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Updated: Mar 8, 2026

Isolation and Analysis of Plasma Lipoproteins by Ultracentrifugation
Published on: January 28, 2021
[Hyperlipoproteinemia and dyslipidemia as rare diseases. Diagnostics and treatment]
Insights
Rare lipid metabolism disorders, including familial hypercholesterolemia and lipoprotein lipase deficiency, present significant cardiovascular risks. Advances in genetic identification and novel therapies like PCSK9 inhibitors offer new treatment avenues for these conditions.
Area of Science:
- Endocrinology and Metabolism
- Genetics
- Cardiovascular Medicine
Background:
- Hyperlipoproteinemia (HLP) and dyslipidemia (DLP) are major cardiovascular disease risk factors, affecting a significant portion of the adult population.
- Rare inherited disorders of lipid metabolism, though less common, meet the criteria for rare diseases and pose extreme risks.
- These rare conditions include primary hypercholesterolemia, hypertriglyceridemia, and combined HLP forms, with recent progress in genetic defect identification.
Purpose of the Study:
- To provide an overview of rare hyperlipoproteinemias, focusing on their genetic defects and clinical implications.
- To discuss specific rare diseases in depth: homozygous familial hypercholesterolemia (FH) and lipoprotein lipase deficiency.
- To highlight emerging therapeutic strategies for these severe lipid metabolism disorders.
Main Methods:
- Review of rare primary forms of hypercholesterolemia, hypertriglyceridemia, and combined HLP.
- Detailed discussion of homozygous FH, severe heterozygous FH, and lipoprotein lipase deficiency.
- Brief mention of dysbetalipoproteinemia (Type III HLP).
Main Results:
- Homozygous FH presents with severe hypercholesterolemia (≥15 mmol/l), xanthomatosis, and early-onset cardiovascular disease, including childhood myocardial infarction.
- Lipoprotein lipase deficiency is characterized by severe hypertriglyceridemia, xanthomatosis, and risk of recurrent pancreatitis.
- Dysbetalipoproteinemia involves high cholesterol and triglycerides due to apolipoprotein E gene defects, leading to xanthomatosis and premature atherosclerosis.
Conclusions:
- Homozygous FH is treatable with high-dose statins, ezetimibe, PCSK9 inhