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marylin monroe
Showing posts with label respiratory exchange ratio. Show all posts
Showing posts with label respiratory exchange ratio. 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.

Optimizing the "Fat Burning Zone" : Chronic Endurance Training Boosts Fatty Oxidation - Does More Help More?

You as a SuppVersity reader should know that there is no "instant gratification" with  "doing cardio" and that doing it "in the zone" is totally 90s... 1990s, even ;-)
For decades, the "Fat Burning Zone" has been one of the holy grails of exercise sciences. Then somebody realized that maximizing the ratio of fat : glucose that's are being used as fuel during a workout doesn't really have an effect on weight loss and all of a sudden papers with titles like "Changes in peak fat oxidation in response to different doses of endurance training" (Rosenkilde. 2013) have become a rarity... although, if you look closely, you will realize that this is actually not another investigation into the realms of the "Fat Burning Zone", but an afford to quantify the effect of regular "cardio training" on your bodies ability to oxidize fat, instead of glucose.

Don't worry it's not really about the "fat burning zone"

Luckily Rosenkilde's most recent paper, which happens to be the third spinoff of the high (600kcal/day) vs. medium (300kcal/day energy expenditure from "cardio") training volume that already taught us (you can read more about the exact exercise protocol in the previous SuppVersity articles, below) ...
  • Learn more about the "Fallacy of Working Out To Burn Calories" 
    how futile it is to work out like a maniac if fat loss is your goal ("Some HIIT For Life & Less LISS For More! How to Burn 27,300 Kcal Extra W/out Losing a Single Extra Pound of Fat!" | read more) and 
  • how messed up the die hard belief that "exercise" just makes you hungry actually is and what the effects of endurance exercise on appetite and energy intake are ("Exercise: Does It Really Make You Hungry? The More You Train, The Less Hungry You Are." | read more)
In this second serving of the data, we can now learn whether regular endurance training increases peak fat oxidation in a dose-dependent fashion.
Figure 1: Pre & post respiratory exchange ratio (lower value = higher ratio of fatty acid : glucose oxidation) in sedentary control and 300kcal/day group, left; changes in the expression of mitochondrial enzymes (Rosenkilde. 2013)
As you can see in Figure 1 the outcomes of the experiment were not exactly surprising: While there was a persistent increase in fatty acid oxidation and the expression of the facilitative mitochondrial complexes, i.e. enzymes in the mitochondrial respiratory chain, the daily endurance training volume (MOD: 300kcal/day vs. HIGH: 600kcal/day energy expenditure during endurance training) had no effect on the effect size.

So, if it's not the volume, what determines the increase in fatty acid oxidation?

Rosenkilde have probably asked themselves something similar to the above, when they realized that there were no meaningful differences between the subjects in the medium vs. high dose cardio groups. The statistical analyses the researcher conducted did yet reveal, that
  • VO2peak, generally regarded as a marker of cardio-respiratory fitness,
  • fat free mass, the weight of everything (incl. bones, organs, etc.) that's not fat, 
  • cycling efficiency, the power output at a given VO2 peak, and the
  • mitochondrial complexes II–V, enzymes that facilitate the oxidation of fatty acids,
were all associated with higher increases in fatty acid oxidation, while the observed changes in fasting plasma insulin, glucose, FFA, or glycerol had no prognostic value with respect to the increase in fatty acid oxidation.
Don't forget that HIIT is an even more effective "long-term investment" in VO2 peak an mitochondrial power - just don't do it everyday | learn more
Bottom line: I guess you will start yawning, when I tell you that doing regular cardio training is not useful for its acute effects on energy expenditure (you know that, right?).

