Showing posts with label sprint. Show all posts
Showing posts with label sprint. Show all posts

Thursday, 3 September 2015

Pre- and Post-workout Nutrition for High-Intensity Interval Training

 
High-intensity interval training (HIIT) has become hugely popular thanks to real results in shorter periods of time and extensive benefits. With busy schedules the norm, it’s no wonder so many clients and potential clients are now seeking out these kinds of workouts.

HIIT, which involves repeated sessions of relatively brief, intermittent exercise, usually performed at very high intensity, can be easily modified for various client needs and fitness levels. When combined with an expert nutrition program, personalized HIIT programs can elicit serious results and health benefits, including: 

Improve blood pressure and cardiovascular health
Improved insulin sensitivity
Improved body composition

Whether you’re adding HIIT to your own personal fitness program or ramping up client results and health benefits with this style of training, it’s important to understand the nutritional needs to support it from start to finish. While nutritional needs do vary by individual and training program, these nutrition plans and meal ideas for pre- and post-workout nutrition can help.
General Nutrition to Support a H.I.I.T. Program 

To get the most out of any fitness program, you should follow a healthy meal plan in general. Effective and well-rounded nutrition programs are based on a variety of healthful ingredients such as whole grains, fruits and vegetables, and lean proteins. The best nutrition plans provide adequate calories and macronutrients such as carbohydrates to fuel the body and provide energy stores for workouts. It’s important that these are expertly created programs that allow you to stay within your scope of practice and prevent clients adopting a restrictive diet that may inhibit their success. Adequate water is also a must to ensure complete hydration during workouts.
 
Pre-workout Nutrition for HIIT

Due to the intensity of these workouts, it’s vital to follow a healthy nutrition plan with adequate nutrition in the days and hours leading up to a workout. Plan on a moderate- to high-carbohydrate meal that also includes protein approximately three to four hours before the HIIT workout, and then another high-carbohydrate snack within an hour after the workout. Good options for a pre-workout meal include: 

Whole-wheat toast with peanut butter and banana
Non-fat Greek yogurt or cottage cheese with fruit
Dried fruit and almonds
Post-workout Nutrition for HIIT

The biggest nutritional concern post-workout is replacing energy stores (glycogen) and repairing muscles that have been broken down during the intense workout. Again, a combination of carbohydrates and protein has been shown to be most effective. Research shows that a 3:1 ratio of carbohydrates to protein within 30 minutes of completing a HIIT workout is best for replacing energy stores in preparation for the next high-intensity workout. 
 
Suggestions for post-workout nutrition are similar to pre-workout meals and include:
Whole-grain cereal with fruit and soy milk
Whole-wheat crackers with fruit and cheese
Hummus and pita bread

The best pre- and post-workout nutrition boosts energy and results—and motivation. 

Reference Gibala, M.J. (2007). High-intensity interval training: New insights. Gatorade Sports Science Institute Sports Science Exchange, 20, 2.

Monday, 9 February 2015

Interval Training: Stop with the Tabatas and do some Gibalas!


