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

Baking Soda For Stressed White Blood Cells: 0.3g/kg NaCO3 90min Before an Anaerobic Workout Protect Your Immune Cells From "Stress" and Oxidative Damage

Image 1: Pure baking soda is not (yet?) a staple of the supplemental arsenal of many athletes. The scientific evidence with regard to its immediate ergogenic effects is ambigious and the mere presence of the word "sodium" in "sodium bicarbonate" scares the hack out of those athletes (bodybuilders and figure competitors) who may benefit most from a few grams of this potent alkalizer.
"Sodium"! This word alone is usually enough to scare bodybuilders and fitness athletes to death. "Sodium!? Isn't that the stuff that makes me look bloated?" The answer is easy: No! While sodium will help you retain enough water in your body to perform in the gym, the amount of sodium you ingest usually has little impact on the amount of water you will be holding, only when you start modulating your sodium intake, your body will react with changes in the renin-andiotensin-aldosterone system and you will be fluctuating "nicely" back and forth from super-bloated to weak and dehydrated... this is yet commonly ignored within the fitness community and thus it is no wonder that most supplement producers are anxious not to include any ingredients in their products that would show up on the label as "sodium" - after all, there are still costumers out there who have not enrolled at the SuppVersity and will thusly run away screaming as soon as they take a closer look on the label of a product they were just about to buy.

It is thusly no wonder that (at least to my knowledge) KreAlkalyn, where NACO3 is the working ingredient of the highly advertised buffering system, is the only product using sodium bicarbonate, or soda ash, as it is also called, as one of its main constituents (more on this topic in the SuppVersity Creatine Special). In medical settings NACO3 was and, in parts, still is still the "drug" of choice to combat acute acidosis. It is thus no wonder that Daniel J. Peart and his colleagues from the University of Hull in the United Kingdom, as well as the Bond University in Queensland, Australia are not the first scientists who speculated that athletes, especially those competing in (primarily) anaerobic sports, could benefit from the alkalizing effects of their grandmothers' secret weapon in the war against fungi and bacteria on her kitchen furnishings (Peart. 2011).
Image 2: "Cholesterol is the devil and sodium is his little brother!" Everyone who still believes everything the medical orthodoxy says, please raise your hands!
A note on the dangers of "salt": Firstly, baking soda is "only" ~28% sodium, which means that for every 4 grams you ingest you get roughly 1 g of sodium. Secondly, it is arguable how much of the sodium is effectively taken up and will be floating around in your blood. As T. Lakhanisky points out in his dossier for the Belgian government: "The uptake of sodium, via exposure to sodium carbonate, is much less than the uptake of sodium via food. Therefore, sodium carbonate is not expected to be systemically available in the body." (Lakhanisky. 2002) And thirdly, there is more and more evidence that suggests that the chloride rather than the sodium content of common table salt (NaCl = NatriumChloride) is the root cause of "sodium induced hypertension" in "sodium sensitive" individuals / animal models. Only recently, a study by Schmidlin et al. showed that chloride loading induced hypertension in the stroke-prone spontaneously hypertensive rat despite profound sodium depletion (Schmidlin. 2010). So, if you asked me, rather than pointing at salt as the #2 on the list of greatest evils (obviously cholesterol is still #1, here) the medical orthodoxy would be better advised to address the imbalances between sodium and potassium, which are so characteristic of the western diet, instead of painting yet another black and white picture where sodium is the bad guy and potassium the dangerous mineral that cannot be sold OTC in dosages >80mg.... but hey, this would be the topic for a whole new blogpost and as gross as it may sound, the chance that you get diarrhea from the baking soda is probably 1000x higher than the remote possibility of increases in blood pressure. A 1990 study by Luft et al. even found that the blood pressure of 10 mildly hypertensive and normal subjects decreased by 5mmHg after 7 days in the course of which they drank 3 liters of sodium bicarbonate containing water per day (Luft. 1990)
In their study, Peart et al. had a group of seven recreationally active men (age 22.3 ± 2.9 years,
height 181.6 ± 4.5 cm, body mass 78.1 ± 8.1 kg, and physical activity 4.2 ± 0.6 h/week) "with no history of supplementing their diet with ergogenic agents" perform a 4-min bout of all-out exercise on an air-brake cycle ergometer on three different occasions (spaced exactly 1 week apart). While the first was an acclimatization session the second and third bout were performed after the ingestion of either 0.3g/kg sodium bicarbonate (trial 2) or plain table salt (trial 3) in "low-energy flavored water" 90 minutes prior to exercise.
Figure 1: Blood ph levels after ingestion of placebo or 0.3g/kg sodium bicarbonate (data adapted from Peart. 2011)
As you can see in figure 1, the ingestion of ~23.4g of baking soda produced a rather slight but significant shift towards a more alkaline blood ph level (compared to placebo), which became much more pronounced after the exercise bout (p<0.003). Interestingly, there was yet no significant difference (p>0.26) in exercise performance as measured by average and peak power (means ± SD; average power 292 ± 43 W vs. 291 ± 50 W; peak power 770 ± 218 W vs. 775 ± 211 W; work completed 71 ± 10 kJ vs. 68 ± 10 kJ) between the groups.

Baking soda: A non-ergogenic ergogenic?

The latter observation, i.e. no or statistically non-significant increases in acute exercise performance upon sodium bicarbonate ingestion, stands in line with ~75% of the previous findings, a recent meta-analysis by Carr et al. summarizes as follows:
The remaining 38 studies and 137 estimates for sodium bicarbonate produced a possibly moderate performance enhancement of 1.7% (90% CL ± 2.0%) with a typical dose of 3.5 mmoL/kg/BM (∼0.3 g/kg/BM) in a single 1-minute sprint, following blinded consumption by male athletes. In the 16 studies and 45 estimates for sodium citrate, a typical dose of 1.5 mmoL/kg/BM (∼0.5 g/kg/BM) had an unclear effect on performance of 0.0% (±1.3%), [...] Study and subject characteristics had the following modifying small effects on the enhancement of performance with sodium bicarbonate: an increase of 0.5% (±0.6%) with a 1 mmoL/kg/BM increase in dose; an increase of 0.6% (±0.4%) with five extra sprint bouts; a reduction of 0.6% (±0.9%) for each 10-fold increase in test duration (e.g. 1-10 minutes); reductions of 1.1% (±1.1%) with nonathletes and 0.7% (±1.4%) with females. Unexplained variation in effects between research settings was typically ±1.2%.
Despite these rather mediocre immediate effects of bicarbonate pre-loading, the main finding of the study at hand hints at hitherto overlooked long(er)-term immune benefits the consumption of sodium bicarbonate might have.
Figure 2: HSP-72 expression in mono- and lymphocytes in response to anaerobic exercise after ingestion of placebo or 0.3g/kg sodium bicarbonate (data adapted from Peart. 2011)
As you can see in figure 2 the stress-induced HSP-72 expression in white blood cells (lymphocytes and monocytes) in response to the HIT exercise was almost completely abolished. Along with the nullification of the already low amount of oxidative stress (cf. T-BARs in figure 3), these results suggest that bicarbonate supplementation has a stress-protective effect on immune cells during anaerobic exercise.
Figure 3: Oxidative stress due to anaerobic exercise as measured by TBAR expression after ingestion of placebo or 0.3g/kg sodium bicarbonate (data adapted from Peart. 2011)
It is yet important to note that the scientists point out that it "is unclear at this stage whether the attenuation was due to a reduced state of acidosis, reduced oxidative stress or a combination of both." Moreover, it is difficult to say which consequences this would have on future bouts of exercise and whether and to which degree athletes would actually benefit - or, if we think of the hormesis hypothesis and the ongoing debate concerning the effects of antioxidants on exercise induced adaptations - maybe even compromise their performance, would yet need further investigations.