If you look around the gym, you will yet notice that "burning energy" is still what 90% of the cardio warriors have on their mind. What they fail to realize is that performing a sane amount of low-medium intensity cardio will be rewarded in the long run only and is (some of you may remember that from the SuppVersity Facebook News) associated with increased muscle strength throughout the life span (Crane. 2013), delays the age of decline in leg strength and muscle morphology (Tarpenning. 2004), improves muscle function in the elderly (Harber. 2009) and can have have minimal hypertrophy effects even in the elderly (Ozaki. 2013).
References: 
  • Crane, J. D., MacNeil, L. G., & Tarnopolsky, M. A. (2013). Long-term Aerobic Exercise Is Associated With Greater Muscle Strength Throughout the Life Span. The Journals of Gerontology Series A: Biological Sciences and Medical Sciences, 68(6), 631-638.
  • Harber, M. P., Konopka, A. R., Douglass, M. D., Minchev, K., Kaminsky, L. A., Trappe, T. A., & Trappe, S. (2009). Aerobic exercise training improves whole muscle and single myofiber size and function in older women. American Journal of Physiology-Regulatory, Integrative and Comparative Physiology, 297(5), R1452-R1459.
  • Ozaki, H., Loenneke, J. P., Thiebaud, R. S., Stager, J. M., & Abe, T. (2013). Possibility of leg muscle hypertrophy by ambulation in older adults: a brief review. Clinical interventions in aging, 8, 369.
  • Rosenkilde, M., Reichkendler, M. H., Auerbach, P., Bonne, T. C., Sjödin, A., Ploug, T., & Stallknecht, B. M. (2014). Changes in peak fat oxidation in response to different doses of endurance training. Scandinavian Journal of Medicine & Science in Sports.

To Spit or to Swallow - That is the Question! Carbohydrate Mouthrinse May Be Better Than Water, Yet Still Not an Option for Performance Oriented Athletes

Image 1: "You need carbs to fuel your workouts!" You know the whole litany... what may be news to you is that scientists are speculating that "intra workout carbs" do not necessarily have to be ingested to do their ergogenic magic.
Those of you, who already "friended" me on Facebook and are following what is going on on the SuppVersity Facebook page (just want to remind you that Facebook has now an option that allows you to be informed, whenever something new is posted), will probably remember the discussion revolving around "carbohydrate mouthrinsing" and whether or not it may be even more beneficial to spit and not to drink your Gatorade... now, all the health benefits of low-carbohydrate (when I am talking "low" I am not talking of Atkins type <80g) diets aside, it does seem pretty counter-intuitive that just swishing one of those carbohydrate-laden electrolyte drinks in between your teeth for a few seconds, to then spit it out again could actually have any merit. Yet, science, or I should say a handful of studies, do suggest otherwise.

As part of their recently published study into the effects of carbohydrate mouthrinsing on exercise capacity in the pre- and postprandial state (Fares. 2011), Elie-J. M. Fares and Bengt Kayser have compiled a list of the 8 hitherto published peer-reviewed papers on that subject. And if you just went by the column "increased perfomance", "yes or no", it appears like it was an established fact that carbohydrate mouthrinsing was highly ergogenic. After all, six out of the eight studies are marked with the tag "increased performance".
Figure 1: Performance increases and standard deviations of the respective measures from studies on the advantage of carbohydrate vs. artificially sweetened or plain water mouthrinse (data calculated based on summary in table 2 of (Fares. 2011)
If we do yet have a look at the quantity of those performance increases and the individual standard deviations (I compiled the respective data for you in figure 1), things begin to look less conclusive. I mean, there is obviously a standard deviation for both arms of each study and there also is a mean improvement (or decrease in performance), but if the "performance increment" is smaller than the standard deviation, for all but one study, this does make me feel uncomfortable with the statement that I would see "scientific evidence", let alone "conclusive scientific evidence" in support of carbohydrate mouth-rinses.

Mouthrinse vs. placebo = minimal (if any advantage), but what about vs. ingestion?

