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

Physical & Cognitive Exercise Are Similarly Effective DNA Protectors & Antioxidant Boosters in Elderly Men & Women

Brain builders and muscle builders are similarly effective DNA protectors in the elderly.
As a SuppVersity reader you won't be surprised to hear that Bernhard Franzke and his colleagues from the University of Vienna were able to confirm that resistance training can improve the resistance of human DNA to H2O2 damage in institutionalised elderly. What may be news to you, though, is that very similar effects can be achieved by cognitive training in form of coordinative or cognitive tasks that were performed only two times per week by the 105 institutionalised elderly women and men (aged 65–98 years) the scientists recruited from five different senior residences in the area of Vienna (Franzke. 2014).
DNA damage is obviously important, maintaining optimal lean mass levels is important, too

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

Alternating Squat & Blood Pressure - Productive?

Pre-Exhaustion Exhausts Your Growth Potential

Full ROM ➯ Full Gains - Form Counts!

Battle the Rope to Get Ripped & Strong

Study Indicates Cut the Volume Make the Gains!
In the recent Austrian study, the subjects had been randomized to three groups. The previously described cognitive training group, which also served as a "control", as well as two resistance training groups.
"The RT groups (RT and RTS) performed two sessions of RT per week, supervised by a sport scientist, conducted on two non-consecutive days. Training attendance was recorded every session. The only equipment used was exercise bands and a chair. [...] The main part consisted of 10 exercises for the main muscle groups (legs, back, abdomen, chest, shoulder and arms). One training session started with 10 min of warm-up, continued with 30–40 min of strength training and ended with a 10-min cool-down. To keep the training stimulus high enough, the exercise program was adjusted to the participants’ individual needs, by either adapting the resistance of the elastic band (shorter or stronger band) or by modifying the exercise, by means of performing a more diffiult version. In the initial phase (4 weeks) one set of 15 repetitions was performed in order to learn the correct form of each exercise. From the fifth week on, the intensity and volume were progressively increased from two sets of light exercises to two sets of heavy resistance. If the participants could easily perform two sets of 15 repetitions they were told either to take more resistance or to perform a more difficult version of the exercise" (Franzke. 2014).
In contrast to the RT group, which did "nothing", but the previously described resistance training regimen, the subjects in the RTS group consumed a multi-ingredient supplement every morning, as well as directly after each training session. Said supplement consisted of 20.7g protein [56 energy (En) %, 19.7g whey protein, 3 g leucine, >10 g essential amino acids], 9.3 g carbohydrates (25 En%, 0.8 BE); 3.0 g fat (18 En%), 1.2 g roughage (2 En%), 800 IU (20 μg) of vitamin D, 250 mg calcium, vitamins C, E, B6 and B12, folic acid and magnesium (one portion FortiFit, Nutricia with a total energy content per drink of only 150 kcal).
Figure 1: Changes in parameters of DNA damage and antioxidant enzyme expression (Franzke. 2014).
In spite of the fact that the intake of the nutritional supplement was controlled at breakfast as well as after the training sessions, it did not provide significant additional benefits on top of the regular resistance training protocol.

We should keep in mind, though, that (a) non-significant benefits were visible for the formamidopyrimidine DNA glycosylase (FPG) and the expression of superoxide dismutase and that (b) the actual benefits of protein supplements would have become visible only if the scientists had accessed the changes in body composition, as well.
Maximal protein synthesis - How much protein do the elderly need? Find out in a previous SV article.
Bottom line: If you don't have a present for your grandpa or grandma, yet, I suggest you craft a voucher for 2 weekly resistance training and cognitive training sessions with yourself as a trainer and buy a tub of protein to round your present off...

All Christmas jokes aside, the study at hand simply confirms what the proverb "a rolling stone gathers no moss" implies. Exercise, no matter whether it's cognitive or physical exercise, protects aging men and women from pro-cancerous DNA damage and ensures that can maintain "a sound mind in a sane body" | Comment on Facebook!
References:
  • Franzke, B. et al. "The impact of six months strength training, nutritional supplementation or cognitive training on DNA damage in institutionalised elderly." Mutagenesis (2015):147–153.

Sucralose, Carcinogen or Sweet Relief? Part III: DNA Breaks + Drug & Hormone Interactions | Sucralose, White Death?

