February 15, 2011

Sterling Spring Schedule of Clinics


Greetings Nor Cal Racers!

The season is in full swing, but the learning never ends. After a fun and successful Early Bird series we are pleased to bring forward our Spring Camps and Clinics. We don't do a lot of them, but the ones we do, we do very well and we'd love to have you join us at any of our Spring events, or contact us to schedule a custom program for your club or team. Additional info at www.sterlingwins.com or call 408.891.3462. Coming up this Spring:

Advanced Racing Clinic - March 20th
Larry Nolan dropped a note about this one last week...but it's worth a second look. We're putting you in the mouth of the fire hose, behind the moto, in the gutter and on camera working through the nuances of race speed tactics and skills. Look for Advanced Racing School page on Facebook to see pictures and video from our first camp - and we've brought the second one up to 11!
REGISTER!

Climbing & Descending Clinic Level 1 - March 26th
The basics are essential. Time and again the basics of safe and fast descending are mentioned as THE biggest limiter athlete’s face, with efficient climbing a close second. No problem...we've got a proven process that takes you from low speed skill competence to real world practice mastering the art and science of fast!
REGISTER

SuperCamp - May 17-22nd
The big show! We're doing a spectacular 6-day training camp that includes a 120 mile ride down Highway 1 from Monterey to Morro Bay, an estate house in Solvang repleat with staff chef, mechanic, and evening presentations from top physiologists Dr Stacy Sims and Dr Stephen Cheung, professional feedback from elite coaches Matt McNamara and Andres Angulo, and mile after mile of learning alongside 3x Olympian Eric Wolhberg. To up the ante even more….you can enter to WIN your trip to camp by simply registering for a FREE account on www.athleteforard.com/join. Want more info? Drop us a line - info@sterlingwins.com
REGISTER!

January 25, 2011

Panache Racing!


The new racing schedule has just been published and you are riding a wave of excitement at the coming season. A race every weekend and each more intriguing than the previous, but how do you set your goals and expectations accordingly?

OK, it’s not exactly spring in most areas of the world, so the idea of a “Spring Schedule” may be a bit of a stretch, but there is likely a schedule of events set to commence sometime in the near future and you’d like to be ready right?

Winter Preparation Creates Spring Expectations
The first thing to recognize when you start to dream about that perfect season is that it is built on the back of a winter’s worth of work. Time and again racers can be heard talking about “racing their way into fitness.” This is an amusing approach that likely plateaus their development and stagnates their season in one fell swoop. This is because without the requisite aerobic development, but with heavy dosing of intensity early on, they are much more susceptible to burnout, injury, and lackluster motivation as the season starts to get up to speed.

Instead, commit yourself to being really and truly prepared for this season by starting (or hopefully continuing) the foundational work that will allow you to reach a peak of fitness. If you’ve read my other articles, you know that I am not advocating huge amounts of LSD training or weeks on end of small ring riding – instead I tend to focus my athletes on quality workouts that are sub-threshold and highly focused. If you have more than 12 or 14 hours per week to train, then by all means give yourself plenty of long, free form rides…they really do help, but for the 8-12 hour per week athlete a steady diet of tempo and circa-threshold level workouts will more than fit the bill

Those First Races
With a strong fitness foundation you can make race plans with more confidence. Don’t look at every race as being relatively the same, instead get to know the courses and events that suit your early season goals and plan accordingly. Early season races should include a healthy dose of practice. Work on moving around easily, cornering safely and getting back in the flow of the field. If you’ve recently upgraded, don’t be afraid to work your way around the group and get acquainted. Ideally you’ll have a few teammates to help you settle in and work with. If you’ve planned your training well you should be well prepared for any early season race you choose and that is, to my thinking, the larger picture of spring racing. Don’t sign up until you are ready to race and make a difference. Don’t race until you can show some panache!

Race With Panache!
Panache. I love the word. It sounds regal and visceral in the same breath. Panache is that certain way of racing personified by the likes of Jens Voigt and Bernard Hinault. Think Claudio “Il Diablo” Chiappucci’s awesome all-day solo breakaway to Sestriere in the 1992 Tour despite being one of the marked favorites. It is throwing caution to the wind at every opportunity, going for the insanely long breakaway or just hammering away at the front mile after mile because it feels good and delivers some pain to your rivals. Panache is the lost art of racing.

