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

Are You Overtraining? Two Scientifically Proven Methods to Test Yourself - Method 2: The ABEL Sport Test. Plus: 54 Item Questionnaire + 8 Additional Clues to Identify Overtraining

Theoretically it's already available for everyone. Costs are yet not the only thing you should keep in mind before you buy into Knight Scientific's overtraining analysis system
I've got plenty of positive, skeptic and euphoric feedback in response to last week's first installment of this two-part series on "proven" methods to test for overtraining syndrome (OTS). Before I tackle method number two in today's second installment, I do thus want to briefly remind you that the HRV method is not going to work, when you are chronically overtrained, already. It's also questionable, whether it will be able to identify parasympathetic overtraining syndrome (POTS). The latter is associated with marked decreases, not increases in the ratio of high / low frequency component (Portier. 2001). In people who train intense and with a high volume this effect can even mask the early increase in sympathetic tone and would thus render the HRV method basically useless.
You can learn more about overtraining at the SuppVersity

Heart Rate Variablity (HRV)

ABEL Sports Test + More

Overtraining & Undereating

Calculate your Energy Intake!

There Are No Magic Macros!

Reinvent Your Training!
More alternative tests / indicators of overtraining:
  • increased sensitivity of 5HT receptors ➯ early fatigue (Budgett. 2010)
  • free testosterone and testosterone/cortisol ratio higher than 30% (Cunha. 2006)
  • increasing serum urea and decreased ammonia at rest w/ identical protein intake, indicative of higher gluconeogenesis from protein (Urhausen. 2002)
  • low urinary catecholamines, esp. during night and w/ parasympathetic overtraining (Lehmann. 1992) and low ACTH and/or GH response to maximal exercise (~adrenal fatique; cf. Urhausen. 2002)
  • inverse ‘iceberg profile’ in Profile of Mood State (POMS) scale (Morgan. 1987) and messed up sleep (Urhausen. 1998)
  • decreased glucose & increased fat oxidation during high intensity exercise (Urhausen. 2002)
None of these markers can serve as a sole marker of overtraining. They can however support conclusions you make based on questionnaires, performance data and HRV analyses.
For method number two, so-called ABEL-Sport Test, these interferences between symathetic (~intensity, short(er) term) and parasympathetic (~volume, long(er) term) overtraining shouldn't be a problem. The test is easy, but it's not free. You will after all have to buy a portable luminometer to measure the optical properties of your blog. In other words, the ...
"[...] test does not measure a single biomarker of OTS [overtraining syndrome] but instead utilises hidden information acquired by circulating leucocytes as they patrol the body spotting pathogens, responding to markers of inflammation (cytokines and chemokines) and other changes in the blood that occur after strenuous exercise." (Knight. 2013)
As J Knight, M Wakeman, J Reeves, who have a vested interest in research into their own products, which have been used by elite and amateur athletes in many different fields and were "successfully used" by Skandia Team GB for two years prior to and in the final run up to the Olympics in Beijing in 2008, when Britain’s squad topped the medal table in the Olympic sailing competition, point out, the test is designed to elicit this "hidden information from the cells" (and I should add "hidden information that requires interpretation"!).

The technology relies on the bioluminescent protein Pholasin. It emits light, when it gets in contact with reactive oxygen specimen (ROS). To test the amount of leucocytes in a 5-20µL sample your blood you do thus just have to react it with Pholasin, activate the ROS response of the leukocytes and measure the light response (Roberts. 1985, 1987; Knight. 1999). By superimposing the results on a set of reference sample curve, Knight et al. are then (that's at least the claim) able to identify various responses during training, "indicating if the athlete is heading towards OTS and identifying infections, superimposed on training curves." (Knight. 2013)
With score way beyond 25 (15 is the first signal of OT), it's usually a good idea to take some time off and re-start your training at a saner intensity / volume - irrespective of ABEL or HRV results.
Stay skeptic! Despite the fact that a very similar technology has already been used in the analyses of the effects of foods and cosmetics, there is as of yet no independent comparison of the accuracy of the interpretation of the leukocyte ROS responsible on which Knight et al. base their assessments of the training status.

The word "interpretation" should have made you sit up: Even if the scientists are able to provide a cost-effective solution for individual hobby athletes, it is not guaranteed that the results are actually going to help you control your training load. Before the beneficial real-world effects Knight et al. observed in sailors, footballers and other athletes are confirmed in a well-controlled study by an independent team of researchers, I would thus suggest you rely on the traditional rules of thumb, your personal training experience, the HRV method and the overtraining questionnaire on the right of this "bottom line".
References:
  • Budgett, R., Hiscock, N., Arida, R., & Castell, L. M. (2010). The effects of the 5-HT2C agonist m-chlorophenylpiperazine on elite athletes with unexplained underperformance syndrome (overtraining). British journal of sports medicine, 44(4), 280-283. 
  • Cunha, G. D. S., Ribeiro, J. L., & Oliveira, A. R. D. (2006). Overtraining: theories, diagnosis and markers. Revista Brasileira de Medicina do Esporte, 12(5), 297-302.
  • Knight, J. (1999). Rapid, simple and sensitive blood biocompatibility tests with the light emitting protein Pholasin®. Proceedings of the TechMed/Medical Device Technology Conference. Advanstar Communications UK Ltd, Chester, 3-17.  
  • Knight, J., Wakeman, M., & Reeves, J. (2013). Abel-Sport™ Test For Assessing Over Training Syndrome And Detecting Infection. British journal of sports medicine, 47(17), e4-e4.
  • Lehmann, M., Gastmann, U., Petersen, K. G., Bachl, N., Seidel, A., Khalaf, A. N., ... & Keul, J. (1992). Training-overtraining: performance, and hormone levels, after a defined increase in training volume versus intensity in experienced middle-and long-distance runners. British journal of sports medicine, 26(4), 233-242.
  • Morgan, W. P., Brown, D. R., Raglin, J. S., O'connor, P. J., & Ellickson, K. A. (1987). Psychological monitoring of overtraining and staleness. British Journal of Sports Medicine, 21(3), 107-114.
  • Portier H, Louisy F, Laude D, Berthelot M, Guézennec CY (2001). Intense endurance training on heart rate and blood pressure variability in runners. Medicine and science in sports and exercise, 33(7), 1120-1125.
  • Roberts, P. A., Knight, J., & Campbell, A. K. (1985). Pholasin®: a new bioluminescent indicator for cell activation. Biochem. Soc. Trans. 1140, 1139-1140. 
  • Roberts, P. A., Knight, J., & Campbell, A. K. (1987). Pholasin®: a bioluminescent indicator for detecting activation of single neutrophils. Anal. Biochem. 160, 139-148.
  • Urhausen, A., Gabriel, H. H. W., Weiler, B., & Kindermann, W. (1998). Ergometric and psychological findings during overtraining: a long-term follow-up study in endurance athletes. International journal of sports medicine, 19(2), 114-120.
  • Urhausen, A., & Kindermann, W. (2002). Diagnosis of overtraining. Sports medicine, 32(2), 95-102.

Update on Antioxidants & Exercise - Neither Vitamin C Nor E Have ANY Effect on the Response to Intense Exercise.

Image 1: If you add some reactive oxygen species to this mitochondrium, this will trigger beneficial, (mito-)hormetic adaptations, that could be blunted by too many antioxidants.
As a diligent reader of the SuppVersity, you have probably been following my posts on antioxidants and their potentially negative effect on the adaptive (hormetic) response to the exercise induced formation of reactive oxygen specimen. Although, I still believe that the theory may have its merit - especially in metabolically deranged people, where the exercise induced ROS formation would initially have to overcome the low-grade chronic "background" stress - it appears that for healthy people, and "moderately trained young men" on an intense exercise protocol, in particular, the ingestion of reasonable amounts (<1g of vitamin C and <400IU of vitamin E) does not pose a problem. At least this is what the results of two relatively recent studies by scientists from Washington School of Medicine (Higashida. 2011) and researchers from universities in Denmark and France (Yfanti. 2011) would suggest.