We may yet assume that, just as it is the case with antioxidants, the dosage will have to be matched to the individual workload to see optimal results. With people exercising just enough to see any adaptations seeing no and people who do crossfit 2x a day seeing the most beneficial results from (partially) blocking the exercise induced oxidative stress.

Pigs Would Pick MSG - Glutamate Seals the Gut, Decreases Liver & Muscle Fat & Increases Plasma Amino Acids in Swine

Piglets would buy MSG food ;-)
Mono-sodium glutamate (MSG) and the "Chinese restaurant syndrome", obesity and overeating are often thrown together into a single psedo-scientific crock pot with the result being a brew that's 50% hear-say, 40% fear and 10% science. The study we are going to look at today is unquestionably part of the latter ingredient and its results do stand in line with my previously stated concern "that MSG is one of those substances that is usually found in foods with a whole host of other nutrient-poor ingredients, anti-nutrients and proven obesogenic, pro-inflammatory and otherwise unhealthy substances and food additives" ("MSG, NFALD, Leaky Gut & Brain ...") and could thus rather be corollary to, than causative of the toll the fast, convenient and nutrient deficient foods in the Western diet are taking on our health.

Published ahead of print in the online version of the journal Amino Acids you will find a study by a group of researchers from the Texas A&M University. The study was, according to the authors intended to "fill [the] important gap of knowledge about glutamate nutrition and metabolism in animals" (Rezaei. 2012). Luckily their study subjects were pigs, allegedly young pigs, but still omnivores like us and one of the best models of the human digestive tract we have:
"Both humans and pigs are highly dependent on dietary quality since symbiotic microorganisms within the gut play a relatively minor role in modifying the nutrients that are ingested. Intestinal  transit times and digestive efficiencies are comparable. Postabsorptive metabolism is also similar in many respects, although the wide differences in length of gestation and the numbers of young born introduce a potentially significant divergence in nutrient needs for reproduction. [...] Nevertheless, when minimum nutrient requirements of swine and established recommended daily allow­ ances of humans are expressed per kilogram of dietary dry matter (assuming an intake of 500 to 800 g of dry matter per day by teenagers and adults), these values are highly related. It is only reasonable that one not draw unsupport­able inferences from one species to another, but with the possible exception of nonhuman primates, it is apparent that the omnivorous pig is one of the best models for study of nutrition issues in the omnivorous human." (Miller. 1987)
Against that background it is quite intriguing that Rezaei. et al. did not find any of the suspected negative side effects of MSG up to a dosage of 4% in the diet of their piglets.
Figure 1: Weight development and feed intake and effciacy in pigs on diet containing different amounts of supplemental MSG (data based on Rezaei. 2012)
In fact, instead of eating more, the pigs that received the MSG-supplemented diets consumed slightly, but significantly less food than their peers. Despite these appetite suppressing effects of the diet, the piglets in the high MSG arm of the study still gained the most body weight and thusly had the 'optimal' (for lovers of Chines restaurant probably rather 'most detrimental') gain:feed ratio.

The amino acid modifying effects of MSG

When we are seaching for the underlying reasons of these changes, it may be worth taking a look at the amino acid composition of the plasma of the piglets after 21 days on diets supplemented with different amounts of MSG at 1 and 4 h after feeding. During this prostprandial phase, the scientists observed
  • More about MSG in human health
    significant increases  in aspartate, glutamate, glutamine, histidine, citrulline, arginine, taurine, alanine, methionine, valine, phenylalanine, isoleucine, leucine, proline, cysteine, ornithine, and lysine in plasma at both time points, i.e. one and four hours after feedin,
  • highly significant increases in asparagine, serine, threonine, tryptophan, and tyrosine 1h after feeding and
  • significant increases in alanine, citrulline, glutamate, methionine, ornithine, phenylalanine, proline, and tryptophan in the first hour of the postprandial window
If we also take into account previous rodent studies which have shown that MSG reduces the deposition of fatty acids in white adipose tissue (Kondoh. 2008), it cannot be ruled out though that these increases in weight gain were related to increases in lean- not fat tissue (remember: muscle is heavier than fat); after all we are dealing with growing young pigs, in which you would expect an increase in essential and non essential amino acid availability to help with skeletal muscle metabolism (Mahan. 1998).
Figure 2: Total lipid content in percent of control in response to MSG feeding at different doses (left) and the modulatory effects of sodium intake (NaCl) on the effects of MSG (right; data based on Rezaei. 2012)
As the data in figure 2 goes to show this hypothesis appears to stand in line with the decreased fatty acid deposition in liver and skeletal muscle, which will at the same time prevent negative side effects of intra-hepatic and -skeletal lipid accumulation on liver and muscle glucose uptake.

Does salt modify the effects of MSG? And what's the role of the gut in all this?

Against that background it is actually a pitty that we don't have data on the fatty acid content of liver and muscle tissue in response to the different levels of dietary salt in the diets (figure 2, right). I mean, at first sight it appears that more salt could 'ameliorate' the detrimental effects of MSG feeding on the body weight of the rodents, but if the latter was not detrimental, but beneficial, this would certainly entail the question if it's not MSG per se, but rather it's co-appearance with too much, or due to it's ability to boost all taste perception to little sodium in the previously mentioned fast, convenient and nutrient deficient foods, way too many people have gotten addicted to.