Fearmongering fake, or true biohazard. This is the life-or-death- question this last installment of the sucralose trilogy will have to answer.
It's time for the third and last installment of the SuppVersity sucralose review trilogy. Looking back at the list of issues in the first installment of this series, it appears as if the one thing that was still left to discuss are the mutagenic, pro-carcinogenic and tissue damaging effects of sucralose and its potentially endocrine disrupting metabolic / thermic byproducts. It goes without saying that the previously discussed and largely rebutted effects on blood glucose management, body weight gain and even the balance of your gut microbiome would be hardly significant, if today's analysis confirms that the use of Splenda© & Co was linked to direct mutagenic, carcinogenic or general toxic effects.

Put your hazard suits on, folks!

It's obvious that I got carried away by my imagination, when I wrote this subheading, but if the same wasn't true for the author of the repeatedly cited press release, many of us are about to suffer the consequences of the potential unsafety of the hitherto unknown sucralose metabolites in our guts, pretty soon.
This is part III of a multi-part series:

Sucralose, insulin, glucose, GLP-1

Appetite, Obesity & Gut Health

Cancer, Drug & Hormone Interact.
I know that Mark Sisson likes to says this, but this website is not written by a machine, but by a man who has the same "short" 24h days you have... basically, what I am trying to say is that I had to split this review of the review into a "trilogy" - and be honest, you wouldn't want an article thrice as long as this one, would you?
In fact, you don't even have to go searching the databases for hours to find evidence that would support the claim that some of these metabolits that supposedly arise, while sucralose passes through our digestive tract (hitherto we have only highly debated evidence from rodent studies that there are any metabolits at all, by the way) could be pretty nasty bastards. In their 2008 paper, Abou-Donia et al. (2008), whose rodent study is still the only one to support the claim that the consumption of sucralose (HED 42mg/day or more over 3 months) will lead to a "reduction in the number and balance of beneficial bacteria in the gastrointestinal tract" (quote from press release; learn more), cite a study, for example, in which Sasaki et al. (2002) confirmed that sucralose exerts genotoxic effects. This does not mean that the DNA breaks / changes the researchers observed lead to the development of cancer, but the in vivo comet essay the researchers used, is generally considered a very reliable indicator of the genotoxicity of the tested compound in a particular body part (Brendler-Schwaab. 2005).
Believe it or not, but aspartame is one out of three sweeteners Sasaki et al. tested that are not genotoxic | more about aspartame
It's not just sucralose: I guess it's only fair, if I point out that Sasaki's study showed that sodium cyclamate, saccharin, sodium saccharin, likewise artificial sweeteners, caused DNA damage to various organs, as well. The dosage that was necessary to trigger these effects was yet unrealistically high: 2000mg/kg for sucralose and sodium cyclamate, 1000mg/kg for saccharin and sodium saccharin - for humans that would be 26g and 13g of pure sweetener every day! Ah, before I forget to mention that: Acesulfame-K, aspartame and stevia were also tested and found to be benign.
The absence of direct evidence of real-world negative effects, the insignificance of the long-demonstrated weak muatgenicity in the mouse lymphoma mutation assay, both, the WHO and the FDA have confirm ed in independent reports (WHO, 1989; U.S. FDA, 1998), is thus probably the reason the compound has still been approved as a food additive in 1991 - initially in Canada and Australia, then in the rest of the federally regulated world (Canada & Australia, 1993; New Zealand, 1996; US, 1998; EU, 2004). Today, the sales in sucralose alone account for 27.9% of the $1.146 billion global highpotency sweetener market (Leatherhead Food Research, 2011). No wonder, after all, sucralose is utilized in thousands of food, beverage, and pharmaceutical products in North America, Latin America, Europe, the Middle East, and the Asia-Pacific region (Schiffman. 2013).

So what does the (almost) "real-world" evidence say?