The hormetic benefits of inflammation

According to the mitohormesis hypothesis, the beneficial effects of exercise on health, in general, and glucose metabolism, in particular, are at least partly mediated by an increase in reactive oxygen species, which triggers downstream "hormetic" adaptation processes which result in increased oxidative capacity and insulin sensitivity, as well as a reduction in total inflammation (cf. previous posts on the work of S. Schmeisser and M. Ristow from the Department of Human Nutrition at the University of Leipzig. If this theory held true, or let's be more specific, if this theory which is largely based on observations in metabollically derranged, i.e. obese and/or type II diabetic subjects, was applicable to healthy people and athletes, as well, this could mean that the multi-vitamin, the vitamin C pills, the alpha-tocopherol (vitamin E) and all the other little helpers you have been taking religiously to increase your exercise performance would actually have hampered, not promoted your muscle gains, fat loss and whatever else you may have had in mind, when you hit the gym, the road, the field, the court or the green ;-)
Figure 1: Neither the high-dose supplementation protocol in rodents (HED: Human Equivalent Dose for 80kg), nor the moderate dose protocol in humans did block any of the measured beneficial adaptations to exercise in the studies by Higashida (2011) and Yfanti. (2011), respectively.
Let me say this right away: As long as you have not been following the recommendations of dubious nutritional gurus and self-proclaimed fitness "experts" to take 10g+ of vitamin C and vitamin E supplements in the 3000IU+ range, the little vitamin pills and powders are probably not the reason that your biceps is not growing and your belly is just as fat as it was, when you began training.
Figure 2: Serum vitamin C and vitamin E levels (µmol/L) in 21 subjects before, at the beginning and after 12 weeks of 5x a week strenuous cycling exercise with and without supplemental vitamin C & E (adapted from Yfanti. 2011)
As you can see in figure 2, supplementation with 500mg of vitamin C and 400 IU of vitamin E (more on the protocols used in the studies in figure 1) before and during 12 weeks of strenuous bicycle exercise training with a frequency of 5 sessions per week (HIIT, HIT and stead state, cf. figure 6) did increase the concentration of antioxidants in the blood of the 21 healthy, physically active subjects (age 18-40years) of the Yfanti study, who had not participated in physical exercise more than twice a week before the experiment. Despite higher vitamin C and E plasma levels, and contrary to the research hypothesis of the scientists, who had expected that the anti-oxidant supplementation would blunt the adaptive response to the exercise protocol,
[...] the present study showed that combined supplementation with vitamins C and E before and during 12 weeks of supervised, strenuous bicycle exercise training of a frequency of 5 days/week had no effect on maximal oxygen consumption, maximal power output, workload at lactate threshold, glycogen content, and CS and β-HAD activity in muscle.
In other words, supplementing with "reasonable" amounts of vitamin C and vitamin E had absolutely NO EFFECT (!) on the exercise induced metabolic adaptations or performance increases - that does yet also imply that taking anti-oxidants is of little benefit as long as the minimal dietary requirements are met... and if you still insist to poor money down the literally rat hole, you may be interested to hear that (assuming that the results from Higashida's rat study translate to humans), even 10g of vitamin C and 3000IU of vitamin E a day probably would not really make a difference - as long as you train heavy enough.
Figure 4: Exercise induced changes in GLUT-4 expression (arbitrary units) and 2DG transport (µmol/ml/20min) in rats subjected to 8 weeks of high dose antioxidant supplementation and 6days/week swimming exercise in the last 3 weeks (data adapted fro Higashida. 2011)
Of particular interest in this context is the effect of "mega-dosing" anti-oxidants on the exercise induced increase in insulin sensitivity, which has been reported to be impaired in previous studies (Ristow. 2009). As the data in figure 3 shows, the increase in glucose transporter (GLUT4) expression is slightly greater in the non-supplemented rats, BUT neither this difference nor the difference in measured 2-Deoxy-D-glucose (2DG) transport reach statistical significance.
Figure 5: Exercise induced changes in MDA, SOD and PGC-1α in rats subjected to 8 weeks of high dose antioxidant supplementation and 6days/week swimming exercise in the last 3 weeks (data adapted fro Higashida. 2011)
Moreover, Higashida et al. found no statistically significant differences in the increases of malondialdehyde (MDA), superoxide dismutase (SOD1 & SOD2) or PGC-1α, a marker for the mitochondrial fatty acid oxidation, between the rats in the two groups (cf. figure 5).

Now, I a confused and don't know what to believe

So what does all that tell us? Well, we can now be relatively certain that supplementing with vitamin C and vitamin E is a waste of time and money for most of us. What we still cannot say for sure, though is why the Ristow study from 2009, which even made it to mainstream media news, found detrimental effects of supplementing with 1g of vitamin C and 400IU of vitamin E on the adaptive response to 4 weeks of 5days/week 20min steady state aerobic training + 45 minute circuit training + 20 min warm up + cool down (Ristow. 2009), while the Yfanti study, with 500mg of vitamin C and 400IU of vitamin E did not find any effects of supplementation...
Figure 6: Exercise protocol that was used in the Yfanti study.
...the only reasonable explanation I have is that the protocol in the Ristow study may not have been intense enough. Unfortunately there is no detailed information on what the subjects did in the course of the "circuit training", but if that was your usual sissy type walk from one machine to the next, chances are that the level of ROS that was induced by this "exercise" protocol was so low that it was completely blocked by the supplemental anti-oxidants. The "cycling protocol" in the Yfanti study, on the other hand, is pretty intense. If you look at the schedule in figure 6 you will concede that this is almost the way athletes (and maybe you) train.

All that being said, it appears that all is coming back to what I have been writing (and also saying on SHR) several times before: Controlled oxidation is likely to be beneficial. It's like the fire in the oven that keeps you warm - the one you carefully take care of, in order to prevent your whole house to catch fire... if you are a marathon runner, the latter can happen pretty quickly and you will need (tons of ;-) antioxidants and even that will probably not suffice. If you are the housewife on the treadmill, who walks at 5km/h for 20min two times a week, on the other hand, even a few milligrams of vitamin C and a few units of vitamin E will blunt the little oxidative "damage" that you do and your "efforts" to increase your insulin sensitivity or whatever your intentions may be will be sabotaged by your vitamin supplements.

Blocking Inflammation is Like Choking the Fire: Long Term Weight-, Visceral- and Android-Fat Gain in Human Study Emphasizes Essential Role of TNF-α in Metabolic Control

Can cooling down the inflammation make your belly grow!?
(Mito-)Hormesis and the important and beneficial role of "inflammatory" cytokines, molecules etc. are one of my favorite topics. It's simply intriguing that health, performance and longevity apparently depend on the presence of a healthy amount (whatever that may be) of inflammation. Even the provision of low dose arsenic does not - as you may expect - shorten, but prolong the lifespan of several common model organisms (Schmeisser. 2013).

Findings like these don't just conflict with common sense, they are also in opposition to the still prominent free radical theory of aging and it's central message: Oxidation and inflammation are bad for you! No matter what! 

Too little is just as bad as too much

Most of you will remember one of my previous articles on (mito-)hormesis - if if that's not the case, I'd recommend you start with the "Inflammation is a True Fat Burner" article (read it!), because it (a) contains a lot of links and references to previous articles and (b) discusses a topic that is directly related to the study at hand. Whence you've refreshed your memories, you should actually be able to tell that it may not be a total idiotic undertaking to  ...
"[...] evaluate the long-term consequences of TNFα-inhibitors on body composition, especially on the android/visceral region, in patients with RA [rheumatoid arthritis] or AS [ankylosing spondylitis]." (Toussirot. 2013)
Ok, rheumatoid arthritis and ankylosing spondylitis, that's not you. I understand that, but it's neither a rodent nor a nematode study and despite the fact that the patients in the study suffer from chronic inflammation the data Toussirot et al. collected can provide us with a glimpse on what could happen to any of us, if we subscribe to the "the-less-inflammation-the-better" hypothesis and consume high amounts of drugs or natural substances to suppress cachexin (aka TNF-alpha), of which the corresponding Wikepedia entry tells you that it is "an adipokine involved in systemic inflammation and is a member of a group of cytokines that stimulate the acute phase reaction." (wikipedia)
Figure 1: Markers of inflammation, health and joint function after 24 months treatment in rheumatoid arthritis (RA) and ankylosing spondylitis (AS) patients (Toussirot. 2013)
As you can see both, the provision of a TNF-alpha blocker lead to significant reductions in inflammation (CRP ↓) in rheumatoid arthritis (RA) and ankylosing spondylitis (AS) patients (Figure 1, ESR + CRP). The overall reduction in non-specific inflammation (assessed by ESR), on the other hand, reached significance only in the patients with "classic" rheumotoid arthritis - for our purpose, i.e. drawing inferences with respect to our situtation, this difference is not that relevant. What is relevant the total annihilation of C-reactive protein (CRP), an acute phase protein which is elevate immediately after a strenuous workout - just like IL-6, by the way (see "IL-6 True Muscle Builder or Just a Measure of Workout intensity?" | read more).