You see, just as so many times before things are way more complex than they may seem at first sight and if the interactions of body weight, lean mass, intrahepatic and intramuscular lipids and dietary salt with MSG was not already enough, the data in figure 3 brings another (side?) effect into play the importance of which must not be underestimated - the effect of MSG on the intestinal morphology of the pigs:
Figure 3: Jejunal morphology and jejunal concentrations of DNA, RNA, protein, ATP, and glutathione in 28-day-old pigs weaned at 21 days of age (Rezaei. 2012)
I don't know if you remember the side effect of the chronic ingestion of zinc on the intestinal structure of rodents that caused quite a stir in the zinc-loving bodybuilding community back in June!? In essence, the effects of mono-sodium glutamate on the microvilli, which are responsible for the absorption of nutrients look very similar to the ones that were observed by Taneja et al.in response to Zinc supplementation (SuppVersity: June 13, 2012). As previously mentioned this is per se not a bad thing and could in fact come very hand to people with chronic inflammatory conditions suffering from a "leaky gut" or people who want to protect their gut from the side effects of the chronic use of NSAIDs, where MSG has only recently been implicated as a viable tool to prevent and heal mucosal damage (Amagas. 2012).
Figure 4: Postprandial glucose levels (left) and intestinal morphology (right) of mice on diets with different concentrations of mono-sodium glutamate (Rezaei. 2012)
As figure 4 goes to show this could actually work with MSG without the zinc-induced increases in insulin and blood glucose (see figure 2 in previous article). Whether these effects are directly related to the ingestion of MSG or its glutamin-sparing effects n the gut cannot be said for sure, though:
"Grant alert" Despite the fact that I am pretty sure that the actuall data in this study is accurately reported, I still want to point out that the scientists received "a grant from the International Glutamate Technical Committee". It's explicitly listed in the "acknowledgments" and probably not much of an issue outside of the discussion in which you will obviously miss references to potential negative side effects (which have not been observed in the study, though).
"Thus, dietary supplementation with glutamate may enhance the availability of dietary glutamine in plasma. As a versatile amino acid, glutamate participates in both synthetic and oxidative pathways in the small intestine, resulting in the production of proteins, ornithine, citrulline, proline, arginine, alanine, aspartate, glutathione, CO2, and ATP. Therefore, dietary supplementation with glutamate increased the plasma concentrations of these amino acids  and jejunal concentrations of glutathione in weaned pigs. Compelling evidence shows that dietary glutamate is a major energy substrate for the small intestine, which is an organ with a particularly high met- abolic rate. In support of this notion, we found that dietary MSG supplementation increased jejunal concentrations of ATP in weaned pigs. Additionally, glutamate is an excitatory neurotransmitter, thereby regulating the motility of the gastrointestinal tract. Thus, when a weaning diet is deficient in glutamate, gut atrophy occurs and the efficiency of utilization of dietary protein for growth and other physiological functions is greatly decreased." (Rezaei. 2012)
As evidence from previous studies by Kondoh et al. suggests, the effects of glutamate do not end at the intestinal brush border. Its centrally mediated downstream effects after interacting with l-Glutamate receptors in the intestines are however still not fully understood and could either be beneficial (as the work by Kondoh et al. would suggest; Kondoh. 2008 & 2009), be without physiological consequences or - as the mainstream myth suggests - "be the devil"; with the latter being much more likely in people with genetic or already established metabolic problems which result in a deficiency of glutamate dehydrogenase (Stanley. 2009).

Bottom line: The last mentioned problems certain individuals who have inherited or acquired problems with the enzymatic conversion of glutamate are yet not the only reason why I strongly caution against taking the results of the study at hand as a free ticket for limitless MSG consumption. If it's not the MSG that's going to make you fat, I can assure you that those 'foods' in which it is used will be getting the job done pretty quickly and will thus compensate for any possibly existent improvements in intestinal and whole body amino acid metabolism.

Parmigiano Reggiano aside from seaweed the #1 "real food" offender in terms of MSG and still good for your bones (Pampaloni. 2011) - one of many examples of the fallacy of black-and-white thinking. To heal your gut, glutamine would yet still be your better choice, I suppose ;-)
That said, there are still unresolved issues related to the negative effects of MSG on the immune system and the thymus. The dosages that are required to observe toxic effects may be hilarious if you take into account how much of it you find in an individual food item, and even if you started supplementing with MSG, or lived on fast- and convenient food, only, you will probably be hard pressed to get up to the 50g+ human equivalent of mono-sodium glutamate which was sufficient to significantly decrease thymus cell viability in rats (Pavlovic. 2009). In case you feel you are endangered and belong to the people who rather wear a helmet than stop hammering their head against a wall, you could try to counter that with an additional 6-7g of vitamin C (for the rodents that worked)... but let's be honest, wouldn't your life be much easier, if you simply stuck to whole foods and don't worry about the occasional piece of aged Parmesan cheese with 1680 mg glutamate per 100g. It could not just be good for your gut, but has been shown to be good for your bones (Pampaloni. 2011), probably not because, but at least despite the high MSG content.

References:
  • Amagase K, Ochi A, Kojo A, Mizunoe A, Taue M, Kinoshita N, Nakamura E, Takeuchi K. New therapeutic strategy for amino acid medicine: prophylactic and healing promoting effect of monosodium glutamate against NSAID-induced enteropathy. J Pharmacol Sci. 2012;118(2):131-7.
  • Kondoh T, Torii K (2008) MSG intake suppresses weight gain, fat deposition, and plasma leptin levels in male Sprague-Dawley rats. Physiol Behav 95:135–144.
  • Kondoh T, Mallick HN, Torii K. Activation of the gut-brain axis by dietary glutamate and physiologic significance in energy homeostasis. Am J Clin Nutr. 2009 Sep;90(3):832S-837S.
  • Mahan DC, Shields RG Jr. Essential and nonessential amino acid composition of pigs from birth to 145 kilograms of body weight, and comparison to other studies. J Anim Sci. 1998 Feb;76(2):513-21.
  • Miller ER, Ullrey DE. The pig as a model for human nutrition. Annu Rev Nutr. 1987;7:361-82. 
  • Pampaloni B, Bartolini E, Brandi ML. Parmigiano Reggiano cheese and bone health. Clin Cases Miner Bone Metab. 2011 Sep;8(3):33-6.
  • Pavlovic V, Pavlovic D, Kocic G, Sokolovic D, Sarac M, Jovic Z. Ascorbic acid modulates monosodium glutamate induced cytotoxicity in rat thymus. Bratisl Lek Listy. 2009;110(4):205-9.
  • Stanley CA. Regulation of glutamate metabolism and insulin secretion by glutamate dehydrogenase in hypoglycemic children. Am J Clin Nutr. 2009 Sep;90(3):862S-866S.
  • Rezaei R, Knabe DA, Tekwe CD, Dahanayaka S, Ficken MD, Fielder SE, Eide SJ, Lovering SL, Wu G. Dietary supplementation with monosodium glutamate is safe and improves growth performance in postweaning pigs. Amino Acids. 2012 Nov 2.

Low Sodium Intake for Athletes? Good for Your Health, or Ergolytic Bogus & Hazardous Bullshit? 30g/Day Sodium Loss in "Hard Sweating" Athletes Speak for Themselves

Salt reduction is for "hard-sweating" athletes not.
Whenever I am browsing the latest studies, I see at least one of those hilarious "salt kills" papers citing official recommendations to reduce sodium intake, in order to lower your risk for hypertension, diabetes, stroke and what not. So, if everyone recommends it and scientists write about, it must be true, right? Well, I guess after reading today's SuppVersity article, you may question the way the average Westerner thinks: What the government suggests you should do is not always good for you.

