Showing posts with label carnitine. Show all posts
Showing posts with label carnitine. Show all posts

Wednesday, August 21, 2013

On Short Notice: Red Onions For Glutathion & Jiagulan For Muscle Glycogen, Low Iron & Obesity, Sodium Caprate, Useless Probiotics & Leaky Gut, Perivascular Fat & Heat Shock Proteins for Your Heart & Magnesium vs. Migraine

Image 1: You may already have read it on the SuppVersity Facebook Wall; "Sacrificing sleep in order to study won't improve your college grades..." it could however easily whack your circadian rhythm and give you headaches. If those turn into a migraine, you may be happy to have read about beneficial effects of magnesium on the incidence of these crippling and painful attacks (see last item in this installment of "On Short Notice" ).
In order to avoid having another weekend of "On Short Notice" posts, I decided to post the first collection today, already. The topics are, as usually, only loosely related and I hope that each and everyone of you will find something he or she considers interesting. We'll start out by having a brief look at the amazing antioxidant effects of red onions, and then delve deeper into the connection between obesity and low ferritin levels and a brief reminder that sometimes good things can become bad, if they are not handled properly, next on the list are the tight gut junction opening effects of sodium caprate which may be a good thing if your goal is to increase the bioavailability of berberine, but a very bad thing, if other molecules take the opportunity and pass through the open doors, as we are then going to see Dr. Shirota's probiotics are probably not going to help you avoid this problem and they are certainly not helping patients with metabolic syndrome: The latter is probably also true for PPAR-gamma antagonists, which may help prevent visceral fat accumulation, but could at the same time precipitate to heart disease by decreasing the surprisingly heart-healthy perivascular fat.
Although more of an ergogenic, Gynostemma penthaphylum (aka Jiagulan) is probably a more promising strategy to get in better shape. If it allows you to train harder, it will also allow you to make better use of potential systemic health effects of exercised induced heat shock protein expression... and just in case all that was so much information that you are having a headache once you have arrived at the end of this blogpost, a 500mg dose of magnesium could help you reduce the incidence of migraine attacks by more than 60% whether additional 500mg of carnitine make this treatment even more effective does yet remain to be elucidated!
  • Do your liver and body antioxidant system a favor and add a couple of red onions to your diet! That's the straight forward take home message from a recently conducted study by a group of Korean scientists (Lee. 2013). The researchers had investigated  the effect of red onion on the total activity of antioxidant enzymes in 18-week-old Sprague-Dawley rats. To this ends the rodent had been kept on a diet enriched with red onion peel, flesh or both (all pulverized and mixed into the standard chow for a total content of 5g per 100g) for for weeks.
    Figure 1: The red onions outperformed easily outperformed their uncolored white brethren and cousin, white onions and garlic, in the in vitro dish and had profound antioxidant boosting effects in the in vivo study (Lee. 2013).
    The results, (a) a significant increase in plasma SOD activity in the red onion peel and red onion (peel + flesh) groups, (b) a significantly higher GPX (enzyme that recycles glutathione) activity in the in the red onion flesh group and (c) a general tendency towards higher catalase and ORAC activity in the livers and profoundly reduced liver malondialdehyde (=marker of lipid peroxidation) levels in the red onion groups provide an in vivo (allegedly only "in rodent vivo" ;-) confirmation of the in vitro data in figure 1 which is - as usual - to be treated with caution before respective experiments in complex, real organisms confirm that they are more than artifacts of the respective essay.
  • Low iron (ferritin) associated with obesity in adolescents, but simple eating more iron probably won't solve either the iron deficiency, nor the (central) obesity. That's at least what the results of a recent investigation in normal and fat Greek kids would suggest, after all the fat kids did already consume more iron in their diets than their lean age-mates (Moschonis. 2013).
    What makes this study worth mentioning is the (as usual hasty) conclusion that iron must be a bad guy, when just its mismanagement (probably as a result of adiposity induced liver problems, or, as a handful of older and recent studies would suggest vitamin A deficiency; e.g. Arruda. 2009; Citelli. 2013; Yohsikawa. 2013) is a problem - so don't get fooled, donating blood every other week won't lean healthy people out, it will just drain them out.
  • Figure 2: Sodium caprate won't "open" the tight gut junctions for berberine, only, but also for all sorts of other, mostly unwanted junk - self-induced temporary leaky gut so to say!
    Sodium caprate opens tight junctions of the gut and let's berberine in. The consequence is an amplification of the hypoglycemic effects of berberine (Lv. 2013), but at the same time it is likely to amplify the effects of whatever you else put into your mouth or the critters that live in your stomach are pooping out - I guess it should be obvious that I am referring to the LPS assault from your gut microbiome, here and that the potential increase in lipopolysaccharide could well outweigh (in a negative sense) the benefits you would see from an increased bioavailability (~1.5-2.3 fold; cf. Lv. 2010) of berberine.
    Against that background I am really not sure how sensible the use of sodium caprate or other "tight junction openers" of natural or pharamacological origin really is. But hey, that's just me - maybe you are less cautious...  if there are not yet any products like that on the market, it probably won't be long until the first "enhanced" berberine appear in the line-ups of the large "health supplement" vendors on the Internet.
  • Image 2: Patented lactobacillus strains are all the rave, and probably big business... that does yet not mean that they work - regardless of whether they carry the name of famous Drs or not ;-)
    Probiotic supplements don't cure everything - although many ads may give just this impression. In a recently published study, Swiss researchers were not able to show any beneficial effects of the patented L. casei Shirota strain on the increased gut permeability of 28 patients with metabolic syndrome (Leber. 2013). In the course of the three months study period, it rather exasperated the already elevated C-reactive protein levels, due to liposaccharide leakage through the leaky gut into the system and I bet the only reason that the conclusion states that the dosage may have been too low instead of "this is initial evidence that the use of L. casei Shirota is not useful if  not counter-indicated in to treat gut permeability in patients with MetS", was the financial support by Yakult Europe the patent holder of L. casei Shirota ;-)
  • PPAR-gamma ablation leads to loss of perivascular adipose tissue (PVAT). What may at first sound great could in fact be deadly. The recently published results of Chang et al. show quite clearly that non-tissue-specific blockade of the "fat builder" PPAR-gamma (cf. "Tangeritin, Natural Metformin from the Rind of Mandarin Oranges Hits the OFF-Switch on Diet Induced Obesity") is a dangerous undertaking. While keeping the differentiation and growth of body fat at bay, especially in the abdominal region, would be a good thing, the high rate of atherosclerosis among the mice from the laboratories of the University of Michigan confirms that "not all body fat is created evil" (Chang. 2013).
    Figure 3: Fitzgibbons et al. were already able to show that the UCP-1 expression, which is a marker of metabolic activity, in PVAT is equally high as in the meanwhile infamous brown adipose tissue. In short - PVAT just like BAT will not just store superfluous lipids, it will also burn them and prevent them from accumulating in the vasculature (Fitzgibbons. 2011)
