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

Fat Loss Principles That Work: 10g+ of EAAs W/ Every Meal. Do Energetic Costs of Protein Synthesis Trigger This Effect?

EAAs beyond whey: It may not necessarily look like this, but this salad (repicecorner) is an EAA power horse with cheddar cheese (25% protein, 0.49 EAA / P ratio), tuna (in oil, 29%,  0.45) and kidney beans (9%, 0.45). You see, it does not always have to be chicken breasts or whey to get beyond the 10g+ EAA threshold, I have repeatedly suggested as one of the fundamental rules of dieting for weight loss, maintenance and muscle gain.
Many people take it for granted that you become fat, when you get old. If you look at the statistics, you could even make a point that obesity has some protective effects with esp. with respect to CVD mortality. Scientists call this the "obesity paradox" (Kastorini. 2012). What's particularly paradox, at least in my humble opinion, is yet not the phenomenon itself, but rather the fact that it gets smart scientists derailed from working on useful dietary and exercise interventions to prevent the development of heart disease, cancer, metabolic syndrome etc. in early years. Instead, they argue ex-post, i.e. when the baby has already been thrown out with the bathtub by comparing sick lean (in parts even cachectic) and sick "obese" people, why their statistical shenanigan that's based on the useless BMI produces paradoxical results. And that, when studies such as the one Jacobs et al. did in 2010 clearly show that 50+ year old men and women with waist circumference >120cm and >110cm, respectively, have 2x higher all-cause mortality risk than their lean peers - irrespective of BMI (Jacobs. 2010)!

To get lean and stay lean, yet not thin and skinny fat is therefore a challenge everyone...

... from the child in the Kindergarten to the obese granny in the nursing home is facing. Against that background a previous study by Loenneke et al. comes to mind. The results of their analysis, which were published in Nutrition and Metabolism in January 2012 clearly show that the amount of times people eat meals with a 10g+ EAA content per day was inversely related to percent central abdominal fat (Loenneke. 2012). In previous studies EAAs have also been shown to improve glucose clearance without increases in insulin and in the absence of effects on the fat burnin and health promoting expresion of AMPK-alpha2 in skeletal muscle tissue (see "EAAs Stimulate Muscle Glucose Uptake by Exponentiating Insulin's Effect on GLUT4 Expression"). With the advanced publication of a study by Coker, Miller, Schutzler, Deutz and Wolfe in the online verison of the Nutrition Journal a couple of days ago, the notion that EAAs have a particularly beneficial effect on fat loss - in this case in obese elderly individuals - gets further support from a well-controlled randomized trial (Cooker. 2012).

EAA-rich protein increases fat loss to a greater extent than low EAA protein

The researchers from the Center for Translational Research in Aging and Longevity and the University of Arkansas for Medical Sciences in Little Rock, AR, USA randomized 12 elderly individuals (mean age 69 years) to an 8 week, caloric restriction diet utilizing equivalent caloric meal replacements (~850 kcal/day; the exact nutrient composition can be found in figure 1) + ~400kcal from solid foods (total intake: ~1,250kcal/day; the subjects were free to chose their solid meals but were provided with a list of examples the should pick from, if possible).
Figure 1: Macronutrient composition of the meal replacements used in the study (Cooker. 2012)
The diet was designed to induce a 7% weight loss in two months. And while both,  the rate of weight loss (~1.6lbs per week), as well as the relatively high caloric deficit are certainly appropriate for someone with a 30+ BMI and ~40% body fat, leaner people will fare better with a less pronounced kcal deficit or (alternatively) have to add some strategically planned refeeds to the equation in order to minimize the loss of lean mass and, more importantly, avoid the ensuing reduction in energy expenditure (for the obese, the latter is actually less of the problem, because the downsides of being calorically deprived are at least partly counglucose tolerance and leptin sensitivity with every gram of body can actually help the body recognize that there is still plenty of energy that has just not been available (glucose) or "visible" (fat) before).
Figure 2: Changes in lean and fat mass (kg, left) and fractional protein synthesis rates (FSR) in participants receiving iso-caloric meal replacements with identical macronutrient compositions (see figure 1), but different amounts of essential amino acids (EAAs) content (Coker. 2012)
As the data in figure 2 goes to show you even the obese individuals in the study at hand lost a non-negligible amount of lean mass - unfortunately the body composition was measure with a sophisticated, but still body impedance based device, the trends are still accurate, but it is questionable in how much we are actually talking about ~2 and 2.5kg of muscle mass (figure 2, left), because somebody's "lean body mass" does obviously include more than just skeletal muscle.

