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

Can 5 Cups of Coffee Boost Testosterone to Estrogen Ratio in Overweight Men Transiently by Almost 200%? Plus: SHBG Its Own Receptor and Its Role in Prostate & Breast Cancer

Testosterone booster in men and estrogen amplifier in women? As if there were not already enough good reasons to get your daily dose of the 'kingly' brew ;-)
You would not have to be a diligent student of the SuppVersity to know: Coffee is a truly remarkable brew. Even mainstream media has gotten wind of the multitude of beneficial effects a moderate intake of the former drink of the kings and popes can have on your health and if it was not for the authors and newscasters blind reliance on whatever the press release guys are telling them, it would probably not even have been necessary for me to broach the beneficial effects coffee can have on your metabolic health and overall well-being in posts like "Coffee - 3 Cups a Day Keep Insulin at Bay", "Pre-Workout Caffeine: Fat Liberator, Substrate Modulator, Trans-Fatty Acid Eliminator & Performance Upregulator!" and many more.

So what is it this time? What else can coffee do for you?

I guess something only few people others than SuppVersity readers will be aware of is the fact that caffeine  and therefore coffee makes a nice testosterone booster (Beavon. 2008; study was discussed briefly as part of a longer post on June 20, 2012 an mentioned previous times in other posts) -- at least if you stick to moderate doses of ~300-400 mg before a workout. So, unless you are a newbie or missed the respective news, you should not be surprised that a recent study from the Harvard School of Public Health (Wedick. 2012), which had actually been designed mainly to investigate the effects of 5x 6-ounze cups caffeinated and decaffeinated coffee (both instant coffees; brand: Nestlé’s Taster’s Choice) on serum levels of sex hormone-binding globulin (SHBG), found that the consumption of both 'real' and 'fake' (=decaffeinated) instant coffee did lead to increases in total and free testosterone and profound decreases in estradiol (bound and free).
Figure 1: Levels of SHBG, testosterone, free testosterone, estradiol, free estrogen, the testosterone to estrogen ratio and DHEA in the male participants of the study expressed relative to a caffeine abstinent control group (based on Wedick. 2012)
As the data in figure 1 goes to show these changes were unfortunately transient and the impressive +189% increase in the testosterone to estrogen ratio which occurred during the first month of treatment totally disappeared within the next four weeks. On the other hand, the effects on SHBG the scientists had expected based on the assumption that both SHBG and caffeine intake have been found to be associated with lower risk of type II diabetes in large epidemiological studies, was non-existent in the first and second 4 weeks of the study... at least in the male subjects who were all overweight, nonsmokers and habitually coffee consumers, who had been required to abstain from caffeine intake for at least 2 weeks before the study was conducted.
Figure 2: Levels of SHBG, testosterone, free testosterone, estradiol, free estrogen, the testosterone to estrogen ratio and DHEA in the female participants of the study expressed relative to a caffeine abstinent control group (based on Wedick. 2012)
If you take a look at the data from the female participants (likewise overweight non-smokers, habitual caffeine consumers and, at the beginning of the study, 'dried out'; see figure 2), a different image emerges, in the women we do in fact see a transient rise in SHBG, which goes hand in hand with a decrease in testosterone, de to which the T/E ratio drops by -36% and -54% in the groups drinking caffeinated and noncaffeinated coffee respectively. Just as in their male counterparts, the levels did go back up in the second part of the study so that all values, including the SHBG levels were back in to normal after 8 weeks (please note changes in the 20% range are irrelevant and could be due to having a meal before the test, bad sleep, whatever).

The relative data tells only part of the story

Figure 4: Absolute values of the testosterone to estrogen ratio after 4 and 8 weeks; baseline levels were 16.2, 15.8, 18.2 in the caffeinated coffee, decaffeinated coffee and control group respectively. The data clearly shows: Coffee needs a PCT ;-)
If we do now take a closer look at the actual data and discard the comparison to the control group the scientists the picture becomes even more complex. After all the data in figure 4 clearly indicates that we are dealing with a combined effect here. It is correct that the ingestion of the caffeinated beverage had pronounced effects on the T/E ratio especially in the male participants, what the data in figure 1 does yet not tell you is the fact that this effect was also so pronounced, because simply stopping to drink caffeine reduced the T/E ratio from 18.1 to 8.4, i.e. by 54%(!).

Now this certainly reduces the effect size, but it does not totally negate the effect. After all the 'real' coffee drinkers (w/ caffeine) did still increase their T/E ratio from 16.2 to 24.2 -- a certainly likewise noteworthy increase of +29% that is however still far away from the exorbitant +189% increase compared to the poor guys who did not just lose their coffee, but also their virility.

So what does this tell use?

How cares about SHBG anyways? You should! After all there is relatively conclusive evidence that normal (not exorbitantly high!) SHGB levels have a protective effect against breast cancer in women and mechanistic evidence that they increase the risk of prostate cancer in men. In both cases SHBG acts independently via the largely ignored SHBG receptor that modulates the action of estrogens. Co-activation of SHBG and estrogen receptor in the prostate induces similar effect on prostate specific antigen secretion as DHT (Nakhla. 1997). Since estrogen alone does not have this effect, it is no wonder that stinging nettle root (Urtica dioica), with its SHGB inhibiting effect is a viable tool in the treatment of benign prostatic hyperplasia (Hryb. 1995). In the female breast, on the other hand, SHBG seems to " trigger a 'biologic' anti-estrogenic pathway" (Fortunati. 1999) and does therefore exert anti-instead of pro-carcinogenic effects.
I guess there are more than just the following three lessons to learn from this study, but at the moment these appear to be the most important ones for me:
  1. The beneficial effects habitual coffee intake has on type II diabetes risk are, contrary to the scientists hypothesis, not mediated by its effect on SHBG.
  2. In overweight men caffeine has a very shortlived beneficial effect on testosterone and the testosterone to estrogen ratio. After 4 weeks the levels do yet return to baseline, so this cannot explain the long-term benefits of habitual caffeine consumption either (maybe you should cycle caffeine instead of testosterone booster < I am just kidding ;-).
  3. In overweight women, there is a similar, yet negative effect on testosterone levels, which is likewise transient and lasts less than 8 weeks. 
  4. The caffeine ads to the 'pro-testosterone' effects, but even decaffeinated coffee has some effects.
  5. Stopping "cold turkey" is not a good idea, when you are "on caffeine"
Now, what is important here is that we are dealing with overweight individuals, in whom the endocrine millieu is usually off. In particular, men tend to have reduced, women tend to have increased androgen levels (think PCOS). The effects we see after short-term withdrawal and the subsequent consumption of a non-negligible amount of 5 cups of coffee everyday could actually have corrective effects on the endocrine milieu, of which both, men and women could benefit, if they would last for more than 4-6 weeks. The detrimental effects of stopping, on the other hand, could be due to the sudden absence of the benefits of caffeine.

Regardless of whether you stop or start drinking coffeine, the endocrine "disturbances" are relatively short-lived and only further testimony to the fact that our bodies will always try to find a new "steady state" in what they consider normal.

Bottom line: There are a myriad of good reasons to drink coffee, getting more manly or more feminine is yet not one of them. Disappointed? Well, on the other hand this means coffee is no endocrine disruptor - and at least in this overweight population it seems to have a marginally beneficial baseline effects (thus the detrimental effects of abstinence).

References:
  • Beaven CM, Hopkins WG, Hansen KT, Wood MR, Cronin JB, Lowe TE. Dose effect of caffeine on testosterone and cortisol responses to resistance exercise. Int J Sport Nutr Exerc Metab. 2008 Apr;18(2):131-41. 
  • Fortunati N, Becchis M, Catalano MG, Comba A, Ferrera P, Raineri M, Berta L, Frairia R. Sex hormone-binding globulin, its membrane receptor, and breast cancer: a new approach to the modulation of estradiol action in neoplastic cells. J Steroid Biochem Mol Biol. 1999 Apr-Jun;69(1-6):473-9.
  • Hryb DJ, Khan MS, Romas NA, Rosner W. The effect of extracts of the roots of the stinging nettle (Urtica dioica) on the interaction of SHBG with its receptor on human prostatic membranes. Planta Med. 1995 Feb;61(1):31-2.
  • Nakhla AM, Romas NA, Rosner W. Estradiol activates the prostate androgen receptor and prostate-specific antigen secretion through the intermediacy of sex hormone-binding globulin. J Biol Chem. 1997 Mar 14;272(11):6838-41.
  • Wedick NM, Mantzoros CS, Ding EL, Brennan AM, Rosner B, Rimm EB, Hu FB, van Dam RM. The effects of caffeinated and decaffeinated coffee on sex hormone-binding globulin and endogenous sex hormone levels: a randomized controlled trial. Nutr J. 2012 Oct 19;11(1):86.

