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Showing posts with label apoB. Show all posts
Showing posts with label apoB. Show all posts

Monday, January 13, 2014

Does Wheat Cause Coronary Heart Disease?

Does Wheat Cause Coronary Heart Disease?

Introduction

Coronary heart disease (CHD) is the leading cause of deaths worldwide - killing 7 millions people every year. In the following text, we will see that wheat consumption is probably a risk factor for CHD.

Conventional Wisdom on Wheat

Most health organizations currently view wheat as a safe food except for people having celiac disease - affecting up to 1% of the population - and people having non-celiac gluten sensitivity. Also whole wheat - as part of whole-grains - is considered to be one of the healthiest food. In fact a diet rich in whole-grains is considered to be protective against CHD.

Why? Because observational studies consistently find that whole-grain consumption is associated with a decreased risk of CHD. Do these results contradict wheat consumption causing CHD?

Are Whole-Grains Protective Against CHD?

According to this study:
Whole-grain intake consistently has been associated with improved cardiovascular disease outcomes, but also with healthy lifestyles, in large observational studies. Intervention studies that assess the effects of whole-grains on biomarkers for CHD have mixed results.
Indeed many studies show that whole-grain consumption is associated with a decreased risk of CHD. But these studies are observational and can only show correlation but not causation.

In fact there is an health-conscious population bias in these studies: for example people consuming the most whole-grains also exercise more and smoke less:
Whole-grain intake and lifestyles
Data from Majken K Jensen et al., Intakes of whole grains, bran, and germ and the risk of coronary heart disease in men, 2004

Of course researchers adjust the data with these risk factors. But it is very difficult, maybe impossible, to adjust for all risk factors. For example the two previously cited studies did not adjust for important risk factors like socioeconomic status or social support.

A classic example of an occurrence of this bias can be found in hormone replacement therapy (HRT): observational studies had found that HRT was decreasing the risk of heart disease risk while a controlled study finally found that HRT was indeed slightly increasing the risk of heart disease.

A proof that this health-conscious bias could explain the seemingly protective effect of whole-grains can be found in randomized controlled studies: many of them fail to find any beneficial effect of whole-grains compared to refined grains.

So according to these randomized controlled studies whole-grains are neutral toward CHD risks. How then can we say that wheat causes CHD?

Are All Grains Created Equal?

Many randomized controlled studies compared wheat with other grains. These trials are usually quite short. So instead of looking at the number of heart attacks, short-term studies focus on risk predictors of CHD like weight gain or markers of inflammations. Apolipoprotein B (ApoB) level is another risk factor. It represents the number of LDL particles - often called “bad cholesterol”. It is now considered to be a better predictor than LDL-C - the amount of cholesterol contained in LDL particles. The lower the level of ApoB the lower is the risk of CHD.

Here are some results of these studies:
  • a study concluded that a bread diet may promote fat synthesis/accumulation compared with a rice diet
  • wheat increased BMI compared to flaxseed in a 12 months study
  • wheat increased ApoB level by 5.4% compared to flaxseed in a 3 weeks study
  • wheat increased ApoB level by 7.5% compared to flaxseed in a 3 months study
  • wheat increased ApoB level by 0.05 g/L compared to flaxseed in a 12 months study
  • oat decreased ApoB level by 13.7% while wheat had no significant effect in a 21 days study
  • wheat increased the number of LDL particles by 14% while oat decreased them by 5% in a 12 weeks study
  • ApoA to ApoB ratio (a risk predictor similar in efficiency to ApoB alone - here the higher the better) was increased by 4.7% for oat bran and 3.9% for rice bran compared to wheat bran in a 4 weeks study
These studies show that some grains like oat improve the risk factors of CHD compared to wheat. In addition, these studies often show an absolute improvement of the CHD risk profile in groups eating oat and an absolute deterioration in groups eating wheat. Although we cannot say for sure, it would suggest that oat is protective against CHD - which is confirmed by other studies - while wheat increase the risk of CHD.

That could help explaining why people eating more whole-grains are healthier in observational studies since it looks like that they eat more grains like rice and oat and less typically wheat-made food like white bread, pasta and doughnuts:
Whole-grain intake and different grain intakeData from Andersson A. et al., Intakes of whole grains, bran, and germ and the risk of coronary heart disease in men, 2007

Now let’s have a look at studies linking wheat and CHD.

Observational Studies on Wheat

Some observational studies linked wheat and waist circumference gains - waist circumference being a strong predictor of CHD:
  • a study showed a correlation between consumption of white bread and waist circumference gains
  • a study concluded that: ”reducing white bread, but not whole-grain bread consumption, within a Mediterranean-style food pattern setting is associated with lower gains in weight and abdominal fat
  • a Chinese study found that ”vegetable-rich food pattern was associated with higher risk of obesity” but as noted by obesity researcher Stephan Guyenet the association between obesity is in fact stronger with wheat flour than with vegetables
A more pertinent result is found in the data of a large observational study in China. Researchers analysed these data and found a 0.67 correlation between wheat flour intake and CHD. They also found a 0.58 correlation between wheat intake and BMI.
CHD mortality and wheat intake
From Denise Minger
But this is just a single unadjusted correlation and does not prove much. However blogger Denise Minger thoroughly analysed the data of this study and found that the association held strongly after multivariate analysis with any other variable available like latitude, BMI, smoking habits, fish consumption, etc.

Since it is an observational study it cannot prove anything but it is yet another evidence suggesting that wheat consumption causes CHD. Let’s now have a look at randomized controlled trials.

Randomized Controlled Trials on Wheat

In addition to the previous randomized controlled trials comparing wheat with other grains there are two additional studies suggesting that wheat consumption causes CHD.

The first one is a study involving rabbits. While studies involving animals are not always relevant to humans - especially studies with herbivore animals like rabbit - the results of this study are quite interesting.

The researchers fed rabbits an atherogenesis diet (i.e. promoting formation of fatty masses in arterial walls) with a supplement of cottonseed oil, hydrogenated cottonseed oil, wheat germ or sucrose. And as they concludes:
Severity of atherosclerosis after 5 months was greatest on the wheat germ-supplemented diet, whereas there were no differences among the other three groups.
The second study is the Diet And Reinfarction Trial (DART). In this 2-year randomized controlled trial, people who already had recovered from an heart attack were split into groups receiving various advices. The main result of this study was that the group advised to eat fatty fish had a reduction in mortality from CHD.

One other advice - the fibre advice - was:
to eat at least six slices of wholemeal bread per day, or an equivalent amount of cereal fibre from a mixture of wholemeal bread, high-fibre breakfast cereals and wheat bran
Seeing this advice we can guess that most of cereal fibres intake by this group was from wheat although we cannot be sure.

This advice resulted on a 22% death increase:
Total mortality in the fibre advice groupFrom Stephan Guyenet
However this result bordered on statistical significance: the 95% confidence interval being 0.99–1.65.
For people not familiar with statistics, a result is usually defined as statistically significant when there is less than 5% chance that the result is due to luck alone. Here there is a 95% probability that the relative risk is between 0.99 (1% decreased chance of dying) and 1.67 (67% increased chance of dying).

Since the probability that the fibre advice resulted in a protective or neutral effect was a little too high, this result has been quite overlooked. Had the study last a little longer, it would have raised way more suspicion toward whole-grains.

In fact, researchers found this effect to be statistically significant in a follow-up study. After adjusting for pre-existing conditions and medication use, we can see in the table 4 of this study an hazard ratio of 1.35 (95% CI 1.02, 1.80) for the 2-year period of the randomized controlled trial.

These results are quite telling: according to these researchers, a 2 year randomized controlled trial showed that advising people recovering from an heart attack to eat at least six slices of wholemeal bread per day resulted in a statistically significant 35% percent chance increase of CHD compared to people not receiving this advice.

Wheat, Vitamin D Deficiency And Heart Disease

Many studies found that vitamin D deficiency is associated with CHD.
However vitamin D deficiency does not seem to cause heart disease. For example several studies found that vitamin D supplementation did not prevent heart disease.
As this study concludes:
A lower vitamin D status was possibly associated with higher risk of cardiovascular disease. As a whole, trials showed no statistically significant effect of vitamin D supplementation on cardiometabolic outcomes.
Wheat consumption causing CHD could help explaining these results. A study found that wheat consumption depletes vitamin D reserves. That could explain why vitamin D deficiency is associated with heart disease and why it does not seem to cause it: both vitamin D deficiency and heart disease could be consequences of wheat consumption.

Of course this is not the only explanation. For example the DART study shows that fish consumption prevents CHD and fish is a food rich in vitamin D.