When it comes to supplements, we are often like children on Christmas eve. About all the new stuff we get we tend to forget our former favorite and often way more fun to play with toys. Don't make this mistake and ditch your PWO whey (personally, I like a ~1.5:1 whey + micellar casein mixture) for EAAs, they don't come close... read more
Be that as it may - since the before and after values were taken with the same device the changes should be correct, so that both the slightly yet not statistically significantly ameliorated loss of lean body mass and, more importantly, the significantly higher degree of body fat loss in the EAA meal replacement (EAAMR) group speak in favor of the 5 servings of a the 170 kcal, 6g EAA per day. Moreover, "the sparing influence of muscle loss might have been demonstrated with a larger sample size", so that you can take it for granted that the preservation of precious muscle mass is an advantage of being choosy with your protein sources and preferring those with higher over those with lower essential amino acid contents.

On a related note: I don't know if you noticed, but with a total energy content of 850kcal and 30g EAA these 5 meal replacements did in fact have exactly those 10g+ of essential amino acids, I have repeatedly recommended to have with each of the 3 meals most people consume in the course of the day.

In all fairness, it should also be mentioned that despite not being significantly different at baseline, the body fat percentage of the subjects in the EAA meal replacement group was ~3% higher to begin with.This may seem irrelevant, since figure 2 compares lean mass and fat mass as absolute changes and not their percentages, but in the end, the amount of fat you you can drop within a given time-frame decreases with lower body fat percentages.

Do the energetic costs of protein synthesis drive fat loss?

Another interesting observation Coker et al. made is the close association between fat loss, on the one hand, and increased protein synthesis (55%), on the other hand. The researchers take this as an incentive to do one of the of the much loved calories in vs. calories out calculation and come up with the following hypothesis:
"Acute administration of EAAMR did promote a significant increase in skeletal muscle protein FSR compared to CMR. Assuming that the energy cost of protein synthesis is 3.6 kJ/g and the baseline GAIA-derived lean tissue mass was 56.4 kg for EAAMR and 54.4 kg for the CMR, we can extrapolate that the overall energy discrepancy between the two groups was roughly equivalent to 27,170 kcal or 3.5 kg of weight loss across the entire caloric restriction-based weight loss paradigm. Based on the amount of total lean mass in each group, this value takes into account a consistent intervention structure of five servings/day across an eight week period. In short, these calculations suggest that differences in the source of intact protein/formulation of EAA may have a significant influence on diet-induced energy expenditure that coincides closely with the greater reduction of adipose tissue in EAAMR compared to CMR." (my emphasis in Coker. 2012)
I usually discard fallacious calculations like this one if they are not highlight the stupidity of trying to eat exactly as much as some funky formula + the figure on your treadmill, pedometer, heart rate monitor or whatever fancy tool you may use to "measure" your energy expenditure suggest you would have burned in the last 24h. In this case, however, I made an exception, because I feel that the notion that protein quality is one of the myriad of parameters that are missing from this foolish calculation is important, for lean and obese people from all age groups who are trying to shed body fat.

Bottom line: The take away message of the study is in the end identical to the previously mentioned study by Loenneke et al.: Make sure you hit the 10g EAA threshold with each and every of your meals, if being lean and muscular not skinny yet fat is your goal.

References:
  • Coker RH, Miller S, Schutlzer S, Deutz N, Wolfe RR. Whey protein and essential amino acids promote the reduction of adipose tissue and increased muscle protein synthesis during caloric restriction-induced weight loss in elderly, obese individuals. Nutr J. 2012 Dec 11;11(1):105. [Epub ahead of print]
  • Jacobs EJ, Newton CC, Wang Y, Patel AV, McCullough ML, Campbell PT, Thun MJ, Gapstur SM. Waist circumference and all-cause mortality in a large US cohort. Arch Intern Med. 2010 Aug 9;170(15):1293-301.
  • Kastorini CM, Panagiotakos DB. The obesity paradox: methodological considerations based on epidemiological and clinical evidence--new insights. Maturitas. 2012 Jul;72(3):220-4.
  • Loenneke JP, Wilson JM, Manninen AH, Wray ME, Barnes JT, Pujol TJ. Quality protein intake is inversely related with abdominal fat. Nutr Metab (Lond). 2012 Jan 27;9(1):5.

Longer Rest Periods Compromise Adaptational Response in Resistance Training Older Men in 12 Week Study

Best-agers listen up: If you want to make progress, socialize after your workouts and stick to rest periods in the 60-90s range.
Best-agers, listen up! If you are the kind of person who likes to chat for four minutes between his / her sets you are not just wasting time. You are also making your workouts less effective. While there is little evidence that there are major differences between rest times of 60s and 90s, a recent study from the Division of Biokinesiology and Physical Therapy at the Clinical Exercise Research Center of the University of Southern California is not the first study to suggest that resting longer than maximally 120s is going to compromise the changes in body composition, muscular performance, and functional performance that occur in response to resistance training.