Serum & Intramuscular Testosterone, DHT and Androgen Receptor Response to High vs. Low Volume Training

Another set for another ng of testosterone? Does it work that way and is it worth it - not just on paper, but in terms of real gains?
I know that we don't know! And among the many things we don't know the influence of the post-workout elevation in the long-thought "anabolic" hormones testosterone, growth hormone, and co. is unquestionably one of my personal favorites. You've read about it, here at the SuppVersity many times and I got to tell you in advance that the absence of convincing evidence for / against its importance will become a problem in the bottom line of today's SuppVersity article dealing with the intriguing results of an experiment that has been conducted by Lukas J. Farbiak as part of his Honors Thesis (Farbiak. 2013).

"Effects of Lower- and Higher-Volume Resistance Exercise on Serum Total and Free Testosterone, Skeletal Muscle Testosterone and Dihydrotestosterone Content, and Skeletal Muscle Androgen Receptor mRNA Expression and Protein Content"

That's quite a title for a thesis right? Well, one thing's for sure: Having the words, "high, "low", "training volume", "resistance exercise", "total and free testosterone", "dihydrotestostereone", etc. all in the headline is certainly an advantage when it comes to findability of a paper - or in this case - a thesis in a database. And in fact, it was really the title of the 91 page piece that has caught my eye, a couple of days ago - what peaked my interest, though were the research hypotheses Farbiak, whose thesis was by the way overseen by Darryn Willoughby, formulated:
  • H1 : Following the HV [high volume] exercise bout involving both upper- and lower-body resistance exercise, a significant increase in serum testosterone will occur compared to the LV [low volume] exercise bout only involving lower-body resistance exercise. 
  • H2 : Following the HV exercise bout involving both upper- and lower-body resistance exercise, a significant increase in muscle testosterone and DHT content will occur compared to the LV exercise bout only involving lower-body resistance exercise. 
  • H3 : Following the HV exercise bout involving both upper- and lower-body resistance exercise, a significant increase in AR mRNA expression and protein content will occur compared to the LV exercise bout only involving lower-body resistance exercise.
I took the liberty of highlighting three things in Farbiak's hypotheses, which tell you why you want to know the outcome of the study, even if the current "state of the research" questions the significance of exercise-induced elevations of androgens in terms of their ability to elicit muscle growth.

What's special, here, is that we are not measuring serum levels exclusively, but get a much more detailed picture of the endocrine response to high vs. medium volume training.

Why would the internal androgen levels differ from those outside of the cell? The notion that this could and in fact is the case did not arise before Hammes et al. discovered that contrary to the previously heralded position that says that only free testosterone levels would matter and that the latter would be able to enter the cells via passive diffusion, the entrance of testosterone into the cell is actually governed by (attention please) megalin, a low density lipoprotein receptor (LDR) related  protein. According to Hammes, SHBG can bind to megalin can internalize the SHBG + androgen pair into the cytoplasm, where the binding globulin is degraded and the steroid will be released to the cellular environment.It goes without saying that this changes the interpretation of previous data and provides a whole new perspective on the androgen - muscle interaction with the formerly "passive" bound testosterone suddenly having the ability to promote hypertrophy.
In this context the relation of free androgens, androgen receptor expression and the presence and concentration of intra-muscular may well provide first insights into why previous studies, which have predominantly relied on the determination of serum levels without even checking,
  • whether there were enough receptors to (this is an oversimplification) transduct the anabolic signal of workout induced increases in testosterone to the muscle cells, and
  • to which extent the changes in extra-cellular androgen levels correlate with the amount of testosterone and DHT that's actually in the muscle.
Now that I have your full attention let's take a look at what kind of workout program we are dealing with in the study at hand, for which the researchers recruited 10 "apparently healthy resistance trained  [regular,  consistent  resistance  training (i.e. thrice weekly) for  at least 1 year prior to the onset of the study], men between the ages of 18-30" (Farbiak. 2013).
"In a randomized, cross-over design, participants visited the laboratory on 5 separate occasions in the following manner: visit 1 = entry/familiarization session, visit 2 = testing/resistance exercise session 1, visit 3 = 24 hour follow-up for session 1, visit 4 = testing/resistance exercise session 2, visit 5 = 24 hour follow-up for session 2. Relative to the testing sessions (visits 2 & 4), participants performed a resistance exercise session involving the knee extension exercise on two occasions separated by one week. One session constituted the control session and was preceded by rest and the other was preceded by the experimental session and preceded by a bout of high-volume, moderate-intensity upper-body resistance exercise using short rest periods." (Farbiak. 2013).
The dependent variables, i.e. serum free and total testosterone, intra-muscular testosterone, DHT and  AR  receptor mRNA, as well as protein expression were determined on all, but the initial entry/familiarization visit.

The workout itself (remember this is not a chronic resistance training study, as the one by West et al. (2012) which is - at least to my knowledge unique wrt to the real-world relevance of the data; learn more) consisted of
  • LV - low volume: 5 sets of 5-RM (90%-95% 1-RM) of the bilateral knee extension exercise with 3 minutes of rest between sets.
  • HV - high volume: Upper-body resistance exercise protocol of 4 sets of 10-RM each of the bench press, seated row, and overhead shoulder press exercises immediately prior to the knee extension protocol
  • the initial load was set at 80% of the 1-RM for each participant. 
  • if muscle fatigue/failure occurred during a set, a spotter provided assistance until the participant completed the remaining repetitions and resistance was reduced for subsequent sets
In all cases, 2 minutes of rest separated sets and exercises. All training sessions were conducted in
the Baylor Laboratories for Exercise Science & Technology (BLEST) and supervised by study personnel.
Figure 1: Sum total and free testosterone in response to high and low volume training (Farbiak. 2013)
Now, the data in figure 1 actually mirrors what we already know: The overall serum response to high volume training is more pronounced that that to playing around on a leg extension machine (which happens to be the favorite benchmark for the / I repeat myself / likewise not very useful studies on PWO protein synthesis).
"Several studies have shown that acute resistance exercise bouts elicit a testosterone response (Kraemer. 1990; Kraemer, Gordon et al., 1991; Kraemer, Hakkinen et al., 1999; Spiering, Kraemer. 2008; Roberts. 2009). Such exercise bouts shown to elicit a testosterone response need to consist of a high intensity (load) (85%-95%) of one repetition max and meet a minimum threshold, and moderate to high volume (set x number of reps x intensity). Exercises that utilize large muscle groups (i.e. power clean, squats, and dead lifts) as well as performing exercises involving large muscle groups first, with short rest periods (30-60 sec) have shown to elicit the greatest response (Kraemer, Marchitelli et al., 1990; Spiering, Kraemer et al., 2008; Vingren, Kraemer et al., 2010). [...] It is known that the testosterone response resistance exercise is highly variable (Kraemer, 1988). Thus, it is possible that after multiple years of resistance training, the initial phasic response of the hypothalamus gonadal axis (aka. testosterone axis) response elicited by resistance exercise bout un trained individuals has become blunted from habitual resistance exercise. However, it is necessary that further research be conducted to elucidate why this blunted response occurs." (Farbiak. 2013; my emphasis of the key points)
As far as the differential response of free and total testosterone is concerned the tendency for both to go hand in hand has been observed in previous studies, as well (Durand. 2003; Kraemer. 1990; Kraemer. 1991; Kraemer. 1999; Spiering. 2008; Roberts. 2009). What's "new" or let's say something we have much less reliable data on are the changes that take place within the muscle (see figure 2)
Figure 2: Intra-muscular androgen & -receptor mRNA & protein expression (Farbiak. 2013)
Interestingly, enough those potentially far more relevant changes take place on a very different time-scale. While we do see the touted increases in serum testosterone in the immediate vicinity of the workout, the corresponding intra-muscular levels are actually declining from pre to post (red vs. blue bars). As Farbiak points out, these changes were yet statistically non-significant and to thus correspond to previous results presented by Vingren & Kraemer et  al. in 2008 (Kraemer. 2008). The same goes for the DHT response that did not make it past the p > 0.05 mark of statistical significance (FYI: this means the chance that this is just a statistical artifice is >5% and thus "not significant").

As far as the androgen receptor mRNA expression is concerned a often-cited (also by me, here at the SuppVersity) by Kraemer et al. observed a reduction in response to a single bout of resistance exercise, (Kraemer. 2010). The latter does actually conflict with in-vitro studies that suggested that the presence of higher testosterone levels would lead to an increased expression of androgen receptor mRNA and proteins - an observation of which Farbiak points out that it does not only stand in line with a previous study by Willoughby  and  Taylor (Willoughby. 2004) who observed a
"+35% and +43% increases in AR mRNA expression 48 hours after the first and third resistance exercise bouts, with a peak increase of 68% in AR mRNA expression occurring 48 hours after the second resistance exercise bout within the resistance exercise group" (Farbriak. 2013)
which was ascribed to corresponding increases in serum testosterone levels. In view of the fact that the latter were absent in Farbiak's subjects, it is not surprising that the existing increases in AR receptor mRNA in the study at hand did not reach statistical significance. Similarly, Farbiak was not able to show significant alterations in androgen receptor protein content in response to either LV or HV bouts of resistance exercise, which leaves us with pretty much of a null result and raises the question...