Not the Perfect Culprit

To be clear, if it seems likely that wheat consumption is a risk factor of CHD it is not the only one nor the primary one. There are many other factors like smoking, hypertension, lack of exercice or stress. Even among dietary factors wheat is probably not the main one. For example the DART study shows that the protective effect of fish intake is stronger than the adverse effect of wheat.

In addition, deleterious wheat effects might not affect everybody. One study showed that the ApoB level variation following wheat and oat bran intake was different depending on the genotype of the individuals. In another study whole-wheat intake worsened the lipid profile only in people having a specific genotype compared to refined wheat.

How the wheat is cooked may have a role too. Studies show that sourdough bread improve mineral bioavailability (such as magnesium, iron, and zinc) compared to yeast bread or uncooked whole-wheat. Also content in proteins with potential adverse consequences like gluten or wheat germ agglutinin differs depending of the food type.

Conclusion

There are strong evidences that wheat consumption is a risk factor for CHD. People at risk of CHD should avoid wheat as should those trying to lose weight. In all cases, stopping wheat consumption for a month for example to see how one feel without wheat is always a good idea since there is currently no available method to diagnose non-celiac wheat sensitivities and that even for celiac disease the average delay in diagnostic is 11 years in the US.

More studies looking at the links between wheat and CHD are urgently needed since CHD is the leading cause of deaths while wheat is the second most widely consumed food and whole-wheat is often advised to lower risk of CHD. Studies considering grains as a whole are bound to give inconsistent results since different grains seem to have opposite effects in the case of CHD. So as much as possible future studies should treat grains separately and consider things like type of wheat products and genetic variability.

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Read the complete article here or here.

Tuesday, September 3, 2013

So is niacin a dead drug? Dayspring

Commentary on Niacin’s Effect on Lp(a) in AIM HIGH


Here are my thoughts as a clinical lipidologist (By: Thomas Dayspring, MD, FACP, FNLA, NCMP)

We must get apoB (LDL-P) to goal in all at-risk patients. Lifestyle therapies and statins are the mainstay of therapy. However residual risk is high if apoB (LDL) remains elevated despite at-goal LDL-C, non-HDL-C), any level of HDL-C or if Lp(a) mass is elevated.

So I would have no hesitancy in adding niacin to high and very high risk patients who have not achieved apoB (LDL-P) goals with whatever therapies they are using or using niacin as a monotherapy in those intolerant of other apoB lowering meds.

Data from HPS THRIVE 2 (discussed in a recent commentary) suggested statin plus ezetimibe was better at event reduction than statin plus niacin [9]. In view of that and the very significant side effects reported in HPS THRIVE 2 [bleeding (GI, intracranial, other) in the niacin group: 326 (2.5%) to 238 (1.9%) and infection 1031(8%) to 853 (6.6%)] [3] makes niacin a tertiary or quaternary add-on drug (some may prefer the bile acid sequestrant colesevelam as an apoB lowering medication).
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Read the complete article here.

Thursday, August 29, 2013

Niacin’s Effect on Lp(a) in AIM HIGH - Dayspring

Commentary on Niacin’s Effect on Lp(a) in AIM HIGH
    
In 2013 we have already published two commentaries on niacin (Commentary on Niacin vs Ezetimibe as add on to Statin) and (Examination of the Recently Announced Preliminary Results of the HPS2-THRIVE Study), specifically extended release available as Niaspan, a seemingly potent lipid- and lipoprotein-modulating drug that dates back to the 1960’s. Initially it was used to reduce elevated cholesterol levels but eventually it was found to also raise HDL-C which for a variety of reasons was assumed to be very desirable (thought being that if low HDL-C is a strong CV risk factor, then raising it must be beneficial).  Also of interest was niacin’s ability to significantly reduce lipoprotein (a) mass [Lp(a)]. Indeed, a group entitled European Atherosclerosis Society Consensus Panel issued a statement strongly advising niacin be used for CV benefits in patients with elevated Lp(a) [1]. Interestingly that panel noted there was virtually no clinical trial support for this recommendation other than the fact that niacin does indeed reduce Lp(a) mass. Most lipidologists agreed with the belief that even if reducing Lp(a) does not matter, niacin would at least reduce apolipoprotein B (apoB) which is seemingly always desirable. NCEP ATP-III simply advocated achieving LDL-C goals in persons with risk related to Lp(a) issues. 
 
niacinandlpacommentary
 
 
 
Recent trials [The Atherothrombosis Intervention in Metabolic Syndrome with Low HDL/High Triglycerides: Impact on Global Health Outcomes (AIM HIGH) and large Heart Protection Study 2: Treatment of HDL to Reduce the Incidence of Vascular Events  (HPS THRIVE 2)] have not shown additional event reduction in well-treated patients with stable CHD related to adding niacin to a statin or statin/ezetimibe regimen [2,3]. To say the results of those studies were a shock to the lipidology community is an understatement. AIM HIGH (all of the patients had low HDL-C at baseline) was published first and for those who believed niacin’s benefit was related to raising HDL-C, the results were a punch to the jaw. Despite a substantial (25%) HDL-C increase (remember the old well accepted but never proven caveat that for every 1% rise in HDL-C there is a 3% event reduction) there was no CV outcome improvement. The usual side effects associated with niacin were present including a questionable nonsignificant rise in ischemic stroke. Then along came the still not published HPS THRIVE 2 (baseline HDL-C was not an enrollment criteria) where again the addition of niacin to a statin or statin/ezetimibe regimen provided no additional outcome benefit. Common to both AIM HIGH and HPS THRIVE 2 was the fact that the lifestyle with statin or statin/ezetimibe had normalized LDL-C, non-HDL-C and apoB. Thus niacin was being added to patients who were at those goals (keeping in mind that there is no NCEP ATP-III goal for HDL-C). Should we really have expected niacin, whose primary mechanism of action is to lower apoB (or its lipid surrogates) to do anything to CV events in persons with normal apoB?  The answer is yes if raising HDL-C or lowering Lp(a) mass is critical to event reduction (well accepted concepts that have never ever been proven in any type of trial). Well we may have those answers now and at this point one has to reasonably conclude the evidence is strong that in patients on LDL-receptor inducing drugs (statins or statin + ezetimibe) raising HDL-C (note – niacin also raises apoA-I, but not apoA-II or total HDL-P) [4] or reducing Lp(a) mass with niacin provides no benefit in folks who are at apoB (LDL-C, non-HDL-C) goal.
 
In AIM HIGH baseline apoB and apoA-I levels were low and baseline Lp(a) was elevated at 33.8 nmol/L [using Caucasian adult data from Framingham as a comparator, Lp(a) averaged 20 nmol/L]. Nearly 30% of AIM HIGH patients had severe Lp(a) elevations > 100 nmol/L compared to 20% of Framingham cohort. The addition of niacin to statin or statin + ezetimibe raised HDL-C by 25%, apoA-I by 7% and reduced LDL-C by 12%, TG by 30% and apoB by 13%. [5]
 
Lp(a) as expected was significantly associated with CV events despite the fact that LDL-C was at goal and thus elevated Lp(a) is associated with residual risk. A one standard deviation of Lp(a) was associated with a 21% increase in CV risk. There was a 21% overall reduction [but with a 20%, 39% and incredible 64% decreases in patients at the 50th, 75th and 90th percentile cut points] in Lp(a) in the niacin group compared to 6% in placebo group. So the higher the Lp(a) level, the more dramatic was niacin’s ability to lower it.  Here is the shocker: there was no difference in event rate between those on or not on niacin (remember all were statin or statin + ezetimibe) DESPITE GREATER DECREASES in Lp(a) for those using niacin. Even in those in the highest Lp(a) quartile (> 125 nmol/L) there was no reduction in events when niacin was added.
 
So where do we stand with niacin? There is no level one evidence anywhere supporting the use of niacin to reduce clinical events: The Coronary Drug Project (CDP) is often quoted as proof of niacin’s efficacy but few realize that niacin monotherapy (high dose of immediate release preparation) had no impact on the primary endpoint of the study (mortality): thus the benefit of reducing non-fatal myocardial infarction (a secondary endpoint) makes this benefit hypothesis generating [6].Of course there is the famous 15 year follow up of CDP which encompassed 6 years of the trial where niacin was used and then a subsequent 9 year period off niacin. Mortality was significantly reduced in that post hoc analysis (data derived not from examination or in person review but questionnaires sent to participants): this is the weakest data imaginable [7]. So this supposedly late benefit of niacin is in fact analysis of post hoc follow data up from a trial where niacin failed to reduce the primary endpoint. If niacin was a new drug, it would have no prayer of gaining FDA approval based on the CDP. Several subsequent trials using angiographic or CIMT endpoints showed niacin monotherapy or combination with bile acid sequestrants or statins showed imaging benefit. One small (~500 patients) open-label outcome trial (Stockholm Ischemic Heart Disease Secondary Prevention Trial), combining clofibrate and IR niacin did reduce clinical events with statistical significance [8].
 