Weight gain right due to the absence of inflammation?!

Contrary to the previous post on IL-6 we are not dealing with muscle hypertrophy, here. The thing that's growing is the belly - the android fat mass, visceral fat and total BMI of the study participants in both groups and and additional significant increase in total (subcutaneous + visceral) fat mass in the ankylosing spondylitis patients (see Figure 2).
Figure 2: Changes in body composition after 24 months (Toussirot. 2013)
Said increase in total fat mass was significant (p=0.02) and came hand in hand with a gain in total body weight. It is thus not surprising that the scientists found ...
"[...] a significant increase inbody weight (+1.9 %; p=0.003), body mass index (+2.5 %; p=0.004), total fat mass (+11.1 %; p=0.007), and fat in the android region (+18.3 %; p=0.02) [...]" (Toussirot. 2013)
... when they calculated the mean changes in body composition for both groups. In this context, it's probably worth mentioning that the success of a few outliers who managed to keep the visceral fat off, masquerades the "substantial, albeit nonsignificant" (Toussirot. 2013) +24.3%  increases in visceral fat and thus diabetes and cardiovascular disease risk among the rest of the study participants.
Bottom line: While I do hope that you don't have to take a TNF-α inhibitor to make it through the day, the general messages of this paper are still relevant for all everyone - even, or maybe especially for the for the healthiest of us:
Human study: Antioxidant supps hamper "gains" in elderly individuals, as well. Get all the details → here!
  • The total annihilation of inflammation by the means of drugs or supplements (whenever I hear TNF-α, I personally think of curcumin) is not necessarily beneficial.
  • The negative side effects will hardly be felt right away. They will rather sneaking up on you after initial health improvements that, when your baseline inflammation went back into the "green zone".
In other words, the lower your baseline inflammation the lower your need for anti-inflammatory agents. This does not mean that you must not keep an eye on an adequate nutritional antioxidant intake, but it should remind you of something people tend to block out, when they go on their supplement shopping sprees:
It's often the pro-inflammatory effect that turns "foods" into "superfoods"!
Take everyone's favorite "health food" as an example: Broccoli and other Brassica vegetables perform their cancer killing magic by the means of sulforaphane, a metabolite of dietary glucosinolates that has been shown to depend on the generation of reactive oxygen species for cancer cell elimination(Singh. 2005).

References:
  • Schmeisser S, Schmeisser K, Weimer S, Groth M, Priebe S, Fazius E, Kuhlow D, Pick D, Einax JW, Guthke R, Platzer M, Zarse K, Ristow M. Mitochondrial hormesis links low-dose arsenite exposure to lifespan extension. Aging Cell. 2013 Jun;12(3):508-17.
  • Singh SV, Srivastava SK, Choi S, Lew KL, Antosiewicz J, Xiao D, Zeng Y, Watkins SC, Johnson CS, Trump DL, Lee YJ, Xiao H, Herman-Antosiewicz A. Sulforaphane-induced cell death in human prostate cancer cells is initiated by reactive oxygen species. J Biol Chem. 2005 May 20;280(20):19911-24.

480mg/day Polypodium Leucotomos Reduce Infection Rates in High Performance Athletes by 75%! Plus: Extract Protects Against UV Radiation, Cancer, Trauma & Could Be Ergogenic

Don't worry if you have not heard of Polypodium leucotomos before. After all, that's why you're here! To get your daily dose of SuppVersity news and learn, right?
It's starting to get cold and wet outside and aside from my always healthy self, everyone around is getting sick... sounds familiar? Or are you one of those ailing people who always wonder how the others beard the common cold and did not have a single flu in their whole life? I can assure you, it's not just zinc + vitamin C ;-)

That said, I honestly don't believe that the supplement today's news is about will get the job done, if you don't have your diet and workout regimen in check, but if it reduces the incidence of infections in high performance athletes by 75% it can hardly be useless when it comes to protecting yourself from the sniffers and nose blowers all around, can it?

Dear SuppVersity reader, meet Polypodium leucotomos your immune systems best friend!?

Assuming that I've now gotten your attention, let's get right to the facts. The said supplement is an extract from Polypodium leucotomos a fern that is native to the tropical and subtropical regions of the Americas and has a long history as a folk remedy in Honduras, where it is used for a wide variety of ailments. Interestingly, respective extracts have been sold under the label "anapsos" ever since the 1970s. Nevertheless, I am not sure if anybody who does not know the LEF product catalog by heart has ever heard of Polypodim (if you did, probably in relation to skin health) -- specifically not in the context of infectious diseases in high performance athletes, which was what Bartolomé Marí Solivellas and Teo Cabanes Martín were interested in, when they conducted their 3 months study on the effects 480 mg/day Polypodium leucotomos extract (Armaya fuerte; Centrum laboratories, Alicante, Spain / researchers report no conflict of interest) on the onset of infectious processes and relapses during an 8-month follow up from June 2010 to January 2011 (Solivellas. 2011).

The study participants were all athletes who took part in competitive activity, trained or competed for 20 hours per week and had and still were periodically monitored in a sports medicine clinics. Overall, a total of 116 athletes (58 men and 58 women, aged 18-30 years) were included. 63 of them in the Polypodium leucotomos extract-treated group (PL) and 53 in the control group (C), with 58 males and
58 females aged 18–30 years (subjects with autoimmune or chronic disease were excluded; 14 additional athletes were excluded during the trial, either because they left or were non compliant, i.e. didn't take their supps). Most of them were competitive volleyballers, football players, track & field athletes and cyclists.

The protocol: A 2x 240mg/day preload from June to August

The participants in the active arm of the trial had to consume their daily dose of 480mg in two 240 mg servings, one in the morning and one at night, while the the control group did not take Polypodium
leucotomos extract (no question: The fact that the study was not placebo controlled is a bummer!). This means that the acute supplementation did not coincide with the aforementioned period of sniffing and nose blowing, and any effect that would be seen over the whole 8-months follow-up must be due to permanent benefits in response to the supplementation in those first three months (it also reduces the influence of the placebo effect, after all we are quite forgetful and don't really think about the pills we popped in the summer, when we are getting sick in autumn).

The results: 75%! less infections in the treatment group

Table 1: Prevalence of infectious processes in the control group and study group (Solivellas. 2012)
Even at a very cursory glance at the data in table 1 you should notice the two most important figures: "28" and "7", as in 28 infections in the control (=unsupplemented group) and only 7 infections in the treatment (=480mg/day Polypodium leucotomos extract) group - that's a pretty impressive number. Since, both study arms had been of the same size (n = 50), after a couple of athletes had been excluded from the active arm due to non-compliance, this is a 75% reduced risk of catching any type of infection (see table 1 for detailed breakdown). According to the authors, of those, ...
"[...] the cases of pharyngoamygdalitis were the most noteworthy – 12 patients (24%) in the control group compared to three patients (6%) in the Polypodium leucotomos extract"-treated group." (Solivellas. 2011)
The incidence of infections was yet not the only thing that was reduced. What's probably about as important as the number / rate of infections are the facts that
  • the "symptomatic improvement was more favorable" (Solivellas. 2011) in patients from the study and 
  • the number of relapses, i.e. a 1/7 vs. 12/28 in the active and passive arm of the study, were significantly lower (-66%)
Since the SuppVersity user stats tell me that most of you are living in the Northern Hemisphere and that it stands out of question that all of you work out (right? ;-), these results alone would be reason enough to take a closer look at Polypodium leucotomos, Calaguala, Anapsos, Heliocare, Kalawalla, Polypodiaceae or whatever other funky name the herb may go, where you are currently living.