What do we make of this null result?

I guess the first thing would be to take a look at the underlying "mathematical" reason for the non-significance of the results... standard deviations - HUGE standard deviations, indeed. So huge that I initially thought that this must be a mistake, I mean if you have a mean pre-testosterone level of 43.59 ng/dl and a standard devition of 43.03 ng/dl, i.e. 99%, what can you expect? Now this is an extreme example, but in view of the relative small number of participants it should suffice to tell you that - maybe - we should not focus that much on statistical significance, here?

Suggested read: "Advanced Trainees Benefit from Increased Training Volume! Greater & Steadier Strength Gains with 8 Sets of Squats. Plus: Over 6 Weeks, 1 Set and 4 Sets Equally (In-)Effective." If higher volume begets higher T-responses and the latter is blunted in advanced trainees, it would appear logical that they benefit from doing more (learn more)
Schoenfeld mentioned similar effects in a whole host of pertintent studies in his excellent review of the literature on the effects of the exercise induced hormonal changes on muscle hypertrophy (I mentioned this review before, e.g. March 2, 2013; March 4, 2013). So it could simply be inter-individual variability that skewed the results. If that was the case, it is however unlikely to assume a dose-response relationship between any (serum or intramuscular) changes in androgens / androgen receptor expression and skeletal muscle hypertrophy - I mean that would imply much more pronounced differences in muscle growth in response to a workout than the real world results do indicate.

Another factor that may have influenced the results is the high training experience (>8 years) of the participants in the Farbiak study, if the initially cited hypothesis that the androgen response to exercise declines in experienced athletes turns out to be true, the non-significance of the endo- and paracrine hormonal response in the study at hand could well be "normal" and no anomaly. And if that was the case, it would suggest that the changes that were observed in previous studies, many of which were conducted on rookies, do matter - at least to a certain degree.

To use this as the only explanation for the (comparatively) exorbitant gains training noobs experience once they pick up their first dumb- and barbells would yet be shortsighted. To add it as yet one of the many confounding factors, on the other hand, would make perfect sense, as it would stand in line with the (comparably) short-term detrimental effects chronic resistance training without off-times has on the protein synthetic mTOR response to exercise (learn more about exercise induced "mTOR resistance").

Bottom line: To sum it up, while we do now have another puzzle piece, it looks as if it only made us realize that our 1,000 piece puzzle is in fact a 10,000 piece puzzle and that it will probably require more than just a handful of follow up study to investigate the numerous factors "such as age, time of day [not all trainees trained at the same time, so the circadian rhythm may be an issue, in the study at hand], and training experience" (Farbiak. 2013) of which Farbiak speculates in the discussion of his honors thesis that they may account for the observed discrepancies and inconsistencies in testosterone response to acute resistance exercise... ah, and once we've done that, we would need more studies like the one by West et al. (2012) to see the real world implications. I guess, we better issue a bond to get those finance, right?

References:
  • Farbiak, LJ. Effects of Lower- and Higher-Volume Resistance Exercise on Serum Total and Free Testosterone, Skeletal Muscle Testosterone and Dihydrotestosterone Content, and Skeletal Muscle Androgen Receptor mRNA Expression and Protein Content. A Thesis Submitted to the Faculty of Baylor University In Partial Fulfillment of the Requirements for the Honors Program. May 2013.
  • Durand RJ, Castracane VD, Hollander DB, Tryniecki JL, Bamman MM, O'Neal S, Hebert EP, Kraemer RR. Hormonal responses from concentric and eccentric muscle contractions. Med Sci Sports Exerc. 2003 Jun;35(6):937-43.
  • Hammes A, Andreassen TK, Spoelgen R, Raila J, Hubner N, Schulz H, Metzger J, Schweigert FJ, Luppa PB, Nykjaer A, Willnow TE. Role of endocytosis in cellular uptake of sex steroids. Cell. 2005 Sep 9;122(5):751-62. 
  • Kraemer WJ, Marchitelli L, Gordon SE, Harman E, Dziados JE, Mello R, Frykman P, McCurry D, Fleck SJ. Hormonal and growth factor responses to heavy resistance exercise protocols. J Appl Physiol. 1990 Oct;69(4):1442-50.
  • Kraemer WJ, Gordon SE, Fleck SJ, Marchitelli LJ, Mello R, Dziados JE, Friedl K, Harman E, Maresh C, Fry AC. Endogenous anabolic hormonal and growth factor responses to heavy resistance exercise in males and females. Int J Sports Med. 1991 Apr;12(2):228-35.
  • Kraemer WJ, Häkkinen K, Newton RU, Nindl BC, Volek JS, McCormick M, Gotshalk LA, Gordon SE, Fleck SJ, Campbell WW, Putukian M, Evans WJ. Effects of heavy-resistance training on hormonal response patterns in younger vs. older men. J Appl Physiol. 1999 Sep;87(3):982-92.
  • Kraemer WJ, Ratamess NA. Hormonal responses and adaptations to resistance exercise and training. Sports Med. 2005;35(4):339-61.
  • Roberts MD, Dalbo VJ, Hassell SE, Kerksick CM. The expression of androgen-regulated genes before and after a resistance exercise bout in younger and older men. J Strength Cond Res. 2009 Jul;23(4):1060-7. 
  • Schoenfeld BJ. Postexercise hypertrophic adaptations: a reexamination of the hormone hypothesis and its applicability to resistance training program design. J Strength Cond Res. 2013 Jun;27(6):1720-30.
  • Spiering BA, Kraemer WJ, Anderson JM, Armstrong LE, Nindl BC, Volek JS, Maresh CM. Resistance exercise biology: manipulation of resistance exercise programme variables determines the responses of cellular and molecular signalling pathways. Sports Med. 2008;38(7):527-40.
  • Spiering BA, Kraemer WJ, Vingren JL, Ratamess NA, Anderson JM, Armstrong LE, Nindl BC, Volek JS, Häkkinen K, Maresh CM. Elevated endogenous testosterone concentrations potentiate muscle androgen receptor responses to resistance exercise. J Steroid Biochem Mol Biol. 2009 Apr;114(3-5):195-9.
  • West DW, Phillips SM. Associations of exercise-induced hormone profiles and gains in strength and hypertrophy in a large cohort after weight training. Eur J Appl Physiol. 2012 Jul;112(7):2693-702.
  • Willoughby DS, Taylor L. Effects of sequential bouts of resistance exercise on androgen receptor expression. Med Sci Sports Exerc. 2004 Sep;36(9):1499-506.

    Intermittent Thoughts: Dihydrotestosterone (DHT) - Bigger, Stronger, Faster or just Balder, Fatter and Unhealthier?

    Image 1: The ancient Greek ideal of the male body has probably more to do with DHT than the freaky physiques of today's IFBB Pro bodybuilders.
    I guess after the revelations about the importance of estrogen in the process of skeletal muscle hypertrophy in the last installment of the Intermittent Thoughts you will probably be eager to hear what its male counterpart dihydrotestosterone (DHT), is able to do... I mean, with DHT being the male hormone par excellence it is only reasonable to assume that its effects on skeletal muscle mass and strength, two characteristic features of the male persuasion, must be significant, right? Before we are going to address this vitally important questions, let's briefly take a look at what the dihydrotestosterone actually is.

    DHT the hormone to which testosterone is just another prohormone

    Similar to estrogen, DHT (exact name 17β-hydroxy-5α-androstan-3-one) is a testosterone metabolite. The process by which your body (male and female, btw.) generates this powerful androgen, the receptor-affinity of which is about 3x-10x higher than that of testosterone (depending on which source you cite and which assay the researchers used; for more detailed data on receptor binding, check out my previous blogpost "Beyond Vida's Book") is called 5-alpha reductase (5-ar). In the course of the "reduction" process one of hitherto three identified mammalian isoforms of the 5-alpha reductase enzyme (3-oxo-steroid-4-ene dehydrogenase). Of these three isoforms, which catalyze the reduction process, type III (predominantly) and type I (to a lesser extend) are expressed in human skeletal muscle (cf. Yarrow. 2011)...
    Illustration 1: (1) Testosterone (either preformed or locally formed from DHEA) arrives at the target tissue, (2) is reduced to DHT by one out of three locally expressed reductase enzymes and (3) either acts intracrine, i.e. right inside the cell, where it was formed or is released into circulation.
    I do not want to lose myself in too many details at this point, but a rough grasp of the local reduction of testosterone and the subsequent intracrine (meaning right where the hormone is created, cf. illustration 1) effects of DHT is of paramount importance to understand some of the initially counter-intuitive effects of DHT, you are going to read about in the following paragraphs.

    "DHT makes you strong bro!" - correct!

