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marylin monroe
Showing posts with label aging. Show all posts
Showing posts with label aging. Show all posts

Reishi Protects Against Cancer & Contains Anti-Androgen; Adrenalin Rejuvenates Brown Fat; Mild Stress Normalizes Cortisol / DHEA Ratio in Elderly; DHEA, Aromatase Inhibitors & BPA vs. Joint & Brain Health; Vitamin E Battles Lymphoma

I am not happy with how the short news on Facebook simply disappear into oblivion.
The SuppVersity figure of the week is "920"! "920" as in "920 published posts" here at the SuppVersity. The reason that's the figure of the week is that I have been thinking about ways to reorganize the archive, but am a bit lost on how to structure things in a better way using blogger. This beast simply isn't made for anything that goes beyond a weekly classic blogpost a la "last week I did this and that, read about..." *yawn*

What's yet even more enervating is that despite having the huge advantage of being easily posted and directly accessible for all of you, the tons of short news items I post on a daily basis on the SuppVersity Facebook Wall simply disappear into the 'Facebook nirvana'. I currently cannot spend any time on those technical / organizational matters, but in the course of 2013 things are going to change.

In the mean time, follow the SuppVersity on Facebook and read the news, right when I post them + use google to find articles you are looking for. You will be laughing, but that's the way I dig through those 920 posts, as well ;-) Simply type whatever you look for and add a "+site:suppversity.blogspot.com" to it.

Chinese fungi are laden with cancer-protective molecules and 5a-reductase (DHT) inhibitors

In view of a recent paper from the Universitat de Valencia (Rios. 2012) it appears that it would actually be hard not to decrease your risk of developing cancer if you include extracts from Ganoderma lucidum and other related fungi, such as Poria cocos, Laetiporus sulphureus, Inonotus obliquus, Antrodia camphorata, Daedalea dickinsii, and Elfvingia applanata in your supplement regimen. With a total of 81 compounds from Ganoderma lucidum and other species from this genus, as well as 96 compounds isolated from other fungi, principally Poria cocos. It appears that these creatures (fungi are no plants, neither are they animals, but still sort of living beings) could hold the key to hundreds o natural anti-cancer agents.

Ganoderma lucidum better known as Rheishi mushroom may have cancer protective effects, but does not taste so bitter that no sane human being would eat it for a reason (photo by Eric Steinert)
I guess, I don't have to tell you that Chinese Medicine, of course, knew about the powerful anti-inflammatory and anti-proliferative effects of the lanostanes in these fungi, all along. Intuitively and probably by trial and error, the Chinese have found the tetracyclic triterpenoids that are derived from lanosterols in these fungi to be effective in the treatment of various diseases including different types of cancer. As of late the mostly anecdotal effects are backed by more and more research. A preliminary study by Sliva et al. (Sliva. 2002), for example, found that a hot water extract of both spores and the dried fruiting body of G. lucidum inhibited the progression of cancerous growth by reducing the expression of constitutively active growth and inflammation promoting transcription factors AP-1 and NF-κB: 
"The extracts also inhibited the secretion of uPA, thereby suppressing the migration of breast cancer MDA-MB-231 and prostate PC-3 cells. [...] High levels of both uPA and uPAR are associated with advanced tumors and decreased survival time in different malignant human cancers." (Rios. 2012)
These benefits do however come with a downside. At least in vitro, some of the fungi, particularly G. lucidum, obviously exert their effects via anti-androgenic pathways (Liu. 2007). A compound in Reishi that goes by the name ganoderol B, for example, does not just have inhibitory activity against 5α-reductase, but can also bind to the androgen receptor directly (if you will you could say it acts like an anti-anabolic SARM). Now, this was good news in a study that has been conducted by Liu et al., because it inhibited androgen-induced cell growth in an LNCaP cell line while suppressing testosterone-induced regrowth of the ventral prostate in rats. If those effects are however non-selective, you are about to run into problems once the molecules bind to receptors outside the prostate -- epression for example, if they block the androgen effects in the brain, etc.
That reminds me: What did Carl say on Thursday's installment of the SuppVersity Science Round Up? "The good thing about supplements is that they work, the bad thing about them is that they work!" I guess you can basically say the same about Reishi. Good that you as a SuppVersity reader always know about both, the good and the bad sides of supplements!

More short news

With me posting stuff on the fly on facebook, I am actally 'wasting' many of the very short news items, but nevertheless, here are a couple of relatively short news to round things up.
  • If you missed Monday's new on the quasi non-existent thermogenic effects of ephedrine, this would be a good time to read that post.
    Stress-induced browning of the fat? Chronic overexpression of noradrenaline (re-)generates wasted brown fat! In a way this is a follow up on the ephedrine post "Fat Burners Don't Work" as well as an addendum to a news on the role of GABA and brown fat in obesity, I just posted on facebook. According to an allegedly old study in the International Jornal of Obesity (Lee. 1986),  the chronic overexpression of noradrenaline as it is observed in humans with a certain form of adrenal tumor known as phaeochromocytoma can actually reactivate the intra-abdominal fat of human adults, including the omental fat, which is brown adipose tissue in infancy.

    Lee et al. see this as one of the main contributing factors to the weight loss which is typically seen with phaeochromocytoma. Sounds, logical, since the same stimulus that rejuvenates the Brown fat will also have it burn energy continuously - the overexpression of noradrenaline.

    Symptoms of overtly high noradrenaline levels include abdominal pain, chest pain, irritability, nervousness, pallor, palpitations, rapid heart rate, severe headache, sweating, hand tremor, high blood pressure, sleeping difficulties, and also weight loss.
    Even patients with Cushing's syndrome (hypercortisolemia) there is an increase in brown fat compared to healthy individuals. That the latter is not as profound is probably due to the ameliorative effect of cortisol on nor-adrenaline. After all, cortisol comes into play, when the stress becomes chronic and the acute nor-adrenaline response to stress, when it was prlonged any further would actually pose a direct threat to your health (just as phaeochromocytoma does, by the way; see red box on the right)
  • Repeated moderate stress exposure increases DHEA production and normalizes corticosteriod levels in old apes (Goncharova. 2012). Yep, you are reading right we are not just talking about no rodent studies (although macacs are not exactly very human either ;-), but also about the role of repeated moderate stress in the normalization of aged induced abnormalities in the expression of adrenal hormones.
    Figure 2: Cortisol/DHEA ratio before and after 2h/day of immobilization stress.
    "In old monkeys the basal DHEAS levels were lower, while the [cortisol]/DHEAS ratio was higher than in young animals. Repeated immobilizations inhibited [cortisol] elevation on day 3, caused no changes in DHEAS reaction, led to increase of basal DHEAS levels and to a reduction of [cortisol]/DHEAS ratio on days 2, 3, 4, 10, 11." (Goncharova. 2012)
    In figure 2 you can see how profound the differences between acute, subchronic (3-day) and chronic responses actually are and that after 10 days of daily stress exposure in the form of daily 2-h immobilization stress actually are. Since I assume you don't want to be bound or enchained (well, maybe you want?), I suppose a viable alternative could be a shorter not too intense workout, although the acute responses to the latter vary with age as well (cf. Lennartsson. 2007).
  • Monitor your DHEA levels closely, if you are concerned about joint degeneration According to a study that's about to be published in the next issue of the Journal of Steroid Biochemistry and Molecular Biology, DHEA, or the estradiol your body generates from it via local aromatization, exerts major protective effects against osteoarthritis (Li. 2012).

