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

22g High EAA (6g) Protein + 36g CHO Pre- / Intra-Workout Boost Fat Oxidation & PWO Resting(!) Energy Expenditure

I don't doubt that you can do that, too!
It does sound awkward: If you mix Twinlab: Amino Fuel (22 g protein - 6 g essential amino acids | L-phenylalanine: 633 mg; Lvaline: 781 mg; L-tryptophan: 133 mg; L-threonine: 679 mg; L-isoleucine: 565 mg; L-methionine: 292 mg, L-histidine: 282 mg; L-leucine: 1350 mg; L-lysine: 1449 mg) with a regular  sports recovery drink that contains 36g of simple sugar, down half of the resulting 800ml serving of whatever you want to call this mix immediately before your workout and consume the rest during the rest periods between sets, this will have measurable effects on your resting energy expenditure and fat oxidation.

From long-term to short time effects

At first, it does questionably sound counter-intuitive that the ingestion of an EAA + carbohydrate mixture before / during would increase the resting energy expenditure and rate of fatty acid oxidation after your workout. On the other hand, if you think about the long-term effects of corresponding supplement regimen, you don't have to look far, to find evidence that they can promote both, muscle gain and fat loss (Bird. 2006).
You can learn more about protein intake at the SuppVersity

Are You Protein Wheysting?

Cod protein for recovery

Protein requ. of athletes

High EAA protein for fat loss

Fast vs. slow protein

Too much ado about protein?
Kyle J. Hackney, Andrew R. Kelleher, and Lori L. Ploutz-Snyder from the Syracuse University speculated that the highly beneficial changes in body composition Bird et al. observed in their study participants over the course of a 12-week strength training + EAA & CHO supplementation that after "[t]hese adaptations may be related to the acute energy expenditure and substrate utilization responses in the postexercise period." (Hackney. 2013)
Figure 1: The changes in body composition (in kg) in response to 12 weeks of resistance training + placebo, CHO, EAA or CHO + EAA supplementation in 2006 study by Bird et al. "inspired" Hackney et al.
Against that background, it was only logical to conduct a study to examine how multiple bouts of resistance exercise with and without the strategically timed intake of amino acids affect the resting energy expenditure (REE) and respiratory exchange ratio (RER). The results could after all explain if the long/er) term effects on body composition that have been observed in previous studies using chronic training and supplementation regimen are maybe nothing but necessary consequences of repeated acute increases in REE or decreases in RER (you hopefully remember that a decrease in the respiratory exchange ratio signifies an increase in fatty acid oxidation).

Experimental design and results

To this ends, the researchers recruited 10 young (mean age: 23.4y) recreationally trained male participants. All of them had been participating in general resistance training exercise for a minimum of 3 days per week for at least 6 months.
Figure 2: Changes in resting energy expenditure (kcal/day) and comparison of training volume in 58g CHO (black bars) and EAA + CHO (white bars) trials (Hackney. 2013).
As you can see in Figure 2, Hackney et al.'s original hypothesis that "intake of amino acids with each resistance exercise session would lead to greater perturbations of REE and RER" (Hackney. 2013) does unquestionably hold for this population of average (rookie) gymrats.

Whether the scientists "main finding" (Hackney. 2013), i.e. the 3.61% increase in resting energy expenditure (REE) will be similarly pronounced in advanced trainees is yet as questionable as the real-world effects of this artificial value. Despite the fact that Hackney et al. are right, when they say that our resting energy expenditure "represents the largest component of [our] total daily energy expenditure (60–85%) and has been implicated as a major contributor to overall body mass management " (Hackney. 2013), I am not sure how "major" an increase of only 66kcal per day actually is... I mean,  if this pathetic increase in resting energy expenditure was the actual driving force we would need almost 100 days to shed a hilarious pound of body fat (note: the reason I use the flawed 3,500kcal = 1lbs of fat rule of thumb here is that the whole REE calculations would be pointless if you didn't put at least some faith into the "energy in vs. energy out" hypothesis of weight loss - right?)
SuppVersity Suggested Read: "Fat Loss Principles That Work: 10g+ of EAAs W/ Every Meal. Do Energetic Costs of Protein Synthesis Trigger This Effect?" |  read more
Bottom line: It stands out of question that your training success can benefit from a high EAA protein source and some carbs you consume before and during the exercise session. Whether the fat loss benefits are actually brought about by the marginally increased resting energy expenditure (REE) is yet something I doubt - it certainly helps fat loss, but clearly isn't its main motor.

Don't get me wrong, this does not imply that you will benefit from this type of "peri-workout" supplementation. And let's be honest, the end most of you probably don't care about the exact underlying mechanisms, as long as your body composition keeps improving, right?
References:
  • Bird, S. P., Tarpenning, K. M., & Marino, F. E. (2006). Independent and combined effects of liquid carbohydrate/essential amino acid ingestion on hormonal and muscular adaptations following resistance training in untrained men. European journal of applied physiology, 97(2), 225-238.
  • Hackney, K. J., Kelleher, A. R., & Ploutz-Snyder, L. L. (2013). Amino Acid-Carbohydrate Intake Combined with Multiple Bouts of Resistance Exercise Increases Resting Energy Expenditure. ISRN Nutrition, 2013.