Regardless of what you think about the real world significance of an average performance increase of 1% (calculated based on the data from figure 1), for the small fraction of athletes for whom these minimal performance increases would actually count, i.e. high intensity endurance athletes, like time-trial Tour de France cyclists, the "control", or I should say the "benchmark" should not be plain or sweetened water, but rather one of these crab-, ah... pardon me, carb-loaden sugary electrolyte drinks these athletes are habitually consuming. I was thusly happy to see that Catherine Moss, a student of Sports and Exercise Sciences at the Massey University in Auckland, New Zealand has recently conducted an experiment for her thesis that has much more practical relevance for the high achieving athletes (Moss. 2011).
Table 1: Composition of the placebo and CHO supplement in the Moss study (adopted from Moss. 2011)
In a randomized, counter-balanced, double-blind study, Moss had eight recreationally trained cyclists perform a time trial (with a predetermined amount of work) in the course of which the cyclists ingested or rinsed (swirling 0.33ml/kg body weight of the solution for 8s) with either a placebo solution or a carbohydrate drink, whenever another 12.5% of the total work was done. In that it is worth mentioning that the composition of the CHO solutions differed for the one that was meant to be ingested and the one that was intended to be swished. With the former containing 7.5% and the latter 15% carbs, Moss mimicked solutions that had been used "successfully" previous studies. I do yet no idea, why the placebo did not contain electrolytes, as this could obviously have made a difference at least in the ingestion trials... I guess this is what distinguishes a thesis like this from a study that is worth being published in a peer-reviewed journal ;-)
Figure 2: Mean power output (in Watts) at different time points during time trial (data adapted from Moss. 2011).
As the performance data in figure 2 goes to show, only the ingestion of the carbohydrate led to significant improvements in mean power output, specifically at the later stages of the time trial. This "breakdown" may be explained by the "glycogen reduction exercise protocol" all participants had conducted the day before the time trial. So that after a "low carbohydrate" dinner, the participants were supposed to be glycogen depleted when they performed the time-trial on the subsequent morning.
Figure 3: Total time (in s) during time trial (data adapted from Moss. 2011).
In a way this is an unfair advantage, for the carb ingestion, which accordingly elicited way better time trial times. It does yet not lessen the significance of data on carbohydrate vs. water mouth rinse, which shows pretty conclusively that in a glycogen depleted state both forms of mouthrinsing (plain water or a 15% carbohydrate solution) are equally ineffective, when it comes to actual performance increases.
Figure 4: Pleasure / displeasure feeling during time trial (data adapted from Moss. 2011).
If you do however look at the pleasure/displeasure feeling scale data in figure 4, I would speculate that in a non-glycogen depleted state the carbohydrate-rinsers would have performed significantly better... I mean, without gas in the tank a car won't work even if it "wanted". In view of the fact that the carbohydrate ingestion group did yet pedal at a higher intensity, this would warrant further investigation.
Figure 5: Respiratory exchange ratio (higher values = higher carbohydrate oxidation) during time trial (data adapted from Moss. 2011).
That being said, there was what I consider an interesting effect of carbohydrate rinsing on the respiratory exchange ratio (remember higher values = higher carb oxidation), which would suggest that the theory Fares and Kayser propose (Fares. 2011), according to which the activation of sweetness taste receptors cells (T1R2 and T1R3) in the mouth would explain the previously cited performance "increases" in other studies, may have its merits. What else than the sensation of incoming carbs could explain that the cyclists burned more carbs in the carb mouthrinse compared to the placebo mouthrinse trial (cf. figure 5) - and that in the absence of significant differences in blood glucose or insulin levels?

Spit it or suck it? What's right for you?

While we do not know whether it would make sense to mouthrinse in a glycogen repleted state (yeah, I know +1% ;-), for any athlete interested in maximal performance, simply ingesting his carb + electrolyte drink would certainly be the best option. The (intermittendly) fasting dieter, who wants to maximize his fatty acid oxidation in the course of say his "morning cardio", on the other hand, would be best off with a non-carby electrolyte drink that helps him avoid dehydration and does not compromise (even if the effect is minimal) fatty acid oxidation... what? You want to know who would  benefit from spitting his carbs out? Well, at least based on the current data, mostly the cleaning contractors of your local gym - after all, they would have to work overtime (and be paid overtime) to clean up the mess ;-)

Night-Time Carb, Whey or Casein Drink Boost Morning Energy Expenditure & Modulates Fatty Acid Oxidation

Carbs, whey and casein, is everything better than not eating before bed?
As a SuppVersity reader you know for quite some time that eating carbs past 6PM is not going to make you fat (go back and learn more). However, what you probably don't know is what exactly happens when you have 33g of vanilla flavored maltodextrin powder right (30 min) before bed? And how does that compare to 30g of whey protein or casein?