In my opinion niacin became a major lipid drug because of its ability to raise HDL-C and to lower Lp(a) and not for what is likely its real mechanism of action, namely lowering LDL-C and apoB and LDL-P. After extended-release niacin (Niaspan) hit the market, it was also heavily promoted because of its ability to increase both HDL and LDL size. KOS made a fortune by promulgating those messages as it seemingly made so much sense. Of course over time, we have learned that influencing LDL or HDL particle size or raising HDL-C and apoA-I has no effect on outcomes. Looking at lipid/lipoprotein risk factors in 2013 the outcome evidence only supports lowering apoB (LDL-P) or perhaps raising total HDL-P. At this time unfortunately, there is no support for reducing Lp(a) with niacin: admittedly the Lp(a) data from the much larger HPS THRIVE 2 study of 25,000 patients is pending.  
 
So is niacin a dead drug? Here are my thoughts as a clinical lipidologist: We must get apoB (LDL-P) to goal in all at-risk patients. Lifestyle therapies and statins are the mainstay of therapy. However residual risk is high if apoB (LDL) remains elevated despite at-goal LDL-C, non-HDL-C), any level of HDL-C or if Lp(a) mass is elevated. So I would have no hesitancy in adding niacin to high and very high risk patients who have not achieved apoB (LDL-P) goals with whatever therapies they are using or using niacin as a monotherapy in those intolerant of other apoB lowering meds. Data from HPS THRIVE 2 (discussed in a recent commentary [ADD LINK]) suggested statin plus ezetimibe was better at event reduction than statin plus niacin [9]. In view of that and the very significant side effects reported in HPS THRIVE 2 [bleeding (GI, intracranial, other) in the niacin group: 326 (2.5%) to 238 (1.9%) and infection 1031(8%) to 853 (6.6%)] [3] makes niacin a tertiary or quaternary add-on drug (some may prefer the bile acid sequestrant colesevelam as an apoB lowering medication).
 
What about our patients with elevated Lp(a) mass or Lp(a)-P? The only therapy that has so far shown an inkling of success is LDL apheresis. For now we should all try to lower apoB (LDL-P as aggressively as possible and that often requires multiple combination therapies. What about future drugs: just published is the  data the PCSK9 monoclonal antibody AMG 145 reduces Lp(a) by 32% in patients on statins [10]. There is also promising data that the remaining CETP inhibitors also reduce Lp(a) but the reality is that until such reductions by these drugs are linked to outcome benefit they are of hypothetical interest. Hopefully in the future there will also be development of an apoprotein (a) antisense oligonucleotide inhibitor. 

 
References:
[2] The AIM-HIGH Investigators Niacin in Patients with Low HDL Cholesterol Levels Receiving Intensive Statin Therapy. N Engl J Med 2011;365:2255-67.
[3] Presentation by Jane Armitage on behalf of the HPS2 THRIVE group to the National Lipid Association Annual Scientific sessions, Las Vegas NV June 2013.
[6] Coronary Drug project group. Clofibrate and Niacin in Coronary Heart Disease. JAMA 1975;231:360-381.
[7] Fifteen Year Mortality in Coronary Drug Project Patients: Long Term Benefit with Niacin. JACC 1986;8:1245-55.
[8] Reduction of Mortality in the Stockholm Ischaemic Heart Disease Secondary prevention Study by Combined Treatment with Clofibrate and Nicotinic Acid. Acta Med Scand 1988;223:405-418.[9] Masana, A. Cabré, N. Plana. HPS2-THRIVE results: Bad for niacin/laropiprant, good for ezetimibe? Atherosclerosis 2013;229:449-450.
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Read the complete article here.

Friday, May 3, 2013

What Causes Elevated LDL Particle Number? - Kresser

What Causes Elevated LDL Particle Number?

By on May 3, 2013
In the last article in this series, I explained that LDL particle number (LDL-P) is a much more accurate predictor of cardiovascular disease risk than either LDL or total cholesterol. In this article, I’m going to briefly outline the five primary causes of elevated LDL-P.

Conventional medicine is primarily focused on suppressing symptoms. If your blood pressure is high, you take a medication to lower it. If your blood sugar is high, you take a medication to lower it. If your cholesterol is high, you take a medication to lower it. In most cases there is rarely any investigation into why these markers are high in the first place, with the possible exception of some basic (but often incorrect) counseling on diet and exercise.

On the other hand, functional medicine—which is what I practice—focuses on treating the underlying cause of health problems instead of just suppressing symptoms. If your blood sugar, blood pressure or cholesterol are high, the first question a functional medicine practitioner will ask is “why?” If we can identify the root cause of the problem, and address it at that level, medication is often unnecessary.

To use a simple analogy, if you have weeds in your garden, what happens if you just cut the weeds from the top? They grow right back—and sometimes faster than before! If you really want to get rid of them once and for all, you have to pull them up by their roots.

With this in mind, let’s look at some of the potential causes of elevated LDL particle number. If your LDL-P is high, it makes sense to test for and treat any of the conditions below (with the exception of the last, which is genetic and thus can’t be treated) before—or at least along with—taking pharmaceutical drugs.

Insulin resistance and metabolic syndrome

LDL particles don’t just carry cholesterol; they also carry triglycerides, fat-soluble vitamins and antioxidants. You can think of LDL as a taxi service that delivers important nutrients to the cells and tissues of the body.

As you might expect, there’s a limit to how much “stuff” that each LDL particle can carry. Each LDL particle has a certain number of cholesterol molecules and a certain number of triglycerides. As the number of triglycerides increases, the amount of cholesterol it can carry decreases, and the liver will have to make more LDL particles to carry a given amount of cholesterol around the body. This person will end up with a higher number of LDL particles.

Consider two hypothetical people. Both have an LDL cholesterol level of 130 mg/dL, but one has high triglycerides and the other has low triglycerides. The one with the high triglyceride level will need more LDL particles to transport that same amount of cholesterol around the body than the one with a low triglyceride level.

Numerous studies have found an association between increased LDL particle number, and metabolic syndrome. One study measured ApoB, a marker for LDL particle number, in a group of 1,400 young Finns with no established disease. The participants with the highest LDL particle number were 2.8 times more likely to have metabolic syndrome than those with the lowest levels of LDL-P. (1) A much larger study of over 300,000 men also found a strong association between LDL-P and metabolic syndrome and its components (i.e. insulin resistance, abdominal obesity, high blood pressure, etc.). (2)

Poor thyroid function

Poor thyroid function is another potential cause of elevated particle number. Thyroid hormone has multiple effects on the regulation of lipid production, absorption, and metabolism. It stimulates the expression of HMG-CoA reductase, which is an enzyme in the liver involved in the production of cholesterol. (As a side note, one way that statins work is by inhibiting the HMG-CoA reductase enzyme.) Thyroid hormone also increases the expression of LDL receptors on the surface of cells in the liver and in other tissues. In hypothyroidism, the number of receptors for LDL on cells will be decreased. This leads to reduced clearance of LDL from the blood and thus higher LDL levels. Hypothyroidism may also lead to higher cholesterol by acting on Niemann-Pick C1-like 1 protein, which plays a critical role in the intestinal absorption of cholesterol. (3, 4)

Studies show that LDL particle number is higher even in subclinical hypothyroidism (high TSH with normal T4 and T3), and that LDL particle number will decrease after treatment with thyroid hormone. (5)

Infections

Another cause of high cholesterol profile is infection. Multiple studies have shown associations between bacterial infections like Chlamydia pneumoniae and H. pylori, which is the bacterium causes duodenal ulcers, and viral infections like herpes and cytomegalovirus and elevated lipids. (6) For example, H. pylori leads to elevated levels of total cholesterol, LDL cholesterol, lipoprotein (a), ApoB or LDL particle number, and triglyceride concentrations as well as decreased levels of HDL. (7)

Several mechanisms have been proposed to explain the association between infections and elevated blood lipids. Some evidence suggests that viral and bacterial infections directly alter the lipid metabolism of infected cells, and other evidence suggests that lipids increase as a result of the body’s attempt to fight off infection. Other evidence suggests that LDL has antimicrobial properties and is directly involved in inactivating microbial pathogens. This has been confirmed by studies showing that mice with defective LDL receptors—and thus very high levels of LDL—are protected against infection by gram-negative bacteria like H. pylori. (8)

Leaky gut

One of the primary functions of the intestinal barrier is to make sure that stuff that belongs in the gut stays in the gut. When this barrier fails, endotoxins such as lipopolysaccharide (LPS) produced by certain species of gut bacteria can enter the bloodstream and provoke an immune response. Part of that immune response involves LDL particles, which as I mentioned above, have an anti-microbial effect. A protein called LPS-binding protein, which circulates with LDL particles, has been shown to reduce the toxic properties of LPS by directly binding to it and removing it from the circulation. (9) Studies have also shown significant increases in LPS-binding protein (and thus LDL particles) in cases of endotoxemia—a condition caused by large amounts of circulating endotoxins. (10)

Though more research is needed in this area, the studies above suggest that a leaky gut could increase the level of LPS and other endotoxins in the blood, and thus increase LDL particle number as a result. I have seen this in my practice. I recently had a patient with high LDL-P and no other risk factors. I tested his gut and discovered H. pylori and small intestine bacterial overgrowth (SIBO). After treating his gut, his LDL-P came down to normal levels.