Calorie Shifting (Refeeding) for Max. Fat Loss: Classic Body Building Principle Has Overweight Women Lose 8kg of Pure Fat in 42 Days - 2.6x More Than Calories In vs. Out Predicts

Want to lose that blubber in a minimal amount of time? Diet like a bodybuilder and don't forget to refeed, Ladies!
Calorie shifting? What's that? Don't worry. I have been asking myself the same question, when I first read the title of a recent paper from the Shaheed Beheshti University of Medical Sciences and Health Services and as it turned out, I was well aware of the principle, but didn't know scientists would call the classic diet - refeed cycles bodybuilders have been using for ages "calorie shifting".

The principle is as simple as effective. You're dieting for 11 days and "refeeding", i.e. eat ad-libitum for three days. The intention is to achieve a temporary deficit that's large enough to induce significant weight and fat loss in spite of the potential of temporary over-indulgence on the refeeding days.
Don't forget to building muscle & strength. Fat loss alone is not enough to look good naked

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

Alternating Squat & Blood Pressure - Productive?

Pre-Exhaustion Exhausts Your Growth Potential

Exercise not Intensity Variation for Max. Gains

Battle the Rope to Get Ripped & Strong

Study Indicates Cut the Volume Make the Gains!
Common sense and years of practical experience inform us that this way of dieting works, but scientific evidence is yet scarce. The latter obviously cannot be said of the beneficial effects of using moderate amounts of caffeine on a diet to (a) increase the oxidation of fatty acids and (b) stabilize your energy levels. Against that background it appears smart that thirty of the sixty overweight or obese, but otherwise healthy women (aged between 26- 45 y) with sedentary life styles, who were selected to participate in the study at hand followed a calorie shifted diet (CSD) and supplemented with 5mg/kg of caffeine on both the calorie reduced and the ad-libitum days of their diet.
Figure 1: Overview of the three 4-week phases of the study and the respective energy intake.
As you can see in Figure 1 there was a hardcore dieting phase (phase 1 + 2 | day 1-14 + 15-28), in the course of which the subjects consumed ~800kcal less than on their regular diets and a 4-week normalization phase (phase 3 | day 29-42).
"All subjects were instructed to consume their meals (containing determined calorie) only at 4 set of meals every day and avoid any other intake at other times of day. The time for each of these meals was optional and they were free to consume in any hour, but the time interval between meals could not be less than 4 hours (e.g. 8-12-4-8)." (Davoodi. 2014a)
The subjects had to follow their 55% carbohydrate, 25% protein, 20% fat diets "to the T" for the previously mentioned 11 dieting days which were followed by 3 days of self-selecting food and energy intake. The 11-3 day-cycles were repeated 3 times (for 42 days) and followed by a whole follow-up period, in the course of which subjects received a diet containing 55% carbohydrates, 20% protein and 25% fat that was designed to match their individual energy requirements.
Calorie shifting beats the crap out of regular dieting by preserving the dieters' RMR (Davoodi. 2014b)
Is calorie shifting superior to regular calorie restriction? Yes, it does! As I've pointed out in the introduction, there are only few studies investigating the effects of diet / refeeding cycles, but a previous study by the authors of the study at hand (Davoodi. 2014b) shows overweight women lose significantly more body fat on a calorie shifting vs. regular diet; and, more importantly, kept the fat off during the weight maintenance phase - probably due to the conservation of their resting metabolic rate, which goes hand in hand with slightly reduced hunger scores and a higher rate of satisfaction with the diet.
The study design is not too difficult to understand, right? A significant reduction in calorie intake for 11 days that should suffice to strip 3.1kg of pure fat off the overweight physique of the study participants (assuming that you need a deficit of 7,000kcal to lose 1kg of body fat) if they didn't overeat on the ad-libitum days.
Figure 2: Body weight and body fat levels in % of baseline (Davoodi. 2014a)
And surprise! In this case the "optimistic" calories in vs. calories out calculation is actually not optimistic enough. Instead of the calculated 3.1kg of body fat, the ladies lost 8.04 kg of pure fat! That's 2.6x more fat than you would predict based on the stupid in vs. out calculation!

There is yet another surprise: Caffeine does not promote fat loss!

Yes, you read me right. Take another look at the data in Figure 2. While the weight in the caffeine group dropped faster, the weight / body fat loss in the group who abstained from caffeine was significantly more favorable.
Figure 3: Ratio of fat to weight loss - higher values = more favorable changes in body composition.
While the extreme difference in the first week could still be an outlier, there is a non-negligible trend towards more favorable changes in body composition in the "non-caffeinated" dieters (see Figure 3).

It is important, thought, to point out that this advantage occurred only during the active weight loss study. During the one-month follow up the addition of caffeine during the dieting phase inhibited the minor body fat rebound of 0.78kg and may - according to Davoodi - be what triggered the additional 1.54kg body fat loss, they observed during the maintenance follow up (Davoodi. 2014b)
Figure 4: If the fat loss alone was not impressive enough for you, what about the absence of a fat rebound?
Bottom line: While the caffeine-disadvantage comes as a surprise and is difficult to explain (could be an increase in cortisol that blunts fat loss, specifically in the obese) the overall message of the study at hand is clear: the good old bodybuilding diet / refeed regimen works and it works extremely well in overweight and obese women...