I have to admit, with a mean age of 70.3 years, the 22 male volunteers of said study don't qualify as the "classic" gymrat. On the other hand, you will probably have heard the argument that aging muscle cannot sustain the same extent of high intensity hammering that's highly productive in younger folks against.
Learn more about building muscle at www.suppversity.com

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Against that background, it's actually all the more surprising that the 11 men in the 60s rest period groups of this recent 4 weeks resistance training study saw significantly greater increase in lean muscle mass, bench press & leg press 1RM max, performance on the pull-down and several parameters of functional performance (not shown in Figure 1).
Figure 1: Changes in body composition and strength after 8 and 12 weeks; expressed relative to the values that were measured after the 4-week pre-training phase that was identical for both groups (Villanueva. 2014)
Except from the rest times, the periodized strength training regimen was 100% identical for both groups. This means that all 22 study subjects performed the same progressive total body resistance training program which was preluded by a 4-week familiarization protocol that was 100% identical for both groups:
  • Training frequency: 3 days/week for the 4-week training cycle
  • Sets / reps: 2 to 4 sets with 15 to 8 repetitions (set number increased, rep number decreased over time)
  • Exercise number: Four to six exercises per workout
Only after the subjects had completed the first four weeks of training they were paired based on the similarity of their flat bench machine chest press 1-RM and randomly placed into one of the two groups: The SS = short (60s) and the SL = long (240s) rest group. As the scientists say they chose
"this strength outcome measure, because previous work from our lab has indicated there is relatively less variability among study participants with chest press 1-RM val ues, versus leg press 1-RM values, and, therefore, it would allow us to more easily randomize and create two treatment groups that are similar in (upper body maximum) strength.
In the following 8-week 'actual' study period the subjects were subjected to a progressive total-body resistance training program emphasizing development of upper and lower body strength.
  • Training frequency: 3 days/week for 8 weeks by both groups (SS and SL)
  • Sets / reps: sets ranged from 2 to 3, repetitions from 6 to 4
  • Exercise number: 4–6 exercises
During this active study period, the only difference in program design between the two strength RT groups in was the rest interval length utilized between sets: 60 s (SS group) versus 4 min (SL group).
"Throughout the entire resistance training program, all sets were performed maximally for the assigned number of repetitions and with proper lifting technique, and loads were adjusted in accordance with recovery and performance, across the repeated sets progression.
At least in untrained subjects shorter rest periods (60s vs. 150s) may have more beneficial effects on body composition, i.e. they elicit greater lean mass gains and higher losses of body fat (Buresh. 2009)
What about studies in younger subjects? The results are not consistent, but generally speaking there appears to be slight advantage in terms of strength gains with rest periods in the 90s-150s range as they were observed by Robert Buresh et al. (2009) in healthy, recently untrained males. In previously strength-trained men the benefits appear to vanish, when the total exercise volume is not controlled for, though (Willardson. 2008). Moreover, the previously cited study by Buresh et al.  (2009) indicates that shorter rest periods will elicit more favorable changes in body composition (see Figure on the left). We must be careful, though - short is not generally better.  A review by de Salles et al. (2009) indicates that rest periods below 60s can impair the strength gains and while respective data is lacking, it is likely that this will also have negative effects on the amount of lean mass you will gain on otherwise identical training regimen.
Furthermore, it is important to note that study participants were never expected to perform sets to absolute muscular failure; given an appropriate loading progression, with alterations in set/repetition schemes throughout and across microcycles (i.e., a series of 3 training sessions), the repetition maximum assignments allowed for successful completion of the assigned number of repetitions at the load(s) prescribed, across multiple sets, and with minimal need for assistance/'spotting'" (Villanueva. 2014.)
Now this certainly sounds as if the protocol was realistic. But there is one major difference that puts a question mark behind the results of the study: usually regimen with long and short rest times differ significantly in the number of sets and the number of reps. Thus it is possible that future studies using different protocols for both groups would yield different results.
Figure 2: More helps more... at least in elderly study subjects increasing the intake of whey protein after a workout from 20g to 40g will yield significant benefits (Yang. 2012).
Bottom line: The study at hand certainly supports previous evidence that older men and women don't necessarily have to train with the "handbreak firmly fixed". The relatively large increase in strength and functional performance, however, stand in stark contrast to the pathetic increase in lean mass. And the standardized set and rep ranges make it impossible for the 240s rest group to benefit from the ability to train at higher volumes.