Too often amateur racing is about as thrilling as watching paint dry. The fields roll around and kill any attack, keep the pace modest and arrive at the finish with fresh legs and aggressive hearts – a sure recipe for field sprint disaster. As a coach I watch a lot of races at every level and I want to see riders testing their limits, and those of their competitors. I want to see that fourth and fifth attack by a guy until he gets away – even if he comes back in a lap and it was all for naught. It’s spring racing – be fearless, be the one to sell it all out in the pursuit of something other than a predictable sprint finish. That’s Panache!

Summary
The first races of the season are likely right around the corner and you are probably itching to get after it. Before you send in that registration, take a moment to consider just what it is that you are hoping to accomplish. Short of winning there are a number of other important goals that can be had at early season races. From learning the courses and competitors, to testing your fitness and race panache, make this the year that you take your racing to a new level. Challenge yourself to get dropped. Race without fear and see what happens. Be the racer who keeps drilling it. Race with PANACHE!

November 28, 2010

BASP #4 - November 28th


41...not the George Bush kinda 41, the birthday kind. Figuring on ones birthday they should be able to do pretty much whatever they want I decided to spend my birthday at a bike race. Go figure. I fired out of the house at about 7:15 this morning, car loaded with team stuff and me. I got to Golden Gate park just before 8a and had to schlep my tent, etc about 150 yards to our set up spot. We were next to the Vanderkitten squad, run by good friend Jono Coulter. I had about as good a race as I could expect. Not excuses...but not much riding of late, so a bit lacking in the punch and sustainable power. 22nd. Meh.

170. Not lean, but not too bad. Trick is to see what i can do in the next year to lower that number, but toughen myself up. I'm soft I think....lacking in muscle strength and feneral fitness...OMG, I think I need to lift weights! Hmmm...interesting. I haven't lifted since college really - dabbled here and there...but it may be time to take that old man plunge and start lifting again. Oh yea and consistency - gotta have more consistency in this year than last.

This is more of a diary entry than a blog post btw...just wanted to make sure I had a reference point to go back to when I'm 42!

November 09, 2010

Shifting Paradigms In Athlete Development - Part 1



Part 1: Athletes and coaches have a responsibility to consider development across time of a full spectrum of skills, tactics, and physiological systems. Istvan Balyi, one of the world’s pre-eminent voices in athlete development, offered his assessment of both long term athlete development and shifting paradigms in coaching at the recent USA Cycling Coaches Symposium.


The concept of athlete development is often minimized, or worse bypassed completely, by junior and adult athletes alike in their rush to win and get to the next level. That talented kid who rises quickly but ends up out of the sport within a few years, the gifted athlete who seemingly sprints through the lower categories only to arrive on the regional scene under-prepared for the skills and tactics of high level racing, or the long suffering category four racer who can’t seem to upgrade. These are all representative of a common trend in racing to look at the short term payoff rather than long term development.

What Is Long Term Athlete Development?
Long term athlete development (LTAD) is simply the process of optimizing training, recovery, and competition programming relative to the biological maturation and development of the athlete1. LTAD is most appropriately applied to athletes from pre- to post-pubescent. In this article, however, we’re going to apply some of the principles to an adult population as well. I want to do this because I think it is a valuable perspective for adult athletes to look beyond their day to day training to create a realistic plan for themselves.

Istvan Balyi explored the overall complexity of LTAD as applied to juvenile athletes and what a tangled web it can be when we consider differences between early, average and late developers, between aerobic and power based sports, and when trying to optimize training focus appropriately!

By the same token it can be viewed as eminently simple wherein the development cycle of the young athlete should follow a simple progression that is well researched to target specific areas based on easily measured biological markers like onset of puberty and peak height velocity (PHV, maximal rate of growth). For example, emphasizing coordination skills during a growth spurt is ill advised due to the general loss of coordination and consequent skill break down that often occurs in this phase. Similarly, aerobic development is an ideal focus for athletes at the early onset of PHV.

Fine, kids need appropriately focused and responsible training, so what does this have to do with adult athletes? Well, here’s where it get’s interesting. The other presentation he gave was on creating paradigm shifts in performance training, especially around the role of periodization and creating a meaningful plan. Bear with me as this next couple of sections may seem to meander…

Steps In Athlete Development
Balyi identifies seven steps in long term athlete development:

1. An Active Start
2. FUNdamentals
3. Learn to train
4. Train to Train
5. Train to Compete
6. Train to Win
7. Active For Life

Let’s cut this down to a slightly more manageable size for our stated target populations – teenagers and adults. To that end we can drop numbers 1 and 7 on the presumption that many of us had an active start and will remain active for life (that’s why they call it a lifestyle, right?). That leaves the crux of development focused on #2-6. Similarly the FUNdamentals stage is focused primarily on basic, rather than sport specific, movement skills and abilities, so let’s presume that each has completed this step. That leaves, essentially, training!

