.

.
marylin monroe
Showing posts with label energy expenditure. Show all posts
Showing posts with label energy expenditure. Show all posts

Intelligent Weight Loss Workouts: 45 Min of HIT'14 = "High Intensity Thinking" Help Resolve HIS New Year's Resolution

High intensity thinking - intelligent weight loss workouts
It's almost 2014! Actually it is already 2014; at least for my friends in the "Far East" (HAPPY NEW YEAR!) and thus almost too late for the annual "I want to lose weight" new year's resolution. Ok, you as a SuppVersity reader should actually know better, but just in case you are still planning to make the weight loss happen solely by increasing your workout volume, I would suggest that you replace some classic HIT training with the revolutionary HIT 2.0 - high intensity thinking regimen (warning: doing this too often may actually build more brain than muscle mass ;-). 

Well,... now that I take a closer look at the results of this recent study from the University of Quebec here,  I have to realize that this will only work if you are a man. But don't worry, I am pretty sure there is something to be learned for the ladies in the last SuppVersity article of 2014, as well ;-)

All jokes aside, your brain is a sucker for energy!

I guess you will be familiar with the over-cited fact that "the human brain is only 2% of the weight of the body, but it consumes about 20% of the total energy we need every day"... I know that's boring, but actually that's quite an important point, because it tells you that your brain is not just a sucker for energy, but also a sucker for new information, which will in turn increase the energy requirements of the insatiable heap of neurons in your skull. Why? Well, our brains need energy to process each and every of these information chunks - max. 30W per opeartion, if the currently heralded estimations are correct. I know that sounds tremendously much, but if we performed only one of these operations per minute, you would hardly burn the energy equivalent of 1/25 of a 70-85% chocolate bar during your high intensity thinking sessions.

Against that background it's all the more impressive that Emilie Pérusse-Lachance and her Canadian colleagues were able to measure a significant increase in energy expenditure, when they had their 35 subjects (22 men and 13 women; aged 24 ± 3 years) read a 10-page text and write a summary of approximately 350 words using a computer in the "mental work condition" of their study.
Figure 1: Energy expenditure in kcal/45min in the control and the mental work condition, left; energy intake during the buffet ca. 15min after the control and mental work condition, right (Pérusse-Lachance. 2013)
If you take a look at the data in Figure 1, you will also notice that the scientists original hypothesis, which was that they would observe a similar hyperphagic (=hunger ➲ increased energy intake) response to in the "mental work" condition as Chaput et al. who conducted two very similar studies in 2007 and 2008.  The actual study outcome does yet tell a different story: While the female study participant did in fact supercompensate for the extra-energy they had to spent, when they were not watching TV and lolling around like in the control condition, the men were probably so immersed in their thoughts that they simply forgot to eat... ok, I guess you already realized that this was an ad-hoc hypothesis to make sure you don't realize that neither I nor the scientists have any clue what the underlying reasons of this sex-difference were.

I would even guess that the women did not even notice that they were overcompensating. If you take a look at the subjective hunger scores that have been assessed by seven visual analogue scale questionnaires the participants had to fill...
  1. at the beginning (T-60/60 minutes before the buffet), 
  2. after the experimental session (T-15/15 minutes before the buffet), and 
  3. after the buffet-type meal (T0, T60, T120, T180, and T240).
...those will tell you that the ladies either claimed to, or actually weren't more hungry than in the control condition. In view of the irrefutable evidence that they still ate more (see Figure 1) this may look awkward. When it's all said and done, these contradictory result does yet only confirm that you cannot trust people, when they tell you "I am never hungry and actually don't eat that much.... I have really NO clue where that belly comes from". This may even be their own perception, but that does not change that it is usually not in line what happens at the buffets, dinner tables and - most importantly - during the snack breaks people take during not after their high intensity thinking regimen all over the world.
Figure 2: Change in energy balance (kcal) in the "exercise" condition in the course of which the subjects walked on a treadmill for 45 min, waited for 15 minutes and were then allowed to avail themselves of as much food as they wanted at the buffet - further evidence that the "exercise just makes you hungry" hypothesis is bunk.
Bottom line: By now you should have realized that this article must not be taken too seriously. Though,... if this type of heavy brain lifting would have women eat 15.3% (=121kcal/day) more and men 16.1% (=267kcal/day) less every day it would probably have a non-negligible impact on your chances of living up to your new year's weight loss resolution in 2014.

But don't worry, ladies. Life is not so unfair as it may seem. All you have to do to achieve an almost level playing field is to convince him that a 45 min walk in the park with you is much more fun than 45 min of high intensity thinking. And if that's  not convincing enough, show him the data in Figure 3 and tell him that real exercise (in the study 45min of paced walking) will help both of you improve your energy balance - his by -31% (-516kcal) and yours by -23% (-184kcal).
References:
  • Chaput, J. P., & Tremblay, A. (2007). Acute effects of knowledge-based work on feeding behavior and energy intake. Physiology & behavior, 90(1), 66-72.
  • Chaput, J. P., Drapeau, V., Poirier, P., Teasdale, N., & Tremblay, A. (2008). Glycemic instability and spontaneous energy intake: association with knowledge-based work. Psychosomatic medicine, 70(7), 797-804.
  • Pérusse-Lachance, E., Brassard, P., Chaput, J. P., Drapeau, V., Teasdale, N., Sénécal, C., & Tremblay, A. (2013). Sex Differences in the Effects of Mental Work and Moderate-Intensity Physical Activity on Energy Intake in Young Adults. ISRN Nutrition, 2013.

HIIT or LISS - A Question of Efficacy? High Intensity Interval Training Kickstarts Fatty Acid Oxidation & Metabolism to Make Up for the Higher Energy Exp. During LISS in 24h

If you ever wondered why you're huffing and puffing for hours after your HIIT sessions, here is the answer!
Your oxygen consumption can be used as a measure of fatty acid oxidation and total energy demands. It is one of the frequently used output variables in training studies and it is often cited as one of the arguments of the friends of "classic" cardio training like jogging on a treadmill or cycling at a medium intensity. Why? Well, if you cycle for one hour you will obviously consume more oxygen (O2), than you'd do within 10 minutes of high intensity interval training, right?

In a recent study scientists from the Department of Kinesiology at the Ivor Wynne Centre of the McMaster University in Hamilton, Ontario (Canada), Lauren E. Skelly and colleagues tested whether this initial advantage, i.e. the increased VO2 consumption and thus energy expenditure in response to the exercise, would last 24h (Skelly. 2014).
You can learn more about HIIT at the SuppVersity

Never Train To Burn Calories!