    At least for those of you who have been on some of the bulletin boards, where people discuss the effects of various androgenic compounds, the first statements that pop into your mind, when you hear the three letters D, H and T, could be "brutal strength gains", "hit new personal records on each lift" or "doubled my bench within 2 weeks". And although I suppose that statements such as the latter lack any empirical basis, the broscientitific evidence that DHT and DHT-like designer steroids exert profound effects on muscle strength cannot be denied.

    In this context, the results of a 2010 study from the Biomedical and Clinical Sciences Research Institute at the School of Medicine, Health Policy and Practice of the University of East Anglia in Norwich, UK, is of particular significance (Hamdi. 2010). Using isolated extensor digitorum longus (EDL, a mainly fast twitch muscle in adult mice) and extensor digitorum longus (EDL, a mainly fast twitch muscle in adult mice) muscles from male and female mice, M.M. Hamdi and G. Mutungi established that the strength promoting effects of DHT are mediated mainly via the ERK, i.e. the extracellular signal-regulating kinase (also known as MAPK), pathway and thusly in a non-androgen receptor mediated way.
    Figure 1: Maximal isometric force production in slow an fast twitch fibers after incubation with 630pg/ml DHT; data expressed relative to initial isometric force production P0 (data calculated based on Hamdi. 2010)
    As the data in figure 1 goes to show, incubation of isolated rat myofibers with 630pg/ml androstanolone (17β-hydroxy-5α-androstan-3-one, DHT) increased the isometric force (P0 = 100%) of the fast twitch muscle fibers in the EDL from both male and female mice by ~30%. If we take a look at the SuppVersity's Motto  "Where Bro- and Pro-Science Meet in the Spirit of True Wisdom", this is thusly one of the (as of late rare) occasions, where bro- and pro-science actually "meet", not "clash", in the "Spirit of True Wisdom".

    DHT works via the MAPK pathway and not via the androgen receptor

    Without the "pro"-aspect of science we would yet not know that it this is neither a androgen receptor mediated action (as the use of a DHT-inhibitor did not block the effects) nor a downstream effect of IGF-1 (the inhibition of which by co-incubation with an IGR-R inhibitor left the effects similarly unchanged), but a direct effect of the DHT induced increase in ERK-1/2 phosphorylation and the subsequent accumulation of myosin light chain in the DHT treated rodent muscle:
    Our hypothesis is that DHT activates the epidermal growth factor receptor (EGFR), either directly or indirectly, and this leads to an increase in the phosphorylation of ERK1/2. The activated ERK1/2 then phosphorylates MLCK which in turn phosphorylates the 20 kDa RMLCs and this increases force production in fast twitch fibres but decreases it in slow twitch fibres. (Hamdi. 2010)
    In that, it is not really important that you understand all the intermediate steps which eventually lead to the increase in force production. What is important though is the hypothesis that the changes, you are seeing in figure 2 are not mediated via the androgen receptor, which were equally distributed in both the slow- and fast-twitch fibers in the study at hand - this is particularly noteworthy, because after all DHT is the androgen per se.

    Figure 2: Changes (a.u.) in phosphorylated ERK-1/2 and myosin light chain content of slow twitch and fast twitch muscle fiber treated with either DHT or testosterone propionate; * p < 0.05 (data calculated based on Hamdi. 2010)
    The experiments also revealed that, despite the increase in p-ERK-1/2 in the slow-twitch muscle fibers, testosterone treatment did not induce similar changes in myosin light chain content like DHT. In view of the fact that the scientists have used female DGL and soleus muscle fibers for this experiment to minimize the local reduction of DHT to testosterone and isolate the effects of DHT, it should also be stated that the last-mentioned effects on slow-twitch fiber ERK-1/2 phosphorylation may well be a downstream effect of the aromatization of testosterone to estrogen (cf. "Estrogen: Friend or Foe of Skeletal Muscle Hypertrophy").

    Against that background it is actually quite astonishing that a series of rodent studies which were conducted by scientists from Japan (Aizawa. 2010; 2011) found statistically significant increases in intra-muscular DHT in response to an endurance type of exercise. If you add to that the results of a 2008 human study by Hawkins et al. (Hawkins. 2008), which found a similar increase in systemic DHT (and SHBG) levels in 102 sedentary men (ages 40-75 yr) who were randomly assigned to a 12-month aerobic exercise intervention, while DHT levels did not budge in a 2008 study by Vingren et al. (Vingren. 2008), which used a resistance training protocol, this raises the question whether our current understanding of the strength promoting intracrine effects of DHT is not only part of a larger picture, which would be characterized by distinct intra-, auto-, para- and endocrine effects of DHT on skeletal muscle and other exercise related physiological functions.

    The litmus test: Does DHT "build muscle"?

    The absence of increased levels of DHT in response to strength training as well as the fact that the increase in myosin light chain is at best "facilitative" to building bigger already suggest that, with respect to its "muscle-building effect", your most potent androgen is somewhat of a non-starter... let me give you a three of the rare examples, where scientists even dared to administer DHT to their study participants, to substantiate (not prove) this hypothesis:
    • in 1992, Marin et al. found that 3 months of transdermal DHT administration to middle-aged obese men increased muscle strength and diameter of type II muscle fibers, albeit to a lesser extent than
      testosterone administration
      (Marin. 1992);
       
    • in a 3 month trial using transdermal DHT Ly et al  found a reduction in body fat mass and improved isokinetic knee flexion strength of the dominant leg, but no improvements in lean body mass, knee extension strength, or shoulder flexion/extension strength in hypogonadal elderly men (Ly. 2001);
       
    • in 2010, Idan et al. conducted a trial on the effects of DHT administration on prostate growth in 114 healthy men over 50 and found neither beneficial nor negative effects on prostate growth (please understand that I will not address the prostate issue in detail, as it is not directly related to the topic at hand and would require a whole installment of its own) and a very modest increase in lean mass (2.4%) in response to 70mg DHT gel for 2 years (!)
    Now, if you take a look at these examples and compare that to what you know about the muscle-building effects of testosterone, it should be obvious why most "chemical athletes" (i.e. steroid users) take 5-ar inhibitors like finasteride when they are "on" high doses of testosterone. Since the latter will reduce the circulating levels of DHT by "only" 50% this practice allows them to keep any unwanted DHT-related androgenic side effects (which are going to occur when you reach supra-physiological DHT levels) at bay, while still having enough 5-alpha reductase activity to benefit from the highly appreciated effects on muscle strength.
    Note: Contrary to finasteride, which is highly selective for the type II isoform of the 5-ar enzyme, dustasteride, which has been found to reduce circulating DHT levels by >90% is a pan-5-ar inhibitor. It is thusly no wonder that 0.5mg/day of dustasteride prevented the increase in lean mass in female-to-male transsexuals who were treated with 1,000mg testosterone-undeconate for 54 weeks (Meriggiola. 2008).
    Although testosterone and not DHT appears to be the major hormonal driving force of actual increases in muscular size (not strength!), the results of the Meriggiola study, where the total (>90%) blockade of all three of the 5-ar isoforms by dustasteride (see red box, above) inhibited the muscle-building effects of 1,000mg testosterone-undeconate clearly suggest that the reduction of at least small amounts of testosterone to dihydrotestosterone is a necessary prerequisite for the testosterone-induced increases in lean muscle mass. Whether a critical threshold as for circulating DHT levels exists, or whether it was the dustasteride induced blockade of the local reduction of testosterone to DHT by 5-ar type III right in the skeletal muscle that was responsible for this effect will yet have to be established in future studies.

    High serum DHT = lower chance of alopecia! High local 5-ar = hair loss, though.

    Image 2: Is your hair line receding? Could be DHT, but local not systemic! In young men high DHT levels correlate with full hair, in older men the local increase in 5-ar or the and the reduction in SHBG can elevate DHT beyond a healthy threshold.
    Now muscle is obviously not the only thing you want... and when it comes to DHT, hair, respectively the loss of the latter, obviously is the first thing that comes to mind. Notwithstanding that it is an established fact that bathing your hair follicles in excess amounts of dihydrotestosterone will eventually kill them, you may be surprised to hear that a 1992 paper by Knussmann et al. (Knussmann. 1992) showed that contrary to common believe the correlation between allopecia and serum DHT levels in the 110 healthy young men in their study is a negative one (r = -.25, p < 0.01). Yet although the same is true for total testosterone (r = -.25, p < 0.01), the correlation between the ratio of free / total testosterone (T_free/T_total) is positive and statistical significant (r = .02; p < 0.05)!