Another thing that is wirth mentioning is that the subjects consumed >1.0 gram protein/kilogram body weight/day - without the addition of fast absorbing high BCAA protein sources, however, elderly men (and women) are always having a hard time to build practically relevant amounts of lean muscle.

Against that background, I would love to see this study being repeated with 30-40g of whey protein being consumed in the vicinity of the workout; and in case you want to do your own N=1 experiment using this or any other workout protocol described in the study at hand, I would suggest you make sure to add some extra-protein, as well. Previous studies do after all indicate that "more" as in 40g vs. just 15-20g helps more in men and women in their 60s or older | Comment on Facebook!
References:
  • Buresh, Robert, Kris Berg, and Jeffrey French. "The effect of resistive exercise rest interval on hormonal response, strength, and hypertrophy with training." The Journal of Strength & Conditioning Research 23.1 (2009): 62-71.
  • de Salles, Belmiro Freitas, et al. "Rest interval between sets in strength training." Sports Medicine 39.9 (2009): 765-777.
  • Villanueva, Matthew G., Christianne Joy Lane, and E. Todd Schroeder. "Short rest interval lengths between sets optimally enhance body composition and performance with 8 weeks of strength resistance training in older men." European journal of applied physiology (2014): 1-14.
  • Willardson, Jeffrey M., and Lee N. Burkett. "The effect of different rest intervals between sets on volume components and strength gains." The Journal of Strength & Conditioning Research 22.1 (2008): 146-152.
  • Yang, Yifan, et al. "Resistance exercise enhances myofibrillar protein synthesis with graded intakes of whey protein in older men." British Journal of Nutrition 108.10 (2012): 1780-1788.

Intensify Your Training, Increase Your Gains W/ Combined EMG + Regular Training For 30% Greater Muscle Size Gains

Voluntary & NMES contractions for Monster Quads?
You are always looking for new ways to improve your training outcome? Scientists from the Department of Physiotherapy at the University Cardenal Herrera-CEU might have something for you, then. In their latest study, V. Benavent-Caballer, P. Rosado-Calatayud, E. Segura-Ortí, J.J. Amer-Cuenca, and J.F. Lisón tried to elucidate, whether conducting low intensity resistance training in conjunction with  neuromuscular electrical stimulation (NMES) would provide not just an additional growth stimulus, but also corresponding increases in physical performance, muscle cross-sectional area (CSA) and the capacity to perform daily tasks 22 in exactly those subjects researchers will resort to, when they're looking for generous funding for studies the outcome of which is not going to pay off in form of scripts for a new patentable drug: Older adults living in a geriatric nursing home.
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What? Yeah... I have to admit, the subjects are not exactly bodybuilders and a regular high intensity control is missing, but even if it wasn't for the necessary fact that you'll belong to the group of "older adults" in 50 years from now, the results of the study at hand would still have a certain relevance for younger trainees. Why? Well, something that makes the elderly grow will certainly do the same in young people. Whether it does so at the same or even higher rates than "regular" strength training will obviously have to be elucidated in future studies.
Table 1: Subject characteristics;  VC = volitional contraction; NMES = neuromuscular electrical stimulation; NMES+ = NMES superimposed onto voluntary contraction. SD = standard deviation (Benavent-Caballer. 2014)
For now, all I can tell you is that the three weekly supervised 30-35 min exercise sessions the 89 participants of the study at hand performed in the course of this 16-week study lead to significantly more pronounced strength and size gains, when the exercise was performed using both voluntary contractions and the forced contractions, the researchers produced by attaching their subjects to the surface electrodes of a portable NMES devices (TensMed S82).
Beware of NMES only training! In as much as a combination of voluntary contractions and NMES  may make sense, you should not fall for the fallacious promises of "couch workout" advocates. Previous studies suggest that the strength increases of EMS are - just like any form of training - stimulus specific, the "incomplete muscle activation after training with electromyostimulation" will thus make your muscle stronger on the couch (during your NMES workouts), but are not necessarily going to translate into the real world (Hortobágyi. 1998).
The four adhesive surface electrodes (5 × 5 cm) were placed on the distal medial and proximal lateral portions of the subject's anterior thigh, when they performed their three sets of knee extensions (15 reps each) in a single-leg fashion with 3-minute rest between sets.
Figure 2: Changes in muscle strength (hand grup) and size (rectus femoris), as well as changes in parameters of physical functioning in response to the three training modalities (Benavent-Caballer. 2014)
The participants were instructed to raise the weight in 1 s (concentric phase), keep a full knee extension for 3 s (isometric phase) and slowly lower the weight in 2 s to the starting position (eccentric phase). Each contraction was followed by a 2-second rest period, and the training intensity was set at 40% of 1RM... and yeas, this sounds pretty much like peak contractions, an intensity technique which may in fact be the reason that the old trainees in the study at hand recorded highly significant increases in muscle size even when the peak contraction or rather the whole movement was not superimposed with NMES which was delivered with a ramp-up time of 1 s increasing intensity as the knee was extended from 90° to full extension that was followed by 3 s keeping the knee in full extension and 2 s of a ramp-down with gradually decreasing intensity (see Figure 2, yellow).
There is evidence from previous studies that a similar NEMS + VC regimen leads to non-significantly higher strength gains in the trained leg and sign. higher cross-education effects in the untrained leg of young men (Bezerra. 2009)
Bottom line: It is, as mentioned before, difficult to predict whether or not the NEMS+ training would produce superior training outcomes in younger athletes, athletes. It is yet almost certain that the combination of NEMS + voluntary contractions would pose a viable tool in the toolbox of any injured athlete who has to cut back on his / her training intensity for health reasons.