Interesting questions, right? Well, good for us that Takudzwa A. Madzima, Lynn B. Panton, Sarah K. Fretti, Amber W. Kinsey and Michael J. Ormsbee from the Department of Nutrition, Food and Exercise Sciences at the Institute of Sports Science and Medicine of the Florida State University alrady have some answers.

Whey, casein or carbs before bed?

The study was designed to investigate the extent to which a single serving of WP, CP, CHO or a PLA before sleep affects satiety and metabolism, independent of exercise, in eleven physically active (at least 4 d/week and 50min/d of self-reported moderate-to-vigorous physical activity for >12 months) college-aged men (age: 23.6 y; BMI: 25.8 kg/m2; body fat: 16.3%). The scientists hypothesized...
"that consumption of protein at night before sleep would have a positive impact on next-morning metabolism and appetite to a greater extent than that of CHO or a PLA beverage" (Madzima. 2013)
And if you take a look at the data in figure 1 you will have to concede that assumption was at least partially right.
Figure 1: Visual analogue scale of hunger, satiety and desire to eat (Madzima. 2013)
Yep, you are right: Based on the subjective hunger, satiety and desire to eat assessment, casein is by far the best choice, but even having some carbs pre-bed could offset potential early morning binges by reducing the desire to eat by -19% (vs. -19% for whey and -24% for casein compared to placebo).

Is this just a psycho thing or are there any physiological mechanisms involved, as well?

Now, it goes without saying that the thing you are probably more interested in are the changes in energy expenditure and the effects on substrate utilization (carbs vs. fat) I hinted at in the headline already. So, let's see what those looked like and whether they could actually explain the "satiating" effects.
Figure 2: Resting energy expenditure (REE) and respiratory exchange ratio (RQ: higher values = higher glucose oxidation, lower fat oxidation) on the morning after the dietary intervention (Madzima. 2013)
While the effects on the respiratory quotient and thus the rate of glucose to fatty acid oxidation is negligible, the +4-6% increase in resting energy expenditure is something to keep in mind. Not so much because this is going to make you lean (in isolation it certainly isn't), but rather in view of the fact that it is another scientific result that clearly contradicts the "popular belief that it is advantageous to limit energy intake in the evening" (Madzima. 2013). So the scientists are right to conclude that
"[...] it is convenient to hypothesise that the improvement in morning resting metabolism may further aid in the maintenance of and/or improvement in body composition and thereby provide a competitive advantage in healthy, physically active young men." (Madzima. 2013)
But they are also right when they state that both studies to investigate the impact of liquid energy intake v. solid energy intake and different combinations of macronutrients, as well as long-term studies of night time feeding would have to be conducted before anything definitive can be said about the real world results these overall minuscle changes will bring about.

Apropos real world + long-term results, you do remember that a 40g casein shake might help you build an additional 3.2kg of lean muscle mass in a year... if you oversimplistically extrapolate the acute protein synthetic respone Res et al. observed a 2012 study on the effects of a pre-bed casein shake (see "3.2kg of Lean Mass Over Night W/ 40g of Slow Digesting Protein 30min Before Bed!? Over One Year, a Positive Nitrogen Balance and +20% FSR Could Make It Happen!" (read more).

Want to Get Ripped & Strong? "Battling the Rope" Could be THE Exercise to Do! The "Battle" is More Demanding Than Squats, Lunges and Deadlifts - Only Burpees Come Close

Battle the rope, folks!
In view of the fact that it has become really popular, I am pretty sure that you all know what kind of exercise "battling the rope" is, right? In case you ain't I'd suggest you check out what the lady on the right-hand side of this paragraph does. Looks familiar, right? Yeah, even the guy in the video that's playing at the McDonalds of Fitness Studies, McFit, here in Germany is doing it and if you remember the purpose... right! He does it as a conditioning exercise - for a good reason, as anyone who has ever "wrestled" or "battled" one of these big ropes will tell you.