   Sprinting would obviously have been a necessary requirement for Paleolithic hunter-gatherers, both for the procurement of food and to avoid becoming food! Those who want to argue against that statement with the “persistence hunting” position, I will address that in a future post. Regardless, let’s fast forward to modern day and address a topic pertinent to my initial statement. To say that “Tabatas” have become an extremely popular interval training protocol in the fitness industry would be an understatement. When I wrote a position paper1 back in 2008 on the benefits of sprint interval training, the research conducted by Izumi Tabata et al. was obviously referenced as it added to the body of evidence that supports the benefits of high-intensity intermittent (interval) training (HIIT). However, the interpretation of this protocol in the fitness industry has often been misunderstood, and even when done correctly, I would argue that, for most individuals, it is not the most effective approach to interval training. After all, the protocol tested was simply one that was first introduced by a head coach of the Japanese National Speed Skating Team, Kouichi Irisawa; a protocol one would assume worked well for certain athletes based upon the duration of their events. Further, most good coaches use training methods that are often experimentations that change with time, as more successful protocols take shape. Along these same lines, I believe most people could improve their investment of time by not using the Tabata protocol for their interval training; but rather, use a different approach.
For the uninformed, in 1996, Tabata et al. published the findings of a study comparing moderate-intensity endurance training (MIET – 70% VO2 max for 60 minutes, 5 days per week) with HIIT (170% VO2 max for 20 seconds x 7-8 with 10 seconds recovery, 5 days per week) on a cycle ergometer.2 The study found that HIIT improved maximal oxygen uptake slightly more than MIET; but, also improved the anaerobic capacity by 28% while the MIET had no effect on the anaerobic capacity. So, essentially, a “two for one” in terms of improving metabolic capacities for the HIIT protocol.
While the results of the study were important for the comparison of MIET to HIIT, other interval training protocols have demonstrated similar and; in some cases, even greater benefits with a decreased investment of time.3, 4, 5, 6 These latter studies support what I have witnessed clinically over nearly 20 years, which is, that intensity, not duration, is the key ingredient for beneficial physiological change. The intensity of the HIIT protocol examined in the Tabata study was 170% VO2 max, which, while correctly being labeled supramaximal (above 100% VO2 max) and certainly “high-intensity,” is nowhere near a maximal sprint effort given that humans are capable of intensities around 250%. The power output sustained for a maximal effort for the duration of the exercise time of the Tabata HIIT protocol (140 seconds to 160 seconds), is very different to the power output sustained for a maximal effort for an “all-out” sprint lasting, say, 30 seconds. If 170% VO2 max was all one had to escape a predator in primitive times (or today for that matter), it is pretty much a guarantee that you are going to be out of the gene pool in short order! 100% VO2 max represents the power output attained when one reaches maximal oxygen consumption during a graded exercise stress test. Any human starting out at that equivalent intensity would not find it anywhere near a maximal effort for a short “all-out” sprint.
When sprinting “all-out,” most individuals are going to start slowing down within seconds; but, could probably still hold a decent percentage of their maximum power output for anywhere between 20-60 seconds, depending on their level of conditioning, and, in particular, their ability to handle the lactic acid production associated with supramaximal exercise. Considering the short duration of supramaximal activity, it generates a relatively large volume of excess post-exercise oxygen consumption (EPOC), partly due to the lactic acid production. Research has shown a significantly larger EPOC is generated for a 45 second “all-out” sprint compared to a 30 second “all-out” sprint, and a significantly larger EPOC is generated for a 60 second “all-out” sprint compared to a 45 second “all-out” sprint.7 However, a 90-second “all-out” sprint did not generate a larger EPOC than a 60 second “all-out” sprint. The reason for this is that lactic acid production typically reaches its peak at around 60 seconds of supramaximal exercise, which, in turn, inhibits muscular contraction and thereby decreases the production of further large quantities of lactic acid.  Anyone can easily experience this for him or herself. There simply is not a human on the planet that can maintain close to maximal power output without a precipitous drop-off at around 60 seconds. If you find otherwise, immediately contact your country’s Olympic Committee as I can assure you that you will be in high demand! So, 60 seconds is essentially a maximal and optimal duration to engage in supramaximal activity. Perhaps selective pressure with respect to our ancestral survival played a part in this physiological reality.
Now, back to the Tabata protocol. There are two ways in which individuals in the fitness community are misinterpreting this methodology. First, and perhaps somewhat ridiculously, are those individuals and classes that label their work-outs as “Tabatas” because they simply exercise for 20 seconds (at relatively low intensities), rest for 10 seconds, and then repeat the same for seven to eight intervals, and then, in some cases, even repeat again for an hour long workout. Anyone engaging in this approach is as far away from supramaximal interval training as one can get. The second misinterpretation comes from those that are completing the seven to eight 20 second intervals as “all-out” efforts.  With this approach, based upon the previous discussion about 60 seconds being an maximal duration for “all-out” exercise, any intervals past the first three 20 second sprints are essentially a waste of time. The only way someone can complete seven to eight 20-second intervals with only a 10-second recovery is to back down from an “all-out” sprint, to an intensity similar to that tested in the Tabata study. Doing this certainly has its merits for athletic endeavors that last for 140 seconds to 160 seconds; however, for the average individual and most athletes, I would argue that the protocol researched by the group headed by Martin Gibala from the Department of Kinesiology at McMaster University in Hamilton, Ontario, Canada, is a much more effective approach to interval training.
This protocol, as first described by Burgomaster et al.,3 involves completing “all-out” 30-second sprints (also on a cycle ergometer) with a 4 minute recovery between exercise bouts. The number of sprints increased from 4 during the first two sessions, to 5 in the third and fourth sessions, and 6 in the last two sessions. The total time commitment was 17–26 minutes per session, involving only 2–3 minutes of sprint exercise. Exercise sessions were completed every two to three days such that 16 minutes of exercise was completed in a two-week time period.  The results of this protocol showed a doubling of the participants’ endurance capacity! So these benefits occurred over a two-week period using just 16 minutes of sprinting. Further studies using this same protocol have been shown to substantially improve insulin action in young sedentary subjects, a much-needed outcome in this world full of metabolic syndrome.4 This demonstrates that quality not quantity causes physiological change for the better and, in many cases, the Tabata protocol in the fitness industry has become a methodology that has moved away from quality toward quantity. Further research has now shown that intense bouts as short as 6-20 seconds can have a tremendous benefit on physiological health, emphasizing, again, that intensity, not duration, is the key element to beneficial change.5,6 I have also found clinically, that these very short bouts of intense activity are better adhered to while still providing tremendous improvements in health and performance.
Moreover, I found a common objection to this methodology is that unfit and elderly individuals should not engage in this type of supramaximal activity due to the inherent dangers of engaging in such intense activity. With extensive experience in this field, I have never had a situation where an unfit individual or an elderly individual has had a problem with engaging in this kind of supramaximal activity. In fact, I would argue that it is beneficial to engage in this type of exercise in a controlled environment; rather than leave it to the reality of life where external pressures may demand an effort above which one is physiologically not trained to handle.  Interestingly, an increased QT dispersion (QTd) – a marker of myocardial electrical instability that predicts ventricular arrhythmias and sudden cardiac death – has been shown to be decreased with short-term supramaximal exercise.8 This supports the notion that short-term supramaximal exercise is an appropriate approach for anyone to improving one’s physiological health.
In closing, unless you have an athletic event lasting between 140 seconds to 160 seconds, skip the Tabatas and engage in Gibalas or some other shorter interval training protocol that produces better results with a smaller investment of time.  And don’t overdo the quantity of “all-out” sprints – eight to twelve minutes per week is sufficient to reap the benefits without the risks associated with overtraining.