Genetics

The final cause of elevated LDL-P is genetics. Familial hypercholesterolemia, or FH, involves a mutation of a gene that codes for the LDL receptor or the gene that codes for apolipoprotein B (ApoB). The LDL receptor sits on the outside of cells; the LDL particle has to attach to the LDL receptor in order to deliver the nutrients it’s carrying and be removed from the circulation. ApoB is the part of the LDL particle that binds to the receptor. If we use a door lock as an analogy, apolipoprotein B would be the key, and the LDL receptor is the lock. They both need to be working properly for LDL to deliver its cargo and to be removed from the bloodstream.

Homozygous carriers of FH have two copies of the mutated gene. This condition is very rare. It affects approximately 1 in a million people. And people that are homozygous for this mutation have extremely high total cholesterol levels, often as high as 1000 mg/dL. And unfortunately they usually die from severe atherosclerosis and heart disease before the age of 25.

Heterozygous carriers, however, only have a single copy of the mutated gene, and the other copy is functioning normally. This is much more common. The prevalence is between 1 in 300 to 1 in 500 people, depending on which study you look at. These heterozygous carriers of FH have total cholesterol levels that often range between 350 and 550 mg/dL, along with very high LDL particle number. They have about three times higher risk of death from heart disease than people without FH if it goes untreated.

It’s important to note that people with FH have primarily large, buoyant LDL particles, and yet are still at much higher risk for cardiovascular disease. While it’s true that small, dense, oxidized LDL particles are more likely to cause atherosclerosis, large, buoyant particles can also be harmful when their concentration is high enough. This is one reason why LDL particle number is a superior marker to LDL particle size.

In the next article in this series, I will debunk the myth that statins extend lifespan in healthy people with no pre-existing heart disease.
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Monday, March 11, 2013

Lipoprotein Particles Linkd to Cardiovascular Disease Risk

March 11, 2013

New Data Further Links Lipoprotein Particles to Cardiovascular Disease Risk

Findings Presented at the ACC Annual Scientific Sessions
RALEIGH, N.C.--(BUSINESS WIRE)-- LipoScience, Inc. (NASDAQ: LPDX) an in vitro diagnostic company committed to advancing patient care in cardiovascular, metabolic and other diseases, today announced the presentation of data from two studies, at the Annual Scientific Session of the American College of Cardiology (ACC) in San Francisco, highlighting the importance of low density lipoprotein particle (LDL-P) measurements in identifying cardiovascular disease risk for patients.
Previous studies have indicated that many patients with relatively normal levels of low density lipoprotein cholesterol (LDL-C) have increased LDL-P, illustrating discordance between the two measures of LDL. The medical community is increasingly aware of the critical role utilizing LDL-P as measured by nuclear magnetic resonance (NMR) spectroscopy to help manage a patient's cardiovascular disease risk. The data presented at ACC further validates the need for increased awareness of LDL-P as an indicator of cardiovascular disease, and the value of NMR as a differentiated platform technology.
  
Discordance in Low-Density Lipoprotein Particle Number (LDL-P) and Apolipoprotein B (Apo B) Level

On Saturday, March 9, Dr. Pamela Morris, M.D., FACC of the Medical University of South Carolina, presented data from the study "Discordance in Low-Density Lipoprotein Particle Number (LDL-P) and Apolipoprotein B (Apo B) Level" highlighting the relationship between these two biomarkers in assessing cardiovascular risk. The study examined the Apo B and LDL-P values of 1,196 subjects. Ultimately, it was found that a considerable percentage of patients had much higher LDL-P levels despite attaining normal levels of Apo B.
  
"In some cases, LDL cholesterol and LDL particle numbers do not agree, leaving seemingly healthy patients with hidden risk for cardiovascular events," said Dr. Morris, an author of this study. "The data presented shows that the same is true for Apo B and LDL-P. Discordance is a potential concern amongst these biomarkers, illuminating the need for a complete picture of heart health. Physicians should not rely solely on one diagnostic measure—it is necessary to examine both LDL-C and LDL-P to manage patient care."
  
NMR-Based Lipoprotein Particle Profiling Identifies Novel Signatures for Cardiovascular Disease

Another presentation, "NMR-Based Lipoprotein Particle Profiling Identifies Novel Signatures for Cardiovascular Disease," explored the associations of LDL-P with cross sectional coronary artery disease (CAD) and CAD severity, and the potential as a predictor of incident cardiovascular events. The study analyzed plasma from 1,736 patients who were enrolled in the CATHGEN biorepository of patients undergoing cardiac catheterization at Duke University Medical Center. The study found novel lipoprotein signatures that independently discriminate the presence and extent of CAD and predict incident mortality and myocardial infarction.
  
"This study contributes to the growing body of research linking lipoprotein particle number to increased risk for cardiovascular disease," said William E. Kraus, M.D., Professor of Cardiology at Duke University, and an author of the study. "By analyzing LDL-P by NMR spectroscopy, we were able to determine that lipoprotein size and concentration are novel biomarkers for CAD discrimination and mortality prediction."
  
LDL-P was measured in both studies using LipoScience's NMR LipoProfile®test, a laboratory test that utilizes NMR spectroscopy to measure LDL particle number and standard lipid values. LDL-P information can help clinicians personalize and refine LDL management decisions, particularly to minimize residual risk in patients with low LDL cholesterol levels.
  
LipoScience ACC Poster Presentations Details:
  • Discordance in Low-Density Lipoprotein Particle Number (LDL-P) and Apolipoprotein B (Apo B) Level
    Date: Saturday, March 9, 2013
    Time: 3:45 p.m.-4:30 p.m.
    Location: Poster Sessions, Expo North
  • NMR-Based Lipoprotein Particle Profiling Identifies Novel Signatures for Cardiovascular Disease
    Date: Monday, March 11, 2013
    Time: 9:45 a.m.-10:30 a.m.
    Location: Poster Sessions, Expo North
For more information on LipoScience, please visit www.liposcience.com or the LipoScience, Inc. booth at #S943.
  
About LipoScience, Inc.

LipoScience, Inc. is pioneering a new field of personalized diagnostics based on nuclear magnetic resonance (NMR) technology. Its first proprietary diagnostic test, the NMR LipoProfile®test, measures the number of low density lipoprotein particles (LDL-P) in a blood sample and provides physicians and their patients with actionable information to personalize management of risk for heart disease. To date, over 9 million NMR LipoProfile tests have been ordered. LipoScience's automated clinical analyzer Vantera®, has been cleared by the FDA. It requires no previous knowledge of NMR technology to operate and has been designed to dramatically simplify complex technology through ease of use and walk away automation. The Vantera system will be placed with national and regional clinical laboratories.
LipoScience is driving toward becoming a clinical standard of care by decentralizing its technology and expanding its menu of personalized diagnostic tests to address a broad range of cardiovascular, metabolic and other diseases. For further information on LipoScience, please visit www.liposcience.com and www.theparticletest.com.
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Read the complete article here.

Thursday, December 6, 2012

The straight dope on cholesterol – Part IX - Attia

 Peter once again provides an excellent summary and then proceeds into Part 9 of his cholesterol tome.
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The straight dope on cholesterol – Part IX

The straight dope on cholesterol – Part IX
Previously, across 8 parts of this series we’ve laid the groundwork to ask perhaps the most important question of all:
What should you eat to have the greatest chance of delaying the arrival of cardiovascular disease?
Before we get there, since this series has been longer and more detailed than any of us may have wanted, it is probably worth reviewing the summary points from the previous posts in this series (or you can just skip this and jump to the meat of this post).