Anapsos can do more than render athletes 'infectious disease proof', much more!

This would not be the SuppVersity, though, if I would not tell you "the whole story" about what turns out to be quite an outstanding fern species with beneficial health effects that go well beyond giving your immune system a major boost. And though I have to admit that I did not go back into the 1970s, when the first commercially available extract that goes, as I've mentioned before, by the name Anapsos hit the market. Even the research that has been done in the 21st century only did suffice to compile a pretty impressive list of scientifically backed beneficial health effects, of which I have selected only those, I thought you may be interested in:
  • Protection against skin cancer  and related pathologies - PL protects the melanocytic nevi in your skin from forming sporadic melanoma in response to UV radioation, dark eyed patients with higher UVR sensibility (lower basal minimal erythematous dose) would benefit most (dosage 1080mg of PL; Aguilera. 2012). Similar results in rodents, where 300mg/kg of PL 5 days before UVR exposure "reduced the number of proliferating cells by 13%, increased the number of p53(+) cells by 63%, enhanced the antioxidant plasma capacity (ORAC) by 30% and reinforced the network of dermal elastic fibres" (Rodríguez-Yanes. 2012). Also helps against photo aging, polymorphic light eruption, idiopathic photodermatosis, UV-B induced immuno-suppression in the skin,
  • Prevention of hyperpigmentation (and psoriasis) - Hydroquinone has been a cornerstone for the treatment of hyperpigmentation; however, concerns regarding adverse effects have prompted a search for alternative agents, one that was suggeted only recently is Polypodium leucotomos (Konda. 2012). Ameliorative effects have also been observed in psoriasis patients, although it appears that more research would be necessary to make any recommendations (Middelkamp-Hup. 2004)
  • Remission of subacute cutaneous lupus erythematosus (SCLE) - SCLE is an uncommon autoimmune disease that results in substantial photosensitivity of affected patients. Eruptions often are triggered or exacerbated by UV light (UVL) exposure and a recent case in Cutis shows that while the disease was at best "moderately controlled" with hydroxychloroquine sulfate, "near total remission of disease" was achieved after the addition of oral Polypodium leucotomos supplement (Breithaupt. 2012).
  • Amelioration of atopic dermatitis, reduction of antihistamine requirements - Scientists have only shown recently in a phase IV randomized, double-blind, placebo-controlled, multicenter trial involving 105 patients aged between 2 and 17 years who were receiving topical corticosteroids to treat moderate atopic dermatitis that PL administered for 6 months led to a statistical significant reduction in oral histamine use of  4.5% (for those interested, patients received Anapsos 120 mg manufactured by Especialidades Farmacéuticas; Ramirez-Bosca. 2012).
  • Prevention of the shift in Th1/Th2 (immune characteristics) in response to trauma - In 2007 already researchers from the University of Zaragzoa found that PL blocked the postoperative (day 1) increases in IL-6 and IL-10 in rats undergoing fracture..On postoperative day 7, "rats undergoing fracture showed an increase of IL-6 levels", the latter was not observed in the PL supplemented rats who had increased levels of the "good" inflammatory cytokine IL-12 on postoperative day 7, instead (Navarro-Zorraquino. 2007)

"Hold on, but didn't you say on SHR and in a couple of blogposts that ROS are necessary?" True, ROS (radical oxygen species) are necessary, as they are a signalling molecule and 'toxic junk', both at a time. Whenever your body is however, figuratively speaking, unable to 'read the signals for the signals' -- which happens to be the case for unfortunate majority of the sedentary Western society -- you better cut back on the forest of signs than have them accumulate in the form of toxic metabolic waste and damage (oxidize) your tissue. Always keep in mind: Whenever we are talking about physiological processes it's all about balance and simply about good or bad and black and white.
The list above did already skip a couple of skin related benefits and still: As I mentioned before, there is probably lots more you could find once you start digging deeper and going further back in the archives. What the hitherto elucidated and probably also all future benefits do have in common is that they are in one way or another related to the potent antioxidant effects of certain not exactly specified molecules the (sub-)tropical fern apparently contains.

Whatever antioxidant (I rather suppose it's a synergistic cocktail) Polypodium leucotomos may contain, it must -- contrary to many other antioxidants which fall victim to their own kamikaze tactics (aka "free radical scavenging") often way before they make it to the target tissue-- actually get to where it is needed and can thus exert its potent antioxidant effects right in the skin, the wound, the broken bone,... and maybe the strained muscle!?

If the latter was the case, and the antioxidants in this peculiar American farn had similar effects in muscle tissue as they were observed by Navarro-Zorraqino et. al. in their rodent model -- namely the induction of an increase in IL-12 and a faster decrease in IL-10 expression -- the concerns about 'too much of a good thing' I addressed in the red box to the right, would not just have been unwarranted; in view of the established pro-anabolic effect of IL-10 (cf. Argilé. 2001) they would actually be absurd (just as the common understanding that all cytokines were "bad", by the way).

Bottom line: I guess, you will agree: This stuff is interesting. However, there have been plenty of "interesting" supplements in the past, which did not deliver. So, if you are merely interested in the last mentioned ergogenic effects, which could obviously be present, you better wait for a respective trial and the corresponding SuppVersity news, before you fill your supplement rack with tons of Polypodium leucotomos. If you are supplement fanatic, got some money to spare and are interested in the immune boosting or UV protective effects, you may want to give it a try.

References:
  • Aguilera P, Carrera C, Puig-Butille JA, Badenas C, Lecha M, González S, Malvehy J, Puig S. Benefits of oral Polypodium Leucotomos extract in MM high-risk patients. J Eur Acad Dermatol Venereol. 2012 Jul 31.
  • Argilés JM, Meijsing SH, Pallarés-Trujillo J, Guirao X, López-Soriano FJ. Cancer cachexia: a therapeutic approach. Med Res Rev. 2001 Jan;21(1):83-101.
  • Breithaupt AD, Jacob SE. Subacute cutaneous lupus erythematosus: a case report of Polypodium leucotomos as an adjuvant therapy. Cutis. 2012 Apr;89(4):183-4.
  • Konda S, Geria AN, Halder RM. New horizons in treating disorders of hyperpigmentation in skin of color. Semin Cutan Med Surg. 2012 Jun;31(2):133-9.
  • Middelkamp-Hup MA, Pathak MA, Parrado C, Garcia-Caballero T, Rius-Díaz F, Fitzpatrick TB, González S. Orally administered Polypodium leucotomos extract decreases psoralen-UVA-induced phototoxicity, pigmentation, and damage of human skin. J Am Acad Dermatol. 2004 Jan;50(1):41-9.
  • Navarro-Zorraquino M, García-Alvarez F, Martínez-Fernández AR, Pastor C, Larrad L, Salinas JC, Lozano R. Pharmacological immunomodulation of surgical trauma. J Invest Surg. 2007 Sep-Oct;20(5):283-9. 
  • Ramírez-Bosca A, Zapater P, Betlloch I, Albero F, Martínez A, Díaz-Alperi J, Horga JF; Grupo de Anapsos en Dermatitis Atópica y centros de realización del estudio. Polypodium leucotomos extract in atopic dermatitis: a randomized, double-blind, placebo-controlled, multicenter trial. Actas Dermosifiliogr. 2012 Sep;103(7):599-607. Epub 2012 May 3.
  • Rodríguez-Yanes E, Juarranz Á, Cuevas J, Gonzalez S, Mallol J. Polypodium leucotomos decreases UV-induced epidermal cell proliferation and enhances p53 expression and plasma antioxidant capacity in hairless mice. Exp Dermatol. 2012 Aug;21(8):638-40.
  • Solivellas B, Martin TC. Polypodium leucotomos Extract use to prevent and reduce the risk of infectious diseases in high performance athlete. Infection and Drug Resistance. 2012 Oct 15.

Inflammation Is a True Fat Burner: BSO-Induced Glutathione Depletion Wards off Fat Gains on Hypercaloric Diet

Image 1: This little bugger obviously has too little inflammation going on ;-)
Are you "on fire"? Inflammation has been implicated as the root cause of almost all modern disease: obesity, diabetes, heart disease, cancer, you name it. Soothing the flames via natural and supplemental anti-oxidants has thusly been proposed and marketed as a solution for many of the aforementioned health problems.