It's unquestionably debatable whether this was a good idea or a tragic mistake, but without corresponding "real-world" assays from longer-term rodent studies, the damage that occurs in response to the DNA breaks that have been observed in in-vitro studies may well be so small that the DNA repair machinery that operates in our bodies 24/7 can fix it easily. In this case, our coroners would probably find a similar increase in non-neoplastic findings (=non-cancerous, often minimal tissue growth, where it does not belong), as they were reported by Mann et al. (see list below the red box) in a combined chronic toxicity/carcinogenicity study of sucralose in Sprague–Dawley rats and a carcinogenicity study of sucralose in mice (Mann. 2000a, 2000b). Direct evidence for the development of cancer and/or the potential epigenetic changes is yet, as Schiffman & Rother have to concede, simply not available.
Don't bake your arginine-containing anti-diabetes cookies with sucralose
Sucralose + heat - a potentially hazardous combination: Contrary to often cited claims by Barnd & Jackson (1990) or Miller, et al. (1999), there is more recent evidence that suggest sucralose is not heat stable (Jahn & Yaylayan. 2010; Schiffman. 2012; Schiffman and Abou-Donia. 2012). According to these more recent papers ther are a whole host of thermal degradation products in cookies. Whether these byproducts pose a health risk is however not know for most of them. Only the chloropropanols that form when the reaction occurs in the presence of gylcerol (Rahn. 2010), are well-known genotoxic, carcinogenic, and tumorigenic compounds (Biles. 1983; Cho. 2008; Tritscher. 2004; SCF. 2001; WHO, 2002).
Quite the contrary, if you look at the literature as a whole, there is plenty of data that would support the decision of the Australian, US and EU to approve sucralose as a food additive, e.g.:
  • No toxic effects even with 3% of total dietary intake in Sprague–Dawley rats; all non-neoplastic findings that occurred were of no toxicological significance and are part of the regular aging process of this strain of rats (Mann. 2000a)
  • No positive results in in vivo chromosome aberration test in rats and two separate micronucleus tests in mice with doses of up to 2,000mg/kg for 5 days (Brusick. 2010)
  • No effect on organ and general development, when fed to pregnant rats and rabbits in HEDs of up to 26g (rats) and 9g, respectively (Kille. 2000)
I don't want to discard the existing evidence Schiffman et al. cite in favor of their "sucralose is the devil" hypothesis, but results of the vast majority of these studies can hardly be considered relevant with respect to the question whether the comparatively small amount of sucralose that may be present in your foods, supplements or whatever you may be sweetening with sucralose is going to harm you or your DNA:
  • The death of one out of 10 mice in a study by Finn and Lord that occured in response to the ingestion of the human equivalent of 1g/day of sucralse can hardly be considered conclusive evidence in favor of the "sucralose is poison hypothesis (Finn. 2000).
  • The effects Mann et al. describe in a study where 3%-5% of the chow was pure sucralose is devoid of any relevance for our question (Mann. 2000a; Goldsmith. 2000). The same goes for the numerous studies where the lab animals received sucralose in amounts of >500mg/kg body weight (e.g. Finn. 2000; Kille. 2000). For a human being that would be more than 6.5g/day - and that's only if the lab animal was a rodent. For larger animals it would be even more.
    Now, you can always argue that the negative studies just weren't long enough to elicit similar effects at lower dosages or, if you prefer that, work yourself up into a lather about the fact that (conspiracy-)theoretical, all the benficial studies could have been openly funded or secretly supported by people / companies with a vested monetary interest in positive safety data. In fact, the existence of a review of the safety of Splenda the lead author of which works for McNeil Nutritionals, LLC, who market Splenda for Johnson & Johnson (Grotz. 2009), or a "expert panel" review you will read about later in this article actually support that this may be the case, the same can unfortunately be said of almost every food additive - including stevia, by the way.

    Let's get on to potential endocrine effects

    In view of the fact that it is pointless to speculate about the validity of the data from the positive studies in the foregoing list, I want to turn to another, the final and as we are going to see not necessarily more "productive" topic of this third and last installment of my sucralose review trilogy: The endocrine effects.
    Due to sucralose not just vegans (more) may be at risk of low B12
    Sucralose + Vitamin B12: This is not exactly an endocrine effect, but in the end it could become one, when large enough quantities of cobalamine, aka "vitamin B12" react with sucralose in the liver, vitamin B12 deficiency could be a potential side effect. Aside from the in-vitro evidence Motwani et al. present in their 2011 paper in Food and Chemical Toxicology, there is yet no evidence that would suggest that this is actually happening, let alone to an extent that would leave you B12 deficient like a vegan ;-)
    In that, I am using the word "endocrine" in its most general sense, which denotes anything that is produced or directly triggered by an organ and has influence on other organs / tissues or the whole body. The sucralose induced changes in the expression of enzymes from the P450 cytochrome cascade that are responsible for the interconversion / metabolism of all sorts of molecules, including hormones and medications would be one example for such effects.