What we’ve learned so far

  1. Cholesterol is “just” another fancy organic molecule in our body but with an interesting distinction: we eat it, we make it, we store it, and we excrete it – all in different amounts.
  2. The pool of cholesterol in our body is essential for life. No cholesterol = no life.
  3. Cholesterol exists in 2 formsunesterified or “free” (UC) and esterified (CE) – and the form determines if we can absorb it or not, or store it or not (among other things).
  4. Much of the cholesterol we eat is in the form of CE. It is not absorbed and is excreted by our gut (i.e., leaves our body in stool). The reason this occurs is that CE not only has to be de-esterified, but it competes for absorption with the vastly larger amounts of UC supplied by the biliary route.
  5. Re-absorption of the cholesterol we synthesize in our body (i.e., endogenous produced cholesterol) is the dominant source of the cholesterol in our body. That is, most of the cholesterol in our body was made by our body.
  6. The process of regulating cholesterol is very complex and multifaceted with multiple layers of control. I’ve only touched on the absorption side, but the synthesis side is also complex and highly regulated. You will discover that synthesis and absorption are very interrelated.
  7. Eating cholesterol has very little impact on the cholesterol levels in your body. This is a fact, not my opinion. Anyone who tells you different is, at best, ignorant of this topic. At worst, they are a deliberate charlatan. Years ago the Canadian Guidelines removed the limitation of dietary cholesterol. The rest of the world, especially the United States, needs to catch up. To see an important reference on this topic, please look here.
  8. Cholesterol and triglycerides are not soluble in plasma (i.e., they can’t dissolve in water) and are therefore said to be hydrophobic.
  9. To be carried anywhere in our body, say from your liver to your coronary artery, they need to be carried by a special protein-wrapped transport vessel called a lipoprotein.
  10. As these “ships” called lipoproteins leave the liver they undergo a process of maturation where they shed much of their triglyceride “cargo” in the form of free fatty acid, and doing so makes them smaller and richer in cholesterol.
  11. Special proteins, apoproteins, play an important role in moving lipoproteins around the body and facilitating their interactions with other cells. The most important of these are the apoB class, residing on VLDL, IDL, and LDL particles, and the apoA-I class, residing for the most part on the HDL particles.
  12. Cholesterol transport in plasma occurs in both directions, from the liver and small intestine towards the periphery and back to the liver and small intestine (the “gut”).
  13. The major function of the apoB-containing particles is to traffic energy (triglycerides) to muscles and phospholipids to all cells. Their cholesterol is trafficked back to the liver. The apoA-I containing particles traffic cholesterol to steroidogenic tissues, adipocytes (a storage organ for cholesterol ester) and ultimately back to the liver, gut, or steroidogenic tissue.
  14. All lipoproteins are part of the human lipid transportation system and work harmoniously together to efficiently traffic lipids. As you are probably starting to appreciate, the trafficking pattern is highly complex and the lipoproteins constantly exchange their core and surface lipids.
  15. The measurement of cholesterol has undergone a dramatic evolution over the past 70 years with technology at the heart of the advance.
  16. Currently, most people in the United States (and the world for that matter) undergo a “standard” lipid panel, which only directly measures TC, TG, and HDL-C. LDL-C is measured or most often estimated.
  17. More advanced cholesterol measuring tests do exist to directly measure LDL-C (though none are standardized), along with the cholesterol content of other lipoproteins (e.g., VLDL, IDL) or lipoprotein subparticles.
  18. The most frequently used and guideline-recommended test that can count the number of LDL particles is either apolipoprotein B or LDL-P NMR, which is part of the NMR LipoProfile. NMR can also measure the size of LDL and other lipoprotein particles, which is valuable for predicting insulin resistance in drug naïve patients, before changes are noted in glucose or insulin levels.
  19. The progression from a completely normal artery to a “clogged” or atherosclerotic one follows a very clear path: an apoB containing particle gets past the endothelial layer into the subendothelial space, the particle and its cholesterol content is retained, immune cells arrive, an inflammatory response ensues “fixing” the apoB containing particles in place AND making more space for more of them.
  20. While inflammation plays a key role in this process, it’s the penetration of the endothelium and retention within the endothelium that drive the process.
  21. The most common apoB containing lipoprotein in this process is certainly the LDL particle. However, Lp(a) and apoB containing lipoproteins play a role also, especially in the insulin resistant person.
  22. If you want to stop atherosclerosis, you must lower the LDL particle number. Period.
  23. At first glance it would seem that patients with smaller LDL particles are at greater risk for atherosclerosis than patients with large LDL particles, all things equal.
  24. “A particle is a particle is a particle.” If you don’t know the number, you don’t know the risk.
  25. With respect to laboratory medicine, two markers that have a high correlation with a given outcome are concordant – they equally predict the same outcome. However, when the two tests do not correlate with each other they are said to be discordant.
  26. LDL-P (or apoB) is the best predictor of adverse cardiac events, which has been documented repeatedly in every major cardiovascular risk study.
  27. LDL-C is only a good predictor of adverse cardiac events when it is concordant with LDL-P; otherwise it is a poor predictor of risk.
  28. There is no way of determining which individual patient may have discordant LDL-C and LDL-P without measuring both markers.
  29. Discordance between LDL-C and LDL-P is even greater in populations with metabolic syndrome, including patients with diabetes. Given the ubiquity of these conditions in the U.S. population, and the special risk such patients carry for cardiovascular disease, it is difficult to justify use of LDL-C, HDL-C, and TG alone for risk stratification in all but the most select patients.
  30. To address this question, however, one must look at changes in cardiovascular events or direct markers of atherosclerosis (e.g., IMT) while holding LDL-P constant and then again holding LDL size constant. Only when you do this can you see that the relationship between size and event vanishes. The only thing that matters is the number of LDL particles – large, small, or mixed.
  31. HDL-C and HDL-P are not measuring the same thing, just as LDL-C and LDL-P are not.
  32. Secondary to the total HDL-P, all things equal it seems smaller HDL particles are more protective than large ones.
  33. As HDL-C levels rise, most often it is driven by a disproportionate rise in HDL size, not HDL-P.
  34. In the trials which were designed to prove that a drug that raised HDL-C would provide a reduction in cardiovascular events, no benefit occurred: estrogen studies (HERS, WHI), fibrate studies (FIELD, ACCORD), niacin studies, and CETP inhibition studies (dalcetrapib and torcetrapib). But, this says nothing of what happens when you raise HDL-P.
  35. Don’t believe the hype: HDL is important, and more HDL particles are better than few. But, raising HDL-C with a drug isn’t going to fix the problem. Making this even more complex is that HDL functionality is likely as important, or even more important, than HDL-P, but no such tests exist to “measure” this.

Did you say “delay?”

That’s right. The question posed above did not ask how one could “prevent” or eliminate the risk cardiovascular disease, it asked how one could “delay” it. There is a difference. To appreciate this distinction, it’s worth reading this recent publication by Allan Sniderman and colleagues. Allan sent me a copy of this paper ahead of publication a few months ago in response to a question I had posed to him over lunch one day. I asked,
“Allan, who has a greater 5-year risk for cardiovascular disease, a 25 year-old with a LDL-P/apoB in the 99th percentile or a 75-year-old with a LDL-P/apoB in the 5th percentile?”
The paper Allan wrote is noteworthy for at least 2 reasons:
  1. It’s an excellent reminder that age is a paramount risk factor for cardiovascular disease.
  2. It provides a much better (causal) model for atherosclerosis than the typical age-driven models, and explains why age is an important risk factor.
What do I mean by this? Most risk calculators (e.g., Framingham) take their inputs (e.g., age, gender, LDL-C, HDL-C, smoking, diabetes, blood pressure) and calculate a 10-year risk score. If you’ve ever played with these models you’ll quickly see that age drives risk more than any other input. But why? Is there something inherently “risky” about being older?

Sniderman and many others would argue (and I agree) that the reason age is a strong predictor of risk has to do with exposure to apoB particles — LDL, Lp(a), and apoB-carrying remnants. Maybe it’s because I’m a math geek, but such models just seem intuitive to me because I think of most things in life in terms of calculus, especially integrals, the “area under a curve.”

[I once tried to explain to a girlfriend who thought I wasn’t spending enough time with her that my interest in her should be thought of in terms of the area under the curve, rather than any single point in time. That is, think in terms of the integral function, not the point-in-time function. Needless to say, she broke up with me on the spot (in the middle of a parking lot!), despite me drawing a very cool picture illustrating the difference, which I’ve re-created, below.]
Integral
The reason age is such a big driver of risk is that the longer your artery walls are exposed to the insult of apoB particles, the more likely they are to be damaged, for all the reasons we covered in Part IV of this series. [This paper also reviews the clinical situation of PCSK9 mutations which builds a very compelling case for the causal model of apoB particles in the development of atherosclerosis].