Yet, despite tons of vitamins, anti-oxidants and all the other "healthy" stuff we are taking and consuming on a daily basis, the number of morbidly obese people, diabetics and heart attack patients appears to be ever-increasing... how can that be?

A possible answer to that question comes from scientists from the Saha Cardiovascular Research Center at the University of Kentucky College of Medicine in Lexington, Kentucky, US (Findeisen. 2011) - we simply got everything wrong! The observation that insulin resistance and beta-cell dysfunction usually occur in the presence of large amounts so-called reactive oxygen specimen (ROS) lead scientists to propose that there was a causative relationship between these two events, of which the data only shows that they are corollary.
Image 2: Whenever there is a fire, the firefighters are not far away, but does this correlation indicate that all firefighters are firebugs? (img texarkanagazette.com)
Despite the fact that the distinction between correlation and causation should be obvious, correlations have a long history of being mistaken as causative factors in the history of science. The corollary elevation of total cholesterol in heart disease patients, for example, is the reason that millions of well-educated people world-wide still believe that cholesterol would cause heart disease - an erroneous conclusion for which my friend, Carl Lenore, has coined a very fitting analogy (actually the analogy spans all those "corollary causation"): When there is a fire in down-town New York, it won't take long until the place is packed with firefighters, nevertheless, no sane observer would get the idea that the corollary appearance of firefighters on the scene would be the reason for the fire.
Here, at the SuppVersity, you have already learned that a group of researchers from Germany has invested a lot of work into research on the beneficial effects of inflammation (Ristow. 2010). Now, with the data from Hannes M. Findeisen (who unquestionably is a German or has German ancestors, as well ;-) et al., evidence begins to accumulate that the role of reactive oxygen specimen in glucose homeostasis could in fact be a beneficial and not a detrimental one. After all, Findeisen and his colleagues were able to show that the pharmacological depletion of glutathion, our natural broadband fire-extinguisher, made mice resistant to diet-induced obesity, increased energy expenditure and enhanced insulin sensitivity.

If you have listened to all the installments of the Amino Acids for Super Humans Series on Carl Lenore's Super Human Radio, you will already have heard me mention that a methionine/cysteine-free diet has been shown years ago to have profound fat-burning, or I should say, weight-reducing effects on mice - no wonder, with methionine and cysteine being essential substrates for mammalian gluthation production, a lack of these dietary sulfur-amino acids induced a similar glutathion depletion as the addition of 30mmol/l BSO to the drinking water of the mice in the Findeisen study (for more on the glutathion depleting effects of BSO, cf. Skapek. 1998; Mira. 2002; Cattan. 2008)

Even before the works of Ristow et al. and now Findeisen et al., it has been well-established that reactive oxygen specimen, the purported villains of the 21st century, enhance cellular signaling (Veal. 2007). About a year ago, Chang and Chang  reported that H2O2, in particular, is a potent activator of protein signaling pathways, including insulin signaling and can even mimic insulin's effects by the inhibition of oxidation-sensitive protein tyrosinases (Chang. 2010). With glutathion being the primary H2O2 scavenger in mammalian tissue, it is thus not surprising that the BSO treated and thusly glutathion depleted mice in the Findeisen study displayed a more favorable response to a glucose tolerance test after 6 weeks of treatment with BSO and a 45%(high)-fat diet (cf. figure 1).
Figure 1: Glucose levels in mg/dl after oral glucose tolerance test in mice after 6 weeks on a high-fat diet (47% fat) with or without 30mmol/L BSO in their drinking water (data adapted from Findeisen. 2011)
These results are surprising, also because the daily food and water intake of the mice was identical. The latter cannot be said of their calorie-expenditure, daily activity level (cf. figure 2) and the activity of the "fat burning" uncoupling protein UCP2 (+100%), the elevation of which increases thermogenesis and energy expenditure.
Figure 2: Relative changes in energy expenditure and daily activity due to BSO induced glutathion depletion in mice on a high fat diet compared to non-treated control (data calculated based on Findeisen. 2011)
Now, most importantly for you, as a physical culturist, may be that glutathione depleted mice did not simply fail to thrive or shrivel away - they were, as Findeisen points out...
completely protected from diet-induced obesity, despite similar food intake and water consumption. Analysis of body composition in mice fed a HFD diet confirmed significantly decreased fat mass in BSO-treated mice without significant differences in lean body mass, indicating that the difference in body weight was due to reduced fat mass in BSO-treated mice.
If you don't believe the words, I suggest you take a look at the data in figure 3 - while the control mice had a body fat percentage of whopping 32% the mice on BSO with their ~16% body fat were well within the normal range for lab-mice.
Figure 3: Fat and lean mass (in g) of mice from the control group and the glutathion-depleted group after 6 weeks on a hypercaloric high fat diet (data adapted from Findeisen. 2011)
Even the researchers appeared to be surprised by the profound effects glutathion depletion had on the rodent's ability to accumulate body fat. As far as the underlying reasons are concerned, they speculate that it was ...
[...] possible  that  the  observed  increase in the expression of UCP-2 and UCP-3 in BSO-treated mice induced  mitochondrial  uncoupling [...] Alternatively, the enhanced energy expenditure in BSO-treated mice  might  be  the  result  of  increased  locomotor  activity.  In skeletal muscle, ROS are necessary for optimal contractile function, force production, and exercise-induced adaptations. Furthermore, particularly H2O2 is increasingly recognized as
a potent neuromodulator. It is therefore conceivable, that glutathione depletion may lead to activity-stimulating changes in the redox environment of muscle or brain.
Now, it is however questionable in how far any of these three phenomena would occur in human beings, as well. While the lack of large amounts of UCP-sensitive brown adipose tissue would decrease the UCP induced thermogenic response to glutathione depletion, locomotor activity is something that appears to be completely blocked in the modern couch potato, anyways. It would thus warrant further research (and studies into the general safety of this approach) before it would appear warranted that you take a spoon of BSO with every meal to counter the negative effects of your last binge ;-)

Mitohormesis - Suffocated Mitochondria Live Longer: Scientists Probe Longevity-Effect of Low-Level Stressors.

Image 1: Walter Breuning died in April 2011at the biblical age of 114! And you bet that a man who has seen two world wars has had his share of mitohormetic stress in his life.
As a diligent reader of the SuppVersity you will be familiar with the work of S. Schmeisser and M. Ristow from the Department of Human Nutrition at the University of Jena, here in good old Germany (where not everyone eats Sauerkraut und Weisswurst, even now that the Oktoberfest is in full swing). In previous publications, the scientists have (at least in my mind conclusively) argued against the publicly accepted free-radical hypothesis of aging, which implies that the presence of free radicals is one of the fundamental mechanisms of aging. Now, a few month after the publication of their last review back in May 2011, they are presenting the latest results from their own lab in a paper that is going to be published in the October issue of Hormone and Metabolic Research (Schmeisser. 2011).

Want to live longer? Then you better put another log on the fire

Schmeisser, Zarse, and Ristow used lonidamine (LND), a indazole-3-carboxylic acid derivate, to inhibit cellular respiration in the infamous round-worm (Caenorhabditis elegans) model for aging processes (for a review on the pharmacology, biochemistry and toxicology of lonidamine see Silvestrini. 2008). In essence, they thusly made it more difficult for the cells to "breath", which as you may probably imagine, is a major stressor, which will inevitably increase the formation of purportedly dangerous free radicals (ROS) and should thus increase the aging process, if... yes, if there was any truth to the nonsensical idea that you better sit there, don't eat, don't drink, don't move - in essence - don't live to avoid any potential ROS formation, if you want to extend your lifespan... I guess, you as a self-educated SuppVersity reader won't be surprised that the roundworms did not only survive the "torture" (of life), but - after an initial mitohormetic response, i.e. an adaptational response to the the scientists' effort to suffocate their mitochondria (the initial reduction in oxygen consumption was -37 %!) - thrived on the purportedly life-shortening inhibitor of mitochondrial respiration!
Figure 1: Lifespan of C. elegans treated with 5µM lonidamine, n-acetyl-L-cysteine (NAC) or both (data calculated based on (Schmeisser. 2011)
As you can see in figure 1, the "pro-oxidant" treatment with lonidamine, of which Schmeisser's, Zarse's and Ristow's data shows that it increased respiration and thus mitochodrial ROS formation, increased both median as well as maximal life-expectancy of the nematodes (roundworms) by ~8% - an increase with statistical significance, as the p-value of p<0.001 (= chances that the increased lifespan observed in the study is just coincidence are <0.1%). The latter cannot be said of either the slight increase in maximal lifespan nor the slight decrease in median lifespan in the group of nematodes that was treaded with n-acetyl-L-cysteine (p=0.17; non-significant) or a combination of the anti-oxidant sulfur-amino acid and lonidamine (p=0.95; absolutely non-significant; cf. figure 1).