Tabata = 14.2kcal /min ≠ Fat Loss

30s Intervals + 2:1 Work/Rec.

Making HIIT a Hit Part I/II

Making HIIT a Hit Part II/II

HIIT Ain't For Everyone
To this ends, the researchers recruited nine healthy young men (age = 21 ± 1 years, body mass = 91 ± 15 kg) and had them perform 3 trials in random order in a repeatedmeasures design.
  • The HIIT treatment involved 10 × 60-s intervals at a workload that elicited 90% HRmax with 60 s of active recovery at 50 W. 
  • The END protocol consisted of cycling at a workload that elicited 70% of HRmax for 50 min. 
  • Control protocol: No exercise was performed in the control trial (CON). 
The HIIT and END protocols were selected, because previous research has reported similar changes in body composition between HIIT and longer (40–60 min) bouts of END (Macpherson et al. 2011).
"Also, given that HIIT studies typically involve 3 training sessions per week, and given current physical activity guidelines are calling for 150 min of moderate-intensity exercise per week, a comparable END training program would consist of 3 × 50-min sessions per week." (Skelly. 2014)
A 3-min warm-up at 50 W was performed prior to the main exercise bout in both, the HIIT and END trials. All trials commenced following a 10-h overnight fast (all meals were standardized for a given subject across all trials) and subjects were advised to perform no physical activity other than the prescribed exercise and normal activities of daily living for 24 h prior to each trial and over the course of the 24-h collection period. 
Figure 1: Total oxygen consumption at each measurement point (A) and over 24 h (B). CON, control; HIIT, high-intensity interval training; END, continuous moderate-intensity training; HRmax, maximal heart rate. *,p< 0.05 vs. CON; †,p< 0.05 vs. HIIT
Due to the "no breakfast" + "no other exercise" framework, the results are not per se generalizable, but it seems prudent to assume that we will see a similar "catch up" in O2 consumption after the workouts under different circumstances, as well.
Suggested Read: Some HIIT For Life & Less LISS For More! How to Burn 27,300 Kcal Extra W/out Losing a Single Extra Pound of Fat | more
Bottom line: The study at hand underlines hat HIIT is more than just 10 min of all out exercise. It's a metabolic trigger with long lasting consequences and a real alternative to classic "cardio" training. HIIT is time-efficient and effective, but it's not exactly resistance training compatible. The constant CNS overload you'd suffer if you add 3 HIIT sessions on the off days to a 3-day split resistance training regimen is much more likely to fry your nerves than a "lazy" walk on an incline treadmill. Keep that in mind and be weary of sleep problems, a lack of drive and motivation if you decide to incorporate additional high intensity interval work into your routine | Comment on Facebook!
Reference: 
  • Macpherson, R. E., et al. "Run sprint interval training improves aerobic performance but not maximal cardiac output." Medicine and science in sports and exercise 43.1 (2011): 115-122.
  • Skelly, Lauren E., et al. "High-intensity interval exercise induces 24-h energy expenditure similar to traditional endurance exercise despite reduced time commitment." Applied Physiology, Nutrition, and Metabolism 39.999 (2014): 1-4.

Intermittent Thoughts On Intermittent Fasting - Exercise (3/3): How Training Solves the AMPK/mTOR Antagonism.

Image 1: Just like Two-Face, a character from the Batman comic books, AMPK turns out to have two faces,... ah I mean isoforms the differential expression of which explain why exercise, contrary to starving yourself, maintains or even builds muscle mass while reducing your love handles (img batman.wikia.com).
In the last installment of the Intermittent Thoughts on Intermittent Fasting series, we have revisited the idea of different training modalities, i.e. endurance and strength training, for the promotion of AMPK-related reductions in body fat and mTOR-dependent increases in muscle mass. We have also busted the long-standing myth of the "anabolic window of opportunity", which, upon closer examination, turned out to have the size of a barn door (>24h) that is unlocked with the key of exercise and nutrition sciences. Related findings showed that even in the absence of additional nutritional stimuli a single intense strength training session led to a profound and (>24h sustained) increase in mTOR phosphorylation in 24 untrained, young, healthy, male subjects (Vissing. 2011). In conjunction with the results of Burd et al. (Burd. 2011), who found that the beneficial effects of strength training on the subsequent response to protein feeding depend on exercise intensity and volume and last for >24h, these results further underline the synergistic effects the fasting, training, feeding cycle of classical intermittent fasting regimens had and still has on the health and physiqueof its practitioners.

Unfortunately, both the concept of "fat loss", as well as that of "muscle gain" are still largely associated with notion of what is commonly referred to as "energy balance". If you read my recent blogpost on the  "High(er) Reps for Fat Loss"-Myth, you will be aware of the fallacy behind the idea of "going to the gym to burn fat". And while more and more trainees (also thanks to the educational work of BodyRX Radio ;-) are getting the idea that you have already lost the fight against your love handles, when you go to the gym solely "to burn calories", the notion that you go to the gym to either "pump up" or "totally exhaust", "damage" and "break down" muscle tissue is similarly illusive. Contrary to what the more is more mentality of the western society may suggest, simple linear causality is nothing you will ever see as the underlying "reason" for the success of a given exercise regimen.

Gain muscle or lose fat? AMPK vs. mTOR and the unique effect of exercise
 
Image 2: "Immunocytochemistry/ Immunofluorescence - AMPK alpha 1 + AMPK alpha 2 (phospho S485 + S491) antibody (ab39400)" ... and if you do not understand this lingo, what you see here is nothing else but one of the unspecific markers for both isoforms of AMPK that is used in most of the studies (img abcam)
Regardless of whether you intend to lose fat, to build muscle or strength, the previous installments should have made it pretty clear that you will always be dealing with two-way processes, or I should say cycles. Now, interestingly enough, exercise, contrary to dieting or overeating, appears to have the unique quality of driving both at the same time - fat loss and protein synthesis, AMPK and mTOR. This works, and this is going to be the main message of this concise piece of the Intermittent Thoughts series, because the exercise induced muscular(!) AMPK-response differs from the one your brain and many other organs will exhibit, when you starve yourself during a diet. Actually we have been knowing for quite some time that the predominant isoform of AMPK that is expressed during exercise is AMPK-alpha2. Back in 2000, already, Wojtaszewski et al. found that "high" (in this case >70% of the individual VO2max) intensity exercise for 60min selectively increased AMPK-alpha2 activity almost threefold (Wojtaszewski 2011). Similar to the results of previously discussed studies, the increased AMPK levels returned to baseline within 3h after exercise-cessation.