Most athletes think they know how to train, and they certainly know how to train to compete as well. Of course training to win is just a short skip from there, right? Don’t we all train to win, after all? Yes, but there are subtle differences between the types of training listed above when applied to all audiences. In addition, I think that the list below can be viewed from both long term (season over season) and short term (within a season) approaches and modified to suit each individual:

- Learning to Train: The first stage of training, learning to train is seemingly rudimentary, however, to work on the habit of training in a structured way, and to focus on the benefits offered is clearly worthwhile.

- Training to Train: In youth and adults simply training to improve one’s general fitness and base skills is a worthwhile goal, especially within the first few years of an activity. Balyi noted that the ‘training to train’ phase often includes less demanding competition and a continued emphasis on cross training and fun.

- Training to Compete: Consider this as the beginning of specialization. Competition demands increase as the athlete is able to further focus on the quality of training while addressing specific needs for competition.

- Training to Win: Often the end goal of all training is winning, but it is misplaced to put too much pressure on the athlete, no matter their age, to perform well until they have reached a high enough level of preparation.

Perhaps you’ve heard the adage that it takes 10,000 hours of training to achieve expertise? Think about that for a moment - five years of full time work to achieve true mastery of a skill or subject. Is it reasonable then for a beginning, even a regional, racer to argue that they don’t need to work on fundamentals, skills, and basal development?

While you may not have 10,000 hours invested yet, chances are you’re planning to continue riding and competing for the next five years, so let’s use that as our reference point moving forward. Given our new five year window, we should probably consider a plan that addresses each component of training each year to get where we want to go.
This is dramatically outside the comfort zone of most athletes. They would rather focus on next week’s workout than on the structure of training for this year, next year, and the year after. Stretch yourself (!) by shifting your reference point on where you are and what you want to do to match your developmental stage.

Summary
Long Term Athlete Development is a constantly evolving field that focuses on how to best prepare young athletes for a lifetime of sports participation. By identifying key points in maturation, and ascribing phase appropriate training and competition demands, the path to individual excellence is much smoother, and ultimately more efficacious, than not.

Similarly adult athletes can benefit from taking a more longitudinal approach to their own training and development. This is true across the spectrum of performance from skill acquisition to physiological development. Given the 10,000 hours rule for mastery of a skill, there is likely some room in your training plan to address the varied components of performance. Next time we’ll look at creating the plan that will get you where you want to be via a paradigm shift in periodization

References:

1. Balyi, Istvan – Long Term Athlete Development. USA Cycling Coaching Symposium Presentation. October 2010
2. Balyi, Istavn – Paradigm Shifts in Coaching. USA Cycling Coaching Symposium Presentation. October 2010

July 28, 2010

CX Webinar Update!


Hi Everyone -
just a couple of updates on our CX Webinar on August 13th:
- We've added a drawing for all registered participants. Many thanks to our sponsors: TRP Brakes, Fluid Recovery Drink and Challenge Tires for kicking down some FREE STUFF!
- Working on a few special guests for the event, details soon!
- The webinar is 60-minutes and starts at 11:00a. It will be available in an archived version afterwards, but without the free stuff!
-register at: www.performancewebinars.com - lower left corner of the page.
- questions/comments? Try me on facebook or by email: info@sterlingwins.com

July 18, 2010

New Freshness

I know, it's been awhile.....

but here is some fresh new from the "Performance - it's the name of the game" guy:



happy Sunday!

June 16, 2010

Lactic Acid - Part 2


It is a common misnomer that Lactic Acid is the cause of fatigue and cessation of high intensity exercise, yet training plans built around your individual Lactate Threshold are highly effective despite the debunking of the “Lactic Acidosis” rationale. Let’s learn why…

By Matt McNamara

Last month we looked at the intricacies of Lactic Acid/Lactate production and its role in limiting performance. The short summary of that article is to say that Lactic Acid production is NOT the limiter in high intensity exercise, and the science behind that belief was founded on an inferred cause and effect relationship between lactate production and cessation of exercise that, ultimately, proved to be untrue.