    Now, how can that be? Is it testosterone that is "shaving your head from within?" - well, in a way it is, but most probably due to its local conversion to DHT (I hope by now you understand, why I stressed this factor in the introduction). Contrary to bound testosterone, which cannot be reduced by the 5-ar reductase enzymes in your scalp, the free testosterone can and will thusly - as a prohormone - do its bit to the thinning of your hairline:
    [...] DHT in the hair follicle is thought to lead to hypoplasia of the scalp follicle, and a higher formation of testosterone metabolites was observed in the scalp of bald men as compared to hair obtained from nonbalding men. Yet we found a relationship, not between the disposition to balding and the ratio DHT/T, but between the diposition to balding and T_free/T_total. An elevated rate of dissociation from the binding globulin fits in well with the findings of Cipriani et al. (1983) that men with androgenic alopecia exhibit a significant reduction in sex hormone binding globulin (the same is true for bald-headed women). (Knussmann. 1992)
    The overall increase in both aromatization and 5-a reduction with age, as well as the tissue specific expression of those enzymes thusly explains why your men begin losing their hair, as they get older although their total androgen levels begin to decline. A similar pattern, i.e. decreased SHBG levels and consequently increases in local 5-a reduction are implicated in female androgenic alopecia, as well (De Villez. 1986).
    Note: If you want to judge your serum DHT levels by your body hair, the most prudent way to do so would be look at your legs. While the correlation (r = .16) Knussmann et al. found for DHT, alone, was not statistically significant, it was still the best indicator for "high" DHT levels.
    Now, if we assume you have full hair and your legs have some resemblance to those of a bear (an unrealiable indicative of "high" DHT levels), does that predispose you to an increase in visceral body fat, as some sources on the Internet would have it? I mean, designer steroids that are structurally related to DHT are not particularly known for their obesogenic effect. They rather seem help their (ab-)users to lean out pretty rapidly, so the last question I will address in this installment of the Intermittent Thoughts will be ...

    If testosterone helps you to lean out, will DHT make you fat?

    To answer that I want to go back to the study, I presented in Friday's SuppVersity post on how eccentric training is able to recruit mesenchymal stem cells for muscular repair / hypertrophy. From either this post or the discussion of the underlying mechanisms by which testosterone works its muscle building, fat burning magic (cf. "Understanding the Big T"), you should remember that those pluripotent stem cells are unfortunately capable of becoming fat cells, as well. Luckily, dihydrotestosterone, the "big brother" of the "big T" shares testosterones anti-differential effect on pre-adipocytes (Singh. 2003).
    Unfortunately, though, DHT does not prevent their proliferation (i.e. the generation of new pre-adipocytes; cf. Gupta. 2008). Instead, gene assays suggest that it stimulates all aspects of adipocyte metabolism, i.e. the beneficial ones like glycolosis (helps blood sugar management) and lipolysis (helps getting the fat out of the adipose tissue) and not (generally) beneficial ones as the production of fatty acids and triacylglyceroles, cell proliferation and differentiation (Bolduc. 2004).

    Whether there is an overall negative effect of "normal" DHT levels on visceral fat, as it is sometimes suggested (esp. in the "lay press" = Internet ;-) appears however questionable. After all, Vandenput et al. (Vandenput. 2007) have shown that not DHT, but rather androstane-3 α,17-β-diol-17-glucuronide (17G), one of its metabolites correlates with visceral adiposity in healthy young men (r = 0.16; p < 0.05).
    Figure 3: Correlation of the bioactive androgens (total and free testosterone and DHT) with DXA-measurements of body fat in different compartments; data obtained from n = 1068 young men (data adapted from Vandenput. 2007)

    Serum DHT levels, on the other hand, showed the strongest negative correlation with total body fat, total body fat (% total mass), arm fat, leg fat and trunk fat of all three measured androgens (cf. figure 3) and was a close second to total testosterone as far as its negative, i.e. diminishing, effects on central fat distribution is concerned (r = -0.07; p <0.05).
    Note: In view of the fact that, as of late, leptin has become a focus of attention even for the average person trying to lose weight, it might be of interest that there were statistically significant negative correlations (r = -0.23 and r = -0.25; young vs. elderly) in both study groups.
    Interestingly, things look somewhat different for the 1001 elderly study participants. The pattern that emerges here should remind you of the previously discussed allopecia issue. While there are still negative correlations for the total and relative amount of body fat in all compartments for serum DHT, there is a statistically yet not significant positive correlation between free testosterone and the central fat distribution in the elderly (mean age 75y) subjects that was not present in their young (mean age 19) counterparts. Moreover, the overall correlation between 17G and central obesity and the 17G/DHT ratio and central obesity raises from 0.08 and 0.20 (p < 0.05) in young men to 0.14 and 0.34 (p < 0.05) in elderly men.

    Lean, mean, strong... are these "all things male"?

    If we discard the important role of DHT in the brain, which would explain the "mean" (not necessarily defined as mean in aggressive, but rather as "alpha-male mean") in "lean, mean, strong" and expand "strong" to the established bone-building effects of DHT, which apparently surpass those of testosterone (eg. Capur. 1989), being as muscular as Mr. Olympia obviously is not one of the "things male". As, contrary to some of its synthetic cousins, the current research suggests that the original father of all androgens may be an indispensable bystander, when its precursor testosterone is blowing up your muscles, its immediate effects do yet appear to be restricted to strength and body composition.

    Collectively, this as well as the previous installments on testosterone (Part 1, Part 2, Part 3) and estrogen should have made it quite clear that even the ostensibly straight forward role of the sex steroids in the concert of skeletal muscle hypertophy is way more complex than the commonly accepted notion that "you just inject your weekly test and become Mr. O" would suggest. It is in fact so complex that I will devote the next installment of the Thoughts to revamp the main ideas and to try to connect the dots between mTOR, myostatin, IGF, inflammation, testosterone, estrogen, DHT and co...

    Chrysine: 5,7-dihydroxyflavone for Bigger Balls and Higher Serum Testosterone

    Polyphenols in general and flavonoids in particular are every supplement producer's favorite. Its so easy to pick up some exotic plant from somewhere deep down in the jungle, extract an exotic flavonoid, give it a fancy chemical looking name and provide some in-vitro data on his anti-oxidant omnipotence or whatever. In most cases the compounds disappear from the market within weeks, yet chrysine which is extracted from the Common Passion Flower, has been around for years. A recent study (Ciftcy. 2011) by Ciftci et al. provides further evidence that its market persistence may not be without a reason.

    Over the time course of the scientists fed a group of lab rats 50 mg/kg chrysin (human equivalent ~8mg/kg) or placebo for 60 days and found:
    that chrysin significantly increased GSH, CAT, GSH-Px and CuZn-SOD levels, but did not change the formation of TBARS significantly. In addition, sperm motility, sperm concentration and serum testosterone levels significantly increased, whereas abnormal sperm rate significantly decreased with chrysin treatment.
    In essence the improvement in antioxidant markers (vs. placebo) went hand in hand with a measurable increase in sperm health and serum testosterone.
    Figure 1: Testosterone levels of rats after 60 day intervention with 50mg/kg chrysin. (Ciftcy. 2011)
     "Great", well, maybe not so... although this is an almost 50% increase in testosterone, we do not know how other important hormonal parameters such as SHBG (binds testosterone and thus renders it basically useless), estrogen or cortisol looked like. An estimation of the "muscle building effects", the producers of respective supplements are advertising, is thus futile. And, if you asked my opinion, even if SHBG did not budge and we have an appropriate increase in free testosterone, the latter is probably too little to induce noticeable changes in strength and/or body composition.

    Chamois Creme Potential Reason for Elevated Estrogen in Cyclists +Triathletes Have 2x More Testosterone Than Average Men and 71% More Than Active Individuals

    Image 1: Norman Stadler 2004 winner of the Ironman Hawaii probably had a hell of a testosterone boost, when this photo was taken (img. Kai Baumgartner. 2004)
    Disturbances of the endocrine (=hormonal) milieu are among the hall-mark features of what sport scientists call the "female athlete triad". The unholy trinity of osteoporosis, disordered eating and, as a direct consequence of the aforementioned hormonal imbalances, menstrual disorders. Men, the purportedly "stronger sex", on the other hand are supposedly pretty resistant to exercise-, or, I should say, overtraining-induced hormonal imbalances - bullshit? Well, probably... after all, with insufficient fuel and recovery everyone, man or woman will eventually maneuver him- or herself into a situation where his endocrine system is no longer functioning optimally. A recent study from UCLA does yet show that mother nature must have been aware that a) exercise is part of what the "hunters" (=us men ;-) do and that b) men are in the lucky position not to have carry a child full term - so, as long as they are we are not sick, there is no reason for mother nature to shut our reproductive system down completely.

    What's worse? Cycling, or swimming, cycling and running?

