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PubMed · 15381498

Double trouble.

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2004. Double trouble.. https://pubmed.ncbi.nlm.nih.gov/15381498/

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Differential diagnosis of familial high density lipoprotein deficiency syndromes.

Monogenic high density lipoprotein (HDL) deficiency, because of defects in the genes of apolipoprotein A-I (apoA-I), adenosine triphosphate binding cassette transporter A1 (ABCA1) or lecithin:cholesterol acyltransferase (LCAT), can be assumed in patients with HDL cholesterol levels below the fifth percentile within a given population. As in a first step underlying diseases should be excluded. Patients with a virtual absence of HDL must undergo careful physical examination to unravel the clinical hallmarks of certain HDL deficiency syndromes. In addition, family studies should be initiated, to demonstrate the vertical transmission of the low HDL cholesterol phenotype. Definitive diagnosis requires specialized biochemical tests and the demonstration of a functionally-relevant mutation in one of the three discussed candidate genes. As yet no routinely used drug is able to increase HDL cholesterol levels in patients with familial low HDL cholesterol so that prevention of cardiovascular disease in these patients must be focused on the avoidance and treatment of additional risk factors.

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LpA-I, LpA-I:A-II HDL and CHD-risk: The Framingham Offspring Study and the Veterans Affairs HDL Intervention Trial.

OBJECTIVE: We tested the hypothesis that concentrations of LpA-I and/or LpA-I:A-II HDL subclasses are significantly associated with CHD prevalence and recurrent cardiovascular events. METHODS: LpA-I levels were determined by differential electroimmunoassay in male participants with (n = 169) and without CHD (n = 850) from the Framingham Offspring Study (FOS) and in male participants with CHD from the placebo arm of the Veterans Affairs HDL Intervention Trial (VA-HIT) (n = 741). Data were analyzed cross-sectionally (FOS) and prospectively (VA-HIT) and were adjusted for established lipid and non-lipid CHD risk factors. RESULTS: We observed slightly but significantly higher LpA-I levels in CHD cases compared to all or to HDL-C-matched controls and slightly but significantly higher LpA-I:A-II levels in CHD cases compared to HDL-C-matched controls it the FOS. Neither LpA-I nor LpA-I:A-II levels were significantly different between groups with and without recurrent cardiovascular events in the VA-HIT. No significant differences were observed in LpA-I and LpA-I:A-II levels in low HDL-C (< or = 40 mg/dl) subjects with CHD (VA-HIT, n = 711) and without CHD (FOS, n = 373). Plasma LpA-I concentration had a positive correlation with the large LpA-I HDL particle (alpha-1) but no correlation with the small LpA-I HDL particle (prebeta-1). LpA-I:A-II concentration had a positive correlation with the large (alpha-2) and an inverse correlation with the small (alpha-3) LpA-I:A-II HDL particles. CONCLUSION: Our data do not support the hypothesis that CHD prevalence (FOS) or recurrence of cardiovascular events (VA-HIT) are associated with significant reductions in the concentrations of LpA-I and/or LpA-I:A-II HDL subclasses.

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Non-high-density lipoprotein cholesterol: the forgotten therapeutic target.

The National Cholesterol Education Program (NCEP) Adult Treatment Panel III (ATP III) has acknowledged mounting evidence of an independent association between hypertriglyceridemia and coronary artery disease risk by issuing guidelines that identify non-high-density lipoprotein (HDL) cholesterol as a secondary target for therapy in patients with elevated triglyceride levels. In 2003, a national survey of outpatient lipid management was conducted for patients undergoing treatment by physicians who were high prescribers of lipid-altering drugs. Results of the NCEP Evaluation Project Utilizing Novel E-Technology II (NEPTUNE II) survey indicated much higher frequencies of low-density lipoprotein (LDL) cholesterol goal achievement compared with frequencies observed in a similarly designed survey in 1997. However, non-HDL cholesterol treatment success in the NEPTUNE II survey was markedly lower than that for LDL cholesterol overall and across risk categories. More aggressive therapy is therefore needed to achieve non-HDL cholesterol goals than LDL cholesterol goals. After achievement of LDL cholesterol goals, non-HDL cholesterol can be managed more aggressively by lowering LDL cholesterol or by using strategies that target a reduction in very-low-density lipoprotein cholesterol. Because the prevalence of hypertriglyceridemia in the United States is high and increasing, enhanced efforts to improve non-HDL cholesterol goal achievement have the potential to produce a substantial effect on public health.

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