only afford the junkfood of which everybody and his/her mama still tend to believe that it would be cheaper than buying fresh products and preparing your own food from those.

Ah, I am ranting. That's usually Carl Lanore's task, so I will better go on with the items I have compiled for the today's last installment of On Short Notice in the year 2013:
 
  • Berberine + yohimbine - a synergistic duo to prevent LPS toxicity (Li. 2013) -- With all the recent hoopla about the gut microbiome, I suppose that I don't have to tell you what the acronym LPS stands for, right? Hmm... just to make sure it stands for lipopolysaccharide endotoxins which are produced by gram negative bacteria in your gut and are so "toxic" (in fact they cause profound inflammation) that they can be lethal at higher doses.

    Figure 1: Survival rates (%) after ALB/c mice LPS injection (Li. 2013)
    A group of Chinese scientists have now found that aside from berberine the anti-inflammatory effects of which have been known for quite some time now, yohimbine administered in a daily dose of 2mg/kg (human equivalent 0.16mg/kg) does add to the survival rate of berberine treated rodents (human equivalent 4mg/kg) that were injected intragastrically (so not directly into the blood) with a potentially lethal dosage of 20mg/kg LPS. What's more, taken on its own yohimbine is even more potent than the alkaloid that's found in such plants as Berberis aquifolium, Oregon grape, Berberis vulgaris, Berberis aristata, Hydrastis canadensis (goldenseal), Phellodendron amurense, Coptis chinensis and Tinospora cordifolia.

    The mechanism is mediated by the prevention of liver injury, an upregulating of IL-10 production (an anti-inflammatory cytokine), and related anti-inflammatory effects resulting from the suppression of phosphorylation of IkBa, JNK, ERK and IRF3 in macrophages.

  • Chronic 9-week high BCAA diet impairs brain tryptophan levels and causes anxiety (Coppola. 2013) -- Scientists from the Duke University took another look at the BCAA-tryptophan depression connection, you may have read about in the context of my "Sugar Addicted or Just Stressed Out?" post from January 3, 2013.

    According to the results Anna Coppola and her colleagues are about to publish in the American Journal of Physiology  - Endocrinololgy and Metabolism the provision of a BCAA-enriched diet for 9 weeks leads to both reductions in brain tryptophan levels and an increased turnover of serotonin (5-HT) in rodent brains:
    Figure 2: Composition of low fat  (LF) and high fat (HF) diets with or without added BCAAs (left); effects on the ratio of tryptophan  to the molar sum of large neutral amino acids with and without supplemental  tryptophan in the drinking water and 5HT turnover in the brain (no supplemental trp, right; Coppola. 2013)
    Both groups (BCAA and non-BCAA) consumed about identical amounts of food as the rodents in the complementary (LF or HF) groups, which confirms that the BCAA content did not modify the taste of the chow or rendered it unpalatable (cannot have been cheap bulk powder then ;-). The reduction in both the availability of tryptophan as well as the increase in serotonin (5-HT) turnover in the brain must in fact have been a consequence of the added BCAAs and are most likely the root of the disrupted transport of tryptophan across the BBB in rats, leading to reduced exploratory behavior of rats in EPM testing, a sign of increased anxiety.
    "Recent studies demonstrating a strong  association between BCAA levels, obesity, and obesity-related metabolic disorders, when linked to the findings reported here, may help to explain the strong association between obesity and behavioral abnormalities, including depression and anxiety." (Coppola. 2013)
    As the slight differences between the high an low carb diets show, other nutrients can influence serotonin as well (read more)
    In this regard it is important to point out that these negative side effects were mostly reversible by the provision of 15 mg/100 ml tryptophan in the drinking water of the rodents, but were not alleviated by  the administration of the common serotonine reuptake inhibitor fluoxetine (at 10 mg/kg/day for four weeks).

    Bottom line: Isolation is not what you want if what your body has been build for is complex food. And while the single serving of BCAAs you may gulp down during or right before a workout, on the other hand, probably isn't going to harm you. The "I need BCAAs every 30min" approach to gaining muscle mass, may well turn you into a psychotic wrack if you follow it day in and day out for months or years - at least without chronically adding some l-tryptophan to the equation.