    To this ends we have to go back to the previously cited study by Abou-Donia et al. (2008), of which I did not tell you in the last installment of this series that it has (obviously) been under heavy attack by toxicology experts who do not necessarily doubt the validity of the study data Abou-Donia et al. present, but claim that their interpretation was irresponsible.
    A brief note on the criticism of the Abou-Donia study: As you'd expect it's no coincidence that  the corresponding paper carries the phrase "expert panel" in it's title. It was after all written and published on request of McNeil Nutritionals, a marketer of retail products that contain the non-nutritive sweetener, sucralose, who paid the "panel of experts" to do a "independent and rigorous review of the 2008 study by Abou-Donia et al." (Brusick. 2009)
    I won't discuss all the objections the "expert panel" proffers. Not because I think that their general objections against hasty conclusions with respect to unwanted negative health effects weren't justified, but rather because I want to get back to Schiffner's & Rother's review, where you'll find the following comment about the CYP-modifiying effects Abou-Donia et al. observed and Brusick et al.'s criticism:
    "The results in Table 1 [identical copy on the right] indicate that the magnitude of elevation for both CYP3A and CYP2D expression increased in a linear, dose-dependent manner as the dosage of sucralose increased from 3.3 to 5.5 to 11 mg/kg/d.

    This finding of significant and parallel increases in expression of two different CYP enzymes does not support the claim made by Brusick et al. (2009) that increases in CYP from sucralose ingestion were only normal biological variations."(Schiffman. 2013)
    In other words: Coincidental increases in CYP activity would not 'coincidentally' be dose-dependent, as well. If we also remind ourselves of the fact that the human equivalent doses of said 3.3, 5.5 and 11mg/kg sucralose would be (only) 43mg, 71mg and 143mg it is self-evident that we cannot simply ignore the acute and persistent increases in intestinal P-gp, CYP3A, and CYP2D (in humans this is CYP2D6; cf. Laurenzana. 1995) in the jejunum and ileum of About-Donia's hairy subjects.

    The obvious question, now, is: Does this even matter?

    I mean, changes in the expression of some cryptic enzymes in the gut - who cares? After taking a look a the list of substrates that are enzymatically processed by CYP3A, alone, even the small 44% increase that occured in response to the rodent equivalent of 43mg appears relevant.

    Figure 1: Important supplement drug interactions | learn more
    On this list are some immunosuppressants, many chemotherapeutics including tamoxifen and anastrazole, which are popular with athletes who use PEDs. There are SSRIs, like citalopram, norfluoxetine, sertraline, other anti-depressants like mirtazapine, or buspirone, the whole list of anti-psychotics, opoids and many analgesics, benzodiazepines, statins like atorvastatin, lovostatin and simvastatin, calcium channel blockers, anti-histamins and even viagra and Co (PDE-5 inhibitors). And even our good old caffeine is on the list of CYP3A4 substrates, on which you'll also find estrogen, testosterone, progesterone, finasteride and torimifene. It's thus not just that your chemotherapy may fail, your depression may return, you may run havoc, hurt all over, increase your cholesterol levels, get high blood pressure, have life-threatening allergic reactions, because your meds are not working properly no (!), even worse caffeine may stop working ;-)

    Unlike the increase in CYP2D6 that simply adds to the sucralose ↔ drug interactions, the corresponding increase in P-gp activity and thus the transport of chemicals from gut cells (enterocytes), back into the intestinal lumen could affect the absorption of an even wider range of both wanted and unwanted chemicals / xenobiotics with a hydrophobic and amphiphilic structure.

    The net result of the increases in CYP and pGP activity is thus a significant decrease in the concentration of a xenobiotic compound on its way from the gastro-intestinal tract to the liver. Whether this amplified "first pass effect" would actually have physiologically relevant consequences in human beings is yet something we cannot tell without somebody paying for the costly research.

    To complicate things, we must not ignore the possibility that "[...t]he rise in CYP expression reported by Abou-Donia et al. (2008) may result from 'autoinduction', by which sucralose enhances it own metabolism." It would thus be a second St. John’s wort, which will also increase its own metabolism by the activation of P-gp and CYP. For Hypericum perforatum extracts, which are often used as mild anti-depressants, we do already know that it affects the metabolism of an endless list of drugs and herbal supplements, and can reduce the levels of 5-alpha reduced androgens like DHT (estrogen and testosterone appear not to be influenced, though; cf. Donovan. 2005).
    So what about toxicity and endocrine disruption? If we discard the potential interference with drugs and consequent "St. John's Wort"-esque side effects, I would say that the dosages that are necessary to actively induce more or less insignificant DNA damage in rodent studies, as well as the absence of any evidence of toxic effects from one of the historical single-dose or short-term sucralose studies in humans (Mezitis. 1996; Baird. 2000) make it appear very improbable that the habitual, but reasonable use of sucralose could have toxic or carcinogenic effects.