Unfortunately, only few of the subsequent studies, which investigated the effects of different exercise regimen, used iso-form specific tests to determine which of the two AMPK isoforms was expressed consequent to the respective training protocols. According to the ground-laying work of Stapleton et al. (Stapleton. 1996) and supported by a study by Stephens et al., it is yet likely that the relative exercise-induced expression of AMPK-a1 in human muscle tissue is negligable.
Figure 2: AMPK-a2 expression (arbitrary units measured in the absence of AMP) and fat oxidation in g/min in 7 healthy individuals during 30 minutes cycling at 62.8% of VO2Max (data adapted from Stephens. 2002).
Moreover, the results of Stephens et al. underline that the exercise-induced increase in AMPK-alpha2 does not only increases fatty acid oxidation, but that both exhibit an excellent correlation with exercise induced glucose depletion (Stephens. 2002).
Figure 2: Glycogen content (mmol/kg) and phosphorylation of AMPK (arbitrary units) in human vastus lateralis muscle before (0 min) and at the cessation of 120 min of one-legged knee-extensor exercise, while consuming either a glucose containing drink or a placebo drink.  (data adapted from Thorbjorn. 2006)
It is thus not surprising that Thorbjorn et al. were able to show that the ingestion of 0.7 g of glucose/kg of body weight/hour did not only blunt the exercise induced AMPK-a2 response but also reduces its beneficial effects on fat oxidation by -47% (cf. figure 2)!

The results of older studies sometimes begin to shine in the light of novel findings 

Now, you probably knew all that before - after all we have been talking about this effect, its beneficial effects on fatty acid oxidation and glucose uptake, as well as its supposedly negative impact on protein synthesis in previous installments of this series. And in fact, these results begin to shine only, in the light of the results of a a recently published study by Mounier et al., who were able to show that only the increased expression of the alpha1 isoform of AMPK, but not AMPK-alpha2 does impair mTOR signalling. Against that background, the systemic antagonism of AMPK-alpha1 (expressed in liver, brain, and other organs) and mTORc1 mediated protein synthesis stands in stark contrast to the metabolically highly beneficial synergism of concomittant exercise-induced AMPK-alpha2 and mTORc1 expression.

To make a long story short: Exercise is unique in its ability to help you shed fat and build muscle "at the same time", because it activates a specific isoform of the "starvation sensor" AMPK, which does not block the concomitant increase in protein synthesis subsequent to the (likewise) exercise-induced increase in mTOR phosphorylation. On that note, my schedule forces me to end this abbreviated version of the Intermittent Thoughts, yet not without the promise that I am finally going to tie all the knots together in the next installments of this series.

High Reps vs. 5x5 - Revisiting the "High(er) Reps for Fat Loss"-Myth: Do You Really Believe that "Burning" +13 Extra Calories Will Make a Difference?

Image 1: Vince Andrich, here at the 1988 Nevada State Bodybuilding Competition, knew it all along: Hard work, not high reps will get you the stage-ready physique everybody aspires... and I mean look at him are you seriously questioning Vince's expertise?
If you have listened to the latest installments of BodyRX Radio, the idea that strength (and HIIT) training, not calorie restriction and endless cardio sessions pave the way to a leaner, more muscular physique. And although it may be of secondary importance whether you are burning 100kcal or 200kcal during those workouts, it stands out of question that you won't get rid of those damn spare tire, if you do not exert yourself in the gym (something Layne Norton is notorious for, as you may have seen in one of his workout videos or heard on BodyRX, lately) - because, after all, energy expenditure does count, even if the energy equation is much more complex than the simplistic calories in vs. calories out paradigm that is still upheld by mainstream dietitians. The results of a recent study from scientists from the Departments of Health and Sport Sciences at the Salisbury University and the University of South Carolina are may thus come handy to decide, to which extent workout intensity and volume influence acute and post-exercise energy expenditure (Mazetti. 2011). Or, to make it simple, does the good old bro-scientific high volume, high rep, low-weight training during a contest prep make any sense at all?

Exposed! The absurdity of going to the gym to "burn calories"

Scott A. Mazetti and his colleagues recruited 10 resistance trained young men (22+/-3.6 years) with an average body mass of 84+/-6.4kg, a height of 180+/-5.1cm, and a body fat percentage of 13+/-3.8% - an adequate model of the "average gymrat", if you asked me. After a 3-week familiarization and testing period, all participants performed every of the following four different explosive strength training regimen in a randomly assigned, but counterbalanced order (cf. figure 1)
Figure 1: The four training protocols all trainees performed after an initial 3-week familiarization and testing period in a randomly assigned, but counterbalanced order (Mazetti. 2011)
Now, you may complain that there is neither a "high rep" nor a "heavy group" in the conventional sense of 15+ pump training with an endless amount of sets, or the minimalist 1-2 rep approach of the hardcore HIT faction... granted, you are right. Nevertheless, we should see a significant difference in energy expenditure between a 5x5 and a 4x10 (both normally considered as "hypertrophy training) regimen, already, if the good old saying "high(er) reps" for increased energy expenditure and subsequent fat loss had any merit.
Figure 2: Energy expenditure (kcal/min) during and after squatting, and bench pressing in the four training groups and total energy expenditure during the whole workout and 60min post-workout window (data adapted from Mazetti. 2011)
As figure 2 goes to show, there are differences in energy expenditure between the different protocols, during the squat, the deadlift and up to 5 minutes post exercise, nevertheless, the "the differences in total energy expenditure among protocols were not significant". So, even if there were any merit in exercising primarily to burn calories during your workout (a ridiculous way of trying to lose weight, which is predestined to fail, anyway), the -6kcal difference between the -13kcal difference between the least energy consuming form of training, i.e. 5x5 and the one with the highest energy demand, i.e. 4x10, would not even suffice to "make up" (another hilarious idea) for proverbial "apple à day", which keeps the doctor away.
Image 2: Don't let your lazy love handles decide what type of "cardio" you are doing!
A brief note on what Lane already pointed out in the last installment of Body RX Radio: Classic low-intensity cardio training may "burn" calories for a week or two. Afterwards, this type of chronic low-grade stressor is yet notorious for shutting down your metabolism and reducing your resting energy expenditure. Of high intensity aerobic exercise with intensities way beyond the 70% VO2max limit (YES! This is aerobic, two - cf. "HIIT is the Hit! Even for Patients with Myocardial Infarctions!"), we have known for decades that it increases your resting energy expenditure by "5 ±15% for 24 ± 48 h" (Hunter. 1998). So, I suggest you get off the stationary bike you are just riding while browsing the web, get your running shoes out and do a couple of sprints. Your spare tire won't like that, but I bet you will like the effect it's going to have on the person you see in the mirror, each morning ;-)
In view of these results, it appears prudent to reassess the often-heard advice of doing high reps for fat loss. Even if you insist that you need to "burn calories" in the gym, it is very unlikely that those few extra calories would make a noticeable difference in terms of how you look on stage - or just in front of your private mirror. Moreover, even this small advantage vanishes as soon, as you increase the workload by doing 2x7 + 2x6 with a heavy weight, or put simply: Identical workload identical calorie expenditure.