    To test the hypothesis that "serious leisure time athletes", in this case cyclists (>8h of intense training per week) and triathletes (>5h of intense training per week), are at much greater risk of developing training-related hormonal disturbances than the average "recreational athlete" who performs less than 3.5h of moderate exercise per week, L.Z. Fitzgerald and his colleagues from the School of Nursing at UCLA assessed the body composition, physical activity and hormonal and inflammatory markers of 107 healthy men (age 18-60 years).
    Figure 1: Demographic and physical variables of the cyclists (n=46), triathletes (n=16) and recreational athletes (n=45) of which I believe that they me independent (caffeine, age) and dependent (body fat, lean body mass) confounding factors data expressed relative to the statistical average; calculated based on Fitzgerald. 2012
    In figure 1, I have compiled a few of the demographic and physiological parameters of the the three study groups of which I believe that they may be confounding factors that may - independent of the type of exercise these men were doing - contribute to differences in the endocrine parameters between the highly active cyclists and triathletes and the moderately active recreational trainees. Of these, the higher age, which is obviously associated with a decline in testosterone levels, and the significantly higher caffeine intake in the cyclists (with 317.3mg/day this is well within the regions where it boosts testosterone, though; cf. Beavan. 2011) are independent, while both the amount of body fat (more = more aromatization = more estrogen and less testosterone), as well as the total lean mass the athletes are carrying around are obviously influenced by the type and amount of exercise they perform.
    Figure 2: Estradiol, testosterone, SHBG, luteinizing hormone (LH) and follicle stimulating hormone (FSH) expressed relative to data from a reference cohort I "borrowed" from Brambilla et al. (2009); calculation based on Fitzgerald. 2012
    Apropos, as you can see in figure 2 we do once again have one of my favorite (roughly!) bell-shaped dose-response curves (orange line), with the highest exercise load (cyclists - more than 8h of training per week) producing the most unfavorable testosterone to estrogen ratio, a pronounced peak that is associated with the medium to high volume, high intensity approach of the triathletes (>5h) and a slightly above average testosterone to estrogen ratio in the group of recreationally active men.

    If you cherish your manhood, man up and don't use chamois cream

    A closer analysis of the individual hormone levels does yet reveal a pretty awkward phenomenon: In spite of having the lowest luteinizing hormone levels of all three groups (-56% below "my" reference, i.e. Brambilla. 2009) and an exorbitant amount of estrogen (+113% more than "my" reference) they also have the highest amount of testosterone in their blood. And while I am usually smart-assing scientists for following mainstream paradigms and not following up interesting / surprising results, this is one of the rare cases, where I really have to take my hat off to Mr. Fitzgerald and his colleagues, because I would never have thought of the somewhat shocking explanation the guys came up with:
    Some cyclists apply chamois cream to their perineum area to help prevent chafing and bacterial infections related to bicycle saddle sores. The various commercial creams contain a variety of ingredients including lubricants, polymers, oils (jojoba, lanolin, mineral, olive, peppermint, rosewood, soybean, tea tree, St John’s wort), vitamins (A, C, D, E), and alcohols. Additionally, some of these creams contain parabens which are anti-microbial preservatives, but also weak estrogen agonists (Frederiksenet. 2011). In vitro studies demonstrate that parabens bind to estrogen receptors and initiate estrogenic cellular path-ways (Darbre. 2004).
    And in fact, a follow up questionnaire confirmed the scientists' suspicion. While only 10% of the triathletes, who obviously cycle as well, used paraben-containing chamois cream roughly 50% of the cyclists applied them regularly to their best parts - with shocking side-effects:
    Among the cyclists, there was a significant dose-dependent increase in estradiol levels with increasing years of chamois cream use for men using the cream for more than 4 years (p = 0.03) with notable effect size (partial n² =0.12).
    If we briefly discard the high estrogen levels in the cyclists and take an objective look at what conventional wisdom tells us about the detrimental effects of high intensity endurance exercise in general and the arduous combination of swimming, cycling and running, also known as triathlon, this study does still provide enough evidence to cause another of our broscientific myths to totter...

    ...high intensity endurance exercise does not per se reduce testosterone levels!

    Image 2: I wonder if there is a "don't use if you don't want to castrate yourself" warning anywhere on this tub of chamois crème.
    At least in the study at hand, both triathlon training and cycling even at doses of >1h per day was associated with statistically significantly higher testosterone levels, statistically identical cortisol levels (cyclists: 309µg/dL; triathletes: 292µg/dL; recreational athletes: 376µg/dL) and - as if that was not beneficial enough - significantly reduced baseline interleukin 6 levels (-50% in cyclists; -74% in triathletes)... if future controlled studies are able to confirm these preliminary results, this would not only confirm the initial hypothesis that the male hormonal milieu is much more resilient than its female counterpart, it would also put a huge question mark beyond the underlying hypothalamic adaptation processes and the dose-response relationship - after all, these results to not contradict previous findings by Hackney et al., who did even coin a special term for the ultra-endurance exercise induced downregulation of the reproductive system: the "exercise hypogonadal male condition" (Hackney. 2008).

    True or False - High or Low Protein Intakes Have Profound Influence on Testosterone, SHBG, Estrogen, Cortisol & Co?

    We are what we eat! Acknowledged, but does this also go for your hormones and different in protein intakes? Let's have another look at the contemporarily available research to figure that out.
    In recent study in the International Journal of Sport Nutrition and Exercise Metabolism a group of researchers from the Faculty of Physical Education and Recreation at the University of Alberta reports: "Supplementing a typical daily food intake consisting of 0.8 g of protein·kg-1·d-1 with a whey protein isolate (an additional 0.8 or 1.6 g·kg-1·d-1) [...] had no effect on glucose, insulin, testosterone, cortisol, or growth hormone following the final meal" (Forbes. 2013).

    I know, anything else would have been a real shocker. What it wouldn't be, though, is a total surprise. If you dig through the available literature you can easily find data that would support the scientists' assumption that doing an experiment "to investigate the effects of a controlled typical one day diet supplemented with two different doses of whey protein isolate on blood amino acid profiles and hormonal concentrations following the final meal" (Forbes. 2013) would be a good idea.

    True or false? Certainly TRUE!

    No, I am not kidding you! We do have plenty of evidence of direct interactions between chronic high vs. low protein intake and the production and metabolism of hormones, like testosterone, cortisol, their corresponding binding proteins, SHGB and CBP, and a whole host of other molecules that act like hormones, although we often don't call them "hormones". Examples? Well, here you go:
    • Low protein = low SHBG (Longcope. 2000) - At least in the 1552 men in their "best age" (40-70 years) who participated in a study by scientsts from the University of Massachusetts Medical School the consumption of a diet that had less than the average 80g/day of protein in it lead to decreases in SHBG and corresponding increases in free (~bioavailable) testosterone. Age, dietary fiber, and smoking, on the other hand were positively correlated with SHBG.
    • Chronically high protein intakes (40% of total energy) lower testosterone / cortisol ratio (Oi. 2001) - The highly significant increase in cortisol and corresponding decrease in the testosterone to cortisol ratio, Oi et al. report in a 2001 paper have luckily (a) been observed in rodents, only, and that's actually the main finding of the study (b) could be countered by the administration of garlic extract.

      Figure 1: In rodents, a high protein intake (40% of total energy from casein) will increase cortisol at stable T-levels and thus decrease the testosterone : cortisol ratio (Oi. 2001)
      I can only speculate whether and to which degree the endocrine effects of high protein diets differ between rats and men (the Anderson study discussed below suggests they don't) - and you know I love facts and hate speculations and unsupported hypothesis. So I stick to an assumption I could support, i.e. the supposition that the improvements in testosterone, the researchers observed, when they fed their rodents garlic was mediated  by its glutathione (GSH) boosting effects. These effects - and you as a regular SuppVersity reader know that are not "garlic exclusive". Whey protein, for example will also increase GSH (Bounous. 1989). Obviously whey doesn't increase your testosterone, but a "protein overload" from a glutathione boosting protein source may not have to be countered by GSH boosters in the first place.
    • A high protein : carb ratio decreases total testosterone levels in man (Anderson. 1987) - Some people live by the principle that things that mustn't be. As a SuppVersity reader you obviously don't belong to this group of people and will thus be willing to accept that Anderson et al. were able to show that...
      "[...] the testosterone concentrations in seven normal men were consistently higher after ten days on a high carbohydrate diet (468 ± 34 ng/dl, mean ± S.E.) than during a high protein diet (371 ± 23 ng/d1, p<0.05) and were accompanied by parallel changes in sex hormone binding globulin (32.5 ± 2.8 nmol/1 vs. 23.4 ± 1.6 nmol/1 respectively, p<0.01)." (Anderson. 1987)
      As a SuppVersity reader you are yet also smart enough to know that this data is irrelevant, without adequately measured free testosterone levels: If we do the math and calculate the latter (obviously not 100% accurately), i.e. free testosterone on normal protein diet: 9.4 ng/dL  =  2.01 % vs. free testosterone on high protein + low carb diet: 9.02 ng/dL  =  2.43 %, the difference does no longer look so bad, anyway - does it?