    Remember the Science Round-Up from March? The safety of  stevia, is not beyond doubt either | more
    The "benefit of the doubt" is yet no acquittal, it is only my assessment of the reasoning Schiffman & Rother provide in their paper, the relevant parts of which are all based on mere hypothesis, e.g. the "IBD ↔ sucralose"-hypothesis by Qin et al. (2011, 2012), or the "there may arise different more toxic sucralose metabolites in the human vs. rat digestion tract"-hypothesis by Goldsmith (2000) and Mann (2000a) and/or rely on data from the highly disputed Abou-Donia study, the most significant result of which are (imho) still the pronounced changes in the gut microbiome (read more in the last episode of this three part series).

    At the moment, it does yet still look as if you were on the "safer" side if you prefer stevia sweetened products, although I honestly have my doubts that we wouldn't observe similar effects in mice, rats and all sorts lab critters, if 5%+ of their diet was pure stevia. The dosage makes the poison, you better remember that.
    References:
    • Abou-Donia, M. B., El-Masry, E. M., Abdel-Rahman, A. A., McLendon, R. E., & Schiffman, S. S. (2008). Splenda alters gut microflora and increases intestinal p-glycoprotein and cytochrome p-450 in male rats. Journal of Toxicology and Environmental Health, Part A, 71(21), 1415-1429.
    • Brendler-Schwaab, S., Hartmann, A., Pfuhler, S., & Speit, G. (2005). The in vivo comet assay: use and status in genotoxicity testing. Mutagenesis, 20(4), 245-254.
    • Brusick, D., Grotz, V. L., Slesinski, R., Kruger, C. L., & Hayes, A. W. (2010). The absence of genotoxicity of sucralose. Food and Chemical Toxicology, 48(11), 3067-3072. 
    • Brusick, D., Borzelleca, J. F., Gallo, M., Williams, G., Kille, J., Wallace Hayes, A., ... & Burks, W. (2009). Expert panel report on a study of Splenda in male rats. Regulatory Toxicology and Pharmacology, 55(1), 6-12.
    • Biles, R. W., & Piper, C. E. (1983). Mutagenicity of chloropropanol in a genetic screening battery. Fundamental and Applied Toxicology, 3(1), 27-33.
    • Cho, W. S., Han, B. S., Lee, H., Kim, C., Nam, K. T., Park, K., ... & Jang, D. D. (2008). Subchronic toxicity study of 3-monochloropropane-1, 2-diol administered by drinking water to B6C3F1 mice. Food and Chemical Toxicology, 46(5), 1666-1673.
    • Finn, J. P., & Lord, G. H. (2000). Neurotoxicity studies on sucralose and its hydrolysis products with special reference to histopathologic and ultrastructural changes. Food and chemical toxicology, 38, 7-17.
    • Goldsmith, L. A. (2000). Acute and subchronic toxicity of sucralose. Food and chemical toxicology, 38, 53-69.
    • Grotz, V. L., & Munro, I. C. (2009). An overview of the safety of sucralose. Regulatory toxicology and pharmacology, 55(1), 1-5.
    • Motwani, H. V., Qiu, S., Golding, B. T., Kylin, H., & Törnqvist, M. (2011). Cob (I) alamin reacts with sucralose to afford an alkylcobalamin: Relevance to in vivo cobalamin and sucralose interaction. Food and Chemical Toxicology, 49(4), 750-757.
    • Kille, J. W., Tesh, J. M., McAnulty, P. A., Ross, F. W., Willoughby, C. R., Bailey, G. P., ... & Tesh, S. A. (2000). Sucralose: assessment of teratogenic potential in the rat and the rabbit. Food and chemical toxicology, 38, 43-52.
    • Laurenzana, E. M., Sorrels, S. L., & Owens, S. M. (1995). Antipeptide antibodies targeted against specific regions of rat CYP2D1 and human CYP2D6. Drug metabolism and disposition, 23(2), 271-278.
    • Leatherhead Food Research. (2011). The global food additives market, 5th ed., September.
      Leatherhead, Surrey, UK: Leatherhead.
    • Mann, S. W., Yuschak, M. M., Amyes, S. J. G., Aughton, P., & Finn, J. P. (2000a). A combined chronic toxicity/carcinogenicity study of sucralose in Sprague–Dawley rats. Food and chemical toxicology, 38, 71-89.
    • Mann, S. W., Yuschak, M. M., Amyes, S. J. G., Aughton, P., & Finn, J. P. (2000b). A carcinogenicity study of sucralose in the CD-1 mouse. Food and chemical toxicology, 38, 91-97.
    • Rahn, A., & Yaylayan, V. A. (2010). Thermal degradation of sucralose and its potential in generating chloropropanols in the presence of glycerol. Food Chemistry, 118(1), 56-61.
    • Sasaki, Y. F., Kawaguchi, S., Kamaya, A., Ohshita, M., Kabasawa, K., Iwama, K., ... & Tsuda, S. (2002). The comet assay with 8 mouse organs: results with 39 currently used food additives. Mutation Research/Genetic Toxicology and Environmental Mutagenesis, 519(1), 103-119. 
    • Scientific Committee on Food. (2001). Opinion of the Scientific Committee on Food
      on 3-monochloro-propane-1,2-diol (3-MCPD). European Commission, Health and
      Consumer Protection Directorate-General. http://ec.europa.eu/food/fs/sc/scf/out91_en.
      pdf (accessed December 14, 2013)
    • Tritscher, A. M. (2004). Human health risk assessment of processing-related compounds in food. Toxicology letters, 149(1), 177-186.
    • World Health Organization. (2002). 3-Chloro-1,2-propanediol. In Safety evaluation of certain food additives and contaminants. WHO Food Additives Series 48. http:// www.inchem.org/documents/jecfa/jecmono/ v48je18.htm (accessed December 14, 2013).