These observations may be considered further experimental "evidence" for Schmeisser's and Ristow's previously formulated mitohormesis theory ("evidence" in the sense that the results do not falsify their hypothesis - they do yet falsify the ROS hypothesis of aging). A theory that refutes the idea that the aging process is driven by reactive oxygen species and emphasizes (mitochondrial) adaptation processes to (external) stressors that strengthen, not weaken the organism in the long-run - or as the scientists phrase it:
[...] the induction of endogenous defense mechanisms as a secondary response to a stressful condition is assumed to contribute to longevity [...] a lifetime low dose oxidative stress with a subsequent secondary induction of defense mechanisms could delay the aging process
It is thus the interplay of manageable stress and metabolic adaptation which extends life and not an overall reduction of reactive oxygen species, as the vendors of some "super-potent" anti-oxidants would have you believe. What is still missing though, is a tool which would help us to identify the critical point, where the endogenous adaptation processes cannot keep pace with ever-increasing (mainly) exogenous stressors... in case any scientist finds an answer, I guess you will soon be able to download the respective app on your shiny new iPhone - I just hope that this app will account for the significantly (!) decreased glucose metabolism the iPhone itself will induce in the temporoparietal junction and anterior temporal lobe of the right hemisphere of your brain within less than 30 minutes (Kwon. 2011), as well.

N-Acetylcysteine Hampers Adaptive Response To Exercise. 50% Reduction in JNK Phosphorylation Entail Reduced Expression of Genes Involved in Cell Proliferation, Apoptosis, Inflammation and DNA Repair.

Image 1: The "beneficial" bad guys under
the microscope: Reactive oxygen species
(green-yellow) within endosomes
of human smooth muscle cells
(Circulation Research. 09/2007)
If you listened to my dissertation on the sulfur-amino acids on Carl Lenore's Super Human Radio (cf. shownotes), you will be aware that I was and still am quite skeptical as far as the touted beneficial effects of n-acetylcysteine (NAC) supplementation on exercise performance are concerned. A very recent study that has been conducted by a team of Australian scientists from Deakin and Victoria University in Melbourne appears to warrant this skepticism.

In a 2006 study (McKennah. 2006) the same group had found that N-acetylcysteine can attenuate the decline in muscle Na+,K+-pump activity and thus delay fatigue during prolonged exercise in humans. But even then, the data on real-world and long-term benefits of n-acetylcysteine supplementation was conflictive and the authors' conclusion that NAC exerted it's effect mainly via the suppression of ROS (reactive oxygen species) generation, prompted questions on whether the suppression of exercise-induced ROS-generation would have any downstream effects on the hormetic (=positive adaptation / strengthening reaction after an insult) response scientists suspect to be the major driving force of the beneficial effects of exercise on perfmormance, as well as general and metablic health.
Illustration 1: Hypothetical dose-response curve of the hormetic response to reactive oxygen species inducing exercise (x-axis, arbitrary units); positive units on the y-axis indicate beneficial, negative units negative effects.
Indeed, a 2009 study by a group of scientists from the University of Jena (Ristow. 2009) was able to show that administration of an anti-oxidant supplement that contained 1,000mg vitamin C and 400 IU of vitamin E prevented the health-promoting effects of exercise on in trained, as well as untrained subjects.
Consistent with the concept of mitohormesis, exercise-induced oxidative stress ameliorates insulin resistance and causes an adaptive response promoting endogenous antioxidant defense capacity. Supplementation with antioxidants may preclude these health-promoting effects of exercise in humans.
In view of the latter results, the major news here is neither that an N-acetylcysteine infusion before a 45min. cylcing trial at 71% of the individual VO2max that was followed by a bout of all out sprinting to fatique partially blocked the release of reactive oxygen species in the eight male subjects (age, 27.1±5.6 years; height, 180.3±5.4 cm; body mass, 76.7±10.9 kg), nor the related prolongation in time to fatigue the scientists observed. What is new, however, is the data Petersen et al. obtained from sophisticated analyses of the activation of signaling pathways and genes, which have been implicated in exercise adaptation in human skeletal muscle (Petersen. 2011).
[...] NAC infusion blocked the exercise-induced increase in JNK phosphorylation, but not ERK1/2, or p38 MAPK.  Nuclear factor-κB p65 phosphorylation was unaffected by exercise; however it was reduced in NAC at fatigue by 14% (P&amp;amp;amp;amp;lt;0.05) compared to pre-infusion.
This is an important finding, in so far, as it goes to show that the induction of JNK phosphorylation by exercise is ROS-dependent. Now, a -49% reduction in phosphorylation of JNK, a protein that has been shown to be activated as a consequence of strenuous aerobic and/or strength training, would not be a bad thing, if its activation would not play a significant role in the regulation of genes "involved in cell proliferation, apoptosis, inflammation and DNA repair (Karin and Gallagher. 2005) and thus [...] exercise adaptation."

It is difficult to say how the results of this short term study with intravenous n-acetylcysteine will translate into athletic practice. The (over-)consumption of large doses >>1-2g of oral NAC to facilitate exercise recovery, as it has been implicated by some of the advocates of the acetylated version of the sulfur-amino-acid cysteine, by all means, seems to be counter-indicated, as another dreaded foe, exercise-induced reactive oxygen specimen (ROS), eventually exhibits its complementary, hormetic face. The real challenge is thus not extinguish the fire, but to keep it burning at an optimal rate, or, metaphorically speaking, to generate and/or suppress ROS in a way which facilitates a precision landing on the maximum of the graph in illustration 1 ;-)

Double Your Workout Volume With 3,4-DA - Chlorogenic Acid Metabolite, Dihydroxycinnamic Acid, Makes Rats Run 60% Longer, 30% Faster 90% Further!

Image 1 (sodahead.com): Another reason to supersize your cup of coffee; no not the girl, or ... well ;-)
Those of you who can no longer be without their well-deserved daily dose of SuppVersity news will probably remember the amazing weight loss effects an extract from green coffee beans yielded in a 2012 trial by Vinson et al. (cf. "GCB Another Fatloss Acronym: Green Coffee Bean Extract Helps Pre-Obese Men and Women Shed 16lbs in 22 weeks"; Vinson. 2012) and while I am still not convinced that you would see similar results in non-obese individuals, another recently published study by Novaes et al. does suggest that even those of you who don't think that they have another lbs of body fat to spare, could largely benefit not just from the caffeine, but also from the 0.5-1.0g of chlorogenic acid and the subsequent conversion of the latter into 250-500mg of 3,4-Dihydroxycinnamic acid (3,4-DA) even 400ml of regular coffee do contain (Chung. 2004; Novaes. 2012).

3,4-DA is like legal gear from the brown brew

Compared to placebo and vitamin C (25mg/kg), the hydrolyzed chlorogenic acid molecule, of which the 8-week-old male Wistar rats in the Noves study received either 5mg or 25mg per kg body weight (HED for 80kg human being: 65mg or 324mg) had almost incredibly potent "ergogenic" effects:
Figure 1: Time to fatigue (TTF), speed, workload and total distance covered (secondary axis) during exhaustive treadmill running after oral supplementation with placebo (control), vitamin C or 4,5 DA at doses of 5mg/kg and 25m/kg (based on Novaes. 2012)
As you can see in figure 1 the rodents in the high dose group ran 60% longer, 30% faster, 90% further and performed overall twice as much work (42 vs. 21 kg*m) than the rodents who had received the human equivalent of ~325mg vitamin C before a forced running test on a motor-driven treadmill.

Less ROS = Increased efficacy?!