      Figure 2: Total (TT in ng/dL) and free testosterone (FT in ng/dL), SHBG (µg/L) and testosterone : cotisol ratio after one months on high protein + low carb vs. control (Anderson. 1987)
      This would not change the fact that you'd suffered a -42% decrease of the testosterone : cortisol ratio from 60.5 to 35 which occurred in the Anderson study, when the participants were put on a meat, fish, poultry, egg white, and protein supplement based 44% protein, 35% carbohydrates, 21% fat diet.
    • A high protein very low calorie diet can increase testosterone levels, but it will do so only if it is used to produce significant weight loss in obese adolescents, whose abundant body fat stores are gnawing away their androgens. In a corresponding study by Brown et al., the eight 11-15-year-old boys and girls where put on liquid (starvation) diets with a protein / carb / fat ratio of 67% / 28% / 5% that containing a total of 492-709 kcal per day.
      Figure 3: Total testosterone levels (ng/dl; left axis) and insulin levels (in µU/ml) in 14 (subj. 3 & 7) and 18 year-old male adolescents before and after 5 weeks on low calorie high protein liquid diets (Brown. 1983)
      As you can see in Figure 3 the significant reduction in body weight (13.5 kg total, 70-75% fat) went hand in hand with improvements in insulin sensitivity and the previously mentioned increase in total testosterone levels in the 14 year-old subjects 3 & 7 and the 18 year-old male adolescents (subject 6) - the only subjects for whom a complete testosterone panel was available.
    • High protein diets are driving forces of GH induced skeletal muscle IGF-1 expression (Sanchez-Gomez. 1999) - With IGF-1 being equally important to men and women, it does not matter that the "subjects" in the study at hand were female growing rats that received either a high- or a low-protein diet with crude protein contents of 222 and 83 g/kg respectively.

      After 14 days on which the rodents were concamittantly injected with saline control, or growth hormone (rhGH) or recombinant human IGF-I (rhIGF-I) at dosages of 350 and 500µg/day, respectively, Sanchez-Gomes et al. observed that
      • Learn more about IGF-1.
        ...the low-protein diet alone reduced IGF-I concentrations in serum and in tissue taken from the gastrocnemius muscle as well as IGF-I mRNA from the same muscle, significantly.
      • ...the high protein diet amplified the retention of injected rhIGF-I in the muscle tissues and was associated with significant improvements of the nitrogen balance
      Based on these results, Myriam Sanchez-Gomez conclude that "the level of dietary protein ingested regulates not only the effect of IGF-I on whole-body N economy but also the regulation of IGF-I gene expression in muscles" (Myriam Sanchez-Gomez. 1999). 
    • Increased f 2-hydroxylation of endogenous estrogen with high protein diets could have cancer protective effects (Anderson. 1984) - Certainly far fetched but not impossible is the connection between the increased 2-hydroxylation of endogenous estrogen in response to high protein diets Anderson et al. observed in a 1984 study in male study participants and the significant association between lower ratios an the risk of breast cancer (Liehr. 1996).

      Table 1: Cox regression of energy-adjusted dietary predictors of breast cancer recurrence and death (Saxe. 1999)
      It goes without saying that this is nothing but a hypothesis - a hypothesis that would yet be supported by a 1999 paper on "dietary predictors of breast cancer recurrence and death" by Saxe et al. which is based on one of the few papers that did not control for "meat" intake (you know that Pizza Salami qualifies as "meat", right?) in which each 5% increase in protein intake was associated with risk reductions of 18% for breast cancer recurrence and 44% for death in premenopausal women (Saxe 1999).

      And what's more, the fact that the associations were less pronounced in the post-menopausal study participants (the "low estrogen counterpart", if you will; see Table 1) only support the notion that the protective effects of protein may (at least in part) be mediated by its effects on estrogen metabolism.
    Bottom line - Back to the Forbes study: In view of the conclusive evidence that the changes in total testosterone and cortisol are mediated by (a) changes in the amount of steroid binding proteins in the blood (albumin, SHBG, CBG), (b) weight loss / general health improvements and (c) the scarcity of dietary glucose on high protein diets, it's not surprising that the glucose, insulin, testosterone, cortisol, and growth hormone levels of Forbes' nine male volunteers (age: 29.6 ± 6.3 yrs), who participated in ...
    • "Protein Requirements of Dieting Strength Athletes: More is Better Only in the Presence of Adequate Carb & Fat Intake. Optimal Muscle Retention With 2-3g/kg Lean Body Mass " | more
      a control (C) condition of a typical mixed diet containing ~10% protein (0.8 g·kg-1), 65% carbohydrate and 25% fat; 
    • a placebo (P) condition calorically matched with carbohydrate to the whey protein conditions; 
    • a low dose condition of 0.8 g /kg body weight whey protein isolate (W1) per day in addition to the typical mixed diet; or 
    • a high dose condition with 1.6 g/kg bw. whey protein isolate (W2) in addition to the typical mixed diet,
    in random order, didn't change within a day of being fed high vs. normal protein diets - and that irrespective of whether the diets were supplemented with a whey protein or not.
    References:
    • Anderson, K. E., Kappas, A., Conney, A. H., Bradlow, H. L., & Fishman, J. (1984). The influence of dietary protein and carbohydrate on the principal oxidative biotransformations of estradiol in normal subjects. Journal of Clinical Endocrinology & Metabolism, 59(1), 103-107.
    • Anderson, K. E., Rosner, W., Khan, M. S., New, M. I., Pang, S., Wissel, P. S., & Kappas, A. (1987). Diet-hormone interactions: protein/carbohydrate ratio alters reciprocally the plasma levels of testosterone and cortisol and their respective binding globulins in man. Life Sciences, 40(18), 1761-1768.
    • Bounous, G., Gervais, F., Amer, V., Batist, G., & Gold, P. (1989). The influence of dietary whey protein on tissue glutathione and the diseases of aging. Clin Invest Med, 12(6), 343-9. 
    • Brown, M. R., Klish, W. J., Hollander, J., Campbell, M. A., & Forbes, G. B. (1983). A high protein, low calorie liquid diet in the treatment of very obese adolescents: long-term effect on lean body mass. The American Journal of Clinical Nutrition, 38(1), 20-31. 
    • Forbes, S. C., McCargar, L., Jelen, P., & Bell, G. J. (2013). Dose Response of Whey Protein Isolate in Addition to a Typical Mixed Meal on Blood Amino Acids and Hormonal Concentrations. International journal of sport nutrition and exercise metabolism. 
    • Liehr, J. G., & Ricci, M. J. (1996). 4-Hydroxylation of estrogens as marker of human mammary tumors. Proceedings of the National Academy of Sciences, 93(8), 3294-3296.
    • Longcope, C., Feldman, H. A., McKinlay, J. B., & Araujo, A. B. (2000). Diet and sex hormone-binding globulin. Journal of Clinical Endocrinology & Metabolism, 85(1), 293-296. 
    • Sanchez-Gomez, M., Malmlöf, K., Mejia, W., Bermudez, A., Ochoa, M. T., Carrasco-Rodriguez, S., & Skottner, A. (1999). Insulin-like growth factor-I, but not growth hormone, is dependent on a high protein intake to increase nitrogen balance in the rat. British Journal of Nutrition, 81(02), 145-152.
    • Saxe, G. A., Rock, C. L., Wicha, M. S., & Schottenfeld, D. (1999). Diet and risk for breast cancer recurrence and survival. Breast cancer research and treatment, 53(3), 241-253.

    Low Testosterone, Low Life Expectancy: Plus: Chinese vs. US - Do the Same Reference Ranges Apply for Everyone?

    This is what Photoshop and creativity can tell us about aging men.
    It has been a while since we've taken a closer look at the effects of testosterone deficiency and its replacement aka TRT. Basically that's why I decided not to waste the interesting findings from a recently published study in the The Journal of Clinical Endocrinology and Metabolism (Yeap. 2013) in the Facebook News. In combination with the findings Xu et al. report in a paper on the difference in testosterone concentrations in young healthy US versus Chinese men the Yeap study does after all make a decent addition to the 269 of hitherto ~1500 archived SuppVersity articles that deal in one way or another with the famous androgen.

    Virile men live longer! Ca. 30% longer, to be precise.

    If you take a look at the link between serum testosterone, free testosterone and DHT and the all-cause mortality risk of the 16,451 community-dwelling older men from Perth in Western Australia it should be obvious that the third quartile of all these serum values, is where you want your androgen levels to be, if you intend to live to see your 90th birthday.
    Figure 1: Relative reduction in all-cause mortality with total and free testosterone levels, as well as dihydrotestosterone levels in quartile 2,3 & 4 vs. quartile 1 (Yeap. 2013)
    To quantify: You want to have your total testosterone levels in the 12.56 – 15.75 nmol/L (362ng/dl - 454ng/dL), your free testosterone levels in the 182.66 – 216.34 pmol/L (5.3-6.2 ng/dL) and your dihydrotestosterone (DHT) levels in the 1.34 – 1.83 nmol/L (DHT; 39-53ng/dL) range if you don't want to miss a couple of year's of your life.