Moreover, previous trials in younger subjects confirmed that superimposing NEMS + voluntary contractions is at least on par with classic high intensity resistance training and can promote neural adaptations that lead to increased cross-education effects (strength gains in non-trained leg) in a 2009 study by Bezerra et al. (2009).

Beneficial effects of combining (N)EMS and voluntary contractions (not always superimposed, though) were also reported by Venable et al. (1991) and Dervisevic et al. (2002) for resistance training, Pichon et al. (1995) for swimming, Maffiuletti et al. () for basektball volleyball, Brocherie et al. (2005) for ice-hockey and Herrero et al (2006), Babault et al. (2007) and Paillard et al. (2008) for physical education (vertical jump, strength, etc. tested) | Comment on Facebook!
References:
  • Babault N, Cometti G, Bernardin M, et al. "Effects of electromy ostimulation training on muscle strength and power of elite rugby players." J Strength Cond Res 21 (2007): 431-7.
  • Bezerra, Pedro, et al. "Effects of unilateral electromyostimulation superimposed on voluntary training on strength and cross‐sectional area." Muscle & nerve 40.3 (2009): 430-437.
  • Brocherie F, Babault N, Cometti G, et al. "Electromyostimulation training effects on the physical performance on ice hockey players." Med Sci Sports Exerc 37 (2005): 455-60.
  • Delitto A, Brown M, Strube MJ, et al." Electrical stimulation of quadriceps femoris in an elite weight lifter: a single subject experiment." Int J Sports Med 10 (1989): 187-91.
  • Dervisevic E, Bilban M, Valencic V." The influence of low-frequency electrostimulation and isokinetic training on the maximal strength of m. quadriceps femoris." Isokinet Exerc Sci 10 (2002): 203-9. 
  • Hortobágyi, Tibor, Jean Lambert, and Kevin Scott. "Incomplete muscle activation after training with electromyostimulation." Canadian journal of applied physiology 23.3 (1998): 261-270. 
  • Maffiuletti NA, Cometti G, Amiridis IG, et al. "The effects of electromyostimulation training and basket practice on muscle strength and jumping ability. Int J Sports Med 21 (2000): 437-
    43. 
  • Malatesta D, Cattaneo F, Dugnani S, et al. "Effects of electromyostimulation training and volley practice on jumping abilities." J Strength Cond Res 17 (2003): 573-9.
  • Herrero JA, Izquierdo M, Maffiuletti N, et al. "Electromyostimu lation and plyometric training effects on jumping and sprint time." Int J Sports Med 27 (2006): 533-9.
  • Paillard, Thierry, et al. "Effects of two types of neuromuscular electrical stimulation training on vertical jump performance." The Journal of Strength & Conditioning Research 22.4 (2008): 1273-1278.
  • Pichon F, Chatard JC, Martin A, et al. "Electrical stimulation and swimming performance." Med Sci Sports Exerc 27 (1995): 1671-6.
  • Venable MP, Collins MA, O’Bryant HS, et al. "Effect of supplemental electrical stimulation on the development of strength, vertical jump performance and power." J Appl Sport Sci Res 5 (1991): 139-43

Maximal Protein Synthesis in the Elderly: How Much Protein Does it Take? Another Study to Suggest More is Better!

Maximal protein synthesis requires protein, but how much exactly you need will depend on your age - the older you are the more PWO protein you'll need.
Scientists from the University of Auckland were fed up with the lack of information about the differential response in protein synthesis in response to the ingestion of various amounts of protein. Accordingly, Randall F. D’Souza et al. conducted a study to characterize the changes in intramuscular levels of EAAs and BCAAs and the expression of the "protein pump" p70S6K at Thr389, a marker of protein synthesis, in response to resistance exercise and graded ingestion of whey protein in older men.