I mean: Can you remember another study, where the subjects lost almost 30% of their body fat and did not experience a weight rebound (in the caffeine arm, they even kept losing fat, see Figure 4) after a 42 day weight loss intervention? I can't and I have read my share of scientific papers | Comment on Facebook!
References:
  • Davoodi, Sayyed Hossein, et al. "Caffeine Treatment Prevented from Weight Regain after Calorie Shifting Diet Induced Weight Loss." Iranian Journal of Pharmaceutical Research 13.2 (2014a): 707-718.
  • Davoodi, Sayed Hossein, et al. "Calorie Shifting Diet Versus Calorie Restriction Diet: A Comparative Clinical Trial Study." International journal of preventive medicine 5.4 (2014b): 447.

High Energy Flux, A New Determinant of Successful Weight Loss? Eat More, Train More, Lose More? Increased Resting Metabolic Rate & Satiety, Decreased Hunger While Dieting!

Always hungry? Can't lose weight? "Train more and eat more" (not less!) could be the solution.
A recent thesis from Rebecca Foright, highlights that a high energy flux state characterized by high daily energy expenditure (resulting from increased physical activity) with matching high energy intake (high calorie throughput) may attenuate the weight loss-induced energy gap by reducing hunger and ameliorate the otherwise diet-related reduction in resting metabolic rate.

Foright recruited recruited eleven obese study participants from the Colorado State University community and surrounding areas to test her "exercise more, eat more, lose more (easily)" hypothesis.

The enrollment criteria included: BMI between 30-43 kg/m², age 18-55 years, weight stable over the prior 12 months, desire to lose weight, and ability to exercise as assessed by electrocardiogram (ECG), resting blood pressure and a normal incremental exercise test to exhaustion with simultaneous ECG. Exclusionary criteria included: pregnancy or breastfeeding, smoking, use of medication known to affect appetite or metabolism (including but not limited to antidepressants and statins), or prior surgery for weight loss. In short, most of the participants were what we today call "healthy obese."
"The approach used in this study was a within-subjects cross-over experimental design to test the effect of high and low flux states following weight loss on resting metabolic rate and perceptions of hunger and satiety."
Learn more about building muscle and strength at www.suppversity.com

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

Alternating Squat & Blood Pressure - Productive?