  • Sweet tea leaves protect against obesity: Once more via PPAR-gamma blockade (Zhou. 2013) -- Actually this is probably not news to anyone out there with a degree in Traditional Chinese medicine. After all, Lithocarpus polystachyus Rehd.(Sweet Tea) is Chinese folkloric medicine that has always been used to treat obesity, diabetes, and hypertension in South China:
    "Previous experiments revealed that it contains plentiful bioactive flavonoids and polyphenolic compounds, e.g. phlorizin, trilobatin, 3-hydroxy-phlorizin, etc. These components have extensive pharmacological activities, such as anti-diabetes, memory improvement, anti-aging, inhibition of lipid peroxidation and the growth of human colon cancer cells, and so on." (Zhang. 2013)
    From a "scientific" perspective, however, the efficacy of this herbal medicine as an obesity treatment had still to be elucidated.
    Figure 4: Effects of oral gavage of 75 mg, 150 mg and 300 mg/kg of body weight/day of sweet tea extract or placebo (DIO) in conjunction with the 8 weeks on a obesogenic diet (Zhang. 2013)
    In this context it is yet worth mentioning that this study demonstrated for the first time that the aqueous dry leaves extract of Lithocarpus polystachyus Rehd. can potently reduce the worst metabolic side effects of obesity, such as the hypolipidemia, hypoleptinaemia and the degree of insulin resistance (FINS, HOMA-IR, cf. figure 3) what it does not answer, however, is whether the decline in PPAR-gamma is tissue specific, what exactly is behind the profound decline in leptin levels and whether or not lean rodents, let alone humans, who don't consume an obesogenic diet will see anywhere similar benefits.

    In other words, this is research in progress, but I suppose something you are going to hear more about at the Supppversity in 2013.
* * * * * *

Apropos hearing or rather reading more, I guess you will realize that you have reached the end of today's installment of On Short Notice which means that you will have to progress to the SuppVersity Facebook Wall if you want a second serving of news on...
  • The history of vitamin A as a light sensor and beyond - actually a free full-text I guess those of you who like to "think paleo" may enjoy (read more)
  • A paper on "good" and "bad" inflammation, where the author points out that soothing inflammation too much can lead to a reduction in energy expenditure and may therefore not be the king's road to getting rid of the last blubber (read more)
  • The food-hitlist of young Americans - Featuring sugar, sugary drinks, sugary bakery, sugary ... as their main energy and carbohydrate sources... (read more)
  • Problems with synthroid and generics that have surfaced in a recent study on their efficacy in the treatment of congenital hypothyrodism (read more)
as well as a handful of other news, which are already there or are going to be posted within the next hours. Have a great weekend, everyone! 

References
  • Coppola A, Wenner BR, Ilkayeva O, Stevens RD, Maggioni M, Slotkin TA, Levin ED, Newgard CB. Branched-chain amino acids alter neurobehavioral function in rats. Am J Physiol Endocrinol Metab. 2013 Dec 18.
  • Li H, Wang Y, Zhang H, Jia B, Wang D, et al. Yohimbine Enhances Protection of Berberine against LPS-Induced Mouse Lethality through Multiple Mechanisms. PLoS ONE. 2013; 7(12): e52863. 
  • Zhou CJ, Huang S, Liu JQ, Qiu SQ, Xie FY, Song HP, Li YS, Hou SZ, Lai XP. Sweet tea leaves extract improves leptin resistance in diet-induced obese rats. J Ethnopharmacol. 2013 Jan 9;145(1):386-92.

Sunday, June 9, 2013

Mono-Sodium Glutamate (MSG), NAFLD, Leptin Resistance, Trans-Fats, HFCS, Gluttony, Leaky Gut & Brain, the Vagus Nerve and the Chinese Restaurant Syndrome - Bon Appetit!

Image 1 (msg-exposed.com): Is obesity the inevitable, unnatural metabolic long-term equivalent of the dreaded "Chinese Restaurant Syndrome"?
Earlier today, I posted a blurb from a recently published epidemiological study on the effects of mono-sodium glutamate, aka MSG, an umami = all taste receptor activator that is commonly found in all sorts of ready made foods that would otherwise taste as lame as their individual fake ingredients, on the SuppVersity facebook wall (Insawang . 2013). The scientists had evaluated the data from 324 families (349 adult subjects, age 35–55 years) from a rural area of Thailand and found that the prevalence of metabolic syndrome was not just significantly higher in the tertile with the highest MSG intake, but that the "odds ratio", i.e. the chance that a certain parameter, in this case "obese, yes/no" would be found to be true, increased with every 1 g increase in total MSG intake irrespective of  the total energy intake and the level of physical activity.It took roughly 2 minutes for the first sharp-witted "SuppVersity student", in this case that was Wyatt Brown, to spot that post and ask what I believed could explain this observation.

Honestly, I had not really thought about that before, but simply assumed that the effects were probably mediated via not yet fully elucidated effects of dietary glutamate on the balance of excitatory and inhibitory neurotransmitters... after thinking about that for a moment I realized that in the absence of hyperphagia (i.e. extreme hunger and subsequently higher caloric intake), which was obviously not the case for the obese Thais with high MSG intakes, this explanation was not really satisfactory.

Does it all come back to food quality once again?