    An additional note of caution with respect to the abuse of aromatase inhibitors, natural or not. Since they have the potential to reduce the expression of estrogen at the neuronal level in the brain they can precipitate  Alzheimer's dementia. While estrogen appears to decrease the MMP-3 & 13 expression in the cartilage reasearch by Merlo et al. suggests that it will increase others, namely namely MMP-2 and MMP-9  in the brain and thus facilitate the clearance of the ameloid beta plague that's rendering the brains of AD patients more and more dysfunctional (Merlo. 2012). You see, it's no chance that pre-menopausal women are protected from Alzheimer's yet more susceptible to multiple sclerosis (MS). After all, high MMPs 7 & 9 have only been observed in kids with MS, as well (Unsal. 2012).
    In their experiments on a rabbit model of osteoarthritis the scientists from the Zheejiang University in China tried to nail down the beneficial effects of DHEA on chrondocites and cartilage to estrogen by co-administering DHEA with the aromatase inhibitor letrozole, and/or the estrogen receptor inhibitor fulvestrant and observed that the
    "[e]xpression of MMP-3 and MMP-13 increased in both DHEA-treated chondrocytes and cartilage in the presence of letrozole and/or fulvestrant, while the expression of TIMP-1 and collagen type II (Col-II) decreased." (Li. 2012)
    With the former metalloproteinases (MMPs) being proteolytic enzymes, which break down cartilage and the latter, i.e. the tissue inhibitors of metalloproteinases (TIMPs), acting as their antagonists, it appears clear why both patients on testosterone replacement therapy who use too high of a dose of aromatase inhibitors and athletes who abuse respective products on cycle or during PCT often suffer from severe cartilage degeneration - I mean, combine the endogenous cartilage destruction due to high MMPs and low TIMP levels with the wear and tear of weight lifting... what good could come out of that?

    Note: A very similar effect has been reported for bisphenol A by Wang et al. in 2010, already (Wang. 2010). No wonder, after all BPA decreases the local expression of aromatization in joints and cartilage so that less estrogen will be floating around to keep the MMP levels in check and TIMP up (Watanabe. 2012).
  • Alpha tocopherol to prevent lymphoma Regular vitamin E, i.e. the alpha-version of the tocopherols is no longer the star at the supplement sky it has once been hailed to be. A recent study by Renu Sharma Manjula Vinaya that's been published ahead of print in the journal Molecular Biology Reports shows however that this does not mean that it's outdated and useless (ask Ray Peat about it ;-).

    Figure 3: Lifespan (top) and ascite volume (=water accumulation in the abdominal area) of lymphoma carrying mice treated with what would be in human terms ~325, 650 and 975 IU/day of an alpha tocopherol only supplement  (Sharma. 2012)
    In order to test the hypothesis that the ROS scavenging abilities of vitamin E should help with cancer prevention (as a student of the SuppVersity you know that respective data from epidemiological studies are equivocal, some suggesting the exact opposite; read more), the researchers initially induced the growth of lymphomas in 10-15 week old male mice and subsequently treated them with either 1.5 mg (50 mg/kg bw), 3 mg (100 mg/kg bw) or 4.5 mg (150 mg/kg bw) of alpha-tocopherol for 14 days.

    As the data in figure 1 goes to show you, the treatment increased the lifespan of the rodents by 25% and reduced the ascite fluid volme (see image in figure 1) by ~46%. This was accompanied by reductions in protein carbonylation and increases in the "master anti-oxidant" GSH, as well as several other markers showing that vitamin E exerted profound anti-inflammatory effects in this rodent model of lymphoma.

    At least in my humble opinion that does not change the fact that your best sources of vitamin E are natural and that's smart to stay away from alpha-tocopherol only supplements and prefer a whole spectrum tocopherol + tocotrienol supplement. Remember: More is not better, when the one thing that counts are the ratios (read more about vitamin E)!
That's it for this week's installment of On Short Notice. As mentioned in the introduction, there are more and even shorter news on the SuppVersity Facebook Wall, which usually gets updated 3+ times per day with I would guess 9-12 items total - depending on whether it's a slow news day or not and the time I have to skim studies and popular science mags and repost summaries and links of and to the latter. Let's see what did we have today, already? Ah, yeah: "Review concludes: Just being patented makes Kinesio® no better than conventional taping" (more), "Interesting stupid science finds that GABA directly mediates energy expenditure." (more), or maybe you are interested in "If rapamycin blocks seizures in model of epilepsy. Is mTOR to blame for both?" (more)?

References:
  • Goncharova ND, Vengerin AA, Chigarova OA. Repeated Moderate Stress Stimulates the Production of Dehydroepiandrosterone Sulfate (DHEAS) and Reduces Corticosteroid Imbalance in Old Macaca Mulatta.  Bulletin of Experimental Biology and Medicine Volume 153, Number 5 (2012), 750-753. 
  • Lean ME, James WP, Jennings G, Trayhurn P. Brown adipose tissue in patients with phaeochromocytoma. Int J Obes. 1986;10(3):219-27. 
  • Lennartsson AK, Kushnir MM, Bergquist J, Jonsdottir IH. DHEA and DHEA-S response to acute psychosocial stress in healthy men and women. Biol Psychol. 2012 May;90(2):143-9.  
  • Li WJ, Tang LP, Xiong Y, Zhou XD, Wu LD. The chondroprotective effects of dehydroepiandrosterone probably exerted by its conversion to estradiol. J Steroid Biochem Mol Biol. 2012 Oct 18. 
  • Liu J, Shimizu K, Konishi F, Kumamoto S, Kondo R. The anti-androgen effect of ganoderol B isolated from the fruiting body of Ganoderma lucidum. Bioorg Med Chem. 2007 Jul 15;15(14):4966-72. 
  • Merlo S, Sortino MA. Estrogen activates matrix metalloproteinases-2 and -9 to increase beta amyloid degradation. Mol Cell Neurosci. 2012 Apr;49(4):423-9.
  • Ríos JL, Andújar I, Recio MC, Giner RM. Lanostanoids from Fungi: A Group of Potential Anticancer Compounds. J Nat Prod. 2012 Oct 23.
  • Sharma R, Vinayak M. α-Tocopherol prevents lymphoma by improving antioxidant defence system of mice. Mol Biol Rep. 2012 Oct 14.
  • Sliva, D.; Labarrere, C.; Slivova, V.; Sedlak, M.; Lloyd, F. P., Jr.; Ho, N. W. Biochem. Biophys. Res. Commun. 2002, 298, 603– 612.
  • Unsal Y, Kıvılcım G, Ayşegül A, Arzu A, Esra G, Ercan D, Ayşe S. Matrix metalloproteinase-7 and matrix metalloproteinase-9 in pediatric multiple sclerosis. Pediatr Neurol. 2012 Sep;47(3):171-6.
  • Wang KC, Lin YF, Qin CH, Chen TL, Chen CH. Bisphenol-A interferes with estradiol-mediated protection in osteoarthritic chondrocytes. Toxicol Lett. 2010 Oct 5;198(2):127-33. 
  • Watanabe M, Ohno S, Nakajin S. Effects of bisphenol A on the expression of cytochrome P450 aromatase (CYP19) in human fetal osteoblastic and granulosa cell-like cell lines. Toxicol Lett. 2012 Apr 5;210(1):95-9.

    Stretch-Shortening Cycle Exercise Superior to Eccentric Exercises in the Elderly - Identical Size & Strength Gains, With a Functional Advantage for Stretch Shortening Ex.

    A stretch-shortening cycle (SSC) is an active stretch (eccentric contraction) of a muscle followed by an immediate shortening (concentric contraction) of that same muscle - e.g. jump squats.
    Sacropenia, i.e. the age-related loss of muscle mass is a huge problem in our society. A problem the consequences of which start to surface way before older men and women suffer from serious limitations in their mobility and their ability to master (no longer) ordinary everyday-life tasks.

    The loss of muscle mass is after all associated with an ever-increasing risk of metabolic syndrome, i.e. obesity, diabetes, high blood lipids, etc. (Baumgartner. 2004; Kim. 2011) - in both, young and old individuals, as well.

    In contrast to many pharma-funded which spends millions of dollar on "promising new drugs" (that's what they say) to solve the problem.
    Learn more about building muscle at www.suppversity.com

    Tri- or Multi-Set Training for Body Recomp.?

    Alternating Squat & Blood Pressure - Productive?

    Pre-Exhaustion Exhausts Your Growth Potential

    Exercise not Intensity Variation for Max. Gains

    Battle the Rope to Get Ripped & Strong

    Study Indicates Cut the Volume Make the Gains!
    Researchers like Márk Váczi and his colleagues from the University of Pécs have long recognized that the development "promising new drugs" holds much less promise that the optimization of exercise regimen that are targeted to prevent sacropenia. In their latest paper in Experimental Gerontology the researchers describe the results of an experiment that was conducted to compare the effects of exercise training using stretch-shortening (SSC) and eccentric contractions (ECC) on the mechanical function and size of the quadriceps muscle and hormonal adaptations in healthy old males (N=16; age: 60-70 year old).
    Figure 1: The torque–time curves of a stretch-shortening cycle and an eccentric exercise training contraction highlight the main difference between SSC (short, ultra-intense) and ECC (long, medium intensity) knee extensions (Váczi. 2014)
    In that, Vávzi et al used an experimental approach in which the total mechanical work was identical in the two training groups and hypothesized that mechanical, hormonal, and muscular adaptations would differ in response to SSC vs. ECC exercise (note: plyometric training harnesses the beneficial effects of SSC | learn more).

    The exercise of choice was, as so often, the single-lateral knee extension. The subjects trained 2-3 times per week with 48h rest between two sessions (each between 9-11 am in the morning).
    Benefit from SSC irrespective of your age after you've read the following SuppVersity Classic: "Building the Jack-of-All-Traits Legs Workout With Squats, Jump Squats and Body Weight Plyometrics? At Least for Physical Education Students that Seems to Work." | read more
    "Subjects performed 4 sets of 8 to 14 repetitions of unilateral knee extensions with both legs, with 2 min of rest between sets. The exercising legs were alternated across sets. The training contractions in SSC and ECC groups were similar to the SSC and ECC test contractions. [...A] unique element of the training program was that the average mechanical work for a session was still similar in the two groups. This was achieved by manipulating the stretch-load in the SSC group. For example, if a subject in the ECC group improved mechanical work production due to adaptation to the training, the stretch-load was adjusted to match subject-pair's mechanical work in the SSC group." (Váczi. 2014)
    If we take a look at the outcome of the work and volume matched training with stretch-shortening and eccentric leg extensions, we see the following differences and similarities, when comparing the two exercise regimen:
    • Figure 2: The hormonal response to the exercise regimen was more or less identical (Váczi. 2014)
      There was a significant group by period interaction for RTD30 [rate of torque development after 30ms] and RTD50 (p < 0.05), suggesting that the two groups responded differently to the training. 
    • There was no group by period by time interaction in any of the hormonal variables, suggesting similar re sponses to the two training regimens. There was a significant time main effect in testosterone (p = 0.010), suggesting that the two exercise bouts (before and after 10 weeks training) uniformly increased testosterone 15% from pre to IP, and then decreased 10% from IP to 5 min post-exercise. 
    • There was a time main effect for cortisol (p = 0.018), suggesting that the two exercise bouts uniformly increased cortisol 21% from pre to IP, and then further increased 6% to 5 min post-exercise. 
    • There was a time main effect for testosterone/cortisol ratio (p = 0.002), suggesting that the two exercise bouts uniformly decreased the ratio 17% from pre to 5 min post-exercise. 
    Now, in view of the fact that the overall strength (MCV) and size gains (CSA) were identical, as well. It would seem as if both types of exercise were equally beneficial.
    Figure 3: Changes in maximum voluntary contraction (MVC), rate of torque development after 30ms and 50ms and cross sectional area of the quadriceps muscle (CSA) after 10 weeks of training (Váczi. 2014)
    If we look at the most important functional deficits in aging muscle, however, it becomes obvious that the ostensibly negligible increase in the rate of torque development at the beginning of the exercise could determine whether an older individual falls and breaks a bone or whether he or she manages to "catch him-/herself" in time.
    Bottom line: Overall the study at hand underlines there is more than just one way to skin the cat. In that, small allegedly practically non-significant differences like the increased rate of torque development in the study at hand can - from time to time - have important real-world relevance.

    Figure 4: Strength & size gains in young men in response to 8 wk of SSC exercise training
    And even if you are not 60 years and older, you can benefits. In 2005, Malisoux et al. evaluated the contractile properties of chemically skinned single muscle fibers from the leg muscle of eight young men before and after 8 wk of maximal effort stretch-shortening cycle (SSC) exercise training and found that their maximal leg extensor muscle force, vertical jump performance and peak force were improved 12%, 13% and 15-19% (depending on muscle fiber type), respectively; and the single-fiber crosssectional area increased 23% in type I, 22% in type IIa, and 30% in the most growth prone type IIa/IIx fibers. Needless to say that this makes SSC exercises "an effective training approach to improve fiber force, contraction velocity, and therefore power." (Malisoux. 2005) | Comment on Facebook!
      References:
      • Baumgartner, Richard N., et al. "Sarcopenic obesity predicts instrumental activities of daily living disability in the elderly." Obesity research 12.12 (2004): 1995-2004.
      • Kim, Tae Nyun, et al. "Skeletal muscle mass to visceral fat area ratio is associated with metabolic syndrome and arterial stiffness: the Korean Sarcopenic Obesity Study (KSOS)." Diabetes research and clinical practice 93.2 (2011): 285-291.
      • Malisoux, Laurent, et al. "Stretch-shortening cycle exercises: an effective training paradigm to enhance power output of human single muscle fibers." Journal of Applied Physiology 100.3 (2006): 771-779.

      DHEA Revives Liver of Aged Rats and Improves Antioxidant Reserves and Akt Signaling in Young and Old Rats.

      Image 1:  I don't think celebrities realize it, but there is more to anti-aging than an unlined face. New studies show that DHEA could after all help with all sorts of age related diseases (img. antiagingpossible.com)
      It's been a while since DHEA was in the news. While I have posted a handfull of mostly beneficial findings related to dehydroepitestosterone (DHEA), the hype that sourrounded its purported anti-aging effect in the late 1990s has completely abated. In view of DHEA's implication  (or rather the lack of the latter) in age-related autoimmune disease, sexual disfunction, osteoporisis, deteroiations of lipid metabolism, type 2 diabetes and cardiovascular and liver disease (Basci. 2007- ignificance of  dehydroepiandrosterone  and  dehydroepiandrosterone  sulfate  in  different  diseases), it is questionable how people beyond the age of 40, when DHEA production declines by 2% per year(!) could not benefit from a carefully planned and monitored DHEA treatment. A group of scientists from Brazil obviously thought the same and decided to take a fresh look at what happens on a molecular level, when 3 (young rats) and 24 months (old rats) old male Wistar-rats are given 10mg/kg deyhdroepitestosterone [human equivalent: 1.62mg/kg; 80kg human: 130mg/day] subcutaneously per day for 5 weeks (Jacob 2011).
      Figure 1: Relative changes in total, reduced and oxidized glutathione in young and old rats after 5 weeks on 10mg/kg DHEA (data adapted from Jacob 2011)
      As you can see in figure 1, the treatment induced profound increases in total and reduced glutathione and age-dependendly increased (young) or decreased the absolute level of oxidized glutathione (GSSG). Despite the absolute increase in GSSG, usually a marker of oxidative stress, the more important GSH / GSSG ratio, i.e. the ratio of reduced to oxidized glutathion, a more comprehensive marker of the balance of pro- vs. anti-oxidant metabolic processes, improved even more in the twelve young rats, (+6% GSH/GSSG) than in their older companions (+1% GSH/GSSG).
      Figure 2: p-Akt levels in young and old rats with and without DHEA supplementation (data adapted from Jacob 2011)
      As a faithful student of the SuppVersity, the serine/threonine kinase Akt should not be a stranger to you, after all, mTOR and p706SK (the "muscle builders", you've read about in the context of BCAAs, leucine and exercise-induced protein synthesis), are among its intracellular substrates. In agreement with previous studies, chronic administration of DHEA increased p-Akt-expression in the study at hand (cf. figure 2). The scientists speculate "that the Akt activation in this organ [the liver] is a protective answer" and could, after all, be the underlying reason for the preservation / restauration of hepatic function in the old rats.
      Image 2: Oral DHEA supplements are sold for a few bucks over-the-counter (at least in the USA). Yet,
      esp. for people under the age of 35, it probably does not make sense to buy and use those. At least, for
      as long as it takes for the results of the study at hand to be confirmed in humans. And the allegedly benign 7-Keto DHEA could wreak havoc on your natural corticosteroid metabolism.
      So how much DHEA should I take? Given the fact that the name of this blog is SuppVersity, I should have apprehended DeDeRa's question on which form and how much DHEA I would suggest you take. My answer is quite simple: NONE! Why? Well, this is a rodent study done with injectable DHEA. Not only would it be imprudent to extrapolate any dosing suggestions for oral DHEA supplements in humans, without clinical tests, we cannot even be sure that the effects would be identical, even if we hit the right dosage. Thus, while I am convinced that DHEA is probably more benign than many other OTC "supplements", especially people under the age of 30-35 should think twice or better thrice before popping any DHEA supplement - this includes 7-keto, the cortisol-suppressant effects of which can wreak havoc on your natural corticosteroid balance, make you feel tired and sluggish and deprive your body of an important anti-inflammatory pathway.
      Most importantly, however, the study does away with the longstanding prejudice that DHEA (at the given dosage) "represent[s] a toxic potential to [the] liver". The isolated finding that endogenous DHEA lead to increased oxidation in the liver (it still does, but the overall pro- vs. anti-oxidant balance still improves!), as well as insufficient funding by the pharmaceutical industry, who obviously is not interested in naturally occuring and thus non-patentable treatment methods, had been one of the primary reasons many scientists decided not to dig deeper into the ameliorative, preventive and restaurative effects of DHEA in the context of age-related diseases. Personally, I hope that the few new studies that have been published, lately, will encourage other researchers to have another look at a hormone with profound yet complex and complicated effects on numerable aspects of the mammalian metabolism.

      Strengthless Gains: HMB+Arginine+Lysine Build Muscle. Strength Gains Require Vitamin D Levels >30mg/mL

      Image 1: I wonder, why
      gerontologists don't use
      plain BCAAs - too convenient?
      If, as I hope, you are a regular visitor of the SuppVersity, you know that in this day and age of vitamin-D3-loving, I am an outspoken skeptic, as far as the "magic" of supplementing with the undreestimated bone-building vitamin is concerned. That being said, I am all the more happy that after thousands of worthless epidemiological studies, scientists eventually begin to conduct well-controlled clinical trials, which provide factual information instead of dodgy hypothesis on the complex mechanisms by which our vitamin D status modulates a number of metabolic processes which reach far beyond the health of our bones.
      Did you know that the most recent studies on the effects of vitamin D on weightloss (Soares. 2011) and type 2 diabetes (Mitri. 2011) conclude that "[c]urrent evidence from RCTs [randomized controlled studies] did not consistently support the contention that calcium and vitamin D accelerated weight or fat loss in obesity" and that, in the majority of hitherto published, well-powered studies "no effect of vitamin D supplementation on glycemic outcomes" was seen "among participants with normal glucose tolerance at baseline and in three small underpowered (n=32–62) trials of patients with established type 2 diabetes". The obvious discrepancy between the euphoria, or I should say, hype the unreliable epidemiological trials brought about and the disillusioning results of real science, which will always go beyond mere observation, should remind you of the ease with which you can design or (mis-)interpret epidemiological studies in order to prove whatever hypothesis you want - I do not have to remind you of the "fat lies" related to the detrimental effects of saturated fats on heart health, do I?
      But let's get back to the topic at hand - strengthless muscle growth. In a year-long double-blinded, controlled study (Fuller. 2011) John C. Fuller, Jr. and his colleagues from Iowa State University and the Vanderbilt University Medical Center provided 39 elderly women and 38 elderly men (age 76+/-1.6 years) with an amino acid supplement which contained either a blend of HMB + Arginine + Lysine (2.0 g CaHMB, 5.0 g arginine, and 1.5 g lysine) or an isocaloric non-essential amino acid placebo (alanine 5.6 g, glutamic acid 0.9 g, glycine 3.1 g, serine 2.2 g). The supplement, of which the heavier participants (&amp;gt;65kg) consumed 1.5x the amount of their lighter age-mates, was to be taken each day, with breakfast. Based on previous research by Vukovich (2001) and Flakoll (2004), Fuller et al. hypothesized that the intake of the HMB-containing amino acid blend would result in statistically significant gains in both strength and size of the muscles of their elderly participants.
      In fact, HMB has been shown to stimulate protein synthesis and reverse its inhibition by lowering proteolysis-inducing factor, lipopolysaccharide, tumor necrosis factor α, and angiotensin II via an upregulation of the mTOR / p70S6k pathway. By attenuating the activation of caspases-3 and -8, HMB supplementation may also decrease the formation of reactive oxygen species and the activation of the ubiquitin-proteosome degradation pathway. If you asked me, however, you would probably see the very same benefits from supplementing with HMB's way cheaper precursor leucine - keep that in mind before you waste your money on a hardly palatable amino acid derivative your body will synthesize on its own, if you just provide the right substrate, i.e. l-leucine from BCAAs, EAAs or just plain whey protein.
      In view of the fact that in a previous study by the same group (Baier. 2009) an identical amino acid supplement had failed to elicit  significant strength increases in a similar subject group, and based on previous findings by various scientists on the detrimental effects of full-blown vitamin D deficiency (&amp;lt;15ng/mL 25OHD3) on muscle strength, Fuller et al. speculated that there could be a synergy (which does not equal "vitamin D builds strength) or interdependence between the provision of the leucine metabolite HMB, the vitamin D status of a person and the ensuing improvements in muscle size and strength.
      Figure 1: Relative changes in lean body mass in 77 elderly subjects after one year on a HMB+Arginine+Lysine supplement (calculated based on data from Fuller. 2011)

      The results of their study (cf. figures 1-2) suggest that 'adequate' vitamin D levels (25OH-D3 &amp;gt; 30ng) are not required for the HMG + Arginine + Lysine amino acid mixture to work its muscle building magic on elderly subjects.
      Figure 2: Increase in total leg strength [in ft-lbs] as measured by the sum of knee extension and flexion at 60 and 120 degrees/s in 77 elderly subjects after one year on a HMB+Arginine+Lysine supplement (data adapted from Fuller. 2011)
      Yet, in subjects with 25OH-D3 levels <30ng was this increase in muscle mass also accompanied by strength gains, which were approximately 4x higher than in the unsupplemented control group (cf. figure 2).
      Vitamin D and muscular strength in the elderly: Bischoff-Ferrari et al. (2004) found continued improvements in lower extremity function up to 40ng 25OH-vitD3/mL, a level well above what has been previously thought necessary for maximum benefit. Although this does not sound much, clinical trials such as the one Andres Ernesto Carillo conducted as part of his dissertation (Carillo. 2010) show that supplementation with 4.000 IU VitD3, which is way beyond what conservative physicians would deem tolerable, raised vitamin D in 23 previously deficient individuals (25OHD levels = 19.3ng/ml; age 26.1 +/- 4.7yrs) levels by no more than + 2.7ng/mL over control.
      A word of caution before you ramp up your supplemental vitamin D intake to a bottle a day: Although this was a "double-blind controlled" trial, the controlled parameter was not vitamin D supplementation, but the HMB+Arginine+Lysine mixture the elderly subjects received - as far as the vitamin D status was concerned, the study was merely observational. That being said, the study may have higher significance than the unreliable epidemiological guesswork, you will hear about in the news almost daily, it does not allow, however, any (not even preliminary) conclusions regarding the potential effect supplemental vitamin D would have had on the outcome of the study. If the low vitamin D level was just corollary to or caused by some other underlying conditions, for example, it would be very unlikely that even 100.000IU of vitamin D would have had a significant effect on the muscular performance of the subjects.

      Amino Acids for Super Humans, Part IV - Purported Ergogenics (2/3): L-Carnitine, ALCAR, LCLT, GPLC & Co.

      Image 1: Even bought in bulk,
      the carnitines are not exactly
      cheap, so you better read on
      to gather whether ALCAR,
      L-CAR, P-LCAR, L-CLT & Co
      are worth spending money on.
      Despite the fact that even my grandmother has heard of the miraculous energizing and fat-burning abilities of carnitine, most people - and even those who are buying those carnitine-enriched functional, or should I say disfunctional foods are not even aware that L-3-hydroxy-4-N,N,N-trimethylaminobutyric acid (l-carnitine) is a naturally occurring amino acid, all mammals (humans included) can synthesize from l-lysine or l-methionine in their livers and kidneys.

      Necessary co-factors for carnitine synthesis are
      • ascorbic acid (vitamin C), 
      • pyridoxine (vitamin B6), 
      • niacin (vitamin B3) and 
      • S-Adenosyl methionine (SAMe)
      Interestingly, supplementation of the EAA substrates and co-factors failed to raise carnitine synthesis and or serum levels in respective studies. Gamma-butyrobetaine, a down-stream metabolite in carnitine synthesis from lysine, on the other hand, doubled plasma, brain, kidney and liver levels of carnitine in juvenile mice; cf. Higashi. 2001).

      Note: This is the detailed transcript of my show notes to "Amino Acids for Super Humans Part IV"
      click here to download the podcast if you want to listen before / during / after you read the rest of the notes
      In view of the limited capacity for endogenous biosynthesis of carnitine, it is not very surprising that mammals obtain the heat sensitive (at 284°F ~ 140°C carnitine starts to decompose) amino acidprimarily from their diet (Vaz. 2002); and in that, it is probably no coincidence that colostrum and breast milk are particularly high in l-carnitine, as the need for this essential metabolite in the mammalian energy metabolism increases in phases of rapid growth.
      Did you know? The first soy-based baby formulas were low in carnitine, so that neonates who were fed respective products had 1/3 lower carnitine levels than babies who were breast-fed or received milk-based products. Even in the absence of symptoms of overt carnitine deficiency, sub-optimal carnitine levels put these children at risk of early or late metabolic complications (Olson. 1989). Consequently, almost all soy-based infant formulas are enriched with l-cartinine, today.

      Vegetarians and Vegans generally have lower plasma carnitine levels
      Table 1: Amount of carnitine in food;
      meat, fish and dairy are particularly
      good sources of dietary l-carnitine
      (data adapted from wikipedia.org)

      That's unfortunate news for all vegetarians and vegans out there, because as the data in table 1 shows, meat, fish and dairy are the richest dietary sources of l-carnitine. "Omnivorous humans generally ingest 2-12 µmol of carnitine per day per kg of body weight" (Vaz. 2002), which is up to 10x the estimated amount of our endegenous production (1.2µmol /kg/day). So that 75% of the well-stocked carnitine stores of meat-eaters come from dietary, and only 25% from de novo biosynthesis. Needless to say that, with an average daily carnitine intake of <0.1µmol /kg body weight, vegetarians and vegans are usually significantly lower than those of their omnivores fellow men (Rebouche. 1992).

      Symptoms of overt carnitine deficiency, such as cardiomyopathy,
      hepatomegaly, myopathy, recurrent episodes of hypoketotic

      hypoglycaemia, hyperammonaemia and failure to thrive have yet not been observed in the absence of CDSP (primary carnitine defiency), a pathology that has been mapped to human chromosome 5q and is characterized by excessive renal and intestinal wastage of carnitine.
      Attention Atkins dieters! In a German study (Liebhaber. 2006) the long-term effects of ketogenic diets on epileptic children, carnitine deficiency was detected in 57% of the patients who did not receive supplemental l-carnitine. There was a large interpersonal variety as far as the onset of carnitine deficiency was concerned. On average subjects developed carnitine defiencey after about 32 weeks, one subject was however carnitine deficient after only two days and one subject maintain sufficient carnitine levels for 248 weeks before carnitine deficiency was diagnosed. These observations stand in line with results of Stadler et al. (Stadler. 1999) who had previously established that a high fat intake increases carnitine excretion. Taken together, this data suggests that people who follow a high fat (not the high protein low carb diet everybody is on these days) would generally benefit from carnitine supplementation.

      How carnitine facilitates "fat-burning"

      Illustration 1: Carnitine is like the man who
      shovels the coal. It's just a small wheel in the
      mitochondrial fat burning machinery. Without
      lipolytic activity (= free fatty acids floating aroun) and
      a sufficient number of properly functioning
      mitochondria, increased carnitine levels
      won't translate into fat loss (picture in the back-
      ground from Ptak Science Books. 2009)
      The previous remarks on potentially low carnitine levels suggest the assumption that their diet puts this group of people at risk of high triglyceride levels, obesity and all other sorts of metabolic pathologies related to suboptimal fatty acid oxidation. There is however very little evidence that plasma l-carnitine is - under normal conditions - rate limiting in mitochondrial beta-oxidation. If you think of coal-fired steam engines of the Titanic, would the ship have been faster and thus be able to take the safer route and still win theBlue Riband of the Atlantic if there had been more workers to fire up the ovens? Probably not, because the engines were already running at full throttle... the same is true for your mitochondria, just because there is an overabundance of carrier molecules that does not mean that your "ovens",... pardon me..., your mitochondria will be able to oxidize more fat.

      The commonly touted "fat burning" effects of l-carnitine (and all other forms of carnitine) thusly belong to the realms of advertismental oversimplifications, or should I say frauds? Even taken poundwise carnitine by itself will neither empty, nor burn the contents of a single of your unaesthetic fat cells. On the other hand, a profoundly lowered carnitine levels as they were reported for elderly and obese patients by Noland et al. (Noland. 2009) could lead to or exasperate existing weight problems by compromising the transport of fatty acids from the cytosol, i.e. the intracellular fluid, into and back out of the mitochondria.

      Figure 1: Free and bound (esterified) carnitine content in mg/kg of different meat products
      (data adapted from Seline. 2007)

      In and out that's the way things have to go

      Image 2: Lipofuscin accumulation (fine
      brown / yellow granular pigment)
      in liver cells (photo by Nephron).
      The latter, the transport of partly oxidized, "damaged fats", so called lipofuscins out of the mitochondria, may in fact be about as important for your overall metabolic health as the well-known transportation of esterified fatty acids into the mitochondria. Mitochondrial malfunction and failure aside, a way more visible effect of lipofuscin accumulation are the brown stains on old peoples skin. Of greater significance are yet the negative effects of lipofuscin depositions in the brain, which have been shown to be ameliorated by acetyl-carnitine supplementation (Kohjimoto. 1988). And it is likely that many of the established benefits of (acetyl-)l-carnitine supplementation stem from the clearance not the the entrance of fatty acids into the cells.

      Inter-cellularly, carnitine also functions as a temporary buffer for the unused acetyl-CoA. The accumulation of respective acyl-carnitines within the mitochondrion, which goes hand in hand with a depletion of unbound l-carnitine that would faciliate the transport of fatty acids into the mitochondria, has been implicated as one of the confounding factors in the etiology of the metabolic syndrome. 

      Figure 2: Simplified illustration of the underlying mechanism of carnitine mediated fatty acid transport in and out of the mitochondrion (The AOCS Lipid Library)

      L-Carnitine as a selective glucocorticoid receptor modulator & useful tool in hyperthyroidism

      Beside its effects on mitochondrial health, l-carnitine also exhibits anti-inflammatory properties by directly interacting with glucocorticoid receptors on immune cells (Manoli. 2006). In experiments Manoli et al. conducted back in 2006, l-carnitine in a glucocorticoid-like fashion "suppressed the lipopolysaccharide-stimulated release of tumor necrosis factor α and interleukin-12 from primary human monocytes". Despite its ability to stimulate glucocorticoid receptors (GR), and to reduce binding of the cortisol analogue 3H]-dexamethasone to GRs, LCAR apparently lacks the deleterious side effects corticosteroids have on other organs/tissues in the human body.
      Moreover, a study by Benvenga et al. in which women received supraphysiological doses of the synthetic thyroid hormone levothyroxin (T4) to induce symptoms of hyperthyroidism confirmed previous observations that l-carnitine even at doses as low as 2-4g/day "antagonizes hyperthyroidism-related [...] symptoms and biochemical responses of thyroid hormone target tissues". Data from cell culture experiments suggest that it is the property to inhibit T3 and T4 entry into cell nuclei, which it at the heart of the anti-(hyper-)thyroid effect of l-carnitine, since l-carnitine supplementation does not substantially affect thyroid hormone levels or radioactive iodine uptake by the thyroid.
      Did you know? Both full-blown hyper- as well as hypothyroidism have been associated with muscular carnitine depletion (Sinclair. 2005), as a consequence of insufficient synthesis (hypo-) and increased usage (hyper-) of carnitine.
      In that, it is interesting to note that, vice-versa, thyroid hormone also influences the rate of carnitine synthesis (Galland. 2002), which, again, brings up the idea of tightly regulated, feedback-control mechanisms intended to keep the metabolic rate (including the mitochondrial beta oxidation of fatty acids) in a narrow physiological range, so that in people with high levels of thyroid hormones (not necessarily hyperthyroidism) and increased carnitine production, or in people with low levels of thyroid hormones (not necessarily hypothyroidism) and decreased carnitine production the respective ratios of carnitine / thyroid hormone could lead to similar cellular T3 / T4 uptake in the presence of fundamentally different serum levels of these hormones.

      Carnitine intake and clearance - does supplementation make sense at all?

      In healthy human beings, on the other hand, the main regulatory mechanisms take place in the kidney and a basic understanding of the relation of carnitine intake to urinary loss is of fundamental importance for anyone who does not want to feed his expensive carnitine supplements to sewer rats.
      Figure 2: Free and bound (esterified) carnitine content in mg/kg of different milk products
      (data adapted from Seline. 2007)

      In general, dietary l-carnitine has a bioavailability of 54%-84% and is thusly much better absorbed than supplemental carnitine in powdered or capped form, for which Rebouche et al. report a bioavailability of meager 14%-18% (Rebouche. 2006). Ideally, you would thus get about 1.28g of carnitine from 1kg of Kangaroo steak, which turns out to be by far the best source of dietary l-carnitine.
      Note: According to the data from Rebouche et al. you wanted to get the same 1.28g of carnitine from a supplement, instead of a 3-4 dilicious steaks, you would  have to consume 7-9g of supplemental carnitine in pill or capsules for the same amount of l-carnitine to hit your blood stream!
      A vegan, who abstains from eating meat, fish and dairy, on the other hand, would have to eat his share of 60kg of mushrooms to get an equal amount of 1.28g of carnitine. Although the act of eating 60kg of mushrooms would already border the supernatural, the of 320kg of carrots you would have to eat, alternatively, are merely hypothetical.
      Figure 3: Free and bound (esterified) carnitine content in mg/kg of different mushroom, vegetable and fruit products
      (data adapted from Seline. 2007)
      Unfortunately things do not turn out to be that easy as the above calculations would suggest, because, as we physicists use to say, bioavailibilty B(m, C, F) "is a function of body weight m, carnitine availability C and the form of carnitine F" and thus depends on how much you weight, how much carnitine you eat in a single sitting, how much carnitine is already floating around in your blood stream and what form of carnitine (free l-carnitine or esterified carnitines, such as acetyl-l-carnitine or (glycine-)propionyl-l-carnitine, you ingest. Add to that some interpersonal variability and plot the total ingested and absorbed amounts of l-carnitine from a previous study of Rebouche et al. (Rebouche. 1999) in a graph and you get something that looks like this:
      Figure 4: Total ingested (full bars) and absorbed (blue part of the bar) amount of dietary carnitine in mg/kg body weight
      (data adapted from Rebouche. 1999 & Rebouche. 2006)
      It's quite obvious that - despite all interpersonal variety among the 12 test subjects - the relative amount of carnitine that actually hits the circulation decreases with increasing amounts of carnitine in the diet.
      Did you know that multiple small doses of carnitine are way superior to a single large dose if your aim is to persistently increase serum carnitine levels? In contrast to Rebouche et al. (Rebouche. 2006), who achieved relatively stable carnitine levels >50% above baseline by having their subjects take their 2g of carnitine in three divided doses (at 8am, 12pm, and 6pm) trials using a single, large bolus of l-carnitine (orally and even intraveniously) did not produce sustainable elevations in plasma carnitine levels. Furthermore, the addition of carbohydrate (96g glucose in addition to 3g l-carnitine/day) and the concomitant insulin release have been found to decrease uriniry carnitine clearance, or, converesely, increase carnitine retention by ~40% (Stephens. 2007).
      The decreased absorption of dietary carnitine from the gut goes hand in hand with a decreased reabsorption of  carnitine in the kidneys. At low to normal serum carnitine levels the latter conserve 90-99% of the circulating carnitine. When carnitine levels increase, however, the clearance rate increases way beyond the 1-3 mL/min that would leave your body in the form of urinary losses under "normal" circumstances. Thusly, increased carnitine levels, as they are the result of an intravenous infusion of 0.5g of carnitine, return to baseline in less than 12h, with a rapid decline (-80%) in the first hour after administration. Whole body turnover, i.e. the "renewal" of creatine stores, in slow (muscle) and fast turnover (liver, kidney, and other tissues) stores is estimated to take about 38-119h (Rebouche. 2006).

      On the different forms of carnitine

      The absorption issue immediately reminds me of the bro-scientific mambo-jambo about the bioavailability of different forms of carnitine you can find wherever L-CAR, ALCAR, P-LCAR, LCLT & Co are sold.  In most cases the the individual bioavailibility appears to depend on the venue the respective vendor will get from the different forms of carnitine. In that, supplement manufacturers cash in on the lack of scientific studies comparing the absorption kinetics of the various commercially available forms of carnitine in a single objective model. In this context it is also noteworthy that both commercially available carnitine-esters, i.e. acetyl-l-carnitine (ALCAR) and (glycine-)propionyl-l-carnitine (PLCAR, (G)PLC), are no invention of the supplement industry, but naturally occurring forms of carnitine, the pharmacokinetics of which have been studies by Cao et al. after oral administration of 2g of l-carnitine to 12 healthy volunteers (Cao. 2009).
      Table 2: Pharmacokinetics of l-carnitine (L-CAR), acetyl-l-carnitine (ALCAR) and propionyl-l-carnitine (PLC) after oral administration of 2g of l-carnitine to 12 healthy volunteers (data adapted from Cao. 2009)
      As it was to be expected both, the maximal, as well as the absolute plasma concentration of l-carnitine of l-carnitine are greater than that of its esters. Yet despite the sudden spike in l-carnitine levels, the clearance rate for ALCAR and PLC were greater. Conversely, the carnitine-esters have a -40% (ALCAR) and -57% shorter half-life than the free form of carnitine. In that, the high 24-h urinary excretion of ALCAR, which equals about 2x the area under the curve suggest that both long PLC esters that have previously been broken down to shorter acetyl-esters, as well as "used" and thus esterified l-carnitine are excreted as acetyl-l-carnitine.

      The results of Cao et al. stand in line with findings of Eder et al. (Eder. 2005), who used a pig model ( which is pretty reliable when it comes to modeling the human digestive system) to estimate the bioavailability of various L-carnitine esters (acetyl-L-carnitine and lauroyl-L-carnitine) and salts (L-carnitine L-tartrate, L-carnitine fumarate, L-carnitine magnesium citrate) and found that
      AUC [aera under the curve] values, calculated for the time interval between 0 and 32 hours, for both free and total carnitine were similar for base of free L-carnitine and the three L-carnitine salts (L-carnitine L-tartrate, L-carnitine fumarate, L-carnitine magnesium citrate) while those of the two esters (acetyl-L-carnitine, lauroyl-L-carnitine) were lower.
      In that, it is of particular interest that l-carnitine-l-tartrate (LCLT), which is heavily promoted as the "best" carnitine supplement, did in fact "yield a higher plasma free carnitine AUC value for the time interval between 0 and 3.5 hours than [any] of the other compounds." The faster absorption of LCLT aside, the data of this (unfortunately) unique study would suggest that the fancy "L-carnitine salts have a similar bioavailability" as the way cheaper free form of carnitine (l-carnitine) and both appear to be better absorbed than any of the l-carnitine esters .
      Did you know? Gram per gram the tartrate salt of carnitine (LCLT) provides only 40% carnitine. If, for example, you wanted 2g of pure carnitine, you would have to take 5g of LCLT.

      Acetyl l-carnitine the one and only (?) brain booster

      In the case of ALCAR, for example, it is well established that its oral bioavailability is decreased due to increased hydrolysis. Oral bioavailability, on the other hand, is only one of the attributes the addition of the acetyl ester to the free form of carnitine changes. For example, it is often cited that ALCAR would be the only form of carnitine that is able to pass the blood-brain-barrier (BBB) in mammals. This statement is simply false! While it is true that the acetylated form of carnitine passes enters the brain more easily, i.e. it takes lower concentrations outside the barrier to achieve the same levels of carnitine within the brain, the difference in K(m) values, which area a measure of the concentration of substrate required to produce 50% of the maximal uptake, is only 5% (K(m)Alcar=31.3 vs. K(m)Carn=33.1, cf. Kido. 2008).

      Anyway, at least those of you who have some sort of cognitive / neurological problem, probably won't really care if ALCAR is actually the only, or maybe just the favorable form of carnitine to treat neurological diseases, as long as it will help mitigate your problems - and indeed, ALCAR appears to be a formidable "brain nutrient" which has been used succesfully in a variety of brain-related clinical conditions (Alternative Medicine Review. 2010):
      • Alzheimer's disease
      • Depression
      • Attention deficit / hyperactivity disorder (ADHD) and Fragile X Syndrome
      • Peripheral (diabetic, antiretroviral and chemotherapy-induced) neuropathy
      • Cerebral ischemia and reperfusion
      • and others
      The underlying mechanisms of action most likely are:
      • Increasing neural energy production
      • Protecting neurons from toxins
      • Maintaining neuron receptors
      • Increasing availability of the neurotransmitter acetylcholine
      • Decreasing accumulation "damaged fats" (lipofuscins) in brain tissue
      If administered orally, dosages usually range from 2.0-5.0g of ALCAR, mostly taken in divided doses. Reports on side effects are scarce, and generally limited to agitation, nausea and vomiting, so that ALCAR is generally considered safe, even wit long-term administration  (Spagnoli. 1991).
        (Glycine) propionyl l-carnitine the one and only (?) nitric oxide booster

        Image 3: Molecular structure
        of the bulky 3-Propanoyloxy-
        4-(trimethylazaniumyl)butanoate
        molecule which usually goes by
        the name Propionyl-L-carnitine, or
        its abbreviations PLC or PLCAR.

        GPLC, i.e. glycine propionyl l-carnitine certainly is the fancier of the two readily available carnitine esters. I mean, who cares about brain health, if GPLC promises huge pumps? The target group of the colorful ads in the bodybuilding magazines probably doesn't. Yet while studies from the Department of Health and Sport Sciences at the University of Memphis (Bloomer 2007; Bloomer. 2009), the Department of Exercise Science and Health Promotion at the Florida Atlantic University (Jacobs. 2009) support the claim that the combination of glycine and propionyl l-carnitine can increase nitric oxide production, decrease lactate accumulation and increase performance in high intensity exercises such as sprinting, the exact underlying mechanism remains questionable. Especially in view of the fact that Bloomer et al. (Bloomer 2007) administered glycine (1g) and the carnitine ester PLC (3g) in an unbound form, further investigation, whether co-administration of glycine and l-carnitine would not produce similar, yet more cost effective results, are warranted.
        Note: I assume, you have also heard of the paradoxical effect 4.5g of GPLC had on sprint performance in a 2010 follow-up study of Jacobs et al. (Jacobs. 2010). In contrast to what the scientists had expected based on previous results (Jacobs. 2009), long-term supplementation of a high dose (4.5g vs. 1.5g) of glycine propionyl l-carnitine did not only fail to improve sprint performance beyond what was achieved with 1/3 of the dosage, the huge pump, the athletes were complaining about, even compromised their performance. If you are an athlete, exceeding a dose 1-2g of GPLC per day would thus be more than a waste of money, it could actually cost you your victory. Remember: With most supplements taking more does not equal greater benefits!
        L-carnitine l-tartrate the one an only (?) testosterone booster