Intermittent Thoughts On Intermittent Fasting - Exercise (2/3): Opening the "Anabolic Barn Door" With the Key of Exercise and Nutrition Science!

Image 1: The "anabolic window" turns out to be more of a barn door, which is unlocked by the key of exercise and nutrition science (Random House Books)
Looking back, the main take-aways from the last installment were the dependence of exercise performance on adequate and not so much constant energy supply, as discussed in the context of the Ramadan fasting soccer players, the increased AMPK response to fasted training on a hypercaloric diet, which would suggest that things like "fasted cardio" in the morning could well have it's place in an intermittent fasting regimen even when you are bulking (in order to ward off fat gains), and, last but not least, the differential AMPK- and p70S6K protein synthetic response of cyclists and powerlifters to unaccustomed training stimuli. Accordingly, a versatile training routine that is timed in a way that allows you to train fasted or semi-fasted training, i.e. having your first easily digestible high protein meal / supplement ~30min-1h before you hit the gym, will certainly help with lean gains and muscle-sparing fat loss.

How to train if someone "just wants to look good naked"?

While the observations of the Coffey study (Coffey. 2005) did underline the importance of versatility, or, I should say constant "novelty", or at least modification of the training stimuli, they did not really provide any clues on how someone, who "just wants to look good naked" (and I assume this applies to the majority of non-athletes, today) should train to transform his formerly at best non-obese physique to the cover-model'ish look everybody is aspiring these days.
Figure 1: Study design of the Vissing study with its 10-week preconditioning phase for the strength and endurance training groups (generated based on information from Vissing. 2011)
In regard to this question, a similar, yet more recent study on non-athletes comes to mind. In the course of the latter, K. Vissing and his colleagues from Aarhus, Denmark, and Geelong, Australia, took a closer look at the response of the "AMPK/mTOR seesaw" to either endurance or strength training (Vissing. 2011) after a comparatively brief per-conditioning period of 10 weeks (cf. illustration 1) - a scenario of which we can expect more reliable results than from its "highly trained recreational athletes" counterpart from the Coffey study, where the participants have been focusing on training for their respective sport (cycling or powerlifting) for years. Accordingly, Vissing et al. expected to see that...
[...] mTORC1 signaling would be selectively activated by SE [strength training], whereas AMPK signaling would be activated by both types of exercise but to a relatively higher degree after EE [endurance exercise] compared with SE [...]
Thus, their research hypothesis was in accordance with the publicly accepted idea that only strength training builds muscle (obviously the role of mTOR-activation in this process is widely unknown in the general public), while endurance exercise would be the better form to train if one wanted to lose fat - as a diligent reader of the SuppVersity, you will obviously be aware that the reduction in adipose tissue you will hopefully observe, when you are dieting, is primarily a result of the depletion of muscular (and hepatic) ATP stores, which brings the AMPK energy emergency police on the scene which will concomitantly tell your muscles to suck up all extra (i.e. more than your brain needs) glycogen from your blood stream and kick your adipocytes' asses, so that they release some of their fatty energy reserves as metabolic firewood for your mitochondria.
I hope you remember "The 'hungry' side of neuronal AMPK activation", i.e. the differential effects of AMPK phosphorylation in reaction to energy shortage in muscle or liver tissue vs. its effects in the brain. If not, I suggest you (re-)read the respective passage in "AMPK III/III: Natural Rythmicity for Maximum Fat & Minimal Muscle Loss", as a thorough understanding of this difference if of utmost importance if you want to be able to compare and interpret the data from various studies correctly.
The Coffey study (discussed in the last installment) did however show that this assumption, i.e. both endurance, as well as strength training will always increase AMPK, does not hold true, when we are talking about highly trained athletes - neither in the cyclists nor in the powerlifters from the Coffey study did engaging in their respective discipline produce statistically significant increases in AMPK phosphorylation.
Figure 2: AMPK phosphorylation (0, 2.5, 5 and 22h post) and approximate area under the respective curces (small graph) during post-exercise recovery from single-bout exercise, conducted with an exercise mode to which the exercise subjects were accustomed through 10 weeks of prior training (data calculated based on Vissing. 2011)
Conversely, in the Vissing study, AMPK phosphorilation did transiently increase in both the strength and endurance trained groups immediately post (at 0h) exercise (cf. figure 2). However, with the subsequent drop of the phosphorylated AMPK (pAMPK) below the values of the control groups, the estimated area under the curve (AUC; I simply used weighed averages for the calculation), i.e. the absolute AMPK phosphorylation over the whole 22h post-exercise window, for which the scientists have data (cf. figure 2, right), was -12% and -17% lower in the strength training group than in the control and endurance group, respectively.  

Without the AMPK elevation of an intermittent fast (or calorie reduction), it is thus unlikely that strength training alone is going to trigger significant AMPK responses.

Interestingly, the scientists state that the protein expression "of any of the reported signaling proteins" was "not altered" by the 10 weeks of pre-training, which would indicate that, contrary to years of competitive endurance exercise (cf. cyclists in illustration 1 in previous installment), 10 weeks with three weekly sessions of combined steady-state and interval exercises on stationary bikes do not blunt AMPK phosphorylation in response to 120 min of bicycle exercise at 60% of the individual VO2 max.

The induction of mTOR phosphorylation is and will remain the real strength of strength training

Likewise, the protein synthetic response (as evidenced by mTOR and p70S6K expression) did not change in response to a 10-week pre-conditioning phase comprising 30 leg workouts (3 exercises; 3-5 sets; 10 reps in the first 15 sessions, 4-6 reps in the last 15 sessions). Interestingly, and contrary to the often heard assertion that mTOR phosphorylation would be a strength training exclusive, figure 3 shows that there is still a minor, yet over the course of the post-exercise period, non-negligible increase in mTOR phosphorylation in the endurance trained subjects, whose 45min cycling session effectively blunted the mTOR dephosphorylisation the control group, who, just like all of the previously (before the preconditioning) 22 untrained healthy male subjects (79.1 kg; 182 cm; 23.3 years), fasted for the first 5h "post exercise" (their exercise consisted of sitting on the couch, doing nothing ;-).
Figure 3: mTOR phosphorylation (0, 2.5, 5 and 22h post) and approximate area under the respective curces (small graph) during post-exercise recovery from single-bout exercise, conducted with an exercise mode to which the exercise subjects were accustomed through 10 weeks of prior training (data calculated based on Vissing. 2011)
Even without looking at the data in figure 3 it should be obvious that the meager increase in mTOR phosphorylation in the endurance group cannot compete with what we see in the strength trained subjects, whose p-mTOR ( = phosphorylated mTOR) levels skyrocket in the post exercise phase, peaking at +218% (control: 56%; endurance: 130%) not immediately or maybe 1h post exercise but 5h after. Thus, the purported "anabolic window" of 1-2h after a workout turns out to be a barn door, in the real world - a barn door which is wide open right in the middle of your intermittent fasting feeding window!