Interestingly, the lactate levels of the 3,4-DA rodents were significantly lower and the remaining liver glycogen levels were significantly higher than in the placebo and vitamin C group (see figure 2).
Figure 2: Serum triglyceride (group effects non-significant) and lactate levels, hepatic glycogen content and protein arbonyl and malondialdehyde levels after the exercise (based on Novaes. 2012)
As Novaes et al. point out this suggests that the effect is partly mediated by a higher metabolic efficiency. The latter is probably a direct result of the profound reduction in reactive oxygen specimen, which have been associated with impairments of the cellular metabolism and subsequently reduced aerobic energy production (Atalay. 2002) - a hypothesis that would be supported by the reduced levels of protein carbonyl and malondialdehyde in the liver of the 3,4-DA treated rodents.

But don't we need ROS?

Image 2: Don't worry those love handles will go away - rather with the antioxidant + caffeine power of coffee than without it!
These observations are also quite revealing as the offer an alternative explanation for the previously mentioned possibly negative effects of antioxidants on the exercise-induced improvements in glucose metabolism (cf. "Update on Antioxidants & Exercise - Neither Vitamin C Nor E Have ANY Effect on the Response to Intense Exercise"): If high doses of other anti-oxidants have the same beneficial effects on metabolic efficacy, it stands to reason that even weaker antioxidants than 3,4-DA would spare liver (and muscle) glycogen and thus reduce the exercise-induced expression of AMPK of which you may remember from posts like "AMPK II/III: Leucine, HMB and a Glimpse on Other AMPK Modulators" that it is expressed in response to intracellular glucose, or more specifically ATP depletion, and the subsequent increase in glucose (re-uptake).

A huge cup of coffee before your workout will therefore neither hamper the weight loss, nor the health effects of your workout, as long as you do actually make use of its ergogenic effect and train 60% longer, 30% faster, 90% further and perform overall twice as much work... just kiddin', if you train regularly you should be more concerned about keeping the amount of inflammation at bay - some is probably necessary, too much counter-productive, but that would the topic of another SuppVersity post. I for one am now going to get myself a nice cup of coffee...yummy!

Suggested reads on coffee:


References:
  1. Atalay M, Laaksonen DE. Diabetes, oxidative stress and training. Journal of Sports Science and Medicine 2002 Jan; 1 - 14.
  2. Chung TW, Moon SK, Chang YC, Ko JH, Lee YC, Cho G, Kim SH, Kim JG, Kim CH. Novel and therapeutic effect of caffeic acid and caffeic acid phenyl ester on hepatocarcinoma cells: complete regression of hepatoma growth and metastasis by dual mechanism. FASEB J. 2004 Nov;18(14):1670-81.
  3. Novaes RD, Gonçalves RV, Peluzio Mdo C, Natali AJ, Maldonado IR. 3,4-dihydroxycinnamic Acid attenuates the fatigue and improves exercise tolerance in rats. Biosci Biotechnol Biochem. 2012 May 23;76(5):1025-7.
  4. Vinson JA, Burnham BR, Nagendran MV. Randomized, double-blind, placebo-controlled, linear dose, crossover study to evaluate the efficacy and safety of a green coffee bean extract in overweight subjects. Diabetes Metab Syndr Obes. 2012;5:21-7. Epub 2012 Jan 18.

Nutrigenomics - "Let Food be Thy Medicine and Medicine Be Thy Food." An Ancient Truth in Light of Fancy DNA Analyses

Researchers working in the field of nutrigenomics prioritize berries over pills and individuality over "one-size-fits-it-all approaches" - can they also tell us how to "eat away cancer"?
"Live longer, live stronger"... rings any bells? Anyone? Of course. That's the motto of Super Human Radio. So anyone, who has been listening to the Science Roundup over the past couple of weeks will  have heard it at least once. Now, while the "stronger" part of Carl Lanore's slogan is still largerly under-researched if you asked me, the nutritional angle, which does not appear in the slogan, but is still a major theme of the show is really taking off, these days. Nutrigenomics, i.e. the science of (a) how what we eat determines how our genes functions - keyword: epigenetics and (b) how our very individual genes determine how we're supposed to eat, is really talking off these days. Reason enough for me to invite you to take a peak at what we already know in terms of the modern version of the ancient

 "Let food be thy medicine and medicine be thy food."

One of the primary objectives researchers in the field have subscribed to is the battle against cancer. No other disease appears to be more suited to the modulating effect of the chemical compounds in foods, which is - and that's something you've heard on the Science Round Up several times, as well, capable of both preventing and inducing the instability of the DNA synthesis and gene expression that's finally causing our cells to play havoc.

Table 1: Epigenetic roles of nutrition in physiologic and pathologic processes (from Nepomuceno, originally based on Choi. 2010)
As Júlio César Nepomuceno writes in a recent paper which actually re-instigated my interest in the whole matter,
"[...t]he nutrients are able to affect the genome and its expression through the synthesis of nucleotides, prevention and repair of DNA damage, or through epigenetic mechanisms including methylation of histones, proteins responsible for chromatin structure that play an important role in regulating gene expression." (Nepomuceno. 2013)
Now, while all the cells in our bodies share an identical genome, there are many "epige‐ nomes", which are the unique  sets  of  epigenetic  instructions  for  establishing  and maintaining  lineagespecific expression profiles.

And it is at this cross-roads between the general and the specific where DNA methylation and histone acetylation which can be brought about by the foods we eat an the supplements we take will have more powerful effects than the latest blockbuster drug from the laboratories of Phizer, Merck, Bayer, and co. (Fuji. 2010).

The methylation / acetylation cycle: The genomic switchboard of your cells

Against that background, you as an avid listener and reader of SHR and the daily news and articles on the SuppVersity won't be surprised that nutrients that are part of the so-called "methylation cycle" are considered among the most important agents in nutrigenomics. It's their presence, adequate enzymatic conversion and use that ensures the integrity of the genome of each and every cell in your body and once the tightly controlled and constantly operating machinery is broken, cancer and - as more and more scientists believe "premature" aging and other diseases of epigenetic origin can ensue.

One (not Two!) Kiwi(s) A Day Keeps the Doctor Away. (learn more)
Despite the fact that the word methylation is tightly linked to all these pathologies, it's actually a completely unbiased process.

And while this should be self-evident, most of us need tabular overviews like the one to in table 1 to remind ourselves of the critical and for most of us highly beneficial effect folate, for example, had on our embryonic development, or - just another example - the epigenetic roots of the beneficial effects compounds such as curcumin, resveratrol or choline will have on obesity, inflammation or neurocognition.

In fact, the integrity of our DNA is under constant assault. Simple "mechanistic" errors during the replication process, electromagnetic radiation (from X-Rays to very low frequency EM), alkylating agents, spontanous mutations and the often-heard of reactive oxygen species threaten the integrity of each and every cell in our body leading (in the best case) to cell cycle arrest and apoptosis, in the worst case to mutations, cancer and genetic diseases. Moreover,
"[...c]urrent cancer models comprise those that are inherited through the germline and represent only  ∼5% of total cases of human cancers. These tumors originate because of mutational events. The remaining ∼95% originate as sporadic events and evolve as a result of exposure to the environment,  which  includes  exposure  to  both  environmental  contaminants  and  dietary agents. The multistage model of carcinogenesis identifies various phases, initiation, promotion, and progression, appears to be influenced by tissue microenvironment and organization." (Nepomuceno. 2013)
Yet, as frightening as it may see, these threats and the effects specific nutrients will have on their ability to harm us may  be our best chance to avoid cancer, premature aging. In fact, scientists argue that the age-increased susceptibility to cancer may actually be the results of an accumualtion of epigenetic changes, many of which could be ameliorated, if not prevented by dietary nutrients that will affect the profile of transcripts, which may - and this is where things get complicated - yet be modulated by inter-individual differences in our genetic make-up (Miller. ) - so-called polymorphisms, such as the "cancer gene" Carl and I have been talking about in the last installment of the Science Round Up in the context of Angelina Jolie's double-mastectomy (see table 2 for a selection of these polymorphism).
Table 2:Polymorphic genes, dietary components and cancer: possible candidates (Nepomuceno. 2013)
Now while scientists have already been successful (or they believe they were) in identifying dietary patterns that are associated with an increased and decreased risk of certain cancers. You have to keep in mind that these associations, as they were proposed by the experts from the World Cancer Research Fund (WCRF) and the American Institute for Cancer Research (AICR) are largely based on epedimiological data and will thus neither include the modulating effects of the said polymorphisms nor have the status of undebatable facts.