        Image 4: "Supported" studies make
        LCLT highly marketable (Lonza, Inc)
        Based on what you (should) have learned from the previous paragraphs, you should not be surprised to hear that l-carnitine l-tatrate at dises of 5g (equiv. to 2g of carnitine), just as his "brethren" l-carnitine, acetyl- and propionyl l-carnitine may be considered a scientifically proven ergogenic. Ester (ALCAR, PLC) or salt (L-carnitine L-tartrate, L-carnitine fumarate, L-carnitine magnesium citrate), after all, its all carnitine... that being said, I do not question any of the highly marketable results Kraemer, Volek and the other scientists from the Human Performance Laboratory, Department of Kinesiology at the University of Connecticut have produced. I am just asking myself, why none of these studies compared the expensive tartrate salt, L-Carnipure® tartrate, the scientists received along with research grants from Lonza, Inc, to the much cheaper non-patented free form of carnitine. You do not have an answer, do you?
        Did you ever think of the remote possibility that the "subtle yet significant" effects l-carnitine l-tartrate had on androgen receptor expression and testosterone in the heavily cited 2006 study by Kraemer et al. (Kraemer. 2006), may come from the tartrate and not the carnitine? Me neither, but the idea Owner (pseudonym) from the Mind&Muscle boards brought up, back in the days, is not totally devious. Join the smartest BB-community on the net and revive the discussion, if you will!

        Conclusion

        Do you remember? This write-up started out with the purported fat-burning effects of carnitine, established that carnitine is a necessary, but not sufficient co-factor in mitochondrial beta oxidation and clearance of fatty acid, elaborated on the metabolic and neurological health benefits of carnitine and concluded on the true ergogenic value of what turned out to be a whole group of quite expensive amino acids, the use of which you should take into consideration only after you got your (carnivorous) diet, your training regimen and your basic supplement protocol (protein, creatine + facultative EAA/BCAA) in check.

        Want B12, But Hate Meat? Drink Milk! SNAC-Fortified Cyanocobalamin 136% More Bioavailable Than Standard B12 - Still Less Effective Than B12 From Cow's Milk

        Figure 1: Milk still rules the
        world (of B12 supplements ;-)
        Vitamin B12 deficiency is probably more prevalent, than many people would have it. The water-soluble vitamin is most abundant in foods of animal origin and vegetarians (let alone vegans) are as much at risk of having inadequate B12 levels, as people with achlorhydria and, consequently, low intrinsic factor (an enzyme that requires an acidic environment to function and facilitate the utilization of B12 from foodstuff), or more generalized disturbances of the gastrointestinal structure due to aging (food-cobalamin malabsorption becomes increasingly prevalent after the age of 50), gastric resection, ileal resection, Crohn's disease, and bacterial overgrowth of the intestine. With vitamin B12 deficiency affecting cell division and precipitating to megaloblastic anaemia and neuropathy, close monitoring not only of vitamin B12 intake, but also of its proper utilization is of utmost importance for people belonging to one of the aforementioned groups.

        Scientists from Emisphere Technologies in Cedar Knolls, New Jersey, have now come up with a new cyanocobalamin/SNAC coformulation, in which the sodium caprylic acid salt, N-[8-(2-hydroxybenzoyl)amino]caprylate (SNAC), a proven drug delivery agent, shall facilitate a more pronounced and more reliable absorption of orally supplemented vitamin B12 (Castelli. 2011). The formula, which contained 5-mg cyanocobalamin and 100-mg SNAC was administered to 6 human subjects in the fasted state in the form of 1 tablet, which had to be taken with 50 mL of water. Blood samples were taken at staggered intervals with the last blood draw taking place 24h after the ingestion of the B12/SNAC coformulation.
        Figure 1: Time to and maximal serum concentration of B12 after oral administration or infusion of cyanocobalamine with and without SNAC; note: in order to compensate for the major differences between oral cyonocobalamine with and without SNAC a logarithmic scale was used (data adapted from Castelli. 2011).
        As expected the concomitant administration of sodium N-[8-(2-hydroxybenzoyl)amino]caprylate (SNAC) increased the meager biovalability of cyanocobalamine (which is absorbed really poorly, anyway) significantly:
        Absolute bioavailability of B12 with the SNAC formulation was calculated from non–baseline-adjusted data to be 5.09% and was significantly greater (P < 0.05) than the commercial formulation (2.16%).
        In view of the recently elucidated bioavailability of natural B12 from plain cow's milk (Matte. 2011), or should I say "liquid white gold", the 136% increase in bioavailability Christina Castelli and her coworkers achieved with their artificial combination of B12+SNAC appear quite ludicrous. 8%-10% that is the bioavailability et al. report in Jacques Matte and his colleagues from Canada report in their study on the bioavailability of vitamin B12 from cow's milk. Granted, this is a pig model, but other than rodents, which are usually used when it comes to studies, in which surgical interventions are necessary to elucidate the exact pharmacodynamics of a specific drug, pigs provide a very adequate model for the human gastrointestinal system, or as Miller and Ullrey already stated it in a 1987 paper on the "The Pig as an Animal Model For Human Nutrition" (Miller. 1987)
        [...]with the possible exception of nonhuman primates, it is apparent that the omnivorous pig is one of the best models for study of nutrition issues in the omnivorous human.
        This long established adequacy of the pig model of the human gastrointestinal tract has only recently been confirmed by Goulloteau et al. (Guilloteau. 2010). Matte et al.'s result that vitamin B12, which is naturally and abundantly present in cows’ milk, is more available at the intestinal level than the synthetic form - even if the latter is supplemented with SNAC - are thus very likely to apply to humans, as well.
        Figure 2: Pharmacokinetics of vitamin B12 from different sources measured in pigs with an ultrasonic flow probe around the portal vein and a catheter inside the portal vein; values expressed as differences vs. unsupplemented animals; both values for cyanocobalamine alone are effectively 0, i.e not different from unsupplemented pigs (data adapted from Matte. 2011).
        These results are also in accordance with retrospective studies in human subjects showing that vitamin B12 status is highly correlated with dairy product intake and studies on the absorption (absorption = entering the cells vs. bioavailability = becoming available in the blood stream) of vitamin B12 from dairy products in older men and women (>60y) by Robert M. Russel et al. (Russel. 2001), who report absorption of up to 65% for milk, which would be almost identical to the generally accepted absorption coefficient for meat products.
        Note: Using a pig model Matte et al. were able to actually measure the portal-drained viscera (PDV) flux of vitamin B12, which provides more reliable results than radio-labelling studies, as they were used in Russel et al. It is thus all the more intriguing that the PDV for the unsupplemented diet or cyanocobalamin supplements [...] were not different from 0", or in other words - providing pigs with cyanocobalamine, which is the form of vitamin B12 that is used in most common dietary supplements, had no effect  on serum B12 concentrations, at all.
        So, what does this tell you, after all? Well, let me phase it like that: If you have a Ferrari Enzo (milk and meat) waiting for you at the front door (in the fridge), wouldn't it be plain-out stupid to try to chip-tune (add SNAC) the family car (cyanocobalamine)? An the moral of the Story? Eat, don't supplement your vitamins!