Strength training = opening the "anabolic barn door"

Yet, while we do now know how to unlock the barn door, we still do not know if there ain't a way to push it open even further / faster, and how to keep it wide open for as long as possible. In this context, a study by Burd et al. from Steward Phillips group at the Department of Kinesiology of  McMaster University in Hamilton, Ontario (Burd. 2011) could provide further clues into the "optimal" way(s) to push the "anabolic barn door" open, as wide as possible.
After all that has been said about the over-expression of mTOR in our current society in the previous installments, it should be said that the problem does not lie with mTOR itself, as it is not the latter which inhibits AMPK, but the energy abundance that triggers the mTOR response in our western obesity scenario. This chronic nutritionally induced suppression of AMPK is something we need to distinguish from both the training-induced increase in mTOR phosphorylation and the temporary and strategically used dietary stimuli that are so characteristic of intermittent fasting.
Figure 4: If we disregard the nutritional component, the training induced "anabolic barn door" does not only coincide with the feeding window, it would also keep you nicely "anabolic" in the course of the fasting period.
In figure 4, I have extrapolated the missing two hours to complete a 24 hour intermittent fasting period, in the course of which you would do your training session early in the morning, head towards the gym at 8:00am, change your clothes, warm up, training for about an hour and break the fast at 10:00am. Thereafter, you would have a pretty long feeding window of about 6 hours, to then begin another fast... in that, your meal pattern would differ profoundly from the one of the study subjects, because the latter had to fast for the first 5 hours post exercise, so that the mTOR response was not augmented and the study results distorted by meal ingestion (afterwards they were allowed to eat whatever they wanted until 22:00pm and had to report back for the 8:30am blood draw (mTOR still +89% elevated) on the next morning. Due to these differences it is difficult to predict how your overall (i.e. exercise + food induced) mTOR response would look like on the above regimen.

Will the "anabolic barn door" stay open in the course of the fast and thusly prevent muscle breakdown?

This is where the data from the Burd study comes into play (Burd. 2011). In their study, Bird et al. had measured the fractional protein synthesis rate in response to feeding (15g of whey protein) and feeding and exercise (unilateral leg raises) at different intensities, i.e. 90% 1RM to failure, 30% 1RM with matched work-load and 30% 1RM to failure. What they found was that
regardless of condition, rates of mixed muscle protein and sarcoplasmic protein synthesis were similarly stimulated at FED and EX-FED (Burd. 2011)
- an observation, the scientist attribute to the fact that the sarcoplasmic constituents of the muscle may be more susceptible to hydration flux, so that the results may not adequately represent the "actual" protein synthetic response.Thusly, the researchers rely in their interpretation of the data mainly on the myofibrillar protein synthesis rate (cf. figure 5).
Figure 5: Changes (% per hour) in absolute myofibrillar protein synthesis (adapted from Burd. 2011)
As you would expect and actually can see in figure 5, the latter did respond to the additional exercise stimulus. Pumping away at 30% of your 1RM max without going to failure, is yet not enough to augment the statistically hardly significant increase in fractional protein synthesis that was triggered by protein ingestion, alone. It takes some effort, or, in other words, heavy weights and training to failure to trigger elevations in AKT phosphorylation (90% 1RM to failure) or mTOR phosphorylation (30% 1RM to failure) to get that done (note: neither of the two, i.e. protein kinase B = AKT or mTOR was significantly elevated by feeding, alone).
[...] protein ingestion stimulated rates of myofibrillar protein synthesis above fasting rates by 0.016 ± 0.002%/h and the response was enhanced 24 h after resistance exercise, but only in the 90FAIL and 30FAIL conditions, by 0.038 ± 0.012 and 0.041 ± 0.010, respectively. Phosphorylation of protein kinase B on Ser473 was greater than FED at EX-FED only in 90FAIL, whereas phosphorylation of mammalian target of rapamycin on Ser2448 was significantly increased at EX-FED above FED only in the 30FAIL condition.(Burd. 2011)
Moreover, and this may be of even greater importance in the context of exercising on an intermittent fast, muscle protein synthesis stayed elevated way beyond what is usually considered the <4h "anabolic window".
Our results suggest that resistance exercise performed until failure confers a sensitizing effect on human skeletal muscle for at least 24 h that is specific to the myofibrillar protein fraction. (Burd. 2011)
While this is obviously important for everyone who wants to accrue as much muscle muss as possible, any elevations in protein synthesis will also help a dieter to keep is hardly earned muscle, because in essence our muscles are continuously build up and broken down  - proteolysis, i.e. the breakdown of muscle tissue, and protein synthesis are going hand in hand and it is the ratio of one to the other, which decides whether we are in an "anabolic" (synthesis > breakdown) or catabolic (breakdown > synthesis) state. Consequently, any elevation in protein synthesis will ameliorate muscle loss - no matter how proteolytic a dieter may become during the fasting phase.