    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<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 ;-)

    Rodent Study Confirms: GMO Soybean Oil is Pro-Inflammatory & Induces DNA Damage! Extra Virgin Olive Oil to the Rescue!

    GMO Soybean oil? Better for cars only.
    I am pretty sure there will be rebuttals to the results of this study... although, it's published in the OpenSource journal Nutrients and was conducted by scientists from Saudi Arabia and the UK who probably don't have the media-connections the scientists who conducted the GMO-corn study back in the day had.

    Against that background it's unlikely that non-SuppVersity-readers will even hear about the paper El-Kholy et al. published in the June edition of Nutrients (El-Kohly. 2014) -- Well, that is - unless you spread the word, obviously ;-)
    You better take creatine than ecdysteroids if you want to build muscle

    Foods, not Macros Count!

    Olive Oil Flavor is Healthy

    Argan Oil as Test Booster

    Oleic Acid ⇄ Microbiome

    Tocotrienols? Red Palm Oil!

    SAD Diet Analysis
    Let's take a look at the methods and results, now. Needless to say that we are talking about preliminary rodent data, here - data from 40 adult male albino rats, to be precise. The rats were used in this study and divided into four groups.
    • The control group of rodents was fed basal ration only. 
    • The second group was given basal ration mixed with extra virgin olive oil (30%). 
    • The third group was fed basal ration mixed with soybean oil from GM-soy (15%).
    • The fourth group survived on a combination of EV olive oil, GM and the basal ration.
    All rodents were kept on the respective diets for 65 consecutive days. On day 65, blood samples were collected from each rat for antioxidant enzyme analysis.
    Figure 1: Lipid oxidation and glutathione levels (El-Kohly. 2014)
    "In the group fed on basal ration mixed with GM soyabean (15%), there was a significant increase in serum level of lipid peroxidation, while glutathione transferase decreased significantly. [...] the amount of DNA and NCE were significantly decreased. [...] We can conclude that adding EV olive oil to the diet of rats appears effective in inhibiting oxidative damage and may act as a protective agent against chronic diseases such as liver fibrosis, hyperlipidemia and diabetes. In addition, EV olive oil may also have a protective function against carcinogenic processes." (El-Kohly. 2014)
    That's an intriguing result and one of which I am asking myself if you'd see it with regular soybean oil, as well.
    "True or False? Adding Fat to A Carby Meal Lowers Insulin Response. Muscle Hypertrophy Impairs Oxygen Diffusion. Reducing Carb Intake Improve Muscular Insulin Sensitivity" | more
    Bottom line: Now, although we cannot tell for sure, whether it's the "GM", i.e. the genetic modification, or simply the fact that soy is devils excrement and not suitable for mammalian consumption *don't take this excursion to seriously*, we do know two ways to protect our DNA from the vegan assault:
    1. Avoid soybean oil like a plague - easy for all of us who follow the SuppVersity-no-processed foods principle, but more or less impossible for everyone who buys products from the "food" industry
    2. Add extra virgin olive oil to our diet  - the addition of EVO is simple and effective, but will only alter "the tested parameters towards normal levels" 
    For me, personally, "towards normal" is not convincing enough. If you asked me, I'd thus suggest you chose option (1) - the switch to a "zero" processed foods diet is going to have a whole lot of other beneficial effects on your health, physique and performance, anyways.
    Reference:
    • El-Kholy, T.A.; Hilal, M.A.; Al-Abbadi, H.A.; Serafi, A.S.; Al-Ghamdi, A.K.; Sobhy, H.M.; Richardson, J.R.C. The Effect of Extra Virgin Olive Oil and Soybean on DNA, Cytogenicity and Some Antioxidant Enzymes in Rats. Nutrients 2014, 6, 2376-2386.