While lactate production may not be a limiter, it is clearly a marker of overload and does play a role in athletic development and performance. Lactate Threshold based training, when paired with use of a powermeter, is seen as the gold standard for endurance based performance improvement. So let’s explore the real meaning and value of Lactate Threshold based training.

What Does Lactate Threshold Really Mean?
First off, Lactate Threshold is commonly defined as “the exercise intensity at which lactate production exceeds lactate removal, and thus begins to accumulate in muscle and hence in the blood.” Unfortunately, the definition of what constitutes “Lactate Threshold” is highly variable.

Many researchers establish threshold as the point when lactate concentration rises 1 mmol above an exercise baseline. Others use a fixed value, for example 2.5 mmol per liter, as the threshold point. Still another approach is to use D-max which takes the mid-point between the baseline and maximal lactate concentrations. In the end the most important consideration isn’t the way threshold was determined, so much as the concept of Lactate Threshold (and associated terms) as illustrating the non-linear relationship between lactate concentration and exercise intensity.

It is also important to acknowledge that terms like Maximal Lactate Steady State (MLSS), Onset Blood Lactate Accumulation (OBLA), Ventilatory Threshold (VT), Individual Anaerobic Threshold, Critical Power, etc are talking about roughly the same range of intensity. Each of these, MLSS and OBLA in particular, correlate well with the power training concept of Functional Threshold Power (FTP), which is itself defined as your maximal sustained power output for approximately 60 minutes.


Now that we have a clearer idea of what is meant by Lactate Threshold, and we know that Lactic Acid is not the cause of fatigue, let’s look at other factors that might play a role.

Other Causes of Fatigue
In 2005 researchers from Edith Cowan University in Western Australia set out to do just that. Models to Explain Fatigue During Prolonged Endurance Cycling, Chris Abbiss and Paul Laursen’s comprehensive review of fatigue literature, looked at no fewer than ten different explanations of fatigue.

Abiss and Laursen point out that fatigue is usually defined by the type of research being done. For example, if one is looking into psychological causes then they will tend to classify fatigue as “a sensation of tiredness,” while a biomechanist might look more at changes in force output to qualify fatigue. Fatigue research is also driven by a reductionist approach; those doing the research tend to look for a single ‘answer’ to the question of fatigue.

Among the different paradigms and models explored were the anaerobic/cardiovascular model, the energy supply/depletion model, neuromuscular fatigue, biomechanical, thermoregulatory, and muscle trauma models. In addition the psychological/motivational model, central governor, and complex systems models were also reviewed. A quick summary of characteristics might demonstrate that:

Neuromuscular fatigue tends to be divided into a question of where along the neuromuscular pathway inhibition occurs, while the muscle trauma model seeks to explain fatigue as coming from damage to the muscle itself, or to alterations in the chemical homeostasis.

The biomechanical paradigm seeks to define fatigue as the result of decreased efficiency of motion, where increasing efficiency lowers the production of metabolites (like lactate) and energy consumption, helping attenuate increases in core temperature. This segues nicely into the thermoregulatory model which looks at the role of core temperature and the increased demands on the physiological systems brought about as a result of increased core temperature towards critical points at which exercise capacity is reduced or terminated.

While psychologically no single variable appears to be responsible for motor output alteration due to afferent (outgoing) signals, it is thought that numerous mechanisms are responsible for the subconscious perception of fatigue and alterations in central activation and perceived exertion.

The central governor and complex systems theories seek to explain fatigue as a function of oversight by an as-yet-undefined central mechanism, or through the complex inter-relationship of multiple feedback loops seeking to maintain homeostasis, respectively.

Their net conclusion is that any number of systems may contribute to fatigue in a specific way for a specific situation, but in general the limitation of the system is derived from oxygen delivery to the muscles, especially at high intensity.

To further clarify in the Abiss and Laursen article fatigue was defined as “tiredness and associated decrements in muscular performance and function.” This is an important point as much research has looked at performance to exhaustion. The relevance comes when we look at how to best apply some of the factors above into the creation of a responsible training program. Many of the changes we seek are built around the optimization of oxygen delivery and increasing metabolic efficiency during the training year, so how does Lactate Threshold help?

Threshold As Proxy
An individual’s Lactate Threshold is the single most important physiological determinant of endurance exercise performance. It is trainable, reliable, and a sort of proxy for other important metabolic processes that underlie performance.