It takes >24h for the barn door to close itself - use this time to get rid of fat, not muscle

Fine, we unlocked the "anabolic barn door", it stays open for "at least 24h"... blah blah... wtf! how does all that translate from the metaphorical into the real world of intermittent fasting? Well, the answer is pretty simple, as hundreds of trainees have been practicing exactly that with extreme success over the past couple of months:
  1. fast until min. 1h before your training
  2. spike your protein synthesis with a protein shake (~20g of whey), EAAs (~10g) or BCAAs (~8g)
  3. train semi-fasted and heavy
  4. feast within a 5-8h window
  5. repeat the same litany again
Now, the sheer size of the barn door, ahm... sorry, the long-lasting anabolic and thusly anti-catabolic effect of intense strength training should allow you to either skip or replace "3. train semi-fasted and heavy" with "3. passive or active recovery" (in that case you also do not want to ingest the protein shake / EAA / BCAA) or even some "3. semi-fasted cardio" (see notes in red box) if you feel that your conditioning or weight loss will benefit from that, every other day without running the risk of either gaining too much fat weight.
Image 2: Your "anabolic barn" is huge enough to accommodate one or two steady state, low intensity or high intensity "cardio" sessions per week.
If you want to incorporate "cardio" training into your routine, the pre-conditioning protocol from the Vissing study could actually be a very good, since diversified, regimen. In that, you would cycle between doing "standard" steady state conditioning work, longer medium-intensity interval training and short, but intense HIIT sessions. The result would be a very complete "cardio" protocol, of which the Vissing study showed that it will help you ramp up your AMPK levels pretty profoundly, even if you are only sitting on one of those cycle ergometers pedaling away jovially at 60% of your VO2 max. And in case you are now concerned about possibly shutting the barn door - look at figure 3 again, the mTOR response to this kind of exercise may not be earth-shattering, but a plus of 25% @5h post exercise is better than what you would get if you just lay around lazily, as the control group in the Vessing study did.
With these insights into why that of which you already knew that it works actually works, I conclude this week's installment of the Intermittent Thoughts and hope that I did not bore you so much that you do not come back next Sunday for another installment of this series ;-)

Intermittent Thoughts On Intermittent Fasting - Exercise (1/3): Cycling, Powerlifting and Lean Gaining ;-)

Image 1: It may be more effective than your usual "eat half as much diet", but even with intermittent fasting exercise is compulsory, not facultative.
In the last installments of this series we have analyzed the natural interplay between AMPK and mTOR, have learned that chronic over-expression of either of the two can be detrimental to the way you look, feel and perform and have scratched on the surface of how intermittent fasting and the use of AMPK and/or mTOR promoting supplements can restore and amplify the natural up and down on the AMPK/mTOR seesaw and thus promote fat loss and and gains in lean body mass - not at the same time, but cyclically. In this episode it is high time to take a closer look on how exercise, the one and only true "body recompositioning agent", plays into this.

Tell me who you are and I tell you how your body will respond to exercise.

What we already know is that the exercise induced depletion of intra-cellular ATP and the corresponding increase in ADP and AMP levels will produce profound(!) increases in AMPK phosphorylation. In a recent study on the effects of a 30s Wingate test (a sprinting test on a cycle ergometer with breaking loads equivalent to 10 and 8% of body weight for men and women), for example, scientists from Gran Canaria found increases in AMPK phosphorylation vs. baseline of +495% - 98% for the ten women in the study and +278% - 33% for the 17 (cf. figure 1)
Figure 1: Relative changes in AMPK phosphorylation in response to 30s Wingate sprint test in 17 male and ten female subjects (data calculated based on Fuentes. 2011)
As you can see there is a huge (and statistically significant) gender difference in the initial AMPK(-alpha) response to sprinting, the difference at 30min and 120min post exercise on the other hand did not reach statistical significance (p<0.05). In an aerobic exercise scenario (90min at 60%VO2max), however, Roepstorff et al. PK came up with the exact opposite results (Roepstorff. 2006):
A 198% increase (P < 0.001) was observed from rest to 90 min of exercise in men, whereas in women the exercise-induced 74% increase in αAMPK Thr172 phosphorylation was only borderline-significant.
The different fiber-composition of the male and female subjects could provide an adequate explanation for this phenomenon. With a +23% higher ratio of slow twitch type I to fast twitch type II fibers, the women in the Roepstorff study were, on a pound per pound base, more effective endurance athletes than the men. Consequently, they did not run out of fuel so fast and thusly there was no need for their bodies to ramp up AMPK by the same 198% as the bodies of the men did.
Figure 2: Fat oxidation (in kcal/kg per min) calculated based on respiratory exchange ratio in male and female participants of a 90min cycling bout at 60% of their individual VO2Max (Roepstorff. 2006)
It is important to note that despite lower AMPK activiation in the female participants of the Roepstorff study, the women (due to their high ratio of type I fibers with +25% higher capillarization) had statistically significantly higher fatty acid oxidation rates (i.e. they burnt more fat) than their male counterparts (cf. figure 2)! This goes to show you that the metabolic scene, which is set by AMPK, is not the sole determinant of substrate metabolism. In the end, the capacity of the mitochondrial furnaces decides how much energy from fat you will be able to burn. For subjects with a high amount of type I fibers whose primary objective is to actively burn additional fat calories, aerobic exercise may thus well be a viable alternative for intense HIT regimens, of which Astorino et al. have recently shown that the rate of fatty acid oxidation in recreationally active men and women is identical within the statistical margins (Astorino. 2011).
Conversely, the higher type II to type I fiber ratio of men makes them better sprinters. That and their overall larger muscle mass could have allowed them to perform the 30s sprint on the cycle ergometer without having to resort to extra-muscular energy stores, which would explain why we did not see a significant increase of AMPK immediately after sprinting. Its occurrence 30 minutes after the sprinting exercise does yet go to show that even very short exercise bouts can trigger pretty profound AMPK responses, of which I would speculate that they facilitate post-exercise glycogen repletion via "energy-repartitioning".

Why cyclists should powerlift and powerlifters should cycle

Illustration 1: Differential response of cyclists and power lifters to strength and endurance training; statistically significant increases are highlighted in green, statistically significant decreases in red (data compiled from Coffey. 2005)
With regard to the differential response to different exercise modalities we also know from a 2005 study by Coffey et al. (Coffey. 2005) that muscle from strength-  and endurance-trained individuals respond very differently to endurance (1 h cycling at 70% VO2peak) or resistance training (8 sets of 5 maximal repetitions of isokinetic leg extensions).

I've gone to all the bother of compiling the extensive data on muscle protein synthesis and related signalling proteins from the study into a single chart (cf. illustration 1), where statistically highly significant increases are highlighted in green and statistically significant decreases are highlighted in red. Thusly, you should be able to see that if the goal is to increase AMPK, cyclists have to strength train, while powerlifters will have to get into the saddle of an elliptical or ergometer.

What appears paradoxical at first, is the result of adaptation processes: Only novel and unaccustomed stimuli trigger further adaptation... and "novelty" is such a profound trigger of adaptational responses that - under the assumption that p70S6K phosphorylation is a reliable measure of the protein synthetic training response - cycling causes almost comparable increases in protein synthesis as resistance training in powerlifters, a group of athletes who are not exactly known for doing large amounts of "cardio" training.