What does eating have to do with cardiovascular risk?

So now that everyone is on the edge of their seat in anticipation of this punch-line, let me provide two important caveats.
First, there are no long-term studies – either in primary or secondary prevention – examining the exact question we all want to know the answer to with respect to the role of dietary intervention on cardiovascular disease. There are short-term studies, some of which I will highlight, which look at proxies for cardiovascular disease, but all of the long-term studies (looking at secondary prevention), are either drug studies or multiple intervention studies (e.g., cholesterol-lowering drug(s) + blood pressure reducing drug(s) + dietary intervention + exercise + …).
In other words, the “dream” study has not been done and won’t be done for a long time. The “dream” study would follow 2 randomized groups for many years and only make one change between the groups. Group 1 would consume a standard American diet and group 2 would consume a very-low carbohydrate diet. Furthermore, compliance within each group would be excellent (many ways to ensure this, but none of them are inexpensive – part of why this has not been done) and the study would be powered to detect “hard outcomes” (e.g., death), instead of just “soft outcomes” (e.g., changes in apoB, LDL-C, LDL-P, TG).
Second, everything we have learned to date on the risk relationship between cardiovascular disease and risk markers is predicated on the assumption that a risk maker of level X in a person on diet A is the same as it would be for a person on diet B.
Since virtually all of the thousands of subjects who have made up the dozens of studies that form the basis for our understanding on this topic were consuming some variant of the “standard American diet” (i.e., high-carb), it is quite possible that what we know about risk stratification is that this population is not entirely fit for extrapolation to a population on a radically different diet (e.g., a very-low carbohydrate diet or a ketogenic diet). Many of you have asked about this, and my comments have always been the same. It is entirely plausible that an elevated level of LDL-P or apoB in someone consuming a high-carb diet portends a greater risk than someone on a ketogenic or low-carb diet. There are many reasons why this might be the case, and there are many folks who have made compelling arguments for this hypothesis.

But we can’t forget the words of Thomas Henry Huxley, who said, “The great tragedy of science is the slaying of a beautiful hypothesis by an ugly fact.” Science is full of beautiful hypothesis slayed by ugly facts. Only time will tell if this hypothesis ends up in that same graveyard, or changes the way we think about lipoproteins and atherosclerosis.

The role of sugar in cardiovascular disease

Let’s start with what we know, then fill in the connections, with the goal of creating an eating strategy for those most interested in delaying the onset of cardiovascular disease.

There are several short-term studies that have carefully examined the impact of sugar, specifically, on cardiovascular risk markers. Let’s examine one of them closely. In 2011 Peter Havel and colleagues published a study titled Consumption of fructose and HFCS increases postprandial triglycerides, LDL-C, and apoB in young men and women. If you don’t have access to this journal, you can read the study here in pre-publication form. This was a randomized trial with 3 parallel arms (no cross-over). The 3 groups consumed an isocaloric diet (to individual baseline characteristics) consisting of 55% carbohydrate, 15% protein, and 30% fat. The difference between the 3 groups was in the form of their carbohydrates.

Group 1: received 25% of their total energy in the form of glucose
Group 2: received 25% of their total energy in the form of fructose
Group 3: received 25% of their total energy in the form of high fructose corn syrup (55% fructose, 45% glucose)

The intervention was relatively short, consisting of both an inpatient and outpatient period, and is described in the methodology section.

Keep in mind, 25% of total energy in the form of sugar is not as extreme as you might think. For a person consuming 2,400 kcal/day this amounts to about 120 pounds/year of sugar, which is slightly below the average consumption of annual sugar in the United States. In that sense, the subjects in Group 3 can be viewed as the “control” for the U.S. population, and Group 1 can be viewed as an intervention group for what happens when you do nothing more in your diet than remove sugar, which was the first dietary intervention I made in 2009.

Despite the short duration of this study and the relatively small number of subjects (16 per group), the differences brought on by the interventions were significant. The figure below shows the changes in serum triglycerides via 3 different ways of measuring them. Figure A shows the difference in 24-hour total levels (i.e., the area under the curve for serial measurements – hey, there’s our integral function again!). Figure B shows late evening (post-prandial) differences. Figure C shows the overall change in fasting triglyceride level from baseline (where sugar intake was limited for 2 weeks and carbohydrate consumption consisted only of complex carbohydrates).
impact on TG
The differences were striking. The group that had all fructose and HFCS removed from their diet, despite still ingesting 55% of their total intake in the form of non-sugar carbohydrates, experienced a decline in total TG (Figure A, which represents the daily integral of plasma TG levels, or AUC). However, that same group experienced the greatest increase in fasting TG levels (Figure C). Post-prandial TG levels were elevated in all groups, but significantly higher in the fructose and HFCS groups (Figure B). The question this begs, of course, is which of these measurements is most predictive of risk?

Historically, fasting levels of TG are used as the basis of risk profiling (Figure C), and according to this metric glucose consumption appears even worse than fructose or HFCS. However, recent evidence suggests that post-prandial levels of TG (Figure B) are a more accurate way to assess atherosclerotic risk, as seen here, here, and here. One question I have is why did the AUC calculations in Figure A show a reduction in plasma TG level for the glucose group?

The figure below summarizes the differences in LDL-C, non-HDL-C, apoB, and apoB/apoA-I.
impact on lipoproteins
Again, the results were unmistakable with respect to the impact of fructose and HFCS on lipoproteins, and by extension, the relative lack of harm brought on by glucose in isolation. [Of course, removal of glucose and fructose/HFCS would have been a very interesting control group.]
One of the simultaneous strengths and weaknesses of this study was the heterogeneity of its subjects, who ranged in BMI from 18 to 35, in age from18 to 40, and in gender. While this provided at least one interesting example of age-related differences in carbohydrate metabolism (older subjects had a greater increase in triglycerides in response to glucose than younger subjects), it may have actually diluted the results. There were also significant differences between genders in the glucose group.
What was most interesting about this study was the clear difference between the 3 groups that was not solely a function of fructose load. In other words, the best outcome from a disease risk standpoint was in the glucose group, while the worst outcome was not in the all-fructose group, but in the 50/50 (technically 55/45) mixed group. This is a very powerful indication that while glucose and fructose alone can be deleterious in excess, their combination seems synergistically bad.

The role of saturated fat in cardiovascular disease

In the next week or two I’ll be posting an hour-long comprehensive lecture I gave at UCSD a few weeks ago on this exact topic. Rather than repeat any of it here, I’ll highlight one study that I did not include in that lecture. The study, Effect of a high saturated fat and no-starch diet on serum lipid subfractions in patients with documented atherosclerotic cardiovascular disease, published in 2003, treated 23 obese patients (average BMI 39) with known cardiovascular disease (status post coronary artery bypass surgery and/or stent placement) with a high-fat ketogenic diet. Because the study was free-living and relied on self-reporting, not all subjects had documented levels of elevated serum B-OHB. However, the subjects were instructed to avoid starch and consume 50% of their caloric intake via saturated fat, primarily in the form of red meat and cheese. There were no restrictions on fruits and vegetables, which may have accounted for the observation that not all subjects were ketotic during the 6-week intervention. In total, only 5 of the 23 patients achieved documented ketosis.
All of the subjects were on statins and entered the study at a goal LDL-C level target of 100 mg/dL, which may have been the only way the authors could get the IRB to approve such a study.
The table below shows the changes in lipoprotein fractions following the intervention (there was no control group):
Table 2
This study was conducted during the height of the “outcry” over the Atkins diet. While most doctors reluctantly agreed that Dr. Atkins’ diet could reduce body fat, most believed it was still very dangerous. In the words of Dean Ornish, “Sure you can lose weight on a low-carb diet, but you can also lose weight on heroin and no one would recommend that!”

Fair point. In fact, the authors of this study acknowledged that they “strongly expected” this dietary intervention to increase risk for cardiovascular disease, which is why they only included subjects on statins with low LDL-C. However, as you can see from the table above, the authors were startled by the results. The subjects experienced a significant reduction in plasma triglycerides and VLDL triglycerides, without an increase in LDL-C or LDL-P. In fact, LDL size and HDL size increased and VLDL size decreased – all signs of improved insulin resistance. Furthermore, fasting glucose and insulin levels also decreased significantly. The mean HOMA-IR was reduced from 5.6 to 3.6 (normal is 1.0) and TG/HDL-C from 3.3 to 2.0 (normal is considered below 3, but “ideal” is probably below 1.0) in just 6 weeks. Taken together, these changes, combined with the dramatic change in VLDL size, suggest insulin resistance was dramatically improved while consuming a diet of 50% saturated fat!