You, a decently lean & insulin sensitive individual who works out at least thrice a week, and someone who takes the stairs instead of the elevator at least every other day, may in fact put himself / herself at risk of hampering your workout performance and eventually even your health if you reduce your salt intake too much.
Normal salt and sodium bicarbonate are not bad for athletes:

The Hazards of Acidosis

Build Bigger Legs W/ Bicarbonate

HIIT it Hard W/ NaCHO3

BA + Bicarb are Synergists

Bicarb Buffers Creatine

Creatine + Baking Soda = 2x Win!
And even if you weren't lean and athletic, it's questionable, whether you'd benefit. The latest Cochraine Review of the effects of reductions in dietary salt intake on the prevention of cardiovascular disease, for example says:
"Despite collating more event data than previous systematic reviews of RCTs (665 deaths in some 6,250 participants) there is still insufficient power to exclude clinically important effects of reduced dietary salt on mortality or CVD morbidity. Our estimates of benefits from dietary salt restriction are consistent with the predicted small effects on clinical events attributable to the small BP reduction achieved." (Taylor. 2011)
And there is more, as I've previously reported the low chloride intake that comes hand in hand with a reduction in dietary salt intake has been associated with +21% increased mortality risk.
Figure 1: Associations of serum chloride, natrium, potassium and HCO2 with systolic and diastolic blood pressure as well as risk of all-cause, cardiovascular disease, ischemic heart disease, stroke and non-CVD mortality risk (McCallum. 2013)
Scientists from the Incorporated Administrative Agency of Health and Nutrition a Japanese government institution that claims to have made "numerous contributions to improve nutrition and dietary habit and to advance the knowledge of health and nutrition science for the public," (Institute Website), say: "Low dietary Na may [...] be a risk factor for maintaining positive balances of Ca and Mg" (Nishimuta. 2005).
Figure 2: If exercising individuals follow the WHO recommendation for salt intakes, they will put themselves at risk of having negative magnesium and calcium balances (based on data from Nishimuta. 2005)
Nishimuta et al. base their assessment on analyses of the content of calcium (Ca) and magnesium (Mg) in sweat during exercise, which is considerably higher during a relatively low intake of sodium (Na) of 100 mmol/d than with an intake of 170 mmol/d. As the scientists point out in their 2005 paper, this is the reason that their subjects developed a negative calcium and magnesium balance, when their sodium intakes were below 61mg and 63mg per day, respectively.
Salt Reduction Kills! New Studies Suggest Cutting Back Below 3-5g Could Do More Harm Than Good! Scientists Say: Minimum Intake is Physiologically Set (King. 2014) -- Too much sodium remains a valid concern, but are current targets too low for optimal health?

Healthy salt intake physiologically determined - don't restrict, if you crave.
New research moves beyond sodium’s effect on the surrogate marker of blood pressure to examine the relation between sodium intake and cardiovascular morbidity and mortality. Results show that sodium intakes both less than and greater than ~3000–5000 mg/d increase the risk of negative health outcomes. Additionally, newly compiled sodium intake data across populations show a uniformity that suggests that intake is physiologically set. Perhaps not coincidentally, the observed intakes fall within the range related to lowest risk.

These findings are highly relevant to current efforts to achieve low sodium intakes across populations, because the data suggest that the efforts will be unsuccessful for healthy people and may cause harm to vulnerable populations. Remaining mindful of risks associated with both excessive and inadequate intakes is imperative with all nutrients, and sodium is no exception. Avoiding too much, and too little, sodium may be the best advice for Americans.
At first it may sound strange that a reduced salt intake would increase the calcium and magnesium loss during exercise, but when you look at it from a biochemical point of view you will realize that in the absence of sodium, other cations (like magnesium or calcium) will have to bind to the lactic acid molecule to form lactate and postpone the development of subchronic metabolic acidosis (Robergs. 2004).

Cramps could be a sign of severe sodium deficiency

The role of sodium during exercise takes us to another thing you should consider before you start restricting your sodium intake. If there is any mineral that is associated with exercise related cramping, it's not, as many people believe, magnesium or potassium, it's sodium! In his 2007 paper in Sports Medicine, Eichner points out that (Eichner. 2007)...
  • heat cramping in industrial workers is alleviated by saline, and in a self-experiment, salt depletion provoked muscle cramping
  • in tennis and football alike, heat-crampers tend to be salty sweaters
  • triathletes who cramp may lose more salt during the race than peers who do not cramp
  • practical experience with therapy and prevention indicates that untravenous saline can reverse heat cramping, and
  • lastly, more salt in the diet and in sports drinks can help prevent heat cramping
All this evidence clearly indicates that the most prevalent reason for cramping is a lack / loss of sodium, not magnesium of which you've just learned that it's excreted in your sweet in significant amounts only if you don't consume enough salt.
Salt is essential and covering your needs will reduce, not increase water retention: Salt is 40% sodium and 60% chloride and both are important for athletes. Sodium is the major cation of the extracellular fluidandone of its primary functions is to maintain fluid equilibrium in the body. Sodium is a criticalnutrient in the maintenance of normal physiologic function and optimal exercise performance (Valentine. 2007). Although the typical American diet often contains more sodium than is needed, this may not be true for the athlete. Significant sodium and water losses can occur during exercise, exceeding the dietary intake and adversely affecting the fluid balance.

Very low sodium can impair glucose uptake (learn more)
In that, sodium is particularly important because sodium is needed in the rehydration process. The ingestion of plain water causes a rapid fallin plasma sodium concentration and osmolarity, leading to decreased aldosterone and vasopressin production; this increases urine output.... in the short run. Chronic low salt and high water intakes will yet have the opposite effects. As previously discussed, studies by Luther et al. (2011) even suggest that reducing sodium too much will not just increase water retention, the consequent increase in aldosterone may even impair your glucose sensitivity (see Figure on the left).

Acute high sodium intakes, on the other hand, have no effect on the water retention in healthy individuals, where an increase in serum renin (increases sodium excretion) and urinary aldosterone excretion (lowers water retention) nullified the effects of high salt intakes on body water - without the need to increase the potassium intake, by the way (Kirkendall. 1976).
In 2005 Stofan et al. published a paper that investigated the correlation between sodium loss during exercise and the occurrence of heat cramps in NCAA football players. What they found was that sweat potassium was similar between groups, but the sodium loss in the sweat of those NCAA players who had cramps was two times higher than it was in the controls (54.6 ± 16.2 vs. 25.3 ± 10.0 mmol/L). As Stofan et al. point out, "[l]arge acute sodium and fluid losses (in sweat) may thus be a characteristic of football players with a history of heat cramping." (Stofan. 2005)
Figure 3: Football players may be the best studies, but they are certainly not the only athletes who lose tons of salt during an intense training session (data in the figure based on (Fowkes Godek. 2010)
Only recently, E. Randy Eichner, who has long been arguing that "salt is simplest, most effective antidote" against heat cramps in athletes (Eichner. 1999), highlighted in an article in Current Sports Medicine Reports that the current momentum of those who argue that we all need to drastically reduce our sodium intake could hurt those who would do better if they even increased their intakes: Athletes (Eichner. 2014).
I am not giving a one size fits it all recipe, but what I can do is to cite the following considerations from Valentine (2007): "An athlete exercising 4 hours a day who has a sweat rate of 3.0L/h with a sweat sodium concentration of 80mmol/L will lose 12 L of fluid and 960 mmol of sodium in 1 day. This equates to over 22 g of sodium or over 55 g of salt." I guess that's impressive enough to make you reconsider any efforts to reduce sodium - specifically in view of the fact that chronic low sodium can cause, not prevent water retentions in athletes due to its effects on aldosterone. And as I have pointed out previously, this will even worsen whole body glucose uptake.
Bottom line: I am not sure if you consider the previously presented evidence convincing, but if you want to give salt a try, I'd suggest you simply follow your appetite. Studies like the one Wald & Lesham conducted in 2003 clearly suggest that your appetite for salty foods after a workout will increase, if your salt stores are depleted (Wald. 2003). In view of the fact that Walt & Lesham found that this increase is astonishingly proportional to the amount of salt their subjects lost during a 90 minute workout, the average gymrat (not the ultramarthoner, though) will just have to follow his appetite for salt to make sure that a lack of sodium won't impair his performance and / or overall health.