    As it turned out, PVAT, rather than being proinflammatory and hazardous, actually has a protective function on the vasculature it is sourrounding. In fact, the results Chang et al. are presenting in the latest issue of Circulation suggest the assumption that PVAT is anti-inflammatory and functionally similar to the metabolically active brown adipose tissue that has gotten quite some attention by experts ad laymen as of lat. When it's suddenly missing, the lipids inside the vascular can no longer be cleared into the perivascular adipose tissue where they would be oxidized and disposed of. In addition, the ensuing pro-atherogenic coupled with the absence of PVAT-derived prostacyclin, a prostanoid that's metabolized from endogenous arachidonic acid through the cyclooxygenase (COX) pathway and acts as a potent vasodilator (cf. Ruan. 2010) could thus easily set you up to die before your time - regardless of how lean you may have become...
    And though it is very unlikely that this is going to happen from the use of one of the freely available herbs with anti-PPAR-gamma effects (e.g. tashinones from Salvia miltiorrhiza, or the previously cited tangeritin), it certainly is a good reminder of how fatal our constant black-and-white thinking can be, when it is injudiciously applied to such complex matters as our own body.
  • Image 4 (dracoherbs.com): Gynostemma penthaphylum is also known as Jiaogulan, is often mentioned in the same breath with ginseng in TCM
    Gynostemma penthaphylum boosts endurance by ROS scavenging and multiplying skeletal muscle glycogen stores. Not yet another potent anti-oxidant was what I first thought,when I hit upon the soon-to-be published study from Shaanxi Normal University in Xi'an, China, but after taking a closer look it turned out that the way this century old adaptogen that goes by the name jiaogulanin TCM and is an herbaceous vine of the family Cucurbitaceae (cucumber or gourd family) indigenous to the southern reaches of China, northern Vietnam, southern Korea, and Japan, could actually make quite an exciting supplement (Chi. 2013). After all its high ROS(radical oxygen specimen) scavenging abilities are only part of what allowed the rodents in the study by Chi, Tang, Zhang & Zhang that had been treaded with isolated polysaccharides from this plant to go significantly longer during a standardized exercise performance test.
    The more intruiging part of the performance boost, however came from the direct pro-gluconeogenic and glyocogen storage promoting effects of the alpha variety of the three Gynostemma penhaphylum polyssacharides the scientists had extracted. If similar effects would be seen in humans, GP would certainly make a valuable addition to the regimen of anyone who does not just perform 1-rep maxes day in and day out - and let's face it: In view of the fact that the glycogen can't be synthesized from nothing, it could also help to burn body fat, by it's repartitioning effects.
  • Figure 4: It would certainly be an unwarranted overgeneralization to ascribe all beneficial effects of exercise to the systemic expression of heat shock proteins. But still, there is increasing evidence that their controlled expression does at least contribute to the numerous beneficial effects exercise has on our brains, hearts and other organs; interestingly these effects are likewise mediated by the breakdown and the protection and "recycling" of organ tissue.
    Will training your biceps, heal your heart and protect your brain!? You probably know that the scientists at the McMaster University have put the myth of the pro-anabolic effects of systemically circulating hormones that are released response to isolated muscle training (eg. "train your legs to increase your testosterone and see your arms grow") at rest, years ago. Now, a study that's soon going to be published in theh Journal of Experimental Biology suggests that testosterone, growth hormone and co. may not be the only molecules we should be looking for, when we talk about possible non-localized effects of exercise (Jammes. 2013). Another class of proteins that has gotten quite some attention esp. in the context of the profound effects of occlusion training, the so-called heat-shock proteins, which are released in response not just to heat, but to exhaustive contractions / trauma / hypoxia / etc., could in fact play a likewise, probably more important role not so much in skeletal muscle growth, maybe, but in the overall systemic response to exhaustive skeletal muscle contractions. 
    After all, Jammes et al. observed a delayed, but significant elevation of non phosphorylated HSP25 and HSP70 in skeletal and respiratory muscles, kidney, and brain. Now, of HSP70, for example, it has long been known that it exerts cardio-protective effects (Martin. 1997). In addition to its anti-apoptotic effects, it does yet also contribute to the proteolysis (=protein breaking) that's a necessary part of the continuous clean-up processes that remove the "junk" and "clutter" (defect protein structures) from your body in order to keep everything functional (Lüders. 2000). Similarly, HSP25 (aka HSPB1) exerts both cytoprotective effects due to its ability to modulate reactive oxygen species and raise glutathione levels, as well as proteolytic effects and is working hand in hand with HSP70 by inhibiting protein aggregation and stabilizing partially denatured proteins, so that they can be refolded by the former. That the latter could be of particular importants in view of the neuroprotective effects of exercise is also supported by a couple of trials in which HSPB1, to be precise, its exogenous administration or endogenous overexpression, have been evaluated as treatment or preventive strategies in ALS (Lou Gehrig's Disease), Huntington's, Parkinson's, Stroke and acute nerve injury (for an overview see table 3 in Brownell. 2013).
  • Figure 5: The benefit of l-carnitine is questionable, despite the fact that the serum l-carnitine in the Mg group dropped to a similar extent as in the control group; over time the carnitine depletion could however become important (Tarighat Esfanjani. 2013)
    Headaches? Magnesium and l-carnitin help! At a dosage of 500mg/day magnesium oxide, alone did already have significant beneficial effects on the occurrence of migraine in  106 females and 27 males volunteers who were diagnosed with headache according to the International Headache Society criteria, were between the age of 18 and 55 years old and "had severe and continual headache lasting from 4 to 72 h, unilateral and pulsating headaches with moderate or severe intensity, migraine with or without aura, at least two attacks per month, headaches which were aggravated by routine physical activity and associated with nausea and/or photophobia, and phonophobia" (Tarighat Esfanjani. 2013).
    So, if that sounds like you (I don't hope it does) magnesium should be the least you should take, the additional 500 mg/day L-carnitine is questionable - just as whether ALCAR may have provided greater benefits. Apropos, you do realize that this is neither transdermal nor any fancy chelated magnesium or at least magnesium citrate that did the trick? Yeah, right: The same "worthless" (put name of random nutrition guru, here) mg-oxide you find in the cheapest fizzy tablet from the supermarket did the trick!
If you are now thirsty for more, I suggest you check out the SuppVersity Facebook Wall (which is by the way updated several times a day), like the career-boosting information that sacrificing sleep in order to study is a bad idea, that Caucasians, compared to Asians, lose weight relatively easily, but have a hard time getting rid of their bellies, or, if all that ain't for you, how the wise producers of "functional foods" are planning to add a little wood aka methylcellulose into your yogurts and smoothies to curb the cravings you probably would not have, if they had not removed all the fat from it, before ;-)