As a regular SuppVersity reader you will probably already think: "Where is the actual measurement of the fractional protein synthesis?" The unfortunate answer: It's not there.
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Previous research had show that the ingestion of graded amounts of high-quality protein such as whey after resistance will maximize with "only" 20g of egg protein (Moore. 2009) or whey (Witard. 2014) in young men. Multiple studies in older adults (>60 years), on the other hand, suggest that they exhibit a lower anabolic signaling and MPS response to protein feeding, resistance exercise, and the combination of feeding and exercise when compared to young men (Cuthbertson. 2005; Fry. 2011; Burd. 2013). Scientists call this phenomenon age-related "anabolic resistance" (Yang. 2012b).
Figure 1: In contrast to the fractional protein synthesis in the elderly, which increases with increasing amounts of protein, the FSR of young men shows a ceiling effect at 20g+ whey protein (Yang. 2012a; Moore. 2009)
As you can see in Figure 1 from a 2012 study by Yang, the same 20g of extra-whey (total dose 40g) that was useless in young men, lead to a significant increase in protein anabolism in elderly men. Compared to young men, the MPS response to feeding 40 g of protein was yet still slightly lower in older vs. count men (Yang. 2012a; Churchward Venne. 2013b).

What is particularly relevant for the study at hand, and the previously criticized absence of actual MPS measurements is the fact that deficits in feeding induced p70S6K phosphorylation may at least partially underpin anabolic resistance in aged skeletal muscle (Cuthbertson. 2005), which is why measuring the p70S6K phosphorylation in older human subjects (mean age 71 years) in response to the graded ingestion of whey protein after a leg workout consisting of three sets of 8–10 repetitions of bilateral barbell smith rack squat, 45°leg press, and seated knee extensions at 80% of the subjects' predetermined 1R is not as irrelevant at it may initially have seemed.

Workout + supplements, that's the "whey to go" ;-)

The exercises were performed in a circuit manner with 1 min rest between each exercise and 3 min rest between subsequent sets, the exercise protocol took approximately 20 min to complete. Following completion of the exercise protocol, subjects were immediately provided with a fixed-volume (350 mL) beverage, containing a flavored noncaloric placebo, or oneof the four doses of whey protein concentrate (10 g, 20 g, 30 g, or 40 g).
Figure 2: Intramuscular amino acids. This figure is a heat map which shows groups means fold changes from the resting fasted condition. Green represents a decrease in amino acid content, white represents no change, and red represents an increase in amino acid content (D’Souza. 2014)
Subjects were instructed to ingest the beverage within 2 min and were required to ingest the total volume provided. Following consumption of the supplements, subjects rested in a supine position throughout the 4 h of post-exercise recovery with additional muscle biopsy samples collected at 2 and 4 h post exercise.
Figure 3: Higher protein intake = higher increase in p70S6K phosphorylation (left graph). This increase is linearly associated with intramuscular leucine levels (right graph | both from D’Souza. 2014)
As you can see in Figure 3, there was a similar dose-dependent increase in p70S6K as it was observed previously for MPS in skeletal muscle of elderly subjects by Yang et al. (2012b). In fact, the fold change in the phosphorylation of p70S6K (Thr389) at 2 h post exercise was correlated with the dose of whey protein consumed (r =0.51,P<001) and was found to be significantly correlated with intramuscular leucine content (r =0.32,P=0.026).

Moreover, the intramuscular BCAAs, and leucine in particular, appear to be important regulators of anabolic signaling in aged human muscle during post-exercise recovery via reversal of exercise-induced declines in intramuscular BCAAs.
Suggested Read: "Protein Timing Does Matter! Yet Only in Trained Men. More Than 2x Higher Relative Protein Retention W/ Immediate vs. 6h Post Whey Consumption in Bodybuilders vs. Rookies" | read more.
Bottom line: In the absence of a young control group and actual muscle protein synthesis (MPS) measurement, the study at hand cannot finally answer the question, whether older men require higher amounts of protein than young ones to achieve maximal increases in post-workout protein synthesis, but it is at least another piece of evidence that "more helps more" - at least in the elderly.