Pre-Exhaustion Exhausts Your Growth Potential

Exercise not Intensity Variation for Max. Gains

Battle the Rope to Get Ripped & Strong

Study Indicates Cut the Volume Make the Gains!
The study protocol was divided into four distinct phases: (1) baseline testing phase prior to weight loss; (2) weight loss phase induced by a hypocaloric diet over the course of several months; (3) weight maintenance phase in which subjects were maintained at the reduced weight for 3 weeks; and (4) experimental phase in which measures were obtained of subjects’ resting metabolic rates, fasting and post-prandial perceived hunger and satiety, fasting and post-prandial circulating glucose, insulin, and PYY concentrations, and ad libitum food intake on the 5th day following low flux and high flux phase conditions, respectively, completed in random order with a three-day washout period in between (see Figure 1).
Figure 1: Experimental Timeline | #Order of Low Flux and High Flux were randomly assigned (Foright. 2014).
During the low flux condition subjects remained sedentary for four consecutive days. All food was provided so that energy intakes were adjusted to maintain energy balance.
  • resting metabolic rate (RMR) measurements on day 1-4 of the low flux phase
  • caloric intake was adjusted according to RMR everyday
  • subjects were fed standardized meals with a macro composition of 50/35/15 (carbohydrate/fat/protein) and an energy intake that was 1.3x the RMR
  • subjects had to refrain from physical activity (>3,000 steps per day)
  • at the end of day 5 the subjects completed a hunger/satiety questionnaire used to assess general feelings of hunger/satiety over the prior four days of the low flux condition
During the high flux condition subjects exercised on four consecutive days (approximately 500 net exercise kcal expenditure at 60% V02 max) and were fed additional food necessary to maintain energy balance.
  • resting metabolic rate (RMR) measurements on day 1-4 of the low flux phase
  • caloric intake was adjusted according to RMR everyday
  • subjects were fed standardized meals with a macro composition of 50/35/15 (carbohydrate/fat/protein) and an energy intake that was 1.7x the RMR
  • subjects were given pedometers and had to achieve at least 7,500 steps per day
  • subjects exercised at 60% of their VO2max to burn 500kcal
  • at the end of day 5 the subjects completed a hunger/satiety questionnaire used to assess general feelings of hunger/satiety over the prior four days of the low flux condition
Overall, a testing week consisted of two baseline days and 5 high/low energy flux days. In that, three identical experimental days were used to examine possible differences in perceptions of hunger and satiety, blood glucose, insulin, and PYY in response to breakfast preload, and ad libitum intake from a meal buffet.
Note: The caloric deficit that was designed to produce a 7% weight loss over the course of the 12-16 week long weight loss phase was identical in the undulating high and low energy flux phases of the study. The results are thus not a consequence of the increase in energy intake during the high flux phase (in fact the opposite was the case in some subjects, anway). The extra calories were after all burned again during the four exercise days.
"Now what is particularly interesting about the study is that the researchers did not content themselves with measuring the acute effects of high vs. low energy fluxes. They also investigated what happened after the 12-16 week weight loss phase.
To minimize the acute effects attributable to the dynamic phase of weight loss on metabolic rate and on hunger and circulating appetitive hormone concentrations, subjects were maintained at the seven percent lower body weight for a three-week period prior to the start of the low and high flux conditions. During these three weeks subjects reported to the KANC every three days to monitor weight and minimize weight fluctuations. Subjects were instructed to consume a slightly increased kcalorie intake compared to the weight loss phase to maintain weight" (Foright. 2014).
Put simply, the scientists wanted to know, whether the effects of high vs. low energy flux dieting would influence a dieters ability to lose weight and maintain the newly achieved weight.
Figure 2: Weight loss and energy flux where exactly as the scientists had planned (Foright. 2014)
As you can see, the average weight loss was almost identical to the targeted 7% (de facto "only" 6.9%). Similarly,
[...a]s designed, the energy intake for high flux (x±SD: 3,191±587 kcal/d) was significantly greater (p < 0.001) than for low flux (x±SD: 2,449±406 kcal/d) (Figure 2, right). In accord with the study design, there was no difference in macronutrient composition between the two conditions (data not shown)" (Foright. 2014).
Now all that would be pointless if both groups lost weight similarly effortlessly. In reality, though, On the subjects were significantly more hungry and felt less satiated at the end of each of the days during low flux.
Figure 3: As you see, the mean difference was already huge. It was more than huge in in
the subject who saw the greatest benefit (Foright. 2014).
On the other hand, they were significantly more full at the end of each of the days during high flux (p=0.015). There was a strong trend for the subjects to exhibit greater hunger throughout the day during low compared to high flux (p=0.09).
RMR increases sign. in trained but not untrained subjects in a high energy flux state - no training, no difference between the two groups - the energy balance was identical in both conditions (Bullough. 1995)
No, this is not an outlier study: In 1995 Bullough et al. were already able to show that the resting metabolic rate on diet + exercise regimen that established an identical energy balance was greater in trained than in untrained subjects only when trained subjects were in HF. As Bullough et al. point out "[t]hese data indicate that RMR is influenced by exercise, energy intake, and their interaction and suggest that higher RMR in trained vs untrained individuals results from acute effects of HF rather than from a chronic adaptation to exercise training." (Bullough. 1995) Bell et al. on the other hand found that "[m]aintenance of high energy flux via regular exercise may be an effective strategy for maintaining energy expenditure and preventing age-associated obesity" (Bell. 2013).

And Goran et al. (1994) found that "RMR can be elevated during a state of energy balance when energy flux is increased," and that the "magnitude of adaptive change in RMR is similar in response to increased EI [energy intake] and/or PA [physical activity]." 
Figure 4: The subject who saw the greatest satiety benefit in the high flux phase was also the one that consumed the most energy on the low flux condition - even more than on the high flux condition (Foright. 2014)
Interestingly, the subject who saw the largest benefit (see Figure 3) was also the guy or gal who consumed the most energy in the low flux condition (orange line in Figure 4).

So what about the health markers?

The  fasting insulin decreased following weight loss and was significantly lower on the LF (8.3±1.1 µU/ml) and HF (6.4±0.8 µU/ml) experimental days compared to the pre-weight loss baseline (11.8±0.6 µU/ml). In other words, while both groups saw significant increases in insulin sensitivity due to dieting, the effects were (unsurprisingly) significantly more pronounced during the high energy flux (=exercise phase).

In contrast to what the significant differences in hunger ratings would suggest, there were no general differences in fasting PYY (the satiety hormone) concentrations among pre-weight loss, low and high flux conditions respectively.
Figure 5: Insulin and PYY levels of the subjects in the high and low flux phases over the course of the day (2014).
If you look at the data in Figure 5, it's obvious that the PYY levels were in fact lower in the high flux condition - from 180-360 minutes in the high flux condition compared to the baseline (pre-weight loss) and low flux, to be precise.
Figure 6: Average resting metabolic rate at baseline and across 5 days of low and high flux (Foright. 2014)
So what? Beneficial, not beneficial, or not sure? In spite of the absence of significant differences in PYY, the post-diet response of the subjects clearly indicates that the energy deficit was easier to tolerate in the high flux phases.

The slightly, but significantly higher resting metabolic rate during the high flux phases further underlines that there is a benefit of eating more and training more and the absence of corresponding evidence from any of the hormonal markers measured may simply be related to a "bad" choice of markers. If the researchers had determined the level of the hunger hormone ghrelin, instes, it may well have been that we would have had a physiological explanation for the "hunger difference".