As all of these patients were taking statins, we’re really robbed of seeing the impact of this diet on LDL-P, which did not change. Also, CRP levels rose (though not clinically or statistically significantly).

Putting it all together

It is very difficult to make the case that when carbohydrates in general, and sugars in particular, are removed or greatly reduced in the diet, insulin resistance is not improved, even in the presence of high amounts of saturated fats. When insulin resistance improves (i.e., as we become more insulin sensitive), we are less likely to have the signs and symptoms of metabolic syndrome. As we meet fewer criteria of metabolic syndrome, our risk of not only heart disease, but also stroke, cancer, diabetes, and Alzheimer’s disease goes down.

Furthermore, as this study on the Framingham cohort showed us, the more criteria you have along the spectrum of metabolic syndrome, the more difficult it becomes to predict your risk, due to a widening gap in discordant risk markers, as shown in this figure.
LDL-C vs. LDL-P in MS
As I noted at the outset, the “dream” trial has not yet been done, though we (NuSI) plan to change that. Until then each of us has to make a decision several times every day about what we will and won’t put in our mouths. Much of this blog is dedicated to underscoring the impact of carbohydrate reduction on insulin resistance and metabolic syndrome.

The results of the trials to date, combined with a nuanced understanding of the lipoprotein physiology and their role on the atherosclerotic disease process, bring us to the following conclusions:
  1. The consumption of sugar (sucrose, high fructose corn syrup) increases plasma levels of triglycerides, VLDL and apoB, and reduces plasma levels of HDL-C and apoA-I.
  2. The removal of sugar reverses each of these.
  3. The consumption of fructose alone, though likely in dose-dependent fashion, has a similar, though perhaps less harmful, impact as that of fructose and glucose combined (i.e., sugar).
  4. The addition of fat, in the absence of sugar and starch, does not raise serum triglycerides or other biomarkers of cardiovascular disease.
  5. The higher the level of serum triglycerides, the greater the likelihood of discordance between LDL-C and LDL-P (and apoB).
  6. The greater the number (from 0 to 5) of inclusion criteria for metabolic syndrome, the greater the likelihood of discordance between LDL-C and LDL-P (and apoB).
I would like to address one additional topic in this series before wrapping it up – the role of pharmacologic intervention in the treatment and prevention of atherosclerotic disease, so please hold off on questions pertaining to this topic for now.

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Read the complete article here.

Sunday, October 14, 2012

Results of my second serial CAC Scan just in.

I have been working hard on slowing plaque growth for several years but mostly in the last year and a half because I had my first viable CAC scan to provide a measuring point baseline for reference.

Other comments on the report follow.
  • IMPRESSION: Stable exam compared to Sept 15, 2011

  • PATIENT: 69 year old man with no cardiac symptoms but a past history of cardiovascular disease resulting in 6 MI events over a 17 year period. His current stress level is low. He has a history of prior cardiac procedures including CABG (1x), Angiography and Coronary Stent (3x). He has a family history of stroke and heart disease in a first or second degree relative.

  • YOUR AGATSTON CALCIUM SCORE IS: 1072.3

  • Your current EBT heart was compared to your most recent prior scan and the progression of calcified plaque is less than 15% annually. This is a very good result and is consistent with a low risk for coronary event over the next few years.

Encouraging but no resting on my laurels. The 22% annualized plaque growth in the RCA is a matter of concern reminding me that further improvement is necessary so adjustments may have to be made in my diet etc.


Prior Scan was Sept 15, 2011
Current Scan Oct 5, 2012
My assessment is that it looks pretty good except for % change on LMCA and the RCA
That line below the chart that ends with 4% is good.
Have consult with doctor tomorrow (10/15/2012). Stay tuned for a more qualified analysis.




Note my treatment plan which seems to be paying off is that of the Track Your Plaque Program. It primarily consists of diet and supplements with minimal drug intervention (especially 'no statins' which I do not tolerate). It includes advanced lipid analysis then treating atherogenic ones such as Lp(a) and apo B or LDL particle number and particle size.

Wednesday, August 29, 2012

The Straight Dope on Cholesterol: 10 Things You Need to Know - Attia

The Straight Dope on Cholesterol: 10 Things You Need to Know


cholesterol4
This is a guest post by Peter Attia and is a summary based on a 10-part series of the same name that you can find at The Eating Academy
 
To put this summary post and, more importantly, this 10-part series in perspective, let’s examine one of the most pervasive pieces of dietary advice given to people worldwide:

“Eating foods that contain any cholesterol above 0 mg is unhealthy.”
- T. Colin Campbell, PhD, author of The China Study.

No summary of this length can begin to fully address a topic as comprehensive as cholesterol metabolism and the pathogenesis of atherosclerosis. In fact, those of us who challenge conventional wisdom often find ourselves needing to do exactly what Frederic Bastiat suggested:

“We must admit that our opponents in this argument have a marked advantage over us. They need only a few words to set forth a half-truth; whereas, in order to show that it is a half-truth, we have to resort to long and arid dissertations.”

So, at the risk of trying to minimize the “long and arid” part of this process, below are the 10 things you need to know to be the judge – for yourself – if the conventional advice about cholesterol is correct.

1. The sine qua non of atherosclerosis is the presence of a sterol in an artery wall. How it gets there is the only thing we should be worrying about.

Contrary to popular belief, atherosclerosis is not caused by many of things we think of, such as smoking, high blood pressure, diabetes, high LDL (the so-called “bad” cholesterol), or low HDL (the so-called “good” cholesterol). Some of these are certainly markers of risk – low HDL, for example – while others accelerate the process – smoking, for example – but none of these are the direct cause of atherosclerosis.

The sine qua non of atherosclerosis is the presence of sterols (cholesterol or phytosterol) in arterial wall macrophages. Sterols are delivered to the arterial wall by the penetration of the endothelium by an apoB-containing lipoprotein, which transport the sterols. In other words, unless an apoB-containing lipoprotein particle violates the border created by an endothelium cell and the layer it protects, the media layer, there is no way atherogenesis occurs. If this is a bit confusing, don’t worry. It’s all made clear below.

2. Cholesterol is vital for life; no cholesterol = no life.

Cholesterol is a 27-carbon molecule shown in the figure below. Each line in this figure represents a bond between two carbon atoms. That’s it. Mystery over.

All this talk about “cholesterol” and most people don’t actually know what it is. So, there you have it. Cholesterol is “just” another organic molecule in our body.

I need to make one distinction that will be very important later. Cholesterol, a steroid alcohol, can be “free” or “unesterified” (“UC” as we say, which stands for unesterified cholesterol) which is its active form, or it can exist in its “esterified” or storage form which we call a cholesterol ester (“CE”). The diagram below shows a free (i.e., UC) molecule of cholesterol. An esterified variant (i.e., CE) would have an “attachment” where the arrow is pointing to the hydroxyl group on carbon #3, aptly named the “esterification site.”
Cholesterol 1
One of the biggest misconceptions is that cholesterol is “bad.” This could not be further from the truth. Cholesterol is very good! In fact, there are (fortunately rare) genetic disorders in which people cannot properly synthesize cholesterol. One such disease is Smith-Lemli-Opitz syndrome (also called “SLOS,” or 7-dehydrocholesterol reductase deficiency) which is a metabolic and congenital disorder leading to a number of problems including autism, mental retardation, lack of muscle, and many others.

Cholesterol is absolutely vital for our existence. Every cell in our body is surrounded by a membrane. These membranes are largely responsible for fluidity and permeability, which essentially control how a cell moves, how it interacts with other cells, and how it transports “important” things in and out. Cholesterol is one of the main building blocks used to make cell membranes (in particular, the ever-important “lipid bilayer” of the cell membrane).

Beyond cholesterol’s role in allowing cells to even exist, it also serves an important role in the synthesis of vitamins and steroid hormones, including sex hormones and bile acids. Make sure you take a look at the picture of steroid hormones synthesis and compare it to that of cholesterol (above). If this comparison doesn’t convince you of the vital importance of cholesterol, nothing I say will.
One of the unfortunate results of the eternal need to simplify everything is that we (i.e., the medical establishment) have done the public a disservice by failing to communicate that there is no such thing as “bad” cholesterol or “good” cholesterol. All cholesterol is imperative for life to exist!