For example hormone production, like epinephrine/norepinephrine, shows a similar curvelinear relationship with increasing exercise intensity. Plasma potassium concentration, catecholamine concentration, plasma ammonia concentrations, growth hormone, cortisol and many other elements also demonstrate the same threshold type trends as lactate.

Power at Threshold
Now that we’ve established what Lactate Threshold is, how it is determined, and what processes it parallels, let’s spend a little bit of time on what advantages threshold level training can bring to your performance.

For untrained athletes the Lactate Threshold benefits of training can be seen at a wide range of intensities. Simply getting on the bike regularly will bring about many changes including increased mitochondrial density, blood lactate response, and reductions in lactate concentration at a given intensity.

For the trained athlete however, continuous training at intensities around Lactate Threshold has been shown to be beneficial since the time of the fabled East German sports machine in the twentieth century. The East Germans were famous for doing extended hours of training at OBLA!

In a similar vein, Gorostiaga et al in 1991 compared a continuous training group at circa-threshold intensity to one that did only structured high intensity VO2max type intervals (of the type that are all the rage today) and found some compelling differences. While the VO2max group did show a two fold increase in percentage change in VO2max (16% increase v 8% increase), the continuous training group had a ten fold increase in citrate synthase production compared to the VO2max group (25% increase v 2.5% increase). Citrate synthase is one of the main markers for muscle mitochondrial capacity, and is a good reference for total metabolic efficiency.

Both of these examples (the first decidedly anecdotal) serve to illustrate the value of continuous training at an intensity around Lactate Threshold. This has most recently been termed ‘sweet spot’ training, but the idea has been advocated by Lydiard, Coggan, and others in various forms or years. Typically “sweet spot” is defined as approximately 88-93% of your Lactate Threshold power, however the true measure of intensity should be determined by your ability to repeat them over multiple days in a training block.

These circa-threshold efforts should be at least twenty minutes in length, but can last up to two hours or more for advanced athletes. A key determinant of the duration and intensity is your ability to replicate the workout intensity/duration again the next day. A well prepared, motivated athlete doing 60 minutes at 88-93% of threshold power (FTP), should be able to replicate that workload again the second and third days. If you can’t then you probably went too hard, too long, or don’t have a good estimate of your FTP and need to adjust. My suggestion is to start doing some field testing to establish your FTP and then see what you can do. Have fun and let me know how it goes…

References:

1. Abbiss, Chris, Laursen, Paul – Models to Explain Fatigue During Prolonged Endurance Cycling. School of Exercise, Biomedical and Health Sciences, Edith Cowan University, Australia. 2005
2. Coggan, Andy – Explaining Lactate Threshold. Webinar Presentation. 2010
3. Robergs, Robert A., Ghiasvand, Farzenah, Parker, Daryl – Biochemistry of exercise-induced metabolic acidosis. Am J Physiol Regul Integr Comp Physiol 287: R502–R516, 2004

May 06, 2010

Lactic Acid Article


Lactate and Lactic Acid production are routinely offered as the seemingly natural cause and effect parameters that lead to fatigue and a decrease in performance, but are they really the source of the problem?

By Matt McNamara

If you’ve read anything about training in the last ten years you’ve probably come across the idea of Lactate Threshold and a discussion of how lactic acid production limits performance. The argument often goes something like this:

“As exercise intensity increases lactic acid production rises at a rate that, eventually, overwhelms the bodies ability to buffer this build-up and a decrease in performance naturally follows.”

Heck, I’ve repeated the mantra myself time and again over the years, despite KNOWING that it was an incomplete explanation of what actually happens. The truth is it provides a simple, though not wholly inaccurate, way to explain the well-documented trends of decreasing performance with increasing lactate concentrations. The idea of cause and effect just sort of fit well. So rather than perpetuate mediocre understanding, let’s jump in and learn a bit more:

A Brief, Albeit Incomplete, History
Lactic Acid was first isolated by Swedish researcher Carl Wilhelm Scheel from a batch of sour milk in 1780 (hence the commonly used term “lactic” instead of the far sexier formal name of 2-hydroxypropanoic acid, but I digress). Otto Meyerhoff and Archibald Hill, Nobel Prize winners in 1922, demonstrated that Lactic Acid was actually produced as a side reaction of Glycolysis, a primary metabolic pathway that converts carbohydrate/glucose into pyruvate, in the process converting energy into ATP through a 10-step set of reactions. In the absence of oxygen this conversion is sustained with Lactic Acid. This anaerobic process releases a proton (H+).