    Symptoms of low testosterone:
    Somatic: Gynecomastia, de- creased body hair, hot flashes, decreased lean muscle mass, decreased strength, anemia, frailty, osteoporosis, easy fatigue, sleep disturbances, increased body fat or body mass index
    Psychological: Depressed mood, irritability, emotional lability, impaired cognition and memory, decreased energy
    Sexual: Diminished libido, erectile dysfunction, decreased nocturnal and morning erections, difficulty achieving orgasm, decreased performance (Traish. 2011).
    And while your androgen levels shouldn't be significantly lower, you also don't want them in the fourth quartile, where the all-cause mortality risk begins to rise again. Unless you don't want to lose the ~30% all-cause mortality of being in the zone, you shouldn't let the rumors about a causal (not corollary) link between testosterone replacement therapy (TRT) and the incidence of prostate cancer upset you. Why, well because ...
    "[...] to date, no study or review has definitively shown that androgen replacement therapy is an independent risk factor for development of prostate cancer." (Fisher. 2012) 
    The thing you should ask yourself is thus whether you really want to give up on this 30% reduction in all-cause mortality, or the decrease in fatal cardiovascular events, Ramasay et al. list next to the reduction in body fat mass, and insulin resistance among the proven benefits of TRT in their 2012 review of the literature.

    It's your decision and therefore you should make sure that it's you and not your doctor who takes this decision. If you decide to help your low testosterone levels along, it's your doctors job to help and assist you by ordering and interpreting regular hormone and, as Fisher et al. suggest, PSA tests.

    Informed decisions, require information, lab values, and reference ranges!

    Speaking about "interpreting" hormone panels. One of the problems you'll be facing is that nobody can actually tell you what your normal testosterone level should look like. Of course, every med-school graduate will believe that he knew exactly what's good for you, but when it's all said eand done, scientists (and doctors) tend to be a bit too egalitarian, when it comes to "normal ranges". So egalitarian, in fact that they simply assume that a lightweight Chinese pencil pusher must have the same testosterone levels as a 6.6 ft tall, 300lbs heavy Caucasian strongman.
    Table 1: Normal ranges for total T.
    How do we know what "normal" is? Actually we don't. I mean, if you look at the average American or Chinese men, neither his health, nor his physique, or intelligence are "optimal" and still they are the "norm" we use to gauge our testosterone levels. For young men, this is not that much of a problem, but accepting the reference ranges for old guys is - if you asked me - like surrendering to physical decline.
    Figure 2: Total and bioavailable testosterone levels in US and Chinese young men (Xu. 2013)
    It's thus quite refreshing that Xu et al. followed a different path and followed the heavily underused "Equal, but different!"-princple, when they decided to conuct what they claim is the first study to analyze and compare the total (TT), calculated free (FT), and bioavailable testosterone (Bio T) levels of healthy young men (18–29 years) from the Third National Health and Nutrition examination Survey (NHANES III) in the United States (US) to those of men living in a region of China with a similar living standard to the US, i.e., Hong Kong.

    By this means, the researchers wanted to find out whether the potentially existing differences in androgen levels in Caucasian vs. Asian young men would warrant a revision / specification of the "normal" range for men from different ethnic backgrounds.

    As you can see the results are not exactly easy to interpret (Figure 2) - is this a difference, or not?

    If we take another look at the data in Figure 2 and compare the relative differences between the total testosterone levels of young US vs. Chinese men to those that made a significant difference, in the previously discussed study by Yeap et al. (see Figure 1), we will have to concede that the xisting differences can hardly be significant. They are after all a magnitude smaller than the quartiles in the Yeap study.
    Free vs. total testosterone, measured vs. calculated: Direct measurement of free testosterone levels is different from using the total testosterone and SHBG levels (which were higher in US men, by the way; Xu. 2013) to calculate an estimated amount of free testosterone (cf. Vermeulen. 1999). Since it's cheap and usually pretty accurate this is yet what most labs will do. You should however be aware that the values are accurate, only, if your SHBG and albumin values are "normal" as well. If those are out of range, it's a good idea to get the free testosterone levels measured directly, to find out where you are standing.
    That being said, there are at least three additional reason that speak against establishing specific testosterone cut-off values for different ethnic groups based on the Xu study:
    1. The Xu study is not representative of "all" Chinese young men: The Xu study compares US citizens in the US to Chinese citizens in China. Who tells us that the values they obtained for young Hong Kongers are valid for 2nd generation Chinese immigrants to the US, as well? Environmental conditions, dietary factors, etc. all that could just as well be the reason for the measured differences as ethnicity-specific genetic differences.
    2. The Xu study, or rather the NHANES data is not representative of a specific ethnicity: By analogy to (1), the Xu study, which uses data from NHANES III to gauge the average testosterone levels of male US citizens, relies on data from Asian, African American, Native American, Hispanic and Caucasian US citizens. How on earth would you establish ethnicity specific normal values based on that?
    3. Using the Yeap study as a reference to determine "optimal levels" is unwarranted: With old men as study participants, the significance of the optimal total testosterone levels from the Yeap study (12.56 –15.75 mmol/L ≡ 362- 454ng/dL) is about as questionable as the assumption that older men are actually supposed to have significantly lower testosterone levels.
    And even if you wouldn't agree that these objections are valid, there would be a simple, yet effective solution to end this discussion once and for all: Measure (or calculate) the free testosterone levels!

    If you do that, i.e. compare free instead of total testosterone levels, you will find that the purported ethnic differences disappear. And this is true not solely for the comparison of the data from Chinese and US men Xu et al. analyzed, but also for the existing differences between Mexican-American, non-Hispanic black and non-Hispanic white men in the NHANES study by Rohrmann et al. (2007). Specific reference ranges for Asian, Caucasian, African American, Hispanics, ... are thus probably unwarranted (not sure about Aliens, though ;-).
    The age related decline in testosterone is rapid: Accoring to Morley, et al. the average rate of decrement in testosterone concen-tration for men aged 60+ is 110 ng/dL every decade. A "normal" Caucasian man, who would still have a testosterone level of 500ng/dl when he's sixty (Rohrmann. 2013) would thus end up at 280ng/dl, which is right in the "highest risk of all-cause mortality" quartile (Q1) of the Yep study.
    Bottom line: Despite the fact that our insights into the non-existent, or at least insignificant ethnic differences in free and total testosterone levels confirm the validity of the currently propagated "normal" ranges for young men, we are still left with the implications of the Yeap study and the questionable usefulness of "age adjusted" testosterone levels.

    If we take into account that the age-induced androgen decline correlates with the aforementioned increases in all cause and cardiovascular mortality (Yeap. 2013), as well as lower levels of handgrip, hip flexors, hip extensors and abductors strength (Perry III. 2000) and an increase risk of development metabolic syndrome (48% higher risk; cf. Rodriguez. 2007), it would certainly appear that any "age-adjustment" that's based on observations in the average aging male is bogus...but I guess that's a topic for another SuppVersity article ;-)
    References: 
    • Ramasamy, R., Fisher, E. S., & Schlegel, P. N. (2012). Testosterone replacement and prostate cancer. Indian journal of urology: IJU: journal of the Urological Society of India, 28(2), 123.
    • Yeap, B. B., Alfonso, H., Chubb, S. P., Handelsman, D. J., Hankey, G. J., Almeida, O. P., ... & Flicker, L. (2013). In Older Men an Optimal Plasma Testosterone Is Associated With Reduced All-Cause Mortality and Higher Dihydrotestosterone With Reduced Ischemic Heart Disease Mortality, While Estradiol Levels Do Not Predict Mortality. 
    • Perry III, H. M., Miller, D. K., Patrick, P., & Morley, J. E. (2000). Testosterone and leptin in older African-American men: relationship to age, strength, function, and season. Metabolism, 49(8), 1085-1091. 
    • Rodriguez, A., Muller, D. C., Metter, E. J., Maggio, M., Harman, S. M., Blackman, M. R., & Andres, R. (2007). Aging, androgens, and the metabolic syndrome in a longitudinal study of aging. Journal of Clinical Endocrinology & Metabolism, 92(9), 3568-3572.
    • Rohrmann, S., Nelson, W. G., Rifai, N., Brown, T. R., Dobs, A., Kanarek, N., ... & Platz, E. A. (2007). Serum estrogen, but not testosterone, levels differ between black and white men in a nationally representative sample of Americans. Journal of Clinical Endocrinology & Metabolism, 92(7), 2519-2525.
    • Traish, A. M., Miner, M. M., Morgentaler, A., & Zitzmann, M. (2011). Testosterone deficiency. The American journal of medicine, 124(7), 578-587. 
    • Vermeulen, A., Verdonck, L., & Kaufman, J. M. (1999). A critical evaluation of simple methods for the estimation of free testosterone in serum. Journal of Clinical Endocrinology & Metabolism, 84(10), 3666-3672.
    • Xu, L., Au Yeung, S. L., Kavikondala, S., Leung, G. M., & Schooling, C. M. (2014). Testosterone concentrations in young healthy us versus Chinese men. American Journal of Human Biology, 26(1), 99-102.