Now, the SuppVersity is not the place where "anyone's" assessments are posted. What we are interested in are hard facts. Hard facts as they are produced by scientific studies like the one Nicholas A. Ratamess, Joseph G. Rosenberg, SamanthaKlei, Brian M. Dougherty, Jie Kang, Charles Smith, Ryan E. Ross, and Avery D.Faigenbaum conducted (Ratamess. 2014).
Squatting will always remain the most versatile muscle builder & fat shredder

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The corresponding paper is about to be published in one of the upcoming issues of the Journal of Strength and Conditioning one of the few go-to journals for everyone interested in the irongame.

In their study, the scientists from the Department of Health and Exercise Science at the College of New Jersey had 10 well-trained men (age = 20.6 ± 1.3 yrs) perform 13 resistance exercise protocols on separate days and in random order; and believe it or not, the guys performed exactly one, and only one, of the following exercise programs per session:
  • free-weight exercise protocol - subjects performed 3 sets of up to 10 repetitions with 75% of their one repetition-maximum (1RM)
  • push-up and push-up on a BOSU® ball protocol - subjects performed 3 sets of 20 repetitions
  • burpee and push-up with lateral crawl protocol - subjects performed 3 sets of 10 repetitions
  • plank and battling rope circuit protocol - subjects performed 3 sets of 30-sec bouts. 
A two-minute rest was allowed between all sets for each exercise. The recorded data was averaged for the entire protocol including work and rest intervals and yielded the followed values for the individual mean oxygen consumption (see Figure 1):
Figure 1: Energy expenditure in kcal/h during the different exercises (Ratamess. 2014)
As you can see the energy expenditure and thus the oxygen consumption in the subjects' mitochondria was by far the greatest during the battling rope (24.6 ± 2.6 ml ·kg -1 ·min -1 ) and burpee (22.9 ± 2.1 ml ·kg -1 ·min -1 ) protocols.

The free weight exercises, on the other hand, were rather disappointing. Outside of the squat (19.6 ± 1.8 ml · kg -1 · min -1 ), deadlift (18.9 ± 3.0 ml ·kg -1 ·min -1 ), and lunge (17.3 ± 2.6 ml ·kg -1 ·min -1 ), the energy expenditure was rather mediocre. The same could be said for push-ups and push-ups on the "bogus ball" (aka BOSU® ball) which turned out to be similarly ineffective as means of getting rid of yesterday's cream cake.
Bottom line: Whenever your goal is to get ripped and buffed like the guy on the Men's Fitness cover, physical play is key. Those exercises that involve the whole body and activate maximal amount of muscles are true "burners". As a SuppVersity reader you're well aware that it does not really matter whether it's fat or glucose you're burning and that exercise alone is not going to cut it.

If you are looking for a workout that builds muscle and get's you shredded at the same time, you may want to reread my article "Building the Jack-of-All-Traits Legs Workout With Squats, Jump Squats and Body Weight Plyometrics?" | read more
Assuming that you're dieting and trying to up your diet success by re-structuring or modifying your workouts, there is yet little doubt that the incorporation of the battling rope (BR) protocol, in the course of which the subjects performed 3 sets of 30-sec bouts of exercise, which were divided into three 10-sec bouts in the course of which they performed (a) 10 sec of single-arm alternating waves, followed by (b) 10 sec of double-arm waves with a half-squat, followed by (c) 10 sec of double-arm rope slams with a half-squat, would make an excellent addition / replacement to your "cardio" or "HIIT" day. And if you don't have access to a 10.9 kg, 15.2 m (50 feet) long and 3.8 cm thick cable that can be anchored in a low position to a power rack using zip ties (with one loop) 10-12 inches from the floor, you can still do the burpee workout - no?
Reference:
  • Ratamess, NA, et al. "Comparison of the Acute Metabolic Responses to Traditional Resistance, Body-Weight, and Battling Rope Exercises." Journal of Strength and Conditioning Research (2014). Publish Ahead of Print - DOI: 10.1519/JSC.0000000000000584

Glucose vs. Fructose and Their Effects on Glucose, Insulin & Fat Oxidation in Men on Both Ends of the BMI Spectrum

"Fructose handles"? "Glucose handles"? "Saturated fat handles"? No, just the net result of a trashy diet.
I don't have to tell you that I don't buy into the "fructose is the devil" hysteria that's rampant in the blogosphere and certain parts of the scientific community. It's a matter of quantity and quality that determines the toxicity of a poison and in most of the "convincing" evidence on the detrimental effects fructose. I mean let's be honest, you don't have to be a rocket scientists to figure out that 5+ cans of Coke a day cannot be good for you (cf. "Fat Content Per Energy Drink 0g, Body Fat Gain Per Energy Drink 18g!"; read more) "194 Bananas in Three Weeks", on the other hand, are nothing to be afraid of (learn why).Have we been fooled again or is it just a high fructose corn syrup producer conspiracy?