This was a key finding as it seemed to offer a cause and effect relationship between lactate production (lactate is, essentially, the salt or base of Lactic Acid) and the extended concept of Lactic Acidosis, or a decrease in pH that results from the release of protons in the system (cell or bloodstream).

This cause and effect relationship was taken as fact by researchers throughout the 20th and into the 21st century. However, in reviewing past and current research, Robergs et al (2004) have shown that there was no actual empirical evidence to support the cause/effect relationship; rather it was largely based on statistical correlation and the reputation of the Nobel Laureates Meyerhoff and Hill (which was richly deserved, I might add).

So, if the cause and effect nature of lactate production and acidosis is not an accurate portrayal of the role of Lactate in the onset of acidosis, and therefore performance, what is?

Debunking Lactic Acidosis
In 2004 Roberg, et al wrote an extensive review of the literature that sought to debunk the long-standing cause and effect relationship between lactate production and metabolic acidosis. Their sixteen page review takes an exhaustive, and somewhat intimidating, look at the true biochemistry of metabolic acidosis.

For example they detail the role of the phosphagen, glycolytic and mitochondrial systems in producing ATP and the differences in how each manages any released protons. They also note the difference in the nature of the proton release in glycolysis depending on whether the carbohydrate was derived from blood glucose or muscle glycogen. Glycogen is less acidifying to muscle during intense exercise.

Roberg then goes on to detail the many benefits derived from lactate production including the alkalizing effect of LDH, Lactate Dehydrogenase, or that it then circulates away the lactate to other areas that need it including the kidney, liver, and heart, for use as a substrate.

Finally, they looked at the role of nonmitochondrial ATP production, via research by Gevers in 1977 and 1979. Gevers established that metabolic processes other than LDH might contribute to the removal of protons in the form of the turnover of ATP via glycolysis. In other words that non-mitochondrial ATP production was likely responsible for metabolic acidosis.

But here’s where lactate threshold based training comes in

Training Threshold
Lactate threshold based training is a great tool. More specifically using the combination of a powermeter and a threshold based training approach is a highly effective way to manage your training.

Andy Coggan recently hosted a webinar on Lactate Threshold via USA Cycling. In addition to a comprehensive look at the establishment, definitions, and relationships of training around one’s lactate threshold. Among the cool takeaways

The first is to see terminology like Lactate Threshold, Maximal Lactate Steady State, Onset Blood Lactate Accumulation, etc as talking about roughly the same range of intensity. It’s likely going to be between about 80-90% of your VO2max for sustained periods of time. This will raise your general metabolic fitness. Further specialization is ideal for targeting specific race preparation

Coggan also noted that it has been shown in a wide array of studies that many other factors and processes contribute to fatigue. Things like epinephrine/norepineprine (adrenaline/noradrenalin), plasma potassium, and cortisol level, etc. often show a similar threshold type profile to that of lactate.

Abiss and Laursen did a comprehensive look at fatigue in 2005. Models to Explain Fatigue During Prolonged Endurance Cycling looked at no fewer than 10 different models of fatigue including the cardiovascular/anaerobic model, neuromuscular biomechanical, thermoregulatory models, and several others. Their net conclusion is that any number of systems may contribute to fatigue in a specific way for a specific situation, but in general the limitation of the system is derived from oxygen delivery to the muscles. Since we established above that metabolic acidosis is not derived from lactic acid, but that lactate production is an important contributor to oxygen delivery, it time to embrace those burning quads and get to work improving that lactate tolerance.

Perhaps next time we’ll look at that – drop me a line if you’re interested in a part 2.

References:

1. Abbiss, Chris, Laursen, Paul – Models to Explain Fatigue During Prolonged Endurance Cycling. School of Exercise, Biomedical and Health Sciences, Edith Cowan University, Australia. 2005
2. Coggan, Andy – Explaining Lactate Threshold. Webinar Presentation. 2010
3. Robergs, Robert A., Ghiasvand, Farzenah, Parker, Daryl – Biochemistry of exercise-induced metabolic acidosis. Am J Physiol Regul Integr Comp Physiol 287: R502–R516, 2004

April 30, 2010

Central Governor Theory and the RAAM!

I was driving to Sacto the other night and heard a discussion centered around the idea of a "Central Governor" theory for exercise physiology. It was a small part of pretty cool NPR piece about the Limits of human capacity on the show"Radiolab". Witout getting into the theory itself; During the show they referenced this movie too:



sort of a fun way to start the first weekend in May...