My next thought was that this could yet again be an issue of food quality vs. food quantity. After all, junk food and all sorts of foodstuff that's made with tons of food-additives to disguise their inferior, nutrient-poor and thus "tasteless" ingredients are the most likely candidates with respect to the MSG exposure in the Western and Eastern "developed" *rofl* world are concerned. In view of the fact that "diet quality" was (as so often) not among the variables Insawang et al. had assessed, their study did not allow for any conclusions in this respect, so that I had to dig deeper and came up with a couple of interesting findings,  I did not want to hold back from me (sorry, Stephen, for postponing the "HIIT Manual"-post, once again, but think about it like that, what's the use of working out if your MSG intake would quash your results anyway ;-)
  • * See figure 2 for exact data on the average daily human intake of MSG - with 91mg MSG /kg body weight, an amount that would translate to a daily intake of ~500+mg MSG in humans, the mice in the Collison were representative of the average American, yet not the Thai, Japanese and Korean MSG intake; against that background it is  important to note that MSG ingestion alone did not result in microscopic fat deposits in the liver. These effects were exclusively observed upon co-ingestion of the MSG with a diet with ~9% TFA content!
    "MSG intake at doses similar to human average daily intake[*] caused hepatic microsteatosis and the expression of beta-oxidative genes." - in a 2009 study, Collison confirmed the negative effects of even moderate MSG intake on liver health in a rodent model; only the common combination of trans-fatty acids (TFA) + MSG that is one of the main characteristics of modern "convenience" foods, did yet induce statistically significant increases in liver weight and hepatic triglyceride content; the increases in total, but also HDL cholesterol due to MSG + TFA were accompanied by profound increases in circulating leptin levels, probably in response to developing leptin resistance and increased storage of lipids in the white adipose tissue stores of the nine-week old C57BL/6J mice (Collison. 2009); in a follow up study Collison et al. confirmed that the double-whammy of trans-fatty acids + MSG becomes even more toxic if a third villain is added to the mixture, high fructose corn syrup (Collison. 2011) - and I don't have to tell you where in the human food chain you will find this unholy trinity, do I?
  • "MSG ingestion reduces weight gain, body fat mass, and plasma leptin levels" - in a 2008 trial Kondoh and Torii observed a very different and in fact surprisingly pronounced beneficial effect of the ingestion of a 1% solution (in biology this means 1g per 100ml) MSG resulted in decreases in weight gain, body fat mass and plasma leptin levels in male Sprague-Dawley rats irrespective of the energy content of their diets (!) and without effecting total energy intake or food intake, but in the presence of a profound decrease in 24h-water intake (2g vs. 9g); these effects were observed in both adult and young animals, in the latter without any negative side effects on the normal development of body length
    Figure 1: Leptin levels (ng/ml) on diets with different energy density and macronturient composition with or without MSG added to the water (data based on Kondoh. 2008)
    this leaves more than enough room to speculate about centrally mediated increases in energy expenditure in response to the ~20mg total MSG (equivalent to 33mg/kg for a rodent and a human equivalent dose of ~5.5mg/kg) intake of which Kondoh and Torii speculate that they may be "mediated via gut [glutamate] receptors functionally linked to the afferent branches of the vagus." (Kondoh. 2008); subsequent studies into the effects of MSG on the "gut brain axis" appear to support this hypothesis (cf. Kondoh. 2009a,b; Otsubo. 2011)
  • " MSG, in spite of mild hypophagia [reduced food intake], caused severe increase in fat body weight ratio, via leptin resistance" - in 2011 Afifi and Abbas, two researchers from the Department of Biochemistry at the Zagazig University in Egypt, report that feeding high amounts of MSG to pregnant rat dams had similar negative effects on body composition and leptin sensitivity as a hypercaloric diet and that despite an overall reduction in total food intake; moreover, despite similar gains in body fat, the negative effects on the offspring of those pregnant rats was more pronounced than in the rats on the "normal" hypercaloric diet (Afifi. 2011)
  • If you suffer from "Chinese Restaurant Syndrome", you should check whether increased gastrointestinal permeability could be the root cause of your problems and avoid all foods with any of the following "ingredients": E620 Glutamic acid, E621 Mono-sodium glutamate, E622 Mono-potassium glutamate, E623 Calcium diglutamate, E624 Mono-ammonium glutamate, E625 Magnesium diglutamate!
    "Findings from the literature indicate that there is no consistent evidence to suggest that individuals may be uniquely sensitive to MSG" - in one of the few reviews evaluating exclusively human studies, Freeman did not find any placebo controlled research that would confirm the universal existence of side-effects (e.g. headaches, chest pain, flushing, numbness or burning in or around the mouth, sense of facial pressure or swelling and sweating) as a direct consequence of the consumption of food-borne mono-sodium glutamate; e.g.
    "The present study led to the conclusion that 'Chinese Restaurant Syndrome' is an anecdote applied to a variety of postprandial illnesses; rigorous and realistic scientific evidence linking the syndrome to MSG could not be found." (Tarasov. 1993)
    instead, the author suggests that "unique sensitivities" could explain the documented case reports (Freeman. 2008 // see also Walker. 2000; Geha. 2000); given the emerging evidence of the existence of something you could call a "leaky brain" (in analogy to "leaky gut"), it appears likely that an unnaturally increased permeability of the blood-brain-barrier and subsequent penetration of large amounts of glutamate into the brain even at lower serum concentrations could well explain those differences (although not directly related to MSG, I would still like to point you to the results of a recently released study, which found a profound decrease in the permeability of the BBB in response to an oral 1mg/kg (HED ~0.16mg/kg) Lycium barbarum extract in an experimental stroke model; Yang. 2013)
  • "dietary antioxidants have protective potential against oxidative stress induced by MSG" - in 2006 Faromby and Onyema observed that previously described oxidative damage to the liver and subsequent steatosis (lipid accumulation) in response to the intra-peritoneal administration of ridiculously high amounts of MSG (4g/kg body weight) could be ameliorated by vitamin C + vitamin E + quercitin; these results suggest that exorbitantly high doses of MSG (human equivalent ~51g/day) are probably a result of an increase in reactive oxygen species
  • "after intragastric administration of MSG, the MSG is preferentially metabolized through gluconeogenesis in B6 mice, whereas thermogenesis is the predominant process for 129 mice" - in previous studies scientists had observed profound differences in terms of the effects of MSG on food intake and preference; in 2009 Bachmanov et al. traced those differences back to genetic polymorphisms and respective differences in the metabolic response to / utilization of MSG - if we assume that similar differences exist in human beings, those would provide another explanation for the different incarnations of the "Chinese Restaurant Syndrome" with the classic headaches, high blood pressure and sweating in people who would be long to the human equivalent of the 129 mice and the highly rewarding and appetite stimulating gluconeogenic (hepatic production of glucose from the glutamate) effects in those humans with a similar genetic programming as the B6 mice
I could certainly go on for hours, citing study after study with "evidence" and "counter-evidence", or rather what the respective authors consider as such, but I believe that you have read enough to see a couple of basic patterns emerge, here.
    So what about those differences? Genes, dosages, or what?