Enough of the rants, let's get to the facts!

I guess that's enough for the "ranty" introduction. Let's now have a look at what a group of researchers from the School of Medicine in Portland has in stock for us: It's a paper titled "Change in postprandial substrate oxidation after a highfructose meal is related to body mass index in healthy men" that's about to be published in one of the future installments of Nutrition Research. As you will by now probably have figured out, the Anne C. Smeraglio and her colleagues had two things in mind, when they came up with the protocol that involved
  • What did the subjects eat? Participants were fed an egg omelet, bagel with cream cheese, and sweetened beverage breakfast consisting of one-third of their estimated daily caloric. The meal consisted of 30% fat, 15% protein, and 55% CHO (as % of energy). The CHO energy was further divided into complex and simple CHOs; 25% of the total calories were from complex CHOs and 30% of the calories were from either glucose or fructose added to the beverage.
    12 healthy men without diabetes, with a mean age of 25 (23-31) years and a BMI less than 30 kg/m²,
  • 2 visits at their labs that were separated by at least 1 week, but less than 1 month,
  • two meals that were high in glucose or fructose which were served in random order as a breakfast after an overnight fast, and
  • fasting for 7h after the ingestion of the standardized breakfast (sitting around watching TV or performing other, non-exciting quiet activities without the propensity to produce a catecholamine response)
During the experiment, the oxygen consumption and CO2 production were measured by indirect calorimetry to calculate resting energy expenditure and respiratory quotient (RQ; high RQ = burning predominantly glucose, low burning predominantly fat). The scientists also took blood samples at pre-defined intervals and collected the urine of their participants.
Figure 1: Insulin and glucose levels, as well as non protein respiratory quotient (high = carb oxidation; low = fat oxidation) 0-7h after the fructose and glucose breakfasts (Smeraglio. 2013)
The data in figure 1 is a summary of the the most "significant" results. In that the "quotation marks" enclosing the word "significant" is in my humble opinion the most significant information here - one that's encoded with irony, because after all, the only statistically significant effect the scientists observed were the ~2.5x higher insulin levels in the glucose group 60min after the ingestion of the test meal... yep, that's in the glucose group.

"There must be a mistake here!? Fructose is bad for you!"

The scientists have really done their homework as they did even take into account whether or not the amount of protein in the meals would have been responsible for differences in the respiratory quotient. The latter was not the case, the "baseline RQs between the fructose and glucose study visits were equivalent (0.82 ± 0.08 and 0.81 ± 0.10, respectively) and the p-value, indicating that there was a difference even rose from 0.72 to 0.75, when "when protein use was accounted for by evaluating NPRQ [non-protein respiratory quotient]" (Smeraglio. 2013)
Surprised? Well, I guess over all the lustig (=German for "funny") and unwarranted hoopla about how bad even small amounts of fructose are, you must have forgotten why scientists believed not too long ago that fructose could be the solution to, not the cause of the diabesity epidemic. After all, the paradigm of the mid to late 20th century was: Fructose does not spike glucose, so it should be the ideal sweetener for diabetics, because it is not necessary that your pancreas produces insulin to get rid of it.

I will not have to tell you, though that this assumption and the corresponding notion that totally replacing glucose with fructose would be a great idea is about as unwarranted, as the current fear of the "toxicity" of the small amounts fructose contained you'll be exposed to from a couple of pieces of fruit. I mean, let's take a peek at the data again.

Compared to the same amount of glucose, the consumption of the fructose equivalent of 5-6 medium sized (185g) apples (50-70g fructose, which is the amount of fructose the subjects in the study consumed) produces lower insulin levels and does not change either the leptin, triglyceride or glucose concentration in the blood or the ratio of glucose to fatty acid oxidation in healthy non-obese volunteers...