    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.

    The Coffee³ Advantage Equation: 3 x 250mL Coffee / Day + 2x4 Weeks ➫ -1kg Body Fat, Satiety ↑ (Ghrelin ↓ + 5HT ↑) + Cancer Protective 16% Reduction in DNA Breaks = Health³

    Here it is: Scientific evidence caffeine is the among the healthiest addictions known to man.
    It has been a while since the last official "Coffee Lovin'"-article at the SuppVersity was published. Luckily, scientists all over the world appear to be similarly hooked to the brownish cult drink as millions of coffee concessionaires all around the world - including those who live in Vienna, the city, where the data I am about to present in today's SuppVersity article originated from.

    If you take a look at the study design, you will see that we are dealing with a five-months study with three four-week washout periods, a crossover and two different types of coffee that was tested on two groups.
    You can learn more about coffee at the SuppVersity

    Remember: With Coffee More Won't Help More

    Coffee - The Good, Bad & Interesting

    Three Cups of Coffee Keep Insulin At Bay

    Caffeine's Effect on Testosterone, Estrogen & SHBG

    Coffee + Cacao for Breast Cancer Prevention

    Caffeine resistance - does it exist?
    This sounds more complicated that it actually is. If you take a closer look at the illustration in Figure 1 you will soon realize that there is absolutely no witchcraft involved, here. In fact, the only thing that's magic, were the effects the coffee consumption had on body fat, food intake, satiety and the integrity of the DNA of their 84 healthy, non-smoking, drug-free 20- to 44-year-old male and female (non-pregnant), volunteers with (BMI of 19-26 kg/m²).
    Figure 1: Graphical overview of the study design (Bakuradze. 2014); adherence was controlled by urine essays.
    During the first intervention phase, group A consumed coffee that was bought at a regular supermarket (MB), while the subjects in group B were supplied with coffee pads containing a standardized blend of 100% Arabica (Coffea arabica) roasts, composed largely of dark roast, particularly rich in roast products (including high NMP contents) together with some light roast, rich in green bean constituents. This is in contrast to the supermarket coffee which was blended from equal portions of five major commercially available regular coffee brands, thus representing a typical medium roast filter coffee blend. Four of the five coffees were pure Arabicas, the fifth contained some Robusta (Coffea canephora), which contains significant amounts of 16-O-methylcafestol (Speer & Kölling-Speer, 2006). Both ground coffee blends were portioned into standard coffee pods (Tchibo GmbH, Hamburg, Germany) and packed into appropriate plastic bags, under inert gas.

    Regardless of the type of coffee and/or study period, subjects were instructed to prepare their three coffees à day with two of the 7.5 g coffee pods and to consume their freshly brewed coffee in 250ml portions spread relatively evenly across the day ... which yielded the already mentioned benefits (see Figure 1):
    Figure 2: Rel. changes in body fat, fat free mass (incl. bone), serotonine and active grehlin levels (hunger) after 4 weeks on the different coffee brands; data from A + B group (Bakuradze. 2014)
    Not too bad, given the fact that all you have to do to monetize on the fat killing, appetite controlling and DNA protective effects (reduction in spontaneous breaks by 13-16%) of coffee is to consume it regularly and in very moderate amounts, right?