The way it is, we still have the decreased subjective hunger, increased subjective satiety and increased RMR which speak in favor of the high flux state dieting. What we do not know, though, is whether the effects will be the same in athletic (vs. sedentary) subjects [based on my personal experience we will!] and whether they can be maintained for say 4 weeks instead of four days | Comment on Facebook!
References:
  • Bell, Christopher, et al. "High energy flux mediates the tonically augmented β-adrenergic support of resting metabolic rate in habitually exercising older adults." The Journal of Clinical Endocrinology & Metabolism 89.7 (2004): 3573-3578.
  • Bullough, Richard C., et al. "Interaction of acute changes in exercise energy expenditure and energy intake on resting metabolic rate." The American journal of clinical nutrition 61.3 (1995): 473-481.
  • Foright, Rebecca. A high energy flux state attenuates the weight loss-induced energy gap by acutely decreasing hunger and increasing satiety and resting metabolic rate. Diss. Colorado State University, 2014.
  • Goran, Miachel I., et al. "Effects of increased energy intake and/or physical activity on energy expenditure in young healthy men." Journal of Applied Physiology 77.1 (1994): 366-372.
  • Rarick, Kevin R., et al. "Energy flux, more so than energy balance, protein intake, or fitness level, influences insulin-like growth factor-I system responses during 7 days of increased physical activity." Journal of Applied Physiology 103.5 (2007): 1613-1621.

"Just One More Set" (1/2): Metabolic Response to 10,000kg vs. 20,000kg Regimen. EPOC: Do Reps and Loads Both Figure? And What About Elite Athletes Do They Need More?

"Ah come on, just another set!" ... "I don't know man, we've already pumped away 100,000kg today... do you really believe that's going to be productive, I mean, yeah, we are cuttin', but still... I mean I don't dig this epic!", "EPOC man, it's called EPOC!" *shakes his head* "Call it whatever you want, bro, I am out!"
If you want, you can think of today's SuppVersity post as an extension to yesterday's "Bigger, Stronger, Faster" special of the On Short Notice series; to be more precise: As a practically more relevant version of the rodent study on hypertrophy vs. strength training that was part of the aforementioned post. Yep, we are "talking volume" today. How much is too much?  And though this is never-ending debate, it appears that at least as far as research goes, a little more debating certainly would not hurt. Therefore I am happy to have not one, but two studies for you which don't just address this issue, but have also been conducted with human subjects!

In view of the fact that these are no "short notices", I will discuss one today and the other tomorrow - yep, that means that you can already make a mental note to come back tomorrow ;-)

"Just one more set, ..." - how productive can that be?

Today's study comes from the Human Performance Laboratory at the Florida State University and deals with the energetic side of things - specifically the often-cited EPOC (excess post-exercise oxygen consumption), which is often touted as one of the most important aspects why strength training in general and higher volume / intensity strength training, in particularly, would have the edge over cardio training. The reasoning is easy: You don't burn so much energy while you work out, but in the time after, your body will (a) still expend more energy per minute / hour and (b) has the advantage of emptied glycogen stores, which will force it to tap into its body fat stores the source for the required energy.

All of you who have read the complete Athletes' Triad series, will by now already know that at least argument (b) is pretty idiotic, because it wouldn't allow you to replenish your muscle and liver glycogen after workouts and thus pave the way into the dreaded vicious circle of the athlete's triad. The former argument, on the other hand has - on a way more general level - only been confirmed a couple of days ago (see "Scientists resolve the paradox of stable muscle metabolism but greater mitochondrial respiration in muscle of inactive vs. active subjects", read more), the question still remains: How much weight do you have to lift to set the 'afterburner' into full gear? 

10 metric tonne or 20 metric tonnes? What do you say?

I see, you are laughing, but basically the above question is what the George J. Abboud and his colleagues tried to find out, when they recruited 8 healthy men aged19-29 yrs who had 
"at least 12 months of RT experience with no more than 2 wks rest at a time, less than a total of 4 wks off within the last 6 months, or 9 wks off within the last 12 months [and] reported no prior or current use of illegal performance enhancing substances." (Abboud. 2012)
Suggested read "Three is More Than One: Higher Volume Increases Strength Gains in Legs, and Satellite Cell Recruitment and Fiber Size in Legs & Traps."
As usual the subjects had to fill food logs for the three days before the testing and were instructed to replicate the same eating pattern on the second occasion in which they were randomly assigned to perform a standardized resistance training (RT) regimen consisting of 4 exercises performed on a non-counterbalanced smith machine so that the range of motion during