"Red meat will cause cancer!"

One of my favorite examples is the association between red meat intake and the development of cancer, of which th AICR researchers believe that there was a 15% to 20% increased risk of cancers of the colon and/or rectum per 100 grams of red meat or 50 g of processed meat consumed per day (is that true?).

Suggested Read: "Meat-Ology: A Brief Glance at the Latest Data on The Link Between Red Meat, Cooking Techniques & Prostate Cancer" - How bad is it?
If you take a close enough look at the respective papers and don't rely on the mainstream media coverage, exclusively, the American Cancer Society openly admits that
  • the mutagens and carcinogens (heterocyclic amines and polycyclic aromatic hydrocarbons) in meat are produced by cooking meat at high temperatures and/or by charcoal grilling and that 
  • the nitrates/nitrites and salt used to process meat contribute to the formation of nitrosamines, which are known mutagens and carcinogens in animals
and not "meat per se" are the true - or we should say "most likely" - mechanistic factors involved, here.

In the end, a similar "most likely" should also accompany the well-accepted conclusion from accumulating evidence on the beneficial effects of a diet that's high in fruits and vegetables after all, diets on the other end of the extreme are notorious for providing sub-optimal amounts of vitamin B12 and could thus also increase the risk for malfunctions in the methylation cycle and the subsequent development of cancer.

Tea, coffee and the other mainstream polyphenol sources

Contrary to the associations with vitamins, the influences polyphenols have on our overall and genetic health are actually a comparatively "novel" topic of scientific research. In fact, scientists argue that these common constituents of foods of plant origin and not the previously hailed vitamins are the major antioxidants in our diets. Vegetables and fruits like apple, grape, pear, cherry, and various berries contain up to 200–300 mg polyphenols per 100 g fresh weight and coffee, teas, cereals, chocolate, and dry legumes also contribute to the polyphenol intake.

Did you know that flavenols are only a subclass of polyphenols? They comprise a large and diverse family of compounds synthesized by plants. Flavonoid subclasses include anthocyanidins in berries and grapes, flavanols in tea, flavanones in citrus fruits, flavonols in onions, flavones in herbs and peppers, and isoflavones in soy.
In that, the term polyphenol is actually an umbrella term that comprises various powerful antioxidants such as flavonoids and stilbenes, many of which have been implicated in cancer prevention and the promotion human health without recognizable side effects, which are - even in such prominent cases like red wine, which contains a wide range of different polphenols - far from being completely understood. The recently mentioned negative effects of cholorogenic acid supplements on the glucose metabolism of rodents, are another example, where certain molucules - in this case chlorogenic acid - of which we believed that they were responsible for the beneficial health effect of coffee turn out to exert different or even downright hazardous effects, when they are administered in isolation.

Similar observations have been made for the classic anti-oxidant vitamins A, C and E and as of late vitamin D. Not everything that looks good on paper or works in the petri dish will also work in a complex organism and even fewer things did eventually make the translation from the bench to the bedside.
Table 3: Selected trials involving "classic" antioxidant vitamins esp. beta carotene (based on Tanaka. 2012)
For science the disappointment surrounding beta carotene (see table 3) was actually highly productive, Without the conflicting data on the real world effects of foods such as yellow-orange vegetables, green leafy vegetables, orange and yellow foods and all the other carotenoid-containing food items and the negative outcomes in the above cited studies, we would probably still lack an appropriate grasp of what carotenoids actually are.

A group of chemicals known as isoprenoid polyenes that are found in lipid-soluble form in the  yellow-orange-red pigments in all higher plants and some animals. Scientists further distinguish
    Table 4: Sources, function, and effects of different carotenoids (Tanaka. 2012)
  1. vitamin A precursors that do not pigment such as β-carotene;
     
  2. pigments with partial vitamin A activity such as cryptoxanthin, β-apo-8'-carotenoic acid ethyl ester;
     
  3. non-vitamin A precursors that do not pigment or pigment poorly such as violaxanthin and neoxanthin; and
     
  4. non-vitamin A precursors that pigment such as lutein, zeaxanthin and anthaxanthin. 
As Tanaka points out, the specific form of the molecules, in particular their stereoisomerism (take a look at your left hand and compare it to the right one and you know what this is ;-) exerts a marked influence on the physical properties.

Vitamin C is vitamin C, is vitamin C, is ... useless?

While research on the different types of carotenes has made huge progress and scientists are finally grasping the notion that there is a difference between folic acid and its biologically active cousins, the one on the most prominent dietary anti-oxidant and it's proctetive effects on cancer stalls - with mainly negative outcomes:
If you add some reactive oxygen species to this mitochondrium, this will trigger beneficial, (mito-)hormetic adaptations, that could be blunted by too many antioxidants. Could be blunted, but what exactly is the latest evidence for the average individual or the corresponding rodent model (learn more)?
"Regarding the use of vitamin C in cancer patient the results were not promising. In a double- blind study 100 patients with advanced colorectal cancer were randomly assigned to treatment with either high-dose vitamin C (10 g daily) or placebo. Overall, these patients were in very good general condition, with minimal symptoms. None had received any previous treatment with cytotoxic drugs. Vitamin C therapy showed no advantage over placebo therapy with regard to either the interval between the beginning of treatment and disease progression or patient survival. Among patients with measurable disease, none had objective improvement.

On the basis of this and our previous randomized study, it can be concluded that high-dose vitamin C therapy is not effective against advanced malignant disease regardless of whether the patient has had any prior chemotherapy."
On the other hand, studies investigating the dietary intake of vitamin C as a part of the natural nutrient matrix ascorbic acid comes with in the vegetables and fruits in our diets (phenols, flavones, and terpenes, beta carotene, selenium), provides at least preliminary evidence that vitamin C intake may be more important for prevention of lung cancer than beta-carotene (e.g. Kromhout. 1987). The necessary amount of vitamin C to get the job done is yet not higher than 70mg (!) of ascorbic acid and almost certainly dependent (if not solely brought about) by the presence of phenols, flavones, and terpenes in the corresponding foods.



Bottom line: The examples of vitamin C and beta carotene show that our understanding of the complex interaction of chemicals with the ability to influence our health through epigenetic changes or the prevention of the latter is still limited. For the latter, which have been around for decades, we already know not one, but rather a mixture - and in that, a mixture at the right ratios - is necessary to see actual benefits.

"Does the Usefulness of Vitamin E Supplementation Depend on Your Activity level?" - Hitherto largely overlooked are the complex interactions of exercise and nutrient induced epigenetic changes, which may well determine the usefulness of antioxidant supplements (learn more)
That being said, the combination of gene essays, in-vitro, in vivo and epidemiological science under the beneath the rood of "nutrigenomics" must be considered one of the most promising research directions of the future. At the moment it's results are yet about as preliminary as the various definitions you will find, when you look around in the scientific community.

Most importantly, however, most of the reasonably reliable results this comparatively new branch of research has and is producing is simply confirming the stuff you've been learning on SHR and the SuppVersity about diet and nutrition over the past years and you can take my word for it: this is not going to go change much in the future.

References:
  • Choi, Sang-Woon, Friso S. Epigenetics: A New Bridge between Nutritionand Health. Adv Nutr 2010;1: 8–16.
  • Fujii T.M.M., Medeiros R., Yamada R. Nutrigenomics and nutrigenetics: important concepts for the nutrition science. J Brazilian Soc Food Nutr 2010;35(1): 149-166.
  • Kromhout D. Essential micronutrients in relation to carcinogenesis. Am J Clin Nutr May 1987;45(5):1361-1367
  • Milner JA, Romagnolo DF. Nutrition and Health: Bioactive Compounds and Cancer. Humana Press. 2010.
  • Nepomuceno, J.C. Nutrigenomics and Cancer Prevention. In: Cancer Treatment - Conventional and Innovative Approaches. Rangel, L. (ed.). InTech. 2013.
  • Tanaka T, Shnimizu M, Moriwaki H. Cancer Chemoprevention by Carotenoids, Molecules 2012;17: 3202-3242.