Against that background and in view of the large inter-individual differences (Bergeron. 2003), the differences between different types of sports, exercise intensities and, of course, the environmental conditions, I am not stupid enough to try and make a general recommendation other than the aforementioned advise to simply follow your bodies lead - trust it, it knows it, when he needs salt | Comment on Facebook!
References:
  • Bergeron, M. F. "Heat cramps: fluid and electrolyte challenges during tennis in the heat." Journal of science and medicine in sport 6.1 (2003): 19-27.
  • Eichner, E. R. "Heat cramps: salt is simplest, most effective antidote." Sports Med Digest 21.8 (1999): 88. 
  • Eichner, E. Randy. "The role of sodium in ‘heat cramping’." Sports Medicine 37.4-5 (2007): 368-370.
  • Eichner, E. Randy. "The Salt Paradox for Athletes." Current sports medicine reports 13.4 (2014): 197-198.
  • Fowkes Godek, Sandra, et al. "Sweat rates, sweat sodium concentrations, and sodium losses in 3 groups of professional football players." Journal of athletic training 45.4 (2010): 364. 
  • King, Janet C., and Kristin J. Reimers. "Beyond Blood Pressure: New Paradigms in Sodium Intake Reduction and Health Outcomes." Advances in Nutrition: An International Review Journal 5.5 (2014): 550-552.
  • Kirkendall, Walter M., et al. "The effect of dietary sodium chloride on blood pressure, body fluids, electrolytes, renal function, and serum lipids of normotensive man." J Lab Clin Med 87.3 (1976): 411-434.
  • Luther JM, Brown NJ. The renin-angiotensin-aldosterone system and glucose homeostasis. Trends Pharmacol Sci. 2011 Dec;32(12):734-9.
  • McCallum L, Jeemon P, Hastie CE, Patel RK, Williamson C, Redzuan AM, Dawson J, Sloan W, Muir S, Morrison D, McInnes GT, Freel EM, Walters M, Dominiczak AF, Sattar N, Padmanabhan S. Serum Chloride Is an Independent Predictor of Mortality in Hypertensive Patients. Hypertension. 2013 Aug 26.
  • Nishimuta, Mamoru, et al. "Positive correlation between dietary intake of sodium and balances of calcium and magnesium in young Japanese adults--low sodium intake is a risk factor for loss of calcium and magnesium--." Journal of nutritional science and vitaminology 51.4 (2005): 265-270.
  • Palacios, C., et al. "Sweat mineral loss from whole body, patch and arm bag in white and black girls." Nutrition Research 23.3 (2003): 401-411.
  • Stofan, John R., et al. "Sweat and sodium losses in NCAA football players: a precursor to heat cramps?." International journal of sport nutrition and exercise metabolism 15.6 (2005): 641.
  • Taylor, Rod S., et al. "Reduced dietary salt for the prevention of cardiovascular disease: a meta-analysis of randomized controlled trials (Cochrane review)." American journal of hypertension 24.8 (2011): 843-853. 
  • Valentine, Verle. "The importance of salt in the athlete’s diet." Current sports medicine reports 6.4 (2007): 237-240.
  • Wald, N., and M. Leshem. "Salt conditions a flavor preference or aversion after exercise depending on NaCl dose and sweat loss." Appetite 40.3 (2003): 277-284.

Ask Dr. Andro: The Pharmacokinetics of Creatine (Part II/II) - How Is Creatine Transported into the Muscle?

Illustration 1: There is a bunch of things that could potentially go wrong with creatine uptake: The creatine from dietary sources could be mal-absorbed (1) in the small intestine, (2) not make it into the cell, or (3) be excreted too readily either before or immediately after it was transported into the muscle.
Question from Learner (via comments): Do Creatine Transporters behave the same as glucose transporters? (I.e., serum insulin binds to cellular insulin receptors, which causes Transporters to migrate from inside the cell to the plasma membrane - and the Transporters then pull in the external glucose.)

Answer Dr. Andro: As you may have noticed, I took the freedom to set Learner's question into a broader context. A context I broached in my dissertations on Athletic Edge Nutrition's new creatine product Creatine RT on Tuesday, Aug 16, 2011. Thus, the questions I will be trying to answer (unfortunately, I have to rely on existing studies and do not have my own lab, here ;-) are the following ones:

  1. How does creatine get into the blood? (cf. Part I)
  2. How does creatine get into the muscle?
  3. What can influence these processes?
Those of you who have already read part I of this installment of "Ask Dr. Andro", will know that, in view of the fact that this is quite an extensive topic, I decided to tackle it in a two part series, where in part 1 (yesterday) I focused on the issue of creatine absorption into the bloodstream, from where I will now go on to explain how the creatine eventually gets stored in the cells of your muscle or cleared by your kidneys (steps 2 and 3 in illustration 1).

How does creatine get into the muscle?

Now that the creatine molecules have successfully passed your digestive tract they are floating largely unbound (binding affinity of creatine to plasma proteins is less than 10%) in your bloodstream. Whatever happens from now on, is called "clearance" in pharmacological terms - this is counterintuitive at first, but it stands in line with what I have already stressed in my blogpost on Creatine RT, Athletic Edge's creatine monohydrate + Russian tarragon formula. You may remember that Jäger et al. assumed that the smaller increase in plasma creatine they observed upon co-administration of Russian tarragon indicated greater "creatine clearance", which would equal greater muscular creatine uptake. Now, it is true that upon supplementation, the main pathway by which your body "disposes" of the increasing level of serum creatinine is skeletal muscle, but firstly, the tarragon extract could have interfered with the absorption of creatine, for example by modifiying gastric pH levels or intestinal permeability (this is not completely unlikely, since this herb has traditionally been used to cure upset stomachs, cf. Tarragon Central), and secondly, muscular creatine uptake is obviously one way the creatine could have been "cleared" from the bloodstream, the kidneys are yet another.
Image 1: Caffeine + Creatine = Increased renal clearance? Yes! Increased renal clearance = lower performance? No!
Did you know that the longstanding myth that caffeine would counter the beneficial effects of creatine on exercise performance and lean mass gains is bunk despite the fact that caffeine does in fact increase urinary creatine clearance? In a recently published paper on the effect of co-adminsistration of caffeine + creatine to rats (Franco. 2011), the scientists observed statistically significant increases in urinary creatine clearance (+38% after the loading phase with 0.43g/kg creatine and +29% in week 6 of the maintenance phase) over creatine alone when the latter (0.143 g/kg creatine) was administered with 15mg/kg caffeine (human equivalent 2.4mg/kg; ~200mg or 2 small cups of coffee for an 80kg human). When it comes to the real-world results you are looking for, this is yet not likely to be significant.