    Ah, and before I forget to tell you. In contrast to what the title of the paper, i.e. "Four weeks coffee consumption affects energy intake, satiety regulation, body fat, and protects DNA integrity" would suggest, there was no significant reduction in energy intake that could explain the fat loss, let alone body-recompositioning effects you can see in Figure 2 (left).
    Caffeine Works - Study Leaves No Doubt About It! Approx. 400mg of Caffeine Get You Going, Even After 32h Without Sleep - So Why Doesn't It Work for You Anymore? | more
    Bottom line: If you have been waiting for yet another excuse not to give up your coffee addiction, this would be a scientifically valid one. One with a single, on the other hand, attached. Even with the 4-week washout I am not sure, if there may not have been a minimal negative effects of caffeine abstinence in those of the subjects who were already (heavy) caffeine drinkers at the end of the "abstinence" (wash out) period.

    In essence, this is yet possible, but very unlikely. An attenuation of brain serotonin has after all only been observed in the short term (Haleem. 1995). To assume that the benefits we are seeing in the study at hand are just the results of the compensation of a previous crash of serotonin and increase in grehlin and appetite that occurred in response to caffeine withdrawal does therefore appear to be another far-fetched caffeine hater hypothesis ;-)
    Reference: 
    • Haleem, Darakhshan J., et al. "24h withdrawal following repeated administration of caffeine attenuates brain serotonin but not tryptophan in rat brain: Implications for caffeine-induced depression." Life sciences 57.19 (1995): PL285-PL292.

    One (not Two!) Kiwi(s) A Day Keeps the Doctor Away. Golden Kiwi Boosts Vitamin C Status, Reduces Lipid Oxidation and DNA Damage.

    Image 1: Golden and green Kiwi
    fruits (image by Zespri)
    In the pseudo-scientific camp of hardcore low-carbers fruit is getting a real bad rep, lately. Only a few weeks ago, Hunter et al. (Hunter. 2011) had published a review of the anti-oxidant potency of kiwi fruits, which puts into question, whether abstaining from fruit consumption altogether is necessary or even just beneficial for healthy, active human beings in the long run. A more recent study conducted by a group of scientists from various European countries (Brevik. 2011) does now provide experimental evidence that the good old saying "An Apple a day keeps the doctor away!" may be just as or even more applicable to kiwifruits in general and the particularly phytochemical rich golden variety Actinidia chinensis var. Hort 16A, in particular.

    The scientists recruited 24 men and women (20-57 years, BMI 20-30 kg/m²), specifically selecting subjects who already consumed modest amounts of fruits and vegetables in their diet and excluding subjects, who used contraceptive pills, medicines or supplements, were on a diet aimed at weight correction, had diagnosed diabetes, cancer or cardiovascular disease, consume >30 units (15 glasses of wine) of alcohol/week, habitually or undertook >6h of vigorous exercise/week. All that half of  the subjects had to do was eat one additional golden Kiwi per day (in a second period the dosage was "escalated" ;-) to 2 kiwis). This turned out to be a dietary intervention with significant effects on antioxidant status, malondialdehyde levels and DNA damage in circulating lymphocytes:
    Plasma vitamin C increased after supplementation as did resistance towards H2O2-induced DNA damage. Purine oxidation in lymphocyte DNA decreased significantly after one kiwifruit per day, pyrimidine oxidation decreased after two fruits per day. Neither DNA base excision nor nucleotide excision repair was influenced by kiwifruit consumption. Malondialdehyde was not affected, but plasma triglycerides decreased. Whole blood platelet aggregation was decreased by kiwifruit supplementation.

    Before you run to your local fruit store and buy their whole stock of golden kiwi, I just want to mention that there was no clear dose-dependent effect (cf. figure 1) in this or previous studies done by the same or other researchers.
    Figure 1: Effects of supplementation with one or two kiwis a day
    on glucose, cholesterol and triglycerides (data adapted from Brevik. 2011)

    In other words, eating an additional 100 kiwis a day, won't make you any healthier than eating one or two; and the additional fructose (over-)load may in fact turn against you, as the increases in blood glucose and the smaller decrease in triglycerides even with the consumption of only two kiwis shows (cf. figure 1). So, as "golden" and rich in phytochemicals Actinidia chinensis var. Hort 16A may be, as so often: moderation is key.