 References:
  • Brownell SE, Becker RA, Steinman L. The protective and therapeutic function of small heat shock proteins in neurological diseases. Front Immunol. 2013;3:74. Epub 2013 May 1.
  • Chang L, Villacorta L, Li R, Hamblin M, Xu W, Dou C, Zhang J, Wu J, Zeng R, Chen YE. Loss of Perivascular Adipose Tissue upon PPARγ Deletion in Smooth Muscle Cells Impairs Intravascular Thermoregulation and Enhances Atherosclerosis. Circulation. 2013 Aug 1. 
  • Chi A, Tang L, Zhang J, Zhang K. Chemical Composition of three Ingredients of Polysaccharides from Gynostemma pentaphyllum and Comparison of their Antioxidant Activity in Skeletal Muscle of Exhaustive Exercise Mice. Int J Sport Nutr Exerc Metab. 2013 Aug 14.
  • Citelli M, Bittencourt LL, da Silva SV, Pierucci AP, Pedrosa C. Vitamin A Modulates the Expression of Genes Involved in Iron Bioavailability. Biol Trace Elem Res. 2013 Apr 14. 
  • Fitzgibbons TP, Kogan S, Aouadi M, Hendricks GM, Straubhaar J, Czech MP. Similarity of mouse perivascular and brown adipose tissues and their resistance to diet-induced inflammation. Am J Physiol Heart Circ Physiol. 2011 Oct;301(4):H1425-37.
  • Jammes Y, Steinberg JG, By Y, Brerro-Saby C, Condo J, Olivier M, Guieu R, Delliaux S. Fatiguing stimulation of one skeletal muscle triggers heat shock proteins activation in several rat organs: the role of muscle innervation. J Exp Biol. 2013 Aug 16.  
  • Leber B, Tripolt NJ, Blattl D, Eder M, Wascher TC, Pieber TR, Stauber R, Sourij H, Oettl K, Stadlbauer V. The influence of probiotic supplementation on gut permeability in patients with metabolic syndrome: an open label, randomized pilot study. Eur J Clin Nutr. 2013 Aug 8.
  • Lee B, Jung JH, Kim HS. Assessment of red onion on antioxidant activity in rat. Food and Chemical Toxicology. August 10, 2013.
  • Lüders J, Demand J, Höhfeld J. The ubiquitin-related BAG-1 provides a link between the molecular chaperones Hsc70/Hsp70 and the proteasome. J Biol Chem. 2000 Feb 18;275(7):4613-7. 
  • Lv, X.Y., Li, J., Zhang, M., Wang, C.M., Fan, Z., Wang, C.Y., Chen, L., 2010. Enhancement of sodium caprate on intestine absorption and antidiabetic action of berberine. AAPS.PharmSciTech. 11, 372–382. 
  • Martin JL, Mestril R, Hilal-Dandan R, Brunton LL, Dillmann WH. Small heat shock proteins and protection against ischemic injury in cardiac myocytes. Circulation. 1997 Dec 16;96(12):4343-8. 
  • Moschonis G, Chrousos GP, Lionis C, Mougios V, Manios Y. Association of total body and visceral fat mass with iron deficiency in preadolescents: the Healthy Growth Study. Br J Nutr. 2011 Nov 16:1-10.
  • Ruan CH, Dixon RA, Willerson JT, Ruan KH. Prostacyclin therapy for pulmonary arterial hypertension. Tex Heart Inst J. 2010;37(4):391-9. 
  • Tarighat Esfanjani A, Mahdavi R, Ebrahimi Mameghani M, Talebi M, Nikniaz Z, Safaiyan A. The Effects of Magnesium, L-: Carnitine, and Concurrent Magnesium-L-: Carnitine Supplementation in Migraine Prophylaxis. Biol Trace Elem Res. 2013 Aug 17. 
  • Yoshikava O, Ebata Y, Tsuchiya H, et al. A retinoic acid receptor agonist tamibarotene suppresses iron accumulation in the liver. Obesity. 2013 Aug.
  • Zhanga M, Lvc X, Lia J, Menga Z, Wangd Q, Changa W, Lia W, Chena L. Sodium caprate augments the hypoglycemic effect of berberine via AMPK in inhibiting hepatic gluconeogenesis. Molecular and Cellular Endocrinology. 16 August 2013

    Monday, March 18, 2013

    Carnitine as Repartitioning Agent? IGF-1, p-AKT & mTOR Up, Catabolic Proteins Down + 7% Improvement in Lean- to Total Mass Ratio W/ HED of 1-1.5 of Carnitine/Day

    It won't spare you the sweat, but carnitine could make it even more worthwhile by ramping up the anabolic and shutting down the catabolic signals.
    Until 2006 l-carnitine has been known as a fat-burner, an in-effective fat-burner and an expensive and pretty useless supplement (depending on whom you were asking). Then, in July 2006, Kraemer et al. published a paper (a human study, above all!) in the journal Medicine & Science in Sports and Exercise a consequential paper so to say; a paper in which the authors report that l-carnitine l-tartrate supplementation at a dosage of 2.933g/day (this amount of LCLT contains 2g of pure carnitine) led to a statistically significant increase in androgen receptors in the vastus lateralis after a heavy resistance training protocol in previously strength trained male subjects (Kraemer. 2006).

    Still, the evidence has always been inconclusive to say the least

    Despite the fact that the concomitantly elevated post-workout luteinizing hormone levels (+19%) Kreamer et al. observed would tell you that the testosterone that would have been necessary to activate those receptors was already on its way, I have never considered this study as convincing evidence of the anabolic prowess of l-carnitine. Plus, let's be honest, differences in whatever serum markers in response to an acute bout of resistance training have failed us way too often, not to look at studies like these with appropriate skepticism.

    Do you remember the Ratames study from 2005? The one that showed that high volume training lowers the no. of androgen receptors on the trained muscles? This certainly makes l-carnitine sound like the perfect addition to high volume routines, right? (learn more)
    That the same principle of "calm down and don't get too excited over the results of a single trial" does all the more apply to rodent studies should be self-evident and still, science is all about taking each and every experimental result into account to form a theory that can explain all of them, or, alternatively, is able to bust short-comings in previous studies that don't comply with the predictions of the respective theory.

    Now, the soon-to-be-published paper by Janine Keller and her colleagues from the University of Giessen (Germany) certainly qualifies as part of the evidence we simply cannot ignore, when we are looking for evidence in support of the theory that l-carnitine could be an overlooked muscle builder or repartitioning agent.

    After all, their observation of decreased levels of the proteolytic (=catabolic) MuRF1 protein, as well as the ubiquitin-protein conjugates, which are increased in catabolic states such as starvation and atrophy denervation (cf. Wing. 1995) , alone, would signify that l-carnitine could make a valuable addition to everybody's supplementation regimen.

    Lower catabolism + increased anabolism = ???

    There is more, however, the addition of 1250 mg L-carnitine/kg to a basally "low carnitine" vegetarian diet also led to significant increases in systemic IGF-1 concentrations in plasma and a local increase in the activity of the PI3K/Akt/FoXO-1 signalling pathway (see figure 1)
    Figure 1: IGF-1 mRNA and serum levels, as well as the muscle specific expression and phosphorylation (ph) Akt, mTOR & co after four weeks on the low or high carnitine diets (Keller. 2013)
    These results do yet not stand in isolation as the ones by Kraemer et al. still do. Other recent studies by the same research group in Giessen, as well as colleagues from the University of Barcelona have already confirmed the anti-catabolic effects of l-carnitine in piglets and a cancer cachexia model in rodents, respectively (Keller. 2013; Busquets. 2013).

    "And you are telling me that works in humans, as well? "

    What's the best form of carnitine to take to elicit these effects: I knew you would ask this, so I react to two facebook questions by adding this red box willingly admitting that I just cannot tell you what the best form of carnitine is. There simply is no study that would compare e.g. acetyl-l-carnitine (ALCAR) and l-carnitine l-tartrate (LCLT) in a scenario that would be relevant to the above question. What I can tell you though, is that it appears as if you were better off with LCLT than with ALCAR, if your goal is to top off your intra-muscular carnitine levels. That being said, even normal creatine can do that - you will just have to take more of it. If you are looking for more information you can check out the part of the Amino Acids for Super Humans Series that's dealing with "the carnitines", here.
    In this context it does yet also have to be mentioned that the effects of l-carnitine are at least in part species specific. How we know that? Well, in contrast to the said study by Basquets et al. the provision of an carnitine to piglets (Keller. 2013) did not only reduce the MuRF-1 expression, but also the level of its likewise catabolic E3 ligase cousin atrogin-1.
    "It has been shown that myofibrillar proteins, like myosin light chain proteins are the main targets of MuRF1for ubiquitination. Thus, carnitine might suppress particularly the degradation of myofibrillar proteins, which under physiological conditions comprise around 60% of total muscle proteins. In contrast to MuRF1, atrogin-1 tags primarily proteins for degradation which are important for controlling protein synthesis and myoblast differentiation, like myogenic factor MyoD, myogenin and the eukaryotic initiation factor of protein synthesis eIF3-f." (Keller. 2013)
    With pigs usually being a superior model of the human physiology, this would suggest that the anti-catabolic effects l-carnitine could have on humans are probably more, not less pronounced than those that were observed in previous rodent studies.

    Whether the same goes for the IGF-1 response cannot be said, but just like the anticatabolic effects, the pro-anabolic increase in IGF-1 has been observed in previous trials, including a human trial by Di Marzio et al. who observed a significant increase in IGF-1 in HIV patients in response to the provision of 3g/day of acetyl-l-carnitine (Di Marzio. 1999). In the absence of the existing evidence from animal studies, these results would yet have little significance for healthy human beings, whose growth hormone and IGF-1 levels are not rock bottom to begin with (Viganò. 2003).



    Bottom line: Irrespective of the absence of human data on the IGF-1 boosting effects from non-HIV patients - or even better in training scenarios - it would warrant future studies if an adequate amount of carnitine in the diet can exert beneficial effects in non-obese human beings. For the "sedentary", or let's rather say non-exercised rodents in the study at hand, the latter was a mere fat loss effect - despite the elevations in p-AKT, m-TOR, IGF-1 and the overall more "anabolic" state the rodents were in their lean body mass was not increased compared to their peers on the low carnitine diet.

    "Just another set!" ... "I don't know man, we've already pumped away 100,000kg today... do you really believe that's productive, I mean, yeah, we are cuttin', but still" ...learn what this dialog is all about and whether and if / when "another set" is / isn't a good idea (read more)
    The lean-to-total mass ratio of the rodents, on the other hand was ~7% higher in the rodents in the high carnitine group. If we do however take into consideration that most of you will not be vegetarians and thus not similarly carnitine deprived as the rodents in the control group on the <1mg/kg carnitine diets, it is highly questionable if the addition of the human equivalent of the 1.25g/kg chow, i.e. 15mg/kg body weight (HED) would actually yield any measurable benefit to non-vegetarians - irrespective of whether they train or not. After all, even the average omnivore human being consumes 100-300mg of carnitine per day (Broquist. 1994), so that the difference between your basal carnitine intake and the supplemental equivalent dose of 1050-1500mg/day is more than 100x lower than the exorbitant difference between the low (if not deficient) carnitine diet in Keller's rodent study at hand (remember: the basal diet had less than 1mg/kg chow; the supplemented diet hat 1250mg/kg diet!).

    So what's the verdict then? I guess, I will leave the final words to Burke et al. who reviewed the usefulness of carnitine as an ergogenic aid in one of the first installments of the "A-Z Supplement Review" in the British Journal of Sports Medicine and wrote "future work with l-carnitine may also find some useful outcomes" (Burke. 2009) - needless, to say that the SuppVersity is going to be the place, where you will read about it first ;-)


    References:
    • Broquist HP. Carnitine. In Shils ME, Olson JA, Shike M (eds): "Modern Nutrition in Health and Disease." Malvern, PA: Lea & Febiger, 1994. 459– 465.
    • Burke LM, Castell LM, Stear SJ, Rogers PJ, Blomstrand E, Gurr S, Mitchell N, Stephens FB, Greenhaff PL. BJSM reviews: A-Z of nutritional supplements: dietary supplements, sports nutrition foods and ergogenic aids for health and performance Part 4. Br J Sports Med. 2009 Dec;43(14):1088-90.
    • Busquets S, Serpe R, Toledo M, Betancourt A, Marmonti E, Orpí M, Pin F, Capdevila E, Madeddu C, López-Soriano FJ, Mantovani G, Macciò A, Argilés JM:  l-Carnitine: An adequate supplement for a multi-targeted anti-wasting therapy in cancer.  Clin Nutr. 2013;31:889–895.
    • Di Marzio L, Moretti S, D'Alò S, Zazzeroni F, Marcellini S, Smacchia C, Alesse E, Cifone MG, De Simone C. Acetyl-L-carnitine administration increases insulin-like growth factor 1 levels in asymptomatic HIV-1-infected subjects: correlation with its suppressive effect on lymphocyte apoptosis and ceramide generation. Clin Immunol. 1999 Jul;92(1):103-10.
    • Glass DJ:  Signalling pathways that mediate skeletal muscle hypertrophy and atrophy. Nat Cell Biol. 2003; 5:87–90 .
    • Kraemer WJ, Spiering BA, Volek JS, Ratamess NA, Sharman MJ, Rubin MR, French DN, Silvestre R, Hatfield DL, Van Heest JL, Vingren JL, Judelson DA, Deschenes MR, Maresh CM. Androgenic responses to resistance exercise: effects of feeding and L-carnitine. Med Sci Sports Exerc. 2006 Jul;38(7):1288-96.
    • Keller J, Ringseis R, Koc A, Lukas I, Kluge H, Eder K:  Supplementation with l-carnitine downregulates genes of the ubiquitin proteasome system in the skeletal muscle and liver of piglets. Animal. 2013;6:70–78.  
    • Keller J, Couturie A, Haferkamp M, Most E, Eder K. Supplementation of carnitine leads to an activation of the IGF-1/PI3K/Akt signalling pathway and down regulates the E3 ligase MuRF1 in skeletal muscle of rats. Nutrition & Metabolism. 2013; 10:28. 
    • Lösel D, Rehfeldt C. Effects of l-carnitine supplementation to suckling piglets on carcass and meat quality at market age. Animal. 2013 Mar 11:1-8.
    • Salama AF, Kasem SM, Tousson E, Elsisy MK. Protective role of L-carnitine and vitamin E on the testis of atherosclerotic rats. Toxicol Ind Health. 2013 Feb 13.
    • Viganò A, Mora S, Brambilla P, Schneider L, Merlo M, Monti LD, Manzoni P. Impaired growth hormone secretion correlates with visceral adiposity in highly active antiretroviral treated HIV-infected adolescents. AIDS. 2003 Jul 4;17(10):1435-41.
    • Wing SS, Haas AL, Goldberg AL. Increase in ubiquitin-protein conjugates concomitant with the increase in proteolysis in rat skeletal muscle during starvation and atrophy denervation. Biochem J. 1995 May 1;307 ( Pt 3):639-45.

    Wednesday, February 13, 2013

    Forgotten Dieting Aids: Choline, Carnitine, Caffeine and the Anti-Weight-Loss Plateau Effects of Sugar and Phosphates

    I bet both Flex Wheeler (left) as well as Serge Nubret (right) still knew what choline is. Something you probably cannot say of many of today's gymrats.
    In view of the fact that the brief "Oldie but Goldie" post on the efficiency of a stack of carnitine, choline and caffeine as a weight loss adjuvant on the SuppVersity Facebook Wall caught so much attention, I thought that especially those of you who have not yet "liked" the SuppVersity on Facebook and have thus missed this brief reminder of these "classic" fat loss helpers would appreciate if I devote a whole post to this issue as well as another "Oldie but Goldie", I came across recently: The anti-plateau effects of succrose (plain sugar) and phosphates during phases of (very) intense dieting.

    ECA was yesterday and so was CCC ;-) 

    Let's start with the CCC stack, though. In the year 2000, Hongu et al. published a paper describing a rodent experiment in which they were able to show that the combination of choline, carnitine and caffeine had similar beneficial effects on the body fat and leptin levels of sedentary rodents as exercise (Hongu. 2000).
    Figure 1: Fat pad weight (in g) and serum glucose, lactate, triglycerides, free fatty acids and leptin levels expressed relative to sedentary rodents on standard chow (Hongu. 2000)
    With statistically highly significant reductions in the weight of the epididymal, inguinal and perirenal fat tissue and corresponding decreases in leptin, the net fat (not simply weight!) loss the 7-wk-old male Sprague-Dawley rats exhibited in face of an unaltered basal energy intake at the end of the 5-weeks study period was yet so pronounced that the question, whether these results would be replicable and, more importantly, whether they could be reproduced in human beings should already be preying on your mind.

    "So you are saying it's unlikely this will work in humans, right?"

    For a follow up study, the scientists recruited 19 healthy non-obese women with no history of diabetes, or cardiovascular disease (18–54y; body weight, 47.5–92.7 kg; body mass index (BMI), 18.9–35.9kg/m²; body fat, 17.9–37.8%) and repeated the experiment (Hongu. 2003); yet with a slightly different design (see figure 2) that would allow the researchers to differentiate the individual effects of choline and carnitine - unfortunately, without the third "C", i.e. the caffeine.
    Figure 2: Study design of the follow up human study three years later (Hongu. 2003).
    In the absence of caffeine, the combination of choline and carnitine lost its congenial partner in crime, whose job it is to squeeze the lipids out of the fat cells (lipolysis). But that's not all, the dosages used in the human trial were also significantly lower than the human equivalents of those the rodents had coonsumed three years before (see infobox to the right of the next paragraph). With appropriately high doses, the caffeine may even not have been necessary to elicit the desired fat loss effects. What is unquestionable though is thatthe caffeine induced lipolysis would have amplified any existing effect, because you obviously need enough fatty acids to be transported to the mitochondria in order to make optimal use of the increase in oxidative capacity from the other "C"s in the CCC stack.

    What we have here is not a fat loss study

    What were the dosages of choline, carnitine and caffeine that were used in the studies? The human equivalent doses for the rodent study from 2000 were 98mg/kg choline, 52mg/kg carnitine and 1mg/kg caffeine. In the human study from 2003 the scientists used much lower dosages of 15mg/kg choline bitartrate and only 1mg/kg l-carnitine l-tartrate per day (!) no wonder the effects on the body composition were completely absent in the human trial.
    Against that background the results of this follow up study are of greater theoretical than practical value for us, as they allow some insights into the underlying mechanisms which are responsible for the profound fat loss effects the researchers observed in the rodent trial. As far as this mechanism is concerned the researchers write in the discussion of their paper:
    "The mild exercise routine enhanced fat utilization as energy substrate in both supplemented groups, but not in the placebo group [This went hand in hand with a 21–27%] loss of acylcarnitines in urine [that] has not been found in individuals subjected to low or high intensity exercise without supplement. [...] It may thus be argued that increased demand for energy by exercise in choline/carnitine-preloaded individuals increases rates of fatty acid oxidation, albeit incomplete, resulting in sustained loss of acyl groups in urine." (Hongu. 2003)
    I willingly admit that this hardly sounds like an explanation, so let's briefly recap the main points.

    Firstly, there is the increase in fat utilization in response to the ingestion of choline and carnitine. Secondly, therese there is the loss of acetylcarnitines, i.e. a complex of carnitine + the short-chain fatty acid acetyl in the urine of the women who participated in the study.
     "Choline promotes carnitine conservation and accretion by tissues that favor incomplete oxidation of fatty acids and disposal of fatty acid carbons in urine as acylcarnitines." (Hongu. 2003)
    As the scientists point out, the reason for the latter is an incomplete oxidation of long(er)-chain fatty acids and the net result is a non-negligible loss of energy in the urine. With the addition of caffeine to the equation, the total amount of fat that is available for oxidation during exercise, but more importantly also at rest (not just during exercise) would have increased, the same would apply to the amount of fat that is shuttled into the mitochondria and the amount of fat that will leave the mitochondria only partially oxidized. And what happens if you use more stored fat and use it less efficiently? Correct! The fat depots on your hips, buttocks and abs and if you still have some, the nasty inter-organ fat will be gone faster than without the use of the "CCC" stack. Will it disappear magically overnight and without any dietary and lifestyle changes? Probably not overnight, but maybe over several weeks and months.

    Add sugar & phosphate to ameliorate the downregulation of the metabolic rate on a diet

    YoYo-Dieting or Constant Gluttony? What Happens During Weight Cycling? And Why Does Every Diet Make You Fatter? I have answered these and related questions in a previous blogpost, already (read more)
    Sounds too good to be true? Well in a way it in fact is. After all, this requires a 100% constant food intake and presumes that your body does not adapt its caloric expenditure to achieve a new steady state. That the latter is not very realistic, is probably something many of you have already learned the hard way. after all, those new steady states are actually the underlying reasons of the nasty weight loss plateaus this 2nd part of today's SuppVersity post is dealing with.

    "Sugar, orange juice, carrots, ..." does this ring a bell? Yeah, I see you have heard or read about this combination before on the Internet.  No idea yet? Well another hint, then: You usually complement those foods with egg shells, which are a good source of calcium, but not in the form of calcium phosphate, but rather as the simple white powdery calcium carnbonate and thus certainly not what the results of a 1996 study by Nazar et al. would suggest the sugars should be complemented with.

    In the said study the results of which were published in the Journal of Physiology and Pharmacology 16 years ago, the researchers from the Polish Academy of Science write that the addition of a phosphate supplement containing non-disclosed amounts of calcium, potassium and sodium phosphate to a 1,000kcal, high viscose fiber diet ameliorated the diet induced reduction in basal metabolic rate in the 30 female overweight study participants (+15 / +19% depending on whether the supplement was taken from week 1-4 or week 5-8 of the 8-week dietary intervention). As Nazar et al. point out, the
    "[p]hosphate supplementation ameliorated also a decrease in plasma triiodothyronine level and a decrease in thyroxine to triiodothyronine ratio. [While t]here were no differences between groups in the plasma insulin, catecholamine, growth hormone, cortisol and testosterone levels[,] plasma lipids or blood glucose concentration." (Nazar. 1996)
    With the thyroid hormone concentration marking the only statistically significant hormonal difference between the supplementation and placebo phases of in the Nazar studies, the similarities to Dr. Ray Peat's previously alluded highly controversial "sugar for thyroid health protocol" should be obvious.

    "Ok, but if it's phosphates instead of calcium, then it must be fat instead of sugar, right? "

    Often a picture says more than 1000 words: Normal (left) and repeatedly hypoglycemic rodents (learn more about the obesogenic effects of hypoglycemia)
    I bet the above question is now preying on the minds of some of you. "Sugar, really?" It may sound hilarious, but as I've pointed out several times before: An energy deficit, specifically a pronounced one, is a game changer. Things that would usually precipitate weight gain suddenly don't matter, when - at the end of the day - your body has used more energy than it has been able to acquire from the foods you  ate.

    Unfortunately your body hates nothing more than having to fight to fulfill his acute energy demands by tapping into its body fat stores and will therefore after a couple of days start to save energy, this is particularly true, when your brain realizes that it's beloved glucose is becoming scarce and there is no abundance of ketone bodies to use instead.

    Basically this is exactly the situation that arises on a HCG-like very low calorie (800kcal/day) high protein (95% protein, 4% fat, 1% carbohydrate) such as the one the obese women in a study by Hendler et al. were following at thne Yale Clinical Research Center in the late 1980s (Hendler. 1986). The exact study protocol was a bit complicated (and nonsensical ;-) with half of the patient starting out on what I would prefer to call a 'protein only' diet and not, as the scientists do a "high protein" diet, for 15 days followed by another 15 days on a "sucrose diet" with reversed macronutrient ratios, but identical energy content. The other half dieted for 15 days, only, on the sucrose regimen (I wonder why they did not switch those to the protein regimen afterwards...?!). And one miserable wretch "consumed the high-protein diet for 30 days to serve as a control for the sequential protein-sucrose diet"

    HCG like dieting: Don't do this at home!

    I guess, I don't have to mention that dietary interventions like these are meant to be used in clinical settings and in very obese individuals. So, don't be bamboozled by the 9kg of body weight the subjects lost within those 30 days and try something similarly stupid at home. Our interest in this study is merely related to the effects on the resting metabolic, which were (I will list the main effects and quote excerpts from the results):
    • Figure 3: Effect of the sequential protein-sucrose diet on resting metabolic rate (RMR), serum triiodothyronine (T3) and plasma norepinephrine concentra- tions (Hendler. 1986)
      significant reductions in resting metabolic rate during the protein phase: "After 15 days of the hypocaloric protein diet, resting metabolic rate decreased by 354 kcal/day, or 21 percent of control values (p < 0.01)"
    • restorative effects of the sucrose diet in the subsequent 15 days: "Sucrose substitution significantly increased the resting metabolic rate (+228 kcal/day, p < 0.05) to values approaching those in the control period (p = NS)."
    • metabolic shut-down in the poor wretch who followed the protein only diet for 30 days: "In contrast, the single patient given the protein diet continuously for 30 days showed a progressive decline in resting metabolic rate (2,165, 1,822, and 1,628 kilocalories per day at baseline and after 15 and 30 days of the protein diet, respectively)." 
    • Plummeting levels of the active thyroid hormone T3 that were only partly restored in the sucrose phase: "Changes in serum triiodothyronine levels followed the pattern of diet-induced changes in resting metabolic rate. The serum triiodothyronine level fell by 41 percent (p < 0.02) after the protein diet and then rose (by 28 percent, p < 0.02) after sucrose substitution, reaching values intermediate between control and protein diet levels. 
    • Significant correlations between the drop in T3 levels and the lowered metabolic rate: "There was a significant correlation between the changes in the serum triiodothyronine level and resting metabolic rate during the sequential diets (r = 0.701, p < 0.01).
    • Only minimal signs of a reduced sympathetic tone in the protein phase, none in the succrose phase: "Supine norepinephrine concentrations were slightly, but not significantly, reduced by the protein diet (10 percent) and failed to change significantly when sucrose was substituted. 
    • No correlation between epinephrine and the resting metabolic rate: "There was no correlation between changes in the supine norepinephrine concentration and resting metabolic rate."
    Interestingly, no significant changes in any of the measured parameters, i.e. serum triiodothyronine (T3) levels, epinephrine and, most importantly, the reductions in metabolic rate were observed in the patients who followed the succrose diet.



     Does it make sense to eat carbs on a lean bulk as well, or will they just make you fat *scary sound*? Learn more in a previous SuppVersity post.
    So what's the take home message, here? Don't worry, as I've already pointed out, I am neither suggesting that you should follow a pure sugar nor a 800kcal diet. And you can be sure that the negative effects on the resting metabolic rate are "diet dose depend" (meaning the harder and imbalanced you diet, the more pronounced they will be). What I am suggesting is that there is reason I keep repeating my mantra "you cannot live on protein alone", both here, as well as on the SuppVersity Science Round-Up. So if you insist on going on a "low carb diet" you better do it right and turn to a  high fat diet (<15% protein), use regular really high carb (including sugar!) refeeds or periods of normal high(-ish) carb intake to keep your metabolism chugging along nicely.
    A final note on a possible CCC protocol: I actually did not want to write that down, but I know you will be asking anyways. Please keep in mind though, that I cannot tell you the optimal dose and that I have more than just second thoughts about taking high amounts of choline (see potential side effects next to the respective bullet point below).
    • Max. (!) 3g choline: Take the choline (bitartrate or citrate, no funky GPC or similar junk) with meals split across the day, but refrain from taking the human equivalents (HED) from the rodent study, I suppose 3g could already make you smell like a fish. Watch out for potential side effects, such as cramps, nausea, vomiting, dizziness, high blood pressure, or acne-like skin rash. Stop the supplement immediately, if you experience any of those. Also make sure to get adequate amounts of potassium and magnesium.
    • 3-5g of carnitine: Stick to the l-tartrate or regular form of carnitine. Take the carnitine in 3 doses best on empty (learn more about in the Amino Acids for Super Humans Series). 
    • 200mg sevings of caffeine: Use the caffeine whenever you are fasted for at least 90min or before you are working out. Don't take more than 400mg, max. 600mg per day and - needless to say - don't take it before bed.
    Again keep an eye on side effects and don't expect any miracles! This is a supplement to help you lose fat, not to make you lose fat.
    Once you've got these fundamentals right you may want to consider adding in the CCC stack and a phosphate supplement to promote - not to induce - fat loss.



    References:
    • Hendler RG, Walesky M, Sherwin RS. Sucrose substitution in prevention and reversal of the fall in metabolic rate accompanying hypocaloric diets. Am J Med. 1986 Aug;81(2):280-4.
    • Hongu N, Sachan DS. Caffeine, carnitine and choline supplementation of rats decreases body fat and serum leptin concentration as does exercise. J Nutr. 2000 Feb;130(2):152-7.
    • Hongu N, Sachan DS. Carnitine and choline supplementation with exercise alter carnitine profiles, biochemical markers of fat metabolism and serum leptin concentration in healthy women. J Nutr. 2003 Jan;133(1):84-9.
    • Nazar K, Kaciuba-Uściłko H, Szczepanik J, Zemba AW, Kruk B, Chwalbińska-Moneta J, Titow-Stupnicka E, Bicz B, Krotkiewski M. Phosphate supplementation prevents a decrease of triiodothyronine and increases resting metabolic rate during low energy diet. J Physiol Pharmacol. 1996 Jun;47(2):373-83.