Since this is not exactly "intermittend fasted" related, I leave it up to you to interpret the rest of the data. Before I "think on", I do yet want to caution you against getting stuck in doing the same type of exercise over and over again - there is a reason that 99% percent of the figure athletes, bodybuilders, fitness models or whatever other athletes and celebrities you think have an aesthetic body, incorporate some form of aerobic training into their regimens, as well (if you read the latest posts on HIIT training, you will be familiar that "aerobic" does not always mean steady state endurance training ;-)

Training fasted? Maybe, for athletes and performance oriented amateurs.

While the previously discussed studies showed that AMPK/mTOR responses to different exercise regimes largely depend on who you are and what type of training you have conditioned your body to, it did not answer the question that appears to be preying on everyone's mind, which is "Do I do my aerobic and or resistance training in a fasted (no food at all), semi-fasted (only protein and maybe some fat), or fed state?" Or in other words: "Do I break the fast before or after training?"

Image 2: Ramadan fasting can serve as a relatively particularly well studied "model" of intermittent fasting. You can find more information about the strengths and limitations of this model, please read Part 2 and Part 3 of this series.
A brief reminder for all who of you who missed the first installments of this series and may now wonder why I am, without further explanations, referring to studies on Ramadan fasting as if it was intermittent fasting - in essence it is! This is why I have already discussed a handful of studies that investigated the effects of Ramadan fasting on Muslim athletes, in the initial installments of this series. In that context, I have also pointed out why the Ramadan "protocol" is an acceptable model of intermittent fasting and where it deviates from what we are seeing in the dietary regimens with which Adelfo and Duong get to grips with the little fat that is still left on their athletic bodies. For more information on that I would like to refer you to Part 2 and Part 3 of this series, in particular.
If you are a competitive athlete, who follows the advice of the establishment, the answer is easy - EAT, EAT, EAT! And do not even think of fasting! On the other hand, even experts openly admit that despite the fact that it is (Maughan. 2010).
often automatically assumed that intermittent fasting will lead to decrements in exercise performance. [...t]he available evidence does not entirely support this view, but there is little or no information on the effects on elite athletes competing in challenging environments.
With respect to the lack of data, we are in the fortunate position that the Olympic Games 2012 coincide with the Ramadan period from July 21 to August 20, 2012, i.e. right in the heart of the Games. Meanwhile we do yet have to resort to the little reliable data there is and of which Maughan et al. writes in another article that it "suggests that effects of Ramadan-style fasting on exercise performance are generally small." And a pretty recent study which investigated the effects of Ramadan fasting on performance and body composition of 16 young soccer players (17.4±1.2 years, 175.4±3.6 cm, 69.6±4.3 kg and 5.1±1.3 years of training experience) corroborates this assertion.

Study shows: You can improve body composition and performance if you train intermittendly fasted, but not in a fasted state 

Alpay Güvenc from the School of Physical Education and Sports at the Akdeniz University in Antalya, Turkey, assessed body composition, hydration status, dietary intake and sleep duration of his 16 male subjects, who continued their regular pre-season soccer training during the four weeks of Ramadan, on four occasions: before Ramadan, at the beginning of Ramadan, at the end of Ramadan and 2 weeks after the end of Ramadan. The training sessions were yet postponed, so that the soccer players could have a snack or meal before they took to the field - they were thus intermittendly fasting, but not training in a fasted state!
Figure 3: Relative changes in RD: running distance, RT: running time, RV: running velocity and
RV4.0: running velocity at 4.0mmol.L-1 lactate concentration due to Ramadan fasting during the pre-season preparations in 16 male soccer players (data calculated based on Güvenc. 2011)
As figure 3 goes to show, there was an initial decline in exercise performance in the first week of Ramadan (=intermittent) fasting. In the last week of Ramadan, the maximal running distance, the running time and velocity and the RV4 (running velocity at 4.0mmol.L-1 lactate concentration) had improved - only by 3%, 3%, 1% and 2% over baseline, but nevertheless statistically significantly. Now, what may be even more interesting for professional athletes is that these beneficial effects continued well into the post-Ramadan phase - how much of this has yet to be ascribed to the training regimen (remember the soccer players were in their pre-season preparation) could only be determined if half of the kids had been Christians and had served as a non-intermittendly-fasted control.
Figure 4: Changes in total body water (TBW in L), fat free mass (FFM in kg), body fat (in kg) and  the sum of skin-fold measures (in mm) due to Ramadan fasting during the pre-season preparations in 16 male soccer players (data calculated based on Güvenc. 2011)
In a similar vein, we cannot say for sure, whether there had been comparable improvements in body composition (as evidenced by the statistical significant reduction in skinfold measures, i.e. -2.2% by week 4 of Ramadan fasting; cf. figure 4), if the players had just continued their usual pre-season training without fasting intermittendly. What we can say for sure though, is that they achieved the latter without any major changes in their overall caloric intake or macronutrient composition (cf. figure 5)
And that the fasting had no negative effects on the subjects sleep duration (~8.7h) or their hydration status. So that, it would appear that during a metabolically demanding pre-season training a non-specific intermittent fast works just / at least as good as a normal diet, as long as the athletes meet their training induced caloric demands.

Training fasted? Yes, for lean gains.

Image 3: For some "lean gains" happen only in their heads (img muscle.iuhu.org)
Now, while "exercise performance" obviously is an important variable, I assume most of you who are toying around with the idea of doing an intermittent fast, are more interested in its effect on body composition and would tolerate a dip in "exercise performance" (whatever type of exercise that may be in your case) if only those love handles finally disappeared and allowed your ever-increasing muscle mass to shine... or are you interested in the potential (largely AMPK-related) health benefits intermittent fasting has to offer in a world, where nutritional abundance is a 24/7 phaenomenon and the world "bulking" is often misinterpreted as taking advantage of the former as often as possible?