As mentioned in other recent posts, there are yet still many confounding variables that would have to be controlled and modified as well to answer the important (?) question: "How much protein does it take to achieve maximal post-workout protein synthesis?" Which confounding factors that would be? Well, what about the training experience? The baseline muscle mass? The protein content of the diet? And so on and so forth || Comment on Facebook!
References:
  • Burd, N. A., S. H. Gorissen, and L. J. van Loon. 2013.  Anabolic resistance of muscle protein synthesis with aging. Exerc. Sport Sci. Rev. 41:169–173.
  • Churchward-Venne, T. A., N. A. Burd, C. J. Mitchell, D. W. West, A. Philp, G. R. Marcotte, et al. 2012. Supplementation of a suboptimal protein dose with leucine or essential amino acids: effects on myofibrillar protein synthesis at rest and following resistance exercise in men. J. Physiol. 590:2751–2765.
  • D'Souza, Randall F., et al. 2014. Dose‐dependent increases in p70S6K phosphorylation and intramuscular branched‐chain amino acids in older men following resistance exercise and protein intake. Physiological Reports 2.8: e12112.
  • Churchward-Venne, T. A., L. Breen, and S. M. Phillips. 2013a. Alterations in human muscle protein metabolism with aging: protein and exercise as countermeasures to offset sarcopenia. BioFactors 40:199–205.
  • Churchward-Venne, T. A., C. H. Murphy, T. M. Longland, and S. M. Phillips. 2013b. Role of protein and amino acids in promoting lean mass accretion with resistance exercise
    and attenuating lean mass loss during energy deficit in humans. Amino Acids 45:231–240.
  • Churchward-Venne, T. A., L. Breen, D. M. Di Donato, A. J. Hector, C. J. Mitchell, D. R. Moore, et al. 2014. Leucine supplementation of a low-protein mixed macronutrient beverage enhances myofibrillar protein synthesis in young men: a double-blind, randomized trial.
    Am. J. Clin. Nutr. 99:276–286.
  • Cuthbertson, D., K. Smith, J. Babraj, G. Leese, T. Waddell, P. Atherton, et al. 2005. Anabolic signaling deficits underlie amino acid resistance of wasting, aging muscle. FASEB J. 19:422–424.
  • Moore, D. R., M. J. Robinson, J. L. Fry, J. E. Tang, E. I. Glover, S. B. Wilkinson, et al. 2009. Ingested protein dose response of muscle and albumin protein synthesis after resistance exercise in young men. Am. J. Clin. Nutr. 89:161–168.
  • West, D. W., and K. Baar. 2013. May the Force move you: TSC-ing the mechanical activation of mTOR. J. Physiol. 591:4369–4370.
  • West, D. W., N. A. Burd, J. E. Tang, D. R. Moore, A. W. Staples, A. M. Holwerda, et al. 2009a. Elevations in ostensibly anabolic hormones with resistance exercise enhance neither training-induced muscle hypertrophy nor strength of the elbow flexors. J. Appl. Physiol. 108:60–67 .
  • West, D. W., G. W. Kujbida, D. R. Moore, P. Atherton, N. A. Burd, J. P. Padzik, et al. 2009b. Resistance exercise-induced increases in putative anabolic hormones do not enhance muscle protein synthesis or intracellular signalling in young men. J. Physiol. 587:5239–5247.
  • Witard, O. C., S. R. Jackman, L. Breen, K. Smith, A. Selby, and K. D. Tipton. 2014. Myofibrillar muscle protein synthesis rates subsequent to a meal in response to increasing doses of whey protein at rest and after resistance exercise. Am. J. Clin. Nutr. 99:86–95
  • Yang, Y., L. Breen, N. A. Burd, A. J. Hector, T. A. Churchward-Venne, A. R. Josse, et al. 2012a. Resistance exercise enhances myofibrillar protein synthesis with graded intakes of whey protein in older men. Br. J. Nutr. 108:1780–1788.
  • Yang, Y., T. A. Churchward-Venne, N. A. Burd, L. Breen, M. A. Tarnopolsky, and S. M. Phillips. 2012b. Myofibrillar protein synthesis following ingestion of soy protein isolate at rest and after resistance exercise in elderly men. Nutr. Metab. 9:57.

True or False: Older Men Have a Much Harder Time Building Strength, Building Muscle Borders the Impossible!

Are you training for nothing, if you are "too old" (whatever that may be)? Find out in today's SuppVersity Article!
"The older we get, the weaker we are." That's something most normal men accept as a given truth - according to the latest science, it does yet appear as if it was more of a self-fulfilling prophecy.

Researchers from the Department of Biology of Physical Activity and Neuromuscular research Center at the University of Jyväskylä in Finland have recently conducted a study to verify the common sense assumption that older men are having a much harder time to to maintain / increase their muscle strength than young ones.

To find out, whether this would also be true for those, who are willing to succumb to a high volume, medium load “hypertrophic” resistance training, the Häkkinen et al. recruited young (28 ± 5 yr, 179 ± 6 cm, 77 ± 12 kg, 21 ± 8 percent fat) and older (65 ± 4 yr, 177 ± 6 cm, 80 ± 10 kg, 23 ± 6 percent fat) men via an advertisement in a local newspaper.
Especially for older guys the anti-catabolic effects of HMB could be of interest!