Source Dr. Mark J. Smith

Monday, 29 December 2014

TomTom Cardio Multisport watch

http://www.amazon.com/gp/product/B00D7LN7K4?ie=UTF8&camp=213733&creative=393185&creativeASIN=B00D7LN7K4&linkCode=shr&tag=fitnhea00-20&linkId=CZBESKMLRG7J6EFE


TomTom's added an inbuilt heart rate monitor to its multisport watches - no need for a chest strap.


There was a lot of hype around Apple unveiling its new watch last month. One feature it promised was a heart rate monitor built into the watch - with no need for an old-fashioned chest strap.
Well there's no need to wait till Apple in 2015 for it - TomTom's Cardio Multisport watch has it already - I've been trying it out for a couple of months and it's an intriguing step up for running watches.

The heart rate info is measured through a sensor in the watch that monitors changes in the blood flowing through the wrist. It does this by shining a light through the skin and detecting how much the light reflection changes.
You do have to wear it tightly on the wrist to get the best measurements, but it gives a good guide to how hard you're pushing it - whether on the bike, running or doing a gym class. (One area the heart rate monitor doesn't work is swimming - the sensor won't work in the water.)
There's five intensity zones offered under the heart rate option - Sprint, Speed, Endure, Fat burn and Easy. Selecting one of these zones while you're exercising allows you to know whether it's time to speed up or slow down.

The green light underneath the watch beams down into the arm, then is bounced back to the sensor - which works out the blood flow - and so heart rate.
The green light underneath the watch beams down into the arm, then is bounced back to the sensor - which works out the blood flow - and so heart rate.

The practice of using heart rate monitors for training is controversial - cyclists are largely discarding it in favour of power meters, which are coming down in price.
It's thought that the variation between individuals people is just too great to apply blanket zones to the population.
So I was wary about how genuinely useful I'd find it. But now I've got the bike on a stationary trainer in the garage I'm looking for a more objective way to ensure I don't waste precious training time.
And while it's no great hassle to put on a chest strap, the simple act of attaching another gadget - after the iPhone for Strava tracking and the watch for GPS device all became a bit too much.
That's why putting cardiac monitoring on the watch is perfect - unobtrusive, but available to use easily when you need it.
The swim function is still one of the more impressive features on these watches, allowing me to be the go-to man for distance queries in my slowpoke lane at the Roskill Masters Swimming club.
Being able to see the heart rate info has been useful - the TomTom website that displays all the data has improved greatly. There have also been some good updates of the watch itself sent out online over the past few months, ironing out some of the options available on the watch (ie: it used to ask for left or right arm to be selected while picking swimming options, but no longer needs the info now)
It's a pretty simple watch to use - and is especially good for triathlon training, since it can map and display swim, bike and run info all in one place. The addition of heart rate takes it up a notch when it comes to more technical training methods but it's easy enough to take the step - and ditch that sweaty, smelly chest strap for good.

 Weight and Dimensions

Battery lifetime:
Up to 8 hours (GPS+HR), up to 10 hours (GPS)

Display size 22x25mm / Display resolution 144x168

Thickness 13.8 mm / Weight 63 grams / Strap length 233 mm

Location: Location GPS + GLONASS /Location boost QuickGPSFix

Sensors:

Sensors (internal)
Motion sensor, compass, optical heart rate monitor / Sensors (wireless)
Bluetooth® Smart

Alerts: Beep & Vibrate

Water Resistance: Waterproofing 50m / 165 feet (5 ATM)

Measurements:Pace/Speed Yes

Distance/Calories
Yes


Heart Rate
Yes (Built-in Heart Rate Monitor)


Cadence
Yes (Cadence sensor - optional accessory)

Activities

Indoor Running
Yes

Outdoor Running
Yes

Cycling
Yes

Dedicated Bike mount
Yes

Swimming
Yes

Training

Race
Past activities + favourites

Goals
Time, distance or calories

Zone
Pace or Heart Rate

Laps
Time, distance or manual

Intervals
Yes


Source : DC Rainmaker/ RunnerWorld/ Telegraph.co.uk