  • bench press, 
  • squat, 
  • bent-over row and 
  • Romanian deadlift 
could be controlled for easily. Other than the equipment and the exercises, which were identical on both occasions, the volume of the training sessions varied and if you express this volme in kg or metric tons, it was a competition of 10,000 kg (10 metric tonnes) vs. 20,000 kg (20 metric tonnes) of weight. 
"The loads were divided between the 4 exercises as follows: 35% to squats, 30% to bench press, 20% to bent-over rows and 15% to Romanian deadlift. For each set, subjects lifted approximately 85% of their 1RM for 6-8 repetitions. If 6 repetitions could not be completed at any point, the load was reduced by 10% for the subsequent set." (Abboud. 2012)
Both sessions were supervised by three testers : One monitored the metabolic cart, one made sure the proper range of motion was used and one monitored the proper lifting form. The subjects had to perform the concentric portion of each lift with maximal speed and ensure a controlled eccentric descent. A specific time interval was not dictated. Sets were stopped if "subjects broke form" (Abboud. 2012) and 2 minutes of rest were given between sets. In this fashion the subjects simply kept lifting set after set until the volume prescription for the respective trial was reached.
Figure 1: Resting metabolic rate (RMR) per kg body weight, 30min energy expenditure and respiratory exchange ratio (RER; lower values = higher fat, lower glucose  oxidation)  after low and high volume trial (based on Abboud. 2012)
As you can see in figure 1 there were differences as far as the effects of the high (20,000) vs. low (10,000kg) regimen on the resting metabolic rate, 30 min energy expenditure, and the respiratory quotient (lower values = higher fat, lower glucose oxidation), but in view of the fact that the high volume group moved 2x more weight and should thus (at least theoretically) have expended twice the energy (assuming they performed all reps with perfect form and identical speed), those differences are more than disappointing. 

The minuscle effect size is yet not the most "disappointing" (or "surprising" ?) result

In fact, contrary to the low volume workout the 20,000kg workout did not produce any increases in resting metabolic rate and 30min energy expenditure, at all - put simply: There was no EPOC after the high volume trainingAnd this did not change over the whole 48h period (and I know you guys, you won't rest longer anyway ;-).

Now you may say that this was a crazy protocol, but let's do the math, let's assume the guys did squat 100kg, benched and rowed their own body weight of ~80kg and deadlifted 125kg. With 10 reps per set thats 1,000kg + 2x800kg + 1,250kg per set respectively. If they did three sets per exercise they would thus already be up to 9,950kg! If you still think that's crazy, let's hear what the scientists have to say:
"As subjects in the present study were well adapted to RT, the training stimulus needed to elicit increases in EPOC arguably needed to be much higher compared to that used in previous research  Two studies using intensities of 70% 1RM report significant increases in RMR. Melby et al. had subjects perform 6 setsof 10 different exercises for a total of 60 sets. The repetition range for this protocol was 8-12 repetitions per set. This amounts to approximately 600 repetitions performed during the course of the exercise bout. The range of load-volume lifted by these subjects was 15,000-38,000 kg. [...]" (Abboud. 2012)
The list goes on and you just have to go to your gym and I guarantee you, no matter how few people are on the floor you will see a guy who (often without noticing is) will be pounding away much more word within a single workout. Moreover, the the subjects in the present study completed their trials
with a drastically lower number of repetitions -  a mean of 199. Had they performed the crazy rep-volume of the Melby study, they would probably have come close to 50,000 kg. This raises an interesting question is "volume" correctly defined by giving the total amount of weight you lift? Or is the number of reps maybe more important as far as the after-burner EPOC is concerned?

Too much of a good thing? But what if you are a highly trained athlete?

A previous study, by Hackney et al. would support the notion that heavy lifting is an obligatory part of the EPOC equation. In the latter study, EPOC trained individuals who used a lower load-volume than the trainees in the study at hand  had increased resting metabolic rates for up to 72h (Hackney. 2008). Since the Hackney study also put an emphasis on eccentric contractions and will thus probably have lead to even greater muscle damage than the protocol of the study at hand (CK(10,000kg) = 729U/L vs.CK(20,000kg)  = 1,159IU/L), Abboud et al. speculate that ...
"[a]s protein synthesis required for repair is energetically expensive, it is logical that untrained subjects will show greater and longer alterations in EPOC post-RT. Judging by training history, strength levels and CK responses, subjects in the present study had most likely reached a higher level of adaptation than ones in previous studies, and therefore were less sensitive to the metabolic effects of recovery from RT." (Abboud. 2012)
In other words, for you, probably a seasoned strength trainee, the 'more is more' principle is not going to yield better results - even if your goal is to shed body fat. And ...
"Although RT is an important component in any weight loss program to attenuate the loss of fat free mass and therefore better preserve RMR, it is unlikely that the total energetic cost (during and post-exercise) of a typical duration workout will be adequate for significant weight reduction in highly trained recreational lifters without caloric restriction and/or additional aerobic or high intensity interval training." (Abboud. 2012)
And since I rarely encounter a conclusion that's so to the point, I'll leave you with that for today and remind you to come back tomorrow to learn, when and for which body parts doing somewhat more may still be beneficial - read me tomorrow ;-)

References:
  • Abboud GJ, Greer BK, Campbell SC, Panton LB. Effects of Load-Volume on EPOC after Acute Bouts of Resistance Training in Resistance Trained Males. J Strength Cond Res. 2012 Oct 18.
  • Hackney KJ, Engels HJ, and Gretebeck RJ. Resting energy expenditure and delayed-onset muscle soreness after full-body resistance trainingwith an eccentric concentration. J Strength Cond Res. 2008; 22: 1602-1609.
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Metabolic Damage in Biggest Losers: Will Diet & Intense Exercise Make You Fat, While Surgery Will Make You Lean? Plus: How to Avoid / Correct Diet-Induced REE Reductions