While the increase in urinary loss may increase the time it will take until your muscle creatine stores are saturated, a study by Lee et al. which compared the effects of creatine alone and creatine + caffeine at a much higher dose equivalent to 480mg or 5 cups of coffee found that "caffeine ingestion after creatine supplements augmented intermittent high-intensity sprint performance" (Lee. 2011) - any fears that drinking coffee or even taking stims could completely negate the beneficial effects of creatine are thus unwarranted.
While researchers initially believed that renal creatine clearance would be equivalent to the glomerular filtration rate (GFR) of roughly 7.0L/h, Poortmans et al. found that, under unsupplemented conditions, creatine clearance is 0.3-0.8L/h, which clearly supports a previously forumlated hypothesis that creatine is reabsorbed and thus "recycled" by the kidneys. Evidence from supplementation studies, where the renal clearance rate increased to 9-22L/h supports the idea that (McCall. 2008)
[a]s blood concentrations increase and more creatine is filtered, less reabsorption occurs and a greater percent age of creatine will be lost in the urine [...] as skeletal muscle approaches its capacity to store creatine, the kidney and possibly other tissues are responsible for the removal of creatine from the blood.
If we follow Mc Call's line of thought and assume that renal creatine clearance is essentially determined by the filling level of muscular creatine stores, it becomes obvious that supplementation with agents that increase creatine transport into the cell would be most beneficial in the "loading phase" (max. 7), when there is actually enough "room" for the creatine to be "stored" within the cell.

Creatine storage - how does that work after all?

A pros pos storage, it's actually quite telling that we know much more about what happens to the creatine molecules within the cell, than about how they actually get there. If you are interested in how scientists initially believed that phosphocreatine (PCr) "would represent the long sought-for 'immediate' source of energy for muscle contraction" I suggest you read Chapter one of the aforementioned compendium Creatine and Creatine Kinase in Health and Disease (ed. Salomons. 2008). For our purposes here it is most important to know that the capacity of our organs (skeletal muscle, kidney and possibly other tissues) is limited and creatine clearance (remember, this includes both the uptake by muscle tissue, as well the urinary clearance by the kidneys) decreases when muscular creatine stores increase (cf. figure 1).
Figure 1: Serum creatine levels (in µM) upon administration of identical doses of creatine at the beginning (first dose) and in the course (steady state) of creatine supplementation (based on McCall. 2008)
This is taken into account with the standard dosing regime, which - after an initial loading phase - uses smaller doses over time. McCall and Persky, explain this as follows:
[...] during early doses (i.e., doses within the first one to three days) when clearance is high, doses of 10 to 15 g per day will give blood concentrations greater than the Km [this is the creatine level in the blood, where creatine transport into the cell maxes out] for the creatine transporter. As the muscle becomes saturated and clearance decreases, it may be necessary to ingest 3 to 5 g of creatine a day to maintain similar blood concentrations.
The higher serum creatine levels upon steady state supplementation you can see in the data in figure 1 clearly substantiate this assumption. Together with the previously mentioned inverse relation of serum creatine to urinary creatine loss, it should also be obvious that taking "loading doses" of more than 10g per day for an extended period of time will at best fill the muscular creatine stores of the rats and cockroaches in the sewer (in case they happen live right next to your sewer pipe ;-)

What controls the muscular creatine transporter?

In order to understand the fundamental biochemical underpinnings of this interplay of dietary, serum and intra-muscular creatine, we do yet still have to identify the pathway by which the creatine molecules eventually get into the muscle. According to the most fundamental (and essentially oversimplified) cell model, a cell is a three-dimensional entity that is surrounded by a protective wall - the cell wall. This wall, of which most of you will have heard that it consists of phospholipids (note the word "lipid" indicates that fats! not proteins are the fundamental building blocks of the cell membrane), has the fascinating characteristic of being selectively permeable. Under physiological conditions transporter proteins function as "gate-keepers" and "taxi-drivers". They select and pick up specific molecules from the bloodstream and carry them across the "border" and into the cell (cf. illustration 2).
Illustration 2: A transporter like the creatine transporter is an active gatekeeper within the cell membrane.
One of the best-known and most-studied group of these transporters is the solute carrier family 6, which play an important role in neurotransmitter regulation in the brain. In the early and late 1990s the gamma-aminobutryic acid (GABA) and norepinephrine transporters were among the first of these Na+/Cl- dependent neurotransmitter transporters to be discovered. It is due to their dependence on the electrical potential between negative Cl- and positive Na+ molecules that they have also become known as neurotransmitter:sodium symporters (NSS, Saier. 1999). They are functionally identical to the likewise Na+-dependent amino acid carriers for taurine, betaine and creatine.

Image 2: β-Guanidinopropionate
competes with creatine for transpor-
tation across the cell membrane
Contrary to many other carriers, the creatine transporter (CT) is yet highly specific for creatine. Among the few exceptions which compete with creatine transport across the cell membrane is β-Guanidinopropionate. Those of you who follow my advice and scrutinize the nutritional information on the labels of their supplements, may be rubbing their eyes in disbelief, now, because Guanidino Propionic Acid or β-GPA is one of the standard ingredients in many pre-workout products (cf. Supplement Shootout, NO-Xplode). The reason for that probably (I would have to ask the producers, though ;-) is its hypoglycemic effect (Meglasson. 1993), which will probably remind you of Athletic Edge's Russian tarragon (see above) or of a 2009 study Rocic et al. which found remarkably similar effects for creatine, itself (Rocic. 2009).

So after all creatine and β-GPA share the same transporter and artemisia dracunculus (Russian tarragon, RT), creatine and β-GPA share the same beneficial effect on muscular insulin sensitivity. Now, Jäger et al. suggest that by increasing insulin sensitivity their RT extract would increase muscular creatine uptake. While this does seem to make sense, the results of Rocic et al. who found creatine to be equally effective as metformin in reducing blood glucose levels would suggest that creatine administration alone should increase it's own uptake ;-) This formally logical, but not very realistic conclusion is yet undermined by the established effect of guanidino propionic acid, which despite identical effects on insulin sensitivity, decreased creatine uptake by muscle cells by 82% (Willot. 1999) in vitro!
Image 3: Of sugar and salt, the "worst enemies" of many dieting body builders and figure athletes, salt and not sugar (or insulin) turns out to be creatine's most eager supporter on its way across the cell membrane (img. squidoo.com)
In the context of insulin sensitivity, it is interesting to note that Willot also tested the hypothesis that insulin would increase creatine uptake into the cell and found that "insulin had no effect on 14C-labeled creatine uptake at concentrations and under conditions in which effects are seen on glucose uptake glycogen synthesis and glycolysis." This finding does not essentialy contradict previous (Green. 1996), as well as very recent findings (Pittas. 2010), which support the idea of increased creatine retention upon coadministration of insulinogenic nutrients such as carbohydrates and/or protein , because "those may be owing to the expression of the creatine transporter, as opposed to acute effects on the transporter" (Willot. 1999). While it should be mentioned that a previous study by Oodom et al. found a 2x increase in creatine accumulation (again, not uptake! Oodom. 1996) after incubation with 3nM/ml insulin for 48h. The latter lacks real world significance, since even after high-carb meals blood insulin levels do hardly get up to 0.3-0.4pM/ml!.