In both cases the results of a 2010 study from the Human Performance Laboratory in Leuven, Belgium (not the one in Canada!) would be relevant for you. In that study (Van Proeyen. 2010), Van Proeyen et al. had 27 healthy male volunteers consume a hypercaloric high-fat diet (∼+30% kcal/day; 50% of kcal from fat) for 6 weeks. Additionally 20 of the subjects had to participate in 4 training sessions per week (2x90min and 2x60min) consisting of cycling at 70-75% of the individual VO2Max and running at 85% of the maximal heart rate. 10 of the subjects (CHO; n=10) had yet had breakfast (~90min before training; 675 kcal, 70% carbohydrates, 15% fat, 15% protein), the rest (fasted; n= 10) reported to the lab after an overnight fast.
Figure 4: GLUT4 and AMPK expression in 10 healthy male subjects before and after 5 weeks on a hyper-caloric high-fat diet with or without (control) exercise in the fasted or fed (CHO) state  (data calculated based on Van Proeyen. 2010).
As the asterisk in figure 4 indicates, the exercise induced increase in GLUT4 (responsible for muscular glucose uptake) and AMPK expression is significant (p<0.05, i.e. chances that this is only coincidence <5%) only in the subjects which trained in a fasted state. Moreover, only the group which trained in the fasted state had neither statistically significant weight increases, nor statistically significant increases in the sum of the skinfold measurements (a relative reliable marker of body fat levels). The unexercised controls and the CHO group (training in fed state), on the other hand, gained 3kg and 1.4kg body weight (both p<0.05). Interestingly, though only the control group experienced a statistical significant increase in the sum of their skinfold measures of +15.1%! (+1.1% in fasted; +5.4% in CHO).
This study for the first time shows that fasted training is more potent than fed training to facilitate adaptations in muscle and to improve whole-body glucose tolerance and insulin sensitivity during hyper-caloric fat-rich diet. (Van Proeyen. 2010).
Obviously, we are dealing with a very different situation, when an intermittent fast is combined with a caloric deficit - yet in view of the idea to use intermittent fasting as dietary strategy on a "lean bulk", the results of the Van Proeyen study could be of great importance. Not only in view of keeping the fat gains at bay, but also with regard to potential negative health effects of deliberate overeating and subsequently compromised insulin sensitivity.

A pros pos "lean bulk", I suggest you do come back next week if you want to know more about when and what to eat right after what type of workouts in order to maximize muscle and minimize fat gains when you train intermittendly fasted. For now, I wish all of you a sunny Sunday (here it is one) and an intense week at the gym, regardless of whether you train (intermittendly) fasted or not ;-)

Aerobic and Anaerobic Energy Costs of Strength Training: Single Set of Squats More Demanding than Bench Press, Triceps Extensions and Lat Pull Down Together!

Image 1: The squat - as intense as it is, it is no replacement for "aerobics"; more on squatting in the EMG Series
As a diligent student of the SuppVersity you will obviously remember yesterday's news on the potentially detrimental chronic increases in cortisol, Kirschbaum et al. (Kirschbaum. 2011) have observed in a group of 304 amateur endurance athletes. This raises the question, whether or not your 3-4 strength training sessions per week would not suffice as "aerobic exercise" - after all, most people are huffing and puffing much more after one sets of squats than after 45 min. on a recumbent bike. And even if you were not interested in increasing your aerobic performance, I assume it would be nice to know if squats really are so energetically intense as they feel, or, in other words, how much more energy you are expending doing squats vs. let's say triceps extension ;-)

And more generally, i.e. in view of the aerobic effect and energy expenditure in the course of a complete strength training session, it would be interesting to know, ...
  1. how much total energy you were expending while benching, squatting, rowing and co., and
  2. what the relation of aerobic to anaerobic energy expenditure was like during heavy resistance training.
Both questions have been a subject of scientific debates for quite some time. The measurement of blood lactate levels, as well as other methods to access total energy expenditure, the ratio of aerobic to anaerobic metabolism and the highly controversial contribution of increased energy expenditure after resistance training (EPOC) have been questioned lately (Robergs. 2007). Reason enough for Jefferson M. Vianna and his colleagues from Brazil and Portugal to take another, closer look at the total and relative energy costs of resistance training (Vianna. 2011), in order veri-/falsify previous empirical data.

As their measuring tool of choice, the scientists selected the oxygen deficit method (AOD), where the anaerobic contribution to the overall energy expenditure is estimated by linear extrapolation of the VO2 at supra-maximal intensities and the AOD is then calculated by subtracting the cumulative oxygen uptake (VO2Ac) from the estimated energy demand. As the scientists point out, thus...
[...] the VO2Ac represents the portion of energy obtained by aerobic processes and the AOD represents the portion of energy obtained by anaerobic processes [so that] their sum equals the total VO2 during exercise.
The subjects in the Vianna study were 14 male resistance trainees (26.6 ± 5.4 years, 1.77 ± 0.07 m height, 80.1 ± 11.4 kg body mass and 11.2 ± 4.6 % body fat) with at least one year of training experience on a protocol with three or more training sessions per week. After height, weight and several skin fold measures (chest, mid-axillary, tricipital, sub scapular, abdominal, supra iliac, and thigh) had been taken, the individual 1RM max for bench press, half squat, lat pull down and triceps extension were assessed. Afterwards, the scientists measured the VO2 for each of the four exercises at 12% and 20% of the previously established 1RMmax. The same procedure was repeated 48+h later at 16% and 21% of the individual 1RM max. Eventually (again 48+h rest), the subjects had to perform their bench presses, half-squats, lat pull downs and triceps extension at 80% of their 1RM. The gas the subjects expired during those sessions was collected and recorded by an open air circuit analyzer - you can see part of the results plotted in figure 1.
Figure 1: VO2Ac (ml/kg) and accumulated oxygen deficit (AOD; ml/kg) at 80% 1-RM for bench press, half squat, triceps extension and lat pull down (data adopted from Vianna. 2011).
If you recall what the scientists said about the interpretation of VO2Ac and the accumulated oxgyen deficit (AOD), it is pretty evident that there is a reason, why many trainees fear the the squat. After all, the "king of all exercises", as it is commonly referred to, has by far the highest total (cf. figure 1), as well as relative (cf. figure 2) anaerobic component of all four tested exercises.
Figure 2: Relative contribution of aerobic and anaerobic metabolism to overall energy costs of bench press, half squat, triceps extension and lat pull down at 80% of the individual 1RM (data adopted from Vianna. 2011).
Despite inter-individual variations this supremacy of the squat is statistically significant (p<0.05, indicating chances that this was an incidental observation are <5%).
Figure 3: Total energy demand (ml/kg) of bench press, half squat, triceps extension and lat pull down at 80% of the individual 1RM (data adopted from Vianna. 2011).
If we finally take a look at the total energy demands, the underlying reason for your panting becomes even more evident: Squatting is 3.3x more energetically demanding than bench pressing or doing triceps extensions or lat pulldowns.

The "king of all exercises" is in fact so energetically demanding that one set of squats at 80% of your 1RM max will still expend ~9% more energy than a workout consisting of bench presses, triceps extensions and lat pull downs! Nevertheless, while it cannot be excluded that squatting will indirectly improve your aerobic exercise performance, as well, in and out of itself, none of the tested exercises is suitable to replace what is commonly understood to be "aerobic" or "cardio training" - but hey, in view of what I have posted about the effects of HIIT training, lately, doing (regular) "cardio" training may be obsolete, anyways ;-)