If you start to work out when you are already obese, it'll still help you lose weight, but if you'd been active the years before chances are you'd not have such weighty problems and wouldn't have to fear metabolic slow down.
Let me answer the question in the headline of today's SuppVersity Article right away, 'cause the answer short and easy: "No!" If you compare the body composition of the Biggest Losers who were included in a recent study by scientists from the National Institutes of Health in Bethesda and the Pennington State Biomedical Research Center, the Vanderbilt University School of Medicine and the University of California-Los Angeles to that of their bariatric surgery patients, the "Biggest Losers" (BLC) had lower body fat and higher lean mass percentages than their peers who took the easy way out (Knuth. 2014). What is non-debatable, though, is the fact that the thirteen "Big Losers" also exhibited significantly more reduced resting metabolic rates - a phenomenon that caused quite a stir in two Facebook groups I am frequenting regularly.
You can learn more about the biggest losers and related topics at the SuppVersity

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If you know the exercise drill and "diet" regimen on the TV show, you are probably not surprised to hear that the calorie restriction along with vigorous exercise in BLC participants resulted not just in a higher preservation of fat free mass (FFM), but also in a significantly more pronounced "metabolic adaption" compared to RYGB subjects.

Now, the fact that this happened despite comparable weight loss clearly suggests that we are dealing with "metabolic damage", right? Well, this is exactly what neither I, nor Nicolas D. Knuth and his colleagues who published the results of their NIH funded research in the peer-reviewed journal "Obesity" would say.
Figure 1: Changes (%) in BMI, lean mass and body fat (%) after 7 (BLC) and 6 months, respectively (Knuth. 2014)
The thing we are dealing with is not "damage", it's adaptation and it's an adaptation process that occurred during the weight loss intervention (30 weeks; see Johannsen. 2012), not after an appropriate reintegration to a normal life.
Things to keep in mind: The study at hand confirms what Pourhassan et al. report in another recent study. Reductions in muscle, plasma triiodothyronine and kidney masses explain only 34.9%, 5.3%, and 4.5% of the reduction in RMR (Pourhassan. 2014). And with respect to the false notion that it would be better not to work out, to avoid "metabolic damage", I can only say that DeLany's recent study into the effects of exercise on the reduction in energy expenditure during weight loss interventions is only the latest in a long line of studies that confirm that working out will not just keep the energy expenditure from dropping, it will also improve the dieters' adherence to a given prescribed caloric restriction (DeLany. 2014).
Against that background and in view of the fact that recent studies show that the contribution of body fat and other organs to the resting metabolic rate may have been significantly underestimated it is questionably how significant this comparison is. A comparison, by the way, that's not exactly fair:
  • Sugar + phosphate can limit the reduction in T3 during diets in women (read more)
    6 months in the RYGB patients vs. 7 months in the BL competitors, 
  • being sedentary vs. working out vigorously, 
  • not being able to cheat vs. being able to stick to a diet and exercise regimen, 
  • type II diabetic w/ HOMA-IR >8 vs. still pretty healthy w/ HOMA-IR = 2.0 
Where's the level playing field, here? And how significant are the reductions in leptin (tells the hypothalamus that there is still enough body fat left) and T3 (is the active thyroid hormone and a main determinant of resting metabolic rate) that suggest that the Biggest Losers competition ruined their metabolism temporarily, when they came with significant reductions in blood pressure, andimproved HDL and C-peptide levels, which did not occur in the bariatric surgery group?
If you are sitting in the diet trap your situation is similar to the one of the boys and girls suffering from Athletes's Triad and so is the solution!
What can a "Big Loser" do to get back to normal REEs fast? Based on the contemporarily available evidence, the best thing they could do was to inject leptin (Rosenbaum. 2005; Kissileff. 2012). Other strategies that may work are strategic overfeeding (for 2-3 days; on a high(er) carbohydrate diet) and intake / supplementation of foods and agents that have been shown to increase leptin in normal-weight or reduced obese individuals. The effects should be similar to those scientists observed with leptin injections - albeit much less rapidly: So be patient if you are going to try any or all of the following tweaks.
Possible means to restore leptin to normal would include: Lower omega-3 (Hariri. 2014), total fat (Havel. 1999) and fructose (Teff. 2004), but higher dairy (Wennersberg. 2009) and carbohydrate (Romon. 1999) meals and / or  zinc supplements (Chen. 2000) or sugar + phosphate (learn more) and nicotine (Eliasson. 1999) to increase leptin and leucine / EAA-rich proteins (Binder. 2014) or, again, nicotine (Li. 2003) to increase leptin sensitivity. Ah! And don't forget not to overtrain (Jürimäe. 2003) and, of course, to sleep enough (~8h) - sleeping less will lower leptin by >20% (Spiegel. 2004).
Moreover, if you look at my plot of the data in Figure 1, you will see that the that it is a perfectly normal adaptations to exuberant caloric deficits (>50%).
Figure 2: The metabolic "damage" is rather a metabolic "adaptation" (y-axes; in kcal/day) in response to significant energy deficits (x-axes; calculated energy expenditure (includes exercise induced energy expenditure, therefore it can approach 100%) expressed relative to calculated RMR) - the problems begin with intakes >50% below maintenance.
Whether or not the exercise component made things worth, is something that cannot be said based on the data from this study. What it certainly did, though, was to protect the lean mass of the subjects - a vital requirement to achieve what most people are dieting for: Health and being happy with what they see in the mirror.