In view of the fact that a -82% decrease in the Na+ concentration of the incubation medium reduced the creatine uptake by 77%, the addition of sodium to your creatine drink may be of greater importance than the fattening loads of simple carbs, anyway.
A 2003 study by Brault et al. confirms Willot's findings on the effect of guanidino propionic acid on creatine influx and retention into skeletal muscle. In the course of seven weeks on a β-GPA-enriched chow the muscular creatine levels of Brault's laboratory animals dropped by -85% (Brault. 2003). Notwithstanding, the flip side of this apparently undesirable effect of β-GPA are increased insulin sensitivity and, more importantly, at least in this context, profoundly augmented creatine uptake.
Figure 2: Effect of 7 weeks of β-GPA supplementation followed by 3 weeks of creatine supplementation on creatine and β-GPA content of the white gastrocnemius muscle in rats; data expressed relative to maximal concentrations (40µmol/g) of the two molecules (data calculated based on Brault. 2003).
Yet while the β-GPA induced creatine depletion increased creatine uptake in the subsequent supplementation phase (week 7+) by +24% and +33% in the soleus and the red gastrocnemius, respectively, creatine uptake in the glycolytic white muscle fibers of the gastrocnemius stayed constant. On the other hand, the white fibers of the gastrocnemius showed the expected decrease (-45%) in creatine uptake, when creatine was supplemented for 7 weeks at 0.85g/kg/day (~11g for 80kg human being) without prior β-GPA-induced creatine depletion (Brault. 2003a).
Figure 3: Creatine uptake (y-axis, in nmol/h/g) as a function of intramuscular creatine content (x-axis, in µmol/g) as measured by Brault. 2003.
These observation go challenge the previously formulated hypothesis that muscular creatine uptake via creatine transporter would always be linearly dependent on intra-muscular creatine stores. While this seems to be the case for the red, oxidative muscle fibers (violet regression in figure 3), the fast-twitch white glycolytic fibers appear to react assimilate creatine at a constant rate (green regression in figure 3) up to a certain threshold (in Brault's rat study that was ~17µmol/g, which is about +30% more than the maximal creatine content measured in red fibers in the same study), at the creatine uptake suddenly drops (cf. figure 3). What is even more confusing, though is that the insignificant changes in the creatine transporter protein expression measured by the scientists reflect neither the linear decrease nor the constant uptake rates. As Brault et al. point out "it is presently unclear what process may modulate Cr uptake" with high / low intra-muscular creatine levels. Possible mechanisms, according to Brault are...
  • with increasing intracellular creatine levels the Na+ gradient, which is necessary to drive the creatine into the cell, could become insufficient (unlikely)
  • with more creatine in the cell the release process that takes place once the creatine transporter enters the cell may slow down, as if the "taxi driver" would not find a parking lot 
  • the number of creatine transporters in the sarcolemmal membrane could be modulated according to intracellular creatine content in a similar manner as the expression of GLUT-4 is modulated by exercise (Goodyear. 1998)
  • high intramuscular creatine levels could lead to posttranslational modification of the creatine transporter, similar to what we see in its "relatives", the GABA/taurine transporters, whose activity
    is modified by protein phosphorylation
In fact, a 2002 study by Wang et al. (Wang. 2002) found an increase in creatine transporter phosphorylation that correlated with a reduction in creatine uptake and Zhao et al. observed a 38% increase in creatine uptake in response to a 30% reduction in serine phosphorylation of the CrT (Zhao. 2002). While it is thus most likely that posttranslational modification, something you probably have encountered in one of my blogpost related to the Akt/mTOR cascade, before is the underlying mechanism that controls how effective our "creatine shuttle" works, the unfortunate truth is that this does not go to tell us how we could possibly influence this process.

Conclusion - little do we know about the actual process of creatine uptake

If you look back at what you may or may not have learned from the second part of this write-up, you may notice that I have artistically evaded a direct response to Learner's question whether "creatine transporters behave the same as glucose transporters". Nevertheless, you should have been able to read between the lines that ...
  • despite studies showing increased creatine retention (not celullar uptake or creatine transporter protein expression) upon co-administration of insulinogenic nutrients (carbohydrates in Green. 1996 and carbohydrates + protein in Pittas. 2010), in-vitro studies have shown that insulin has no direct effect on muscular creatine uptake (Willot. 1999) - unless supraphysiological doses are used
  • at least in red oxidative muscle fibers, there is an inverse linear relationship between intra-muscular creatine levels and creatine uptake (Brault. 2003)
  • increases and decreases in creatine uptake are not mediated by respective increases in creatine transporter protein expression (Brault. 2003)
  • the most likely hypothesis explaining how intra-cellular creatine levels control the "effectivity" of the creatine transporter is via posttranslational modification, of which we do not yet know for sure how to influence it (the fact that tarragon and other insulin-sensitizers appear to increase creatine uptake could as well be related to changes in the phosphorylation of the creatine transporter as their insulin-sensitizing effects could be related to dephosphorylation of )
It would yet be unfair to leave you with all those additional gaps in your under understanding of the pharmacokinetics of creatine without a few words on the most important aspect of creatine supplementation, i.e. what works in practice.
Image 4: If its not the insulin, then
maybe a steadier influx of creatine
into the blood which can explain the
increased creatine retention upon co-
administration of carbohydrates.
A final note on the issue of carbohydrates: In view of what I have stated in the first installment of this series, i.e. the increase in gastric emptying time due to carbohydrate (and other foodstuff), an alternative explanation for the increase in creatine retention (again, not uptake ;-) upon co-administration of carbohydrates or carbohydrates + protein could be the steadier incline in plasma creatine levels. While the 1996 study by Green lacks the respective data, the figures in Pittas (2010) clearly show that creatine clearance in the creatine-only group increases dramatically after the initial spike in serum creatine levels 30min after the administration of 5g creatine. In view of the negative results of Willot's in-vitro studies on the effects of physiological levels of insulin on creatine uptake and the fact that renal creatine clearance increases with serum creatine levels, while the muscular uptake is maxes out at a relatively low threshold (10-100µM) is surpassed, it is at least possible that it is the steady influx of creatine into the bloodstream and not the insulinogenic effects of carbohydrates that facilitates creatine retention (I hope you remember from the first part of this series that the reduction in creatine influx into the blood due to degradation in the stomach is probably negligible, as long as the dose is large enough to reach blood levels beyond the Km value of 10-100µm)
As I have already hinted at in part I of this installment of "Ask Dr. Andro", for most of us, it does not really matter whether it takes 3, 5 or 10 days until the creatine stores in our muscles are saturated. Moreover, even high quality creatine monohydrate is so "dirt cheap" that you do not really have to care about potential losses (in the 0.3-0.6mg/day range) due to caffeine supplementation or potentially sub-optimal creatine retention in the absence of large boluses of fattening carbohydrates. Personally, I would just stick to what has been working for generations of trainees, now: plain creatine monohydrate taken at a dose of 10-15g/day for 3-5 days followed by a maintenance dose of 3-5g/day.