    One of these patterns is also brought up by Kondoha and Torii in the discussion of the results of their study (remember: decrease in body fat and increase in energy expenditure; purported mechanism = activation of glutamate receptors that are linked to the vagus nerve), in which the researchers state that they believe that the diametrically opposed results of their, compared to other studies (most of which report an increase not a decrease in body fat that is accompanied by increases in circulating leptin and decreases in leptin sensitivity and not vice versa as in the Kondoh study), may well be explained by
    [previous] studies [being] designed specifically to produce toxic effects in the brain (where GLU is an excitatory neurotransmitter), through the administration of extremely high doses (2000 mg/kg or more, administered repeatedly) to infant animals, either by single, direct injection or intubation (Kondoh. 2008).
    Those high dosages could in fact have lead to blood glutamate concentrations that would allow the flux of the excitatory amino acid even across intact blood-brain-barriers. The more realistic, orally administered dosages  Kondoh and Torii used in their experiment, on the other hand, did not induce any (not even statistically non-significant) elevations of serum glutamate levels.
    Hence, the effects seen in the present study, as discussed above, are probably linked via a physiologic mechanism, to a local action of GLU in the gut, rather than via a pharmacologic/toxicologic mechanism to a distant action of exogenous GLU forced on the brain (Kondoh. 2008).
    If you review the brief rundown of the literature I've provided in the previous paragraphs you will have to acknowledge the validity of this remark (remember: the steatosis in the Collison study required co-administration of trans-fatty acids /TFA/ and even then the increase solely due to MSG was marginal compared to that of the TFAs, alone).

    Without a leaky gut, you would probably have to eat pure MSG all day to do harm

    If you also take into account, that in healthy individuals only <5% of the dietary glutamate are actually absorbed into systemic circulation, while the rest is used as an oxidative substrate by the intestinal mucosa (Smriga. 2007), the difference between thhe orally consumed 33mg/kg MSG that helped the rodents in the study by Kondoh and Torii to lean out and the intraperitoneally injected 4,000mg/kg that were necessary to induce the touted hepatic side effects in the study by Faromby and Onyema are way above the average intake even the worst offenders among the MSG abusers are exposed to (cf. figure 2):
    Figure 1: Average per capita daily MSG intake in different countries (adapted from Löliger. 2000)
    Even if we discard the oxidative loss within the intestine, those 4,000mg/kg for a rodent (in previous studies Onyema et al. had even used 6,000mg/kg to elicit the hepatic damage; Onyema. 2006) would translate to ~650mg/kg in humans and would mean that you would have to shovel down anywhere between 32g and 64g of pure MSG (depending on whether you weigh 50 or 100kg), i.e. 20-40x more than the average daily intake of a Korean (note: The "rodent model of MSG induced obesity" is induced by injection of 10,000mg/kg body weight; cf. Bunyan. 1976) and the whopping MSG equivalent of 400-800ml of soy sauce (avg. MSG content 80mg/ml), which is probably the worst offender in the E-number-laden ingredient arsenal of the Asian cuisine.