In conjunction with the previously cited health benefits (reduced blood pressure, increased HDL, ...) it would thus be idiotic to use the study at hand as evidence against the repeatedly proven usefulness of exercise for weight loss and health improvements in obese and non-obese individuals.
Weight loss does not have to cost muscle and ruing your metabolism - learn more about the science-based "art" of losing weight
Bottom line: The study at hand ain't the evidence the lazy ones have been waiting for. It's not a free ticket to the surgeon and it does not provide convincing evidence that diet + exercise are not far superior ways of losing weight (compared to bariatric surgery).

What the study does show, though, is that the recommendations I made in my previous article "Losing Weight Doesn't Have to Ruin Your Metabolism: No Unexpected Reduction in Energy Expenditure With Sane Weight Loss. Plus: 9 Simple Rules Every Dieter Must Follow" (read more) are spot on: Never (!) stay at a caloric deficit that's >40% of what you'd need on a daily basis for more than maybe a week and take breaks, instead of increasing the calorie deficit, when you feel you're hitting a plateau (read all 9 tips, here) | Comment on Facebook!

Ah, and by the way, it's also a myth that formerly obese individuals have necessarily lower resting and total energy expenditures. As Hume et al. found the RMR of ever-lean and formerly overweight women is identical and the ostensibly lower energy expenditure during physical activity is an artifact that's caused by over-reporting of physical activity in the formerly overweight women (Hume. 2013).
References:
  • Chen, Ming-Der, Yuh-Min Song, and Pi-Yao Lin. "Zinc may be a mediator of leptin production in humans." Life sciences 66.22 (2000): 2143-2149.
  • DeLany, James P., et al. "Effect of physical activity on weight loss, energy expenditure, and energy intake during diet induced weight loss." Obesity 22.2 (2014): 363-370. 
  • Eliasson, Björn, and Ulf Smith. "Leptin levels in smokers and long‐term users of nicotine gum." European journal of clinical investigation 29.2 (1999): 145-152.
  • Hariri, Mitra, et al. "Does omega‐3 fatty acids supplementation affect circulating leptin levels? A systematic review and meta‐analysis on randomized controlled clinical trials." Clinical endocrinology (2014).
  • Havel, Peter J., et al. "High-fat meals reduce 24-h circulating leptin concentrations in women." Diabetes 48.2 (1999): 334-341.
  • Hume, David John, Jacolene Kroff, and Estelle Victoria Lambert. "Resting and activity-related energy expenditure: Do formerly overweight women differ from their ever-lean counterparts?." International Journal of Nutrition and Metabolism 5.8 (2013): 134-139.
  • Johannsen, Darcy L., et al. "Metabolic slowing with massive weight loss despite preservation of fat-free mass." The Journal of Clinical Endocrinology & Metabolism 97.7 (2012): 2489-2496.
  • Jürimäe, Jaak, Jarek Mäestu, and Toivo Jürimäe. "Leptin as a marker of training stress in highly trained male rowers?." European journal of applied physiology 90.5-6 (2003): 533-538.
  • Kissileff, Harry R., et al. "Leptin reverses declines in satiation in weight-reduced obese humans." The American journal of clinical nutrition 95.2 (2012): 309-317.
  • Knuth, N. D., Johannsen, D. L., Tamboli, R. A., Marks-Shulman, P. A., Huizenga, R., Chen, K. Y., Abumrad, N. N., Ravussin, E. and Hall, K. D. "Metabolic adaptation following massive weight loss is related to the degree of energy imbalance and changes in circulating leptin." Obesity.  (2014) doi: 10.1002/oby.20900 
  • Li, Ming D., and Justin K. Kane. "Effect of nicotine on the expression of leptin and forebrain leptin receptors in the rat." Brain research 991.1 (2003): 222-231.
  • Pourhassan, Maryam, et al. "Impact of body composition during weight change on resting energy expenditure and homeostasis model assessment index in overweight nonsmoking adults." The American journal of clinical nutrition (2014): ajcn-071829.
  • Romon, M., et al. "Leptin response to carbohydrate or fat meal and association with subsequent satiety and energy intake." American Journal of Physiology-Endocrinology And Metabolism 277.5 (1999): E855-E861.
  • Romon, Monique, et al. "Postprandial leptin response to carbohydrate and fat meals in obese women." Journal of the American College of Nutrition 22.3 (2003): 247-251.
  • Rosenbaum, Michael, et al. "Low-dose leptin reverses skeletal muscle, autonomic, and neuroendocrine adaptations to maintenance of reduced weight." Journal of Clinical Investigation 115.12 (2005): 3579-3586. 
  • Teff, Karen L., et al. "Dietary fructose reduces circulating insulin and leptin, attenuates postprandial suppression of ghrelin, and increases triglycerides in women." The Journal of Clinical Endocrinology & Metabolism 89.6 (2004): 2963-2972.
  • Wennersberg, Marianne Hauge, et al. "Dairy products and metabolic effects in overweight men and women: results from a 6-mo intervention study." The American journal of clinical nutrition (2009): ajcn-27664.