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The experimental groups consisted of 23 young and 26 older men (training groups) and the non training control groups consisted of 10 young and 11 older men. The goal was to achieve maximum strength, muscle mass and muscle activation of the lower limbs in both groups.

Table 1:  Resistance training program of the young and older experimental groups (performed with resistance machines)
To this ends, both groups performed 10 weeks of whole-body resistance training twice per week with the emphasis on lower limb exercises. The training program consisted of high volume, medium intensity exercise with short inter-set rest intervals, as it is typically performed by bodybuilders (i.e. 2-5 sets of 8-14 repetitions, 1-2 min rest).

Lower limb exercises, i.e. leg press, knee extension and knee flexion, were performed before upper body exercises. At least 48 h rest was required between training sessions. Maximum dynamic and isometric neuromuscular performance, as well as lean leg and muscle mass were examined before and after the training period. The changes in body composition were assessed 3-4 d and neuromuscular measurements were performed 7 d after the last training session.

Before participating in the study at hand, the "subjects were physically active but unaccustomed to resistance training for the previous 6 months." Training and testing took place throughout the day (9am-7pm), but young and older subjects were pair-matched to avoid any time-of-day effects on neuromuscular performance measurements. All subjects were given nutritional advice in an attempt to maximize muscle hypertrophy, however, no direct nutritional intervention was performed in the present study.
It's a pity that the diet wasn't controlled for. In view of our main interest, i.e. the question "Are old guys at a disadvantage", on the other hand, it's actually quite interesting, because we usually assume that older guys would have to ingest extreme amounts of protein to keep up with their younger competitors. In the study at hand, they were only told to consume ~20 g of protein within 1 hour of training and in total ~1.5–1.8 g of protein per kg body mass per day, to optimize the muscle hypertrophy response. If you add the "30g of quality (=high EAA) protein with every meal rule that's pretty much the "SuppVersity Suggested" protein intake ;-)
The resistance training program consisted of . Briefly, leg exercises (bilateral leg press, knee extension, and knee flexion) were performad before upper body and torso exercises; bench press, pulldown, shoulder press, seated row, triceps pushdown, biceps curl, abdominal crunches and back raises.
"The subjects performed medium intensity, high volume training consisting of 2–3 sets and 12–14 reps (60–70% 1RM) per exercise (weeks 1–4), then 2–3 sets and 10–12 reps (70–80% 1RM) per exercise (weeks 5–7), and 3–4 sets per exercise and 8–10 reps (75–85% 1RM) per exercise (weeks 8–10). One min rest was given between sets during weeks 1–4, and then 2 min rest was given between sets during the remaining weeks 5–10. One set was performed to failure during each training session." (Häkinnen. 2014)
As you've probably recognized by now this is a more or less classic linear periodization; a very conservative periodization technique with a lot of back up that it works (learn more about periodization).
Figure 1: Pre- and post values for 1RM and isometric leg strength (Häkkinen. 2014)
If you look at the results, you'll see that this protocol led to significant increases in one repetition maximum (1RM) leg press performance in both training groups (young: 13 ± 7 %, P < 0.001; older: 14 ± 9 %, P < 0.001).

Interestingly, said performance improvements were accompanied by increased muscle activation, assessed by voluntary activation level (29 ± 51%, P < 0.05) and electromyography amplitude (35 ± 51 %, P < 0.01) in older men only. Unfortunately, only the young men showed significantly increased lower limb lean mass (2.4 ± 2.5 %, P < 0.01), which were furthermore significantly related to the strength increments (r = 0.524, P = 0.01, n = 23).
Figure 2: The rel. changes in total lean leg mass and vastus lateralis cross sectional area leave no doubt, you can gain muscle at the age of 65+ (Häkkinen. 2014)
Bottom line - true or false? The notion that you can't get stronger if you're past the 60-year mark is flawed. The common understanding that you'll have a significantly harder time to actually increase your total muscle mass and not "just" your strength, on the other hand, appears to be accurate. The signficant local increase in vastus lateralis CSA (Figure 2) does yet indicate that it's not impossible to grow even at the age of 65+ years (keep in mind, though, the subjects were previously more or less untrained!).

Nevertheless, in general, the study appears to suggest that young men are more likely to literally "grow stronger", while older men tend to draw on improvement in the mind-muscle connection, when it comes to lifting higher weights.
References:
  • Häkinnen, et al. "Similar increases in strength after short-term resistance training due to different neuromuscular adaptations in young and older men." Journal of Strength and Conditioning Research (2014). Publish Ahead of Print.