...apropos, non-obese, there was another thing to the headline wasn't there?

You are absolutely right, the research question involved (a) finding out what happens if you ingest a realistic breakfast where the carbohydrate content comes from (i) glucose or (ii) fructose and (b) determining whether the reaction would depend on the body weight / height² (BMI) ratio of the participants. So what about that, then? Let's see...
Did you know that there is a catalytic dose of ~40g of fructose per day (=6 normal size bananas) that will improve your glucose metabolism? (learn more)
"Although the absolute values for fat and CHO oxidation were not different between the fructose and glucose study visits, we did find a correlation between BMI and change in fat oxidation as a result of consuming the high-fructose meal compared with the high-glucose meal. The difference in fat oxidation (fat oxidation after the fructose meal minus fat oxidation after the glucose meal) was negatively correlated with BMI at the 4- and 7-hour time-points (Fig. 3; r =−0.59 [P= .04] andr=−0.59 [P= .04] for 4- and 7-hour time points, respectively) but not the 1-hour time point (Fig. 3; r=−0.52, P< .09). Nonprotein RQ displayed these same trends but did not reach significance." (Smeraglio. 2013)
As the scientists rightly point out, this suggests that the postprandial fat oxidation after the fructose meal was less than the fat oxidation after the glucose meal only among subjects with a higher BMI, and that the correlation with body weight, but not the difference itself was statistical significant.

Figure 2: Correlation of BMI with change in fat oxidation pearson correlation with linear regression trend lines between BMI and change in fat oxidation (fat oxidation after the fructose study visit minus fat oxidation after the glucose study visit; Smeraglio. 2013)
What's more, if you take a peek at the linear regression in the graph on the right hand side (figure 2) you will realize that that this does also mean that the fatty acid oxidation in lean individuals is actually increased after the ingestion of fructose. If I intended to drive my message "fructose from real foods is not your problem, folks!" home at all costs (which is what the "fructose is the devil" advocates like to do), I could seize on this observation and tell you: "Look folks, as long as you are already lean fructose will help, not impair your effort to get ridiculously shredded." I would yet hope that you are clever enough to see through this tactics and realize that neither the effect on the left hand side (=more fatty acid oxidation in the leaner folks with fructose vs. glucose), nor the one on the right hand side of figure 2 is physiologically relevant.

And that's not just because it's simply too small, but also because the ratio of glucose to fatty acid oxidation, i.e. the respiratory quotient (RQ) is not determining whether you store or lose body fat - if it were, you'd better be training in the "fat burning zone" for the rest of your (in that case) miserable lives.



Figure 3: Adding 7.5g of fructose ( to a 75g glucose load will improve not detoriate the glucose metabolism and that without increasing the amount of insulin that's released in response to the glucose load (Moore. 2000)
Bottom line: I am confident that that even without resorting to extreme interpretations of cherry picked data, the main message of today's article is clear. The comparatively small amounts of fructose you'll get right with the appropriate polyphenols & other cofactors from fruit and other fructose containing whole foods in your diet is not your enemy (Other items? Yeah, you know that even onions have 2g fructose, right?).

On a related note, you are aware that small amounts of fructose, like the 7.5g of fructose scientists added to the 75 g of glucose their 11 healthy subjects ingested during an oral glucose tolerance test had an up to 31% lower glucose response (these were the values for the 6 subjects with the highest level on the regular test) in the absence of concomitant increases in insulin response (see figure 3; Moore. 2000)!? You did not know that? Well, I guess it was about time to take a mental note, then ;-)

References:
  • Moore MC, Cherrington AD, Mann SL, Davis SN. Acute fructose administration decreases the glycemic response to an oral glucose tolerance test in normal adults. J Clin Endocrinol Metab. 2000 Dec;85(12):4515-9. 
  • Smeraglio AC, et al. Change in postprandial substrate oxidation after a high-fructose meal is related to body mass index in healthy men. Nutr Res.2013 [epub ahead of print]

XS® Energy Drink Practically Useless for Athletes: Not Even eXtra Small Improvements in Exercise Performance