The only “bad” outcome is when cholesterol ends up inside of the wall of an artery, most famously the inside of a coronary artery or a carotid artery, AND leads to an inflammatory cascade which results in the obstruction of that artery (make sure you check out the pictures in the links above). When one measures cholesterol in the blood we really do not know the final destination of those cholesterol molecules!

3. The cholesterol we eat has little to do with the cholesterol we measure in our bloodstream.

We ingest (i.e., take in) cholesterol in many of the foods we eat and our body produces (“synthesizes”) cholesterol de novo from various precursors. About 25% of our daily “intake” of cholesterol – roughly 300 to 500 mg – comes from what we eat (called exogenous cholesterol), and the remaining 75% of our “intake” of cholesterol – roughly 800 to 1,200 mg – is made by our body (called endogenous production). To put these amounts in context, consider that total body stores of cholesterol are about 30 to 40 gm (i.e., 30,000 to 40,000 mg) and most of this resides within our cell membranes. Nearly every cell in the body can produce cholesterol, and thus very few cells actually require a delivery of cholesterol. Cholesterol is required by all cell membranes and to produce steroid hormones and bile acids.

Of this “made” or “synthesized” cholesterol, our liver synthesizes about 20% of it and the remaining 80% is synthesized by other cells in our bodies. The synthesis of cholesterol is a complex four-step process (with 37 individual steps) that I will not cover here, but I want to point out how tightly regulated this process is, with multiple feedback loops. In other words, the body works very hard (and very “smart”) to ensure cellular cholesterol levels are within a pretty narrow band (the overall process is called cholesterol homeostasis). Excess cellular cholesterol will crystalize and cause cellular apoptosis (programmed cell death). Plasma cholesterol levels (which is what clinicians measure with standard cholesterol tests) often have little to do with cellular cholesterol, especially artery cholesterol, which is what we really care about. For example, when cholesterol intake is decreased, the body will synthesize more cholesterol and/or absorb (i.e., recycle) more cholesterol from our gut. The way our body absorbs and regulates cholesterol is really amazing, so I want to spend a bit of time discussing it.

Enterocyte
  • The blue circle in this figure represents something called a Niemann-Pick C1-like 1 protein (NPC1L1). It sits at the apical surface of enterocytes and it promotes active influx (i.e., bringing in) of gut luminal unesterified cholesterol (UC) as well as unesterified phytosterols into the enterocyte. Think of this NPC1L1 as the ticket-taker at the door of the bar (where the enterocyte is the “bar”); he lets most cholesterol (“people”) in. However, NPC1L1 cannot distinguish between cholesterol (“good people”) and phytosterol (“bad people” – for reasons I won’t discuss here) or even too much cholesterol (“too many people”).

  • The pink circle in this figure represents a structure called the adenosine triphosphate (ATP)-binding cassette (ABC) transporters ABCG5 and ABCG8. This structure promotes active efflux (i.e., kicking out) of unesterified sterols (cholesterol and plant sterols – of which over 40 exist) from enterocytes back into the intestinal lumen for excretion. Think of ABCG5/G8 as the bouncer at the bar; he gets rid of the really bad people (e.g., phytosterols, as they serve no purpose in humans) you don’t want in the bar who snuck past the ticket-taker (NPC1L1). Of course, in cases of hyperabsorption (i.e., where the gut absorbs too much of a good thing) they can also efflux out un-needed cholesterol. Along this analogy, once too many “good people” get in the bar, fire laws are violated and some have to go. The enterocyte has “sterol-excess sensors” (a nuclear transcription factor called LXR) that do the monitoring, and these sensors activate the genes that regulate NPC1L1 and ABCG5/G8.
There is another nuance to this, which is where the CE versus UC distinction comes in:
  • Only free or unesterified cholesterol (UC) can be absorbed through gut enterocytes. In other words, cholesterol esters (CE) cannot be absorbed because of the bulky side chains they carry.
  • Much (> 50%) of the cholesterol we ingest from food is esterified (CE), hence we don’t actually absorb much, if any, exogenous cholesterol (i.e., cholesterol in food).
  • Furthermore, most of the unesterified cholesterol (UC) in our gut (on the order of about 85%) is actually of endogenous origin (meaning it was synthesized in bodily cells and returned to the liver), which ends up in the gut via biliary secretion and ultimately gets re-absorbed by the gut enterocyte. The liver is only able to efflux (send out via bile into the gut) UC, but not CE, from hepatocytes (liver cells) to the biliary system. Liver CE cannot be excreted into bile. So, if the liver is going to excrete CE into bile and ultimately the gut, it needs to de-esterify it using enzymes called cholesterol esterolases which can convert liver CE to UC.

4. The cholesterol in our bloodstream has little to do with the cholesterol in our artery walls (i.e., atherosclerosis).

To understand how cholesterol travels around our body requires some understanding of the distinction between hydrophobic and hydrophilic. A molecule is said to be hydrophobic (also called nonpolar) if it repels water, while a molecule is said to be hydrophilic (also called polar) if it attracts water. Think of your veins, arteries, and capillaries as the “waterways” or rivers of your body. Cholesterol is precious “cargo” that needs to move around, but it needs a “boat” to carry it.
The proteins that traffic collections of lipids are called apoproteins. Once bound to lipids they are called apolipoproteins, and the protein wrapped “vehicle” that transports the lipids are called lipoproteins. Many of you have probably heard this term before, but I’d like to ensure everyone really understands their important features. A crucial concept is that, for the most part, lipids go nowhere in the human body unless they are a passenger inside a protein wrapped vehicle called a lipoprotein. As their name suggests, lipoproteins are part lipid and part protein. They are mostly spherical structures which are held together by a phospholipid membrane (which, of course, contains free cholesterol). The figure below shows a schematic of a lipoprotein.
lipoprotein2
You will also notice variable-sized proteins on the surface of the lipid membrane that holds the structure together. The most important of these proteins are called apolipoproteins, as I alluded to above. The apolipoproteins on the surface of lipoprotein molecules serve several purposes including:
  1. Assisting in the structural integrity and solubility of the lipoprotein;
  2. Serving as co-factors in enzymatic reactions;
  3. Acting as ligands (i.e., structures that help with binding) for situations when the lipoprotein needs to interact with a receptor on a cell.
Apolipoproteins come in different shapes and sizes which determine their “class.” Without getting into the details of protein structure and folding, let me focus on two important classes: apolipoprotein A-I and apolipoprotein B. ApoA-I is the apolipoprotein that wraps HDL particles. ApoB is the apolipoprotein that wraps VLDL, IDL, and LDL particles.

5. The only way sterols end up in artery walls – the one place we don’t want them to be – is if the sterols are carried there by an apoB-containing lipoprotein particle.

So what drives a LDL particle to do something as sinister as to leave the waterway (i.e., the bloodstream) and “illegally” try to park at a dock (i.e., behind an endothelial cell)? Well, it is a gradient driven process which is why particle number is the key driving parameter.

As it turns out, this is probably a slightly less important question than the next one: what causes the LDL particle to stay there? In the parlance of our metaphor, not only do we want to know why the boat leaves the waterway to illegally park in the dock with its precious cargo, but why does it stay parked there? This phenomenon is called “retention” in lipidology-speak.

Finally, if there was some way a LDL particle could violate the endothelium, AND be retained in the space behind the cell (away from the lumen on the side aptly called the sub-endothelial space) BUT not elicit an inflammatory (i.e., immune) response, would it matter?

I don’t know. But it seems that not long after a LDL particle gets into the sub-endothelial space and takes up “illegal” residence (i.e., binds to arterial wall proteoglycans), it is subject to oxidative forces, and as one would expect an inflammatory response is initiated. The result is full blown mayhem. Immunologic gang warfare breaks out and cells called monocytes and macrophages and mast cells show up to investigate. When they arrive and find the LDL particle, they do all they can to remove it. In some cases, when there are few LDL particles, the normal immune response is successful. But, it’s a numbers game. When LDL particle invasion becomes incessant, even if the immune cells can remove some of them, it becomes a losing proposition and the actual immune response to the initial problem becomes chronic and maladaptive and expands into the space between the endothelium and the media.

The multiple-sterol-laden macrophages or foam cells coalesce, recruit smooth muscle cells, induce microvascularization, and before you know it complex, inflamed plaque occurs. Microhemorrhages and microthrombus formations occur within the plaque. Ultimately the growing plaque invades the arterial lumen or ruptures into the lumen inducing luminal thrombosis. Direct luminal encroachment by plaque expansion or thrombus formation causes the lumen of the artery to narrow, which may or may not cause ischemia.


Read more: http://www.marksdailyapple.com/the-straight-dope-on-cholesterol-10-things-you-need-to-know-part-1/#ixzz24wyQCVFe
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Read the complete article here.