    Figure 3: Protein-bound and free glutamate content of "high" glutamate foods (left) and total glutamate content of selected plant proteins (right; data adapted from Loliger. 2000)
    Your best bet to ingest similar amounts of free glutamate from real foods is, as the data from a review by Loliger suggests (cf. figure 3), would be parmesan cheeese, but in all honesty, in view of the fact that you would have to consume 2.6kg of the Italian delicacy, it is pretty unlikely that the glutamate and not the sheer amount of pure energy in the cheese would be the underlying reason for subsequent weight gain. Against that background it should not be surprising that negative side-effects as they occur as a result of high to unrealistically high MSG intakes and or in especially susceptible individuals, are not exactly common in people who don't eat out and/or consume pre-packaged convenient foods on a regular, if not daily basis.

    Too much of a vitally important thing at the wrong time and as part of the wrong foods...

    The mere presence of non-negligible amounts of glutamate in all sorts of "real" foods, should yet remind you that glutamate is not a toxin, or a "foreign substance" we are not evolutionary adapted to, but an amino acid that is of utmost importance for the health of your central nervous system (Platt. 2005). So that at the end of this analysis we may not be back at square one, but still have to concede that it brought us back to a set of very common motifs here at the SuppVersity:
    • When consumed in excess, substances that are good, healthy, beneficial and even "vitally" (=vitamin ;-) important can easily turn against you
    • When substances do not have to pass the gut, the dose-response relationship can differ so substantially that results that are acquired using route A (e.g. intraperitoneal injection) cannot simply be transfered to scenarios employing different administration routes (e.g. oral ingestion)
    • Inter-individual/-species differences and differences between healthy and unhealthy individuals / animals, warrant utmost caution, when it comes to interpreting data - the "Chinese Restaurant Syndrome", for example, could be a result of increased gut and blood-brain-barrier permeability that would lead to an increased absorption of glutamate from the intestine into the blood and from there across the blood-brain-barrier right into the brain.
    • Oftentimes, differences due to the aforementioned factors are not of simple quantitative, but of qualitative nature, in the case of MSG this would be the difference between the metabolic activation in response to the local activation of glutamate receptors in the gut that are connected to the vagus nerve, on the one hand, and the systemic / central obesogenic (fattening) effects of glutamate that leaks from the gut into the blood and from there into the brain.
    And lastly, to eventually come full circle and remind you of the results of Collison et al., we cannot ignore that MSG is one of those substances that is usually found in foods with a whole host of other nutrient-poor ingredients, anti-nutrients and proven obesogenic, pro-inflammatory and otherwise unhealthy substances and food additives. They are wrapped in plastics have an extended shelf life due to tons of preservatives and highly adorned with stickers and labels saying "low this", "extra that", "only X amounts of calories", etc. - as long as you avoid those foods on 360+ days of the year, prepare your meals from whole foods, don't dine at cheap restaurants, fast-food outlets and snack bars too often or try to find the "optimal amount of supplemental MSG to stimulate your vagus nerve and help you shed fat" *lol*, you can calmly watch the ever-recurring MSG scares on the Internet and other mass media ;-)