XS Energy Drink. 0 sugar, only 83mg caffeine.
Probably tasty, but not ergogenic.
If you believe the marketing campaigns of supplement manufacturers (and, of lately energy drink producers), performance - just as about everything in our society - is for sale (in this case at the local GNC). You, as a regular visitor to the SuppVersity are yet aware that supplements, if they do work at all, usually provide a rather minute performance increase that - and here is where the magic happens - may nevertheless decide a head-to-head finish in your favor. It is thus very expedient that XSBlast refers to this X-tra S-mall advantage of their product line in their company name already... wait! You think they imply "XS" as in eXceSs? Well, I guess in the end it does not really matter, because their XS® Energy Drink, a mixture of 83mg caffeine, 1.5 g taurine, 6.0 mg Vitamin B6, 294 µg Vitamin B12, 10 mg Vitamin B5, 20 mg Vitamin B3, 24mg Sodium, 25mg Potassium, as well as undisclosed amounts of L-Glutamine, Citric Acid, an Adaptogen Blend (Eleutherococcus Senticosus, Panax Ginseng, Panax Quinquefolium, Schisandra, Astragalus, and Reishi), Natural Flavors and the artficial sweetener Acesulfame, does not seem to come up to any of these implications.

Supported by an independent research grant, K.M. Sheehan and L.K. Hartzler from the Department of Biological Sciences at Wright State University, Dayton, OH, USA, investigated in a double-blind cross-over study protocol (Sheehan. 2011) the effect of a single serving of XS® Energy Drink on subsequent exercise performance of 12 athletes (sex: 9m, 3f; age: 18-24 y) in a modified Ellestad Treadmill protocol and found:
Vo2max (p=0.99), time to muscle fatigue (p=0.48), maximum heart rate (p=0.66), [minute ventilation  max] VEmax (p=0.10), time at which [respiratory exchange ratio] RER is greater than 1 (p=0.50), or recovery time to one half Vo2max (p=0.67) were not significantly different with ingestion of XS® Energy Drink over placebo. 
Accordingly, the conclusion of the scientists, that "[e]ven with all sources of error taken into account it is still not likely that acute consumption of XS® Energy Drink, in the amount used in this experiment, has an advantageous performance effect" is valid for the whole spectrum of effect sizes from XS as in eXtra Small to XS as in eXceSsive ;-)

In view of some of the proclaimed ergogenics in the drink and the load of B-Vitamins having a possible effect on cognitive performance, as well, I would really like to see a study into these effects of this drink. Maybe, this is where the XS® Energy Drink produces eXceSsive results, after all.

Glycogen-Depleted Athletes may Benefit from 0.3g/kg BCAA Supplementation: Improved Endurance & Lipid Oxidation

If you have ever read up on the general recommendations concerning "cardio on an empty stomach" you will most likely have encountered the advice to supplement with branched-chained amino acids (BCAA) before or in the course of the workout. I have always considered this to be a solid advice, up to now, I had yet not seen a study underpinning the common sense reasoning behind the suggestion.

Now, Gualano et al. (Gualano. 2011) published a study that investigated the effect of BCAA supplementation on exercise performance and energy metabolism in glycogen-depleted athletes (let's assume by now that an athlete following a low carb diet is in fact glycogen-depleted when he wakes up). In a double-blind placebo controlled fashion the scientists provided their subjects with either 0.3g/kg BCAA or placebo for 3 days...
On the second day, subjects were submitted to an exercise-induced glycogen depletion protocol. They then performed an exhaustive exercise test on the third day, after which time to exhaustion, respiratory exchange ratio (RER), plasma glucose, free fatty acids (FFA), blood ketones and lactate were determined. BCAA supplementation promoted a greater resistance to fatigue when compared to the placebo (+17.2%). Moreover, subjects supplemented with BCAA showed reduced RER and higher plasma glucose levels during the exhaustive exercise test.
For all of you who are now asking themselves, what validates the claim of increased fatty acid oxidation, its the reduced respiratory exchange ratio. Although its arguable how reliable a measure the ratio between O2 in and CO2 out is in terms of fatty acid metabolism, these results support the hypothesis and real world observation that BCAA-supplemented cardio on an empty stomach reliably promotes fat loss.