No Pump + Insulin Resistant? Maybe It's Your Healthy Low Salt Diet. Low Sodium Induced Increase in Aldosterone Has Direct Negative Impact on GLUT4 Mediated Glucose Uptake

A single Triple Whopper or about six whole steaks, what do you chose to get >75% of the 2g/sodium per day the feds are telling you you should maximally consume on a daily basis?
Today I felt kind of bored with covering only the latest studies. So I dug up one from 1999 that deals with the effects of dietary salt restriction on endothelial vasodilation (increased blood flow in the arteries) and insulin sensitivity by Ross D. Feldman and Nancy D. Schmidt. Yeah, the study is 14 years old, but when you've read today's SuppVersity article you'll probably still have learned something new - at least about "common wisdom".

If you also listen to the SuppVersity Science Round-Up on the Super Human Radio Network, you should be aware that very different rules apply with respect to salt consumption for athletes and physical culturists on a whole foods diet and the average sedentary inhabitant of the Western obesity belt (check out past episodes of the Science Round-Up).
Suggested Read: On "Clean Eating" being a myth - "A Tale of Macro- & Micro-Nutrient Modifi-cations" | read more
Talking about the ScienceRound-Up: In today's installment Carl and I will be talking about the latest meta-analysis on dairy and diabetes risk and how it's possible that only low fat dairy reduces the risk of diabetes. We will discuss how this relates to the differences in the fatty acid composition of milk which in turn depend on the feed the animals receive and whether there is in fact so much estrogen in milk that it can delay menopause. From there we will segue right into a discussion of the latest study on statins showing that they make you fat and diabetic and tell you which of the statins does what. If all works well, we will close the show by addressing Sarah M. Davis' question about a recently published and heavily discussed article that's titled "Why 'Clean Eating' is a Myth" (read it). I mean, is it really? Turn in live! at 12PM EST
What some of you may yet still not have on their radar is the fat that the "common wisdom" about salt being the root cause of all evil does not even apply to the majority of those guys and girls of whom you would expect they may in fact see benefits from a reduced salt consumption.

"Salt is bad, no matter what!"

In fact, Feldman & Schmidt were able to show that the provision of either normal or salt reduced diets to subjects aged 25 to 40 year.
Figure 1: Increased aldosterone levels during salt restriction will not only make you retain salt, but also reduce glucose uptake (Luther. 2011; my edits)
"Subjects were given a standardized diet that contained 75 mmol/L sodium chloride, 60 mmol/L potassium, and 20 mmol/L calcium for 14 days. Diets contained 16% protein, 54% carbohydrate, and 35% fat. Caloric intake was 2800 kcal/day. Subjects were advised to drink approximately 2L of water/day.

To assess the effects of dietary salt restriction independent of other dietary changes, subjects were randomized on a double blind cross-over basis to a daily supplement of 16 tablets of slow release sodium (Novartis, Mississauga, Ontario; 10 mmol/L sodium chloride/tablet) or matching placebo. Each were administered for 7 days." (Feldmann. 1999)
All of the participants had normal blood glucose levels, and were free of other abnormalities on history and physical examination. They did not smoke and their blood pressures levels ranged from normotensive to high normal/borderline. So, what would happen to the poor wretches consuming the additional sodium chloride tablets? Common wisdom tells us, their blood pressure will increase and they will develop metabolic abnormalities. Truth is (I quote from the study; Feldmann. 1999, my emphases), almost the exact opposite happened:
  • Did you know? Aldosterone increases are caused by falling blood pressure, increased potassium levels, a higher blood acidity and decreased sodium concentrations in the blood trigger, decreases occur when your blood pressure drops, the potassium levels get low and/or the sodium levels are high.
    Dietary sodium restriction was associated with a significant decrease in 24-h urinary sodium excretion. However, blood pressure (based on the average 24-h automatic ambulatory measurements) was not significantly decreased with dietary salt restriction.
  • Moderate salt restriction was associated with a significant increase in plasma norepinephrine concentrations. Dietary salt restriction was associated with a significant decrease in the glucose-to-insulin ratio, suggesting increased systemic insulin resistance. This decrease was primarily accounted for by an increase in plasma insulin concentration.
At the same time the researchers observed a significantly reduced effect of the vasculature to the insulin-mediated increase in blood flow, of which Hornstra et al. have shown only recently that it correlates negatively with blood pressure in overweight, but insulin sensitive individuals and may be the reason why those people don't suffer from the usual obesity related increases in blood pressure as well as its cardiovascular and renal consequences (Hornstra . 2013).

Most of you will remember the recent post about the ability of salt to block the negative effects of high intensity exercise on the cellular integrity of your heart and kidneys don't you?
Bottom line: If you are working out and sweating, even if it's not like a pig, SALT is the last thing to fear. In fact you can even increase your heart disease risk due to the negative impact on blood lipids (+10% total +12% LDL cholesterol in salt-sensitive and unsensitive normotensive subjects; Ruppert. 1991).

Now it is important to point out that it is not clear whether these effects are transient and a response to the abrupt changes in dietary salt in take that are characteristic of these short term intervention studies.

I am certainly not recommending you copy the salt intake of the average junk-food fanatic!

But let's be realistic, here: How much salt do you actually consume on a daily basis if you follow my advice and leave as much of the processed pre-packaged junk as you can right in the supermarket!? This will leave you with actually having to put salt on your foods and there really is no good reason for the average physical culturist not to so in a way that it's tasty and supplies you with one of the most important minerals in your body.

Suggest figure: Only obese people have increased risk of CVD with increasing sodium consumption | check it out the SuppVersity Facebook Wall

Reference:
  • Egan BM, Lackland DT. Biochemical and metabolic effects of very-low-salt diets. Am J Med Sci. 2000 Oct;320(4):233-9. Review.
  • Hornstra JM, Serné EH, Eringa EC, Wijnker MC, de Boer MP, Yudkin JS, Smulders YM. Insulin's microvascular vasodilatory effects are inversely related to peripheral vascular resistance in overweight, but insulin-sensitive subjects. Obesity (Silver Spring). 2013 Mar 20.
  • Luther JM, Brown NJ. The renin-angiotensin-aldosterone system and glucose homeostasis. Trends Pharmacol Sci. 2011 Dec;32(12):734-9.
  • Ruppert M, Diehl J, Kolloch R, Overlack A, Kraft K, Göbel B, Hittel N, Stumpe KO. Short-term dietary sodium restriction increases serum lipids and insulin in salt-sensitive and salt-resistant normotensive adults. Klin Wochenschr. 1991;69 Suppl 25:51-7.