    References:
    1. Afifi MM, Abbas AM. Monosodium glutamate versus diet induced obesity in pregnant rats and their offspring. Acta Physiol Hung. 2011 Jun;98(2):177-88.
    2. Bachmanov AA, Inoue M, Ji H, Murata Y, Tordoff MG, Beauchamp GK. Glutamate taste and appetite in laboratory mice: physiologic and genetic analyses. Am J Clin Nutr. 2009 Sep;90(3):756S-763S. Epub 2009 Jul 1.
    3. Bachmanov AA, Inoue M, Ji H, Murata Y, Tordoff MG, Beauchamp GK. Glutamate taste and appetite in laboratory mice: physiologic and genetic analyses. Am J Clin Nutr. 2009 Sep;90(3):756S-763S. Epub 2009 Jul 1.  
    4. Bunyan J, Murrell EA, Shah PP. The induction of obesity in rodents by means of monosodium glutamate. Br J Nutr. 1976 Jan;35(1):25-39.
    5. Collison KS, Maqbool Z, Saleh SM, Inglis A, Makhoul NJ, Bakheet R, Al-Johi M, Al-Rabiah R, Zaidi MZ, Al-Mohanna FA. Effect of dietary monosodium glutamate on trans fat-induced nonalcoholic fatty liver disease. J Lipid Res. 2009 Aug;50(8):1521-37. Epub 2008 Nov 11.  
    6. Collison KS, Zaidi MZ, Saleh SM, Makhoul NJ, Inglis A, Burrows J, Araujo JA, Al-Mohanna FA. Nutrigenomics of hepatic steatosis in a feline model: effect of monosodium glutamate, fructose, and Trans-fat feeding. Genes Nutr. 2013 Apr;7(2):265-80. Epub 2011 Dec 6. 
    7. Farombi EO, Onyema OO. Monosodium glutamate-induced oxidative damage and genotoxicity in the rat: modulatory role of vitamin C, vitamin E and quercetin. Hum Exp Toxicol. 2006 May;25(5):251-9.
    8. Freeman M. Reconsidering the effects of monosodium glutamate: a literature review. J Am Acad Nurse Pract. 2006 Oct;18(10):482-6.nonalcoholic fatty liver disease. J Lipid Res. 2009 Aug;50(8):1521-37. Epub 2008 Nov 11.
    9. Geha RS, Beiser A, Ren C, Patterson R, Greenberger PA, Grammer LC, Ditto AM, Harris KE, Shaughnessy MA, Yarnold PR, Corren J, Saxon A. Review of alleged reaction to monosodium glutamate and outcome of a multicenter double-blind placebo-controlled study. J Nutr. 2000 Apr;130(4S Suppl):1058S-62S.
    10. Hermanussen M, García AP, Sunder M, Voigt M, Salazar V, Tresguerres JA. Obesity, voracity, and short stature: the impact of glutamate on the regulation of appetite. Eur J Clin Nutr. 2006 Jan;60(1):25-31. 
    11. Insawang T, Selmi C, CHa'on U et al. Monosodium glutamate (MSG) intake is associated with the prevalence of metabolic syndrome in a rural Thai population. Nutrition & Metabolism 2013, 9:50 doi:10.1186/1743-7075-9-50
    12. Iwase M, Ichikawa K, Tashiro K, Iino K, Shinohara N, Ibayashi S, Yoshinari M, Fujishima M. Effects of monosodium glutamate-induced obesity in spontaneously hypertensive rats vs. Wistar Kyoto rats: serum leptin and blood flow to brown adipose tissue. Hypertens Res. 2000 Sep;23(5):503-10.
    13. Kondoh T, Torii K. MSG intake suppresses weight gain, fat deposition, and plasma leptin levels in male Sprague-Dawley rats. Physiol Behav. 2008 Sep 3;95(1-2):135-44. 
    14. Kondoh T, Tsurugizawa T, Torii K. Brain functional changes in rats administered with monosodium L-glutamate in the stomach. Ann N Y Acad Sci. 2009a Jul;1170:77-81.
    15. Kondoh T, Mallick HN, Torii K. Activation of the gut-brain axis by dietary glutamate and physiologic significance in energy homeostasis. Am J Clin Nutr. 2009b Sep;90(3):832S-837S.
    16. Loliger J. Function and importance of glutamate for savory foods. J Nutr. 2000 Apr;130(4S Suppl):915S-20S. 
    17. Otsubo H, Kondoh T, Shibata M, Torii K, Ueta Y. Induction of Fos expression in the rat forebrain after intragastric administration of monosodium L-glutamate, glucose and NaCl. Neuroscience. 2011 Nov 24;196:97-103.
    18. Onyema OO, Farombi EO, Emerole GO, Ukoha AI, Onyeze GO. Effect of vitamin E on monosodium glutamate induced hepatotoxicity and oxidative stress in rats. Indian J Biochem Biophys. 2006 Feb;43(1):20-4.
    19. Pavlovic V, Sarac M. The role of ascorbic acid and monosodium glutamate in thymocyte apoptosis. Bratisl Lek Listy. 2010;111(6):357-60. 
    20. Platt SR. The role of glutamate in central nervous system health and disease--a review. Vet J. 2007 Mar;173(2):278-86.
    21. Ren X, Ferreira JG, Yeckel CW, Kondoh T, de Araujo IE. Effects of ad libitum ingestion of monosodium glutamate on weight gain in C57BL6/J mice. Digestion. 2011;83 Suppl 1:32-6. Epub 2011 Mar 10. 
    22. Smriga M. COFAG comments on: "Monosodium glutamate-induced oxidative damage and genotoxicity in the rat: modulatory role of vitamin C, vitamin E and quercetin". Hum Exp Toxicol. 2007 Oct;26(10):833-4; author reply 835-6. 
    23. Tarasoff L, Kelly MF. Monosodium L-glutamate: a double-blind study and review.
      Food Chem Toxicol. 1993 Dec;31(12):1019-35.
    24. Walker R, Lupien JR. The safety evaluation of monosodium glutamate. J Nutr. 2000 Apr;130(4S Suppl):1049S-52S.
    25. Yang D, Li SY, Yeung CM, Chang RC, So KF, Wong D, Lo AC. Lycium barbarum extracts protect the brain from blood-brain barrier disruption and cerebral edema in experimental stroke. PLoS One. 2013;7(3):e33596. Epub 2013 Mar 16.

    Tuesday, January 15, 2013

    Boron Boosts T4 to T3 Conversion: Old School Testbooster, Future Fat Loss Adjuvant? Or Just Toxic Waste?

    Let's be honest does this stuff look as if it was supposed to be eaten? No, well other minerals don't either, so what's the verdict: Test booster? No! Thyroid booster or toxic waste? Read and learn more...
    Those of you who have been around for a while will remember the whole hoopla surrounding the purported, but never fully established let alone real-world significant testosterone boosting effect of this chemical agent which happens to the fifth element (meaning it has only 5 protons and its thus one of the first in the list of the elements ordered b proton numbers) in the periodic table. Since boron is produced entirely by cosmic ray spallation it is pretty rare and,... I could go on with more details, but I guess that should suffice to evoke the notion that we are dealing with some powerful, quasi superhuman stuff, right? So what the hell, why wouldn't it turn you into Superman or Superwoman ;-) I guess the same thought occurred to the thousands of customers who bought  and used respective products back in the day without noticing any of the promised results in the testosterone, strength and mass department they were looking for.

    How come? I mean why did it not work. Let me think: Ok, Superman is strong, but boron he is without having to resort to boron. In fact, the next best thing to boron would be Kryptonite and that has the opposite effect. Ah, complicated... Maybe we have just been looking for the wrong results? I mean, according to more recent papers and the latest paper by scientists from the Ismail Kucukkurt at the Department of Biochemistry, Faculty of Veterinary Medicine of the Afyon Kocatepe University in Afyonkarahisar, Turkey (Kucukkurt. 2013), it would have been more prudent to take a closer look at (a) bone strength (e.g. Hakki. 2013) and (b) body fat percentage, or at least basal metabolic rate than muscle mass and strength after supplementing with boron... so let's stop kidding around and take a look at the latest scientific evidence.

    So did we actually just look for results in the wrong place?

    If you do have thyroid problems, you may be interested in reading my previous post about a study on what you'd call "dietary thyroid treatment" hypothyroid children (read more)
    For their experiment, Ismael Kucukkurt and his colleagues had bought 30 male Sprague-Dawley rats, divided them into three groups and fed them diets containing either
    • control diet: the standard amount of boron, 6.4mg/kg
    • boric acid diet: std. diet + 100mg boron /kg of the diet, or
    • borax diet: std. diet + 100mg borax /kg of the diet
    Borax is sodium borate a mineral salt of boron which is by the way a non-FDA approved (high amounts are thought to be hepatoxic) food additive (E285) that's used to either as a preservant or a cooking agents that improves the texture of the food.

    In previous studies boron supplementation had been found to exert negative effects on the T3 level of pigs, but in view of the scarce evidence, Kucukkurt et al. had decided to repeat the experiment in order to
     "investigate the effects of different B compounds, boric acid and borax diet supplementation on hormonal status (lep-tin, insulin, T3, and T4) and some biochemical factors (carnitine, nonesterified fatty acids (NEFAs), betahy-droxybutyric acid (BHBA), and glucose) in rats" (Kucukkurt. 2013)
    What the researchers found was quite the opposite of what you would have expected based on the previous studies by Armstrong et al. (2001) and confirmed previous results by Yazici et al. (2008), who had found a statistically significant normalization (level went back up) of the leptin levels of previously ovariectomized and acutely trained (swimming to exhaustion) rats.
    Figure 1: Effects of 4 weeks on chow with additional 100mg/kg of boric acid or borax on serum levels of leptin, insulin, T3, T4, carnitine, NEFA, betahydroxybutyric acid (BHBA) and glucose (Kucukkurt. 2013)
    It's not difficult to judge by looking at figure 1 that the effects were overall highly beneficial - at least in view of the current diabetes, but also low thyroid epidemic we are facing. A radical increase in insulin sensitivity and glucose management in the borax group despite the fact that the control group was (a) boron sufficient* and (b) neither obese nor fed on a high fat diet are certainly impressive. Coupled with the increase in T3 production, this could come handy to anyone regardless of whether it's your obese neighbor.
    Since there is no RDA, I can only tell you that most sources specifiy the upper tolerable level at 20mg/per day (for an adult). And where can you find it? Nuts are probably the best source: Almonds 2.8mg, hazelnuts 2.77mg, walnuts 1.63mg, , cashews 1.15mg. Other good sources are raisins w/ 4.51mg and prunes, dates & beans with 1-1.5mg (all per 100g)
    A word on "boron sufficiency": If we are honest with ourselves, we have no idea how much boron rodents let alone humans actually need to function properly. Yeah, there are a couple of studies showing that very low levels produce all sorts of nasty side effects. In humans there are claims of increased magnesium and calcium requirements, decreased bone density and a greater risk for prostate. On the toxicity side of things, on the other hand, you will find, nasty stuff like symptoms similar vitamin B6 and B2 deficiencies, skeletal abnormalities, diarrhea, nausea, vomiting, anemia, dermatitis, ovarian / testicular abnormalities, edema, seizures, gastrointestinal disturbances, fatigue and cold-like symptoms.

    Since boron is a naturally occurring trace mineral you will find it in all sorts of whole foods, ranging from nuts(almonds, walnuts) over avocados, broccoli and potatoes to pears, prunes, honey, oranges, onions, chick peas, carrots, beans, bananas, red grapes, red apples and raisins (please note, these are mostly unverified facts I briefly collected on several major Internet health portals).
    The keto-heads out there will probably be happy to see the increase in betahydroxybutyric acid, one of the ketone bodies and a clear sign that the improved glucose metabolism in the borax group in particular was partly driven by an increased fatty acid oxidation or, as some people would have it, "fat adaptation" (please mind that this took place on the regular ultra-high carb very low fat chow). It should be mentioned though that these changes, just like the changes in leptin did not reach statistical significance (I marked all that did with an arrow in figure 1).

    And what about the body composition did they become lean and ripped?

    Figure 2: Even if this (corrected) data is accurate, it does not tell us anything about the body composition of the animals and this irrelevant for us, anyways (diverts from Kucukkurt. 2013).
    As far as the body weight of the rodents is concerned, I am not sure what to make of the data, not just because there is no quantitative analysis of body fat vs. lean mass, but also due to the fact that the original graph in the study suggests that all groups lost weight in the course of the study. My gut feeling,however - and that would be in line with the what the scientists actually write in the result section, namely
    "Body weight levels of rats were lower (p< 0.05) in the boric acid than in the control and borax groups at the 3rd and 4th weeks (Figure 1). In boric acid group, body weight of rats was decreased 12%at the end of experimental period." (Kucukkurt. 2013)
    - tells me that the scientists accidentally reversed the weeks, when they tried to plot the data. My very own plot in figure 2 is therefore a (hopefully) corrected version of the original, which - you will have to agree on that - was in conflict with both common sense (all rodents losing weight?) and the afore cited statement that the boric acid group was the lightest at the end of the study. I mean reversing the graph would mean week 1 would be week 4 and that in turn would indicate that the body weight of all rodents would have been virtually identical at the end of the study period, which is obviously false... right?

    High dose Boron damages sperm and testes and causes infertility: Just in case you are (even reading about the Armstrong study and the decrease in T3 in swine) still considering taking copious amounts of boron, or - in the even worse case - you still believe it will improve your T levels and thus help you build muscle, you may want to take a look at the latest rodent data from Egypt (El-Dakdoky. 2013). In their paper, which has just been published in Toxicology mechanisms and methods, the researcher report that a dose of 250mg/kg did in fact increase testosterone and even nitric oxide levels in male rodents. On the other hand, it did also lead to DNA fragmentation within the testes and decreased the rodents' chance of fathering healthy pubs. 500mg on the other hand lead to testicular atrophy, severe damage of spermatogenesis, spermiation failure and total infertility. I guess this should convince you to wait until we know where the margin between beneficial and detrimental lies in human beings, right?
    So what? So let's assume some student assistants actually did the graphs for the study at hand and the rest of the study is correct, what do we make of these results now? Well, the first thing would be to make sure that we are not talking about additional 100mg/kg body weight of boric acid or borax, here. With an additional 100mg/kg chow, the rodents did consume 1538% more boron than their peers and a human equivalent of roughly roughly 1.62mg/kg. Now this calculation does not only assume that the rats in the boron group had normal appetite(the food intake was not given in the study text, so I just went by an average for adult rats), it also goes to show you that with ~100-160mg/day you would end up consuming WAY more than upper tolerable levels. Bottom line: Nothing even remotely consider taking as a supplement before we know more about the effects ...

    I know you are just checking where you can get, so let me phrase it like this: Humans and swine are in many ways a better model for the human metabolism than rats and what Armstrong observed in a group of fifty weaning young pigs were reductions in serum T3, as well as increases in cholesterol and alkaline phosphatase (Armstrong. 2001). I hope that brings you back to reason and has you cancel any order you may just have placed. At least for so long until your favorite nutrition & exercise science site (I don't have to mention that this is the SuppVersity, right?) carries the next study on boron that will hopefully shed some more light on how much we need, how much of it is good for us and in which amounts it's getting toxic.

    References:
    • Armstrong TA, Spears JW, Lloyd KE. Inflammatory response, growth, and thyroid hormone concentrations are affected by long-term boron supplementation in gilts. J Anim Sci. 2001 Jun;79(6):1549-56. 
    • El-Dakdoky MH, Abd El-Wahab HM. Impact of boric acid exposure at different concentrations on testicular DNA and male rats fertility. Toxicol Mech Methods. 2013 Jan 10.
    • Ghanizadeh G, Babaei M, Naghii MR, Mofid M, Torkaman G, Hedayati M. The effect of supplementation of calcium, vitamin D, boron, and increased fluoride intake on bone mechanical properties and metabolic hormones in rat. Toxicol Ind Health. 2013 Jul 10.
    • Hakki SS, Dundar N, Kayis SA, Hakki EE, Hamurcu M, Kerimoglu U, Baspinar N, Basoglu A, Nielsen FH. Boron enhances strength and alters mineral composition of bone in rabbits fed a high energy diet. J Trace Elem Med Biol. 2013 Aug 31.
    • Kucukkurt I, Akbel E, Karabag F, Ince S. The effects of dietary boron compounds in supplemented diet on hormonal activity and some biochemical parameters in rats. Toxicol Ind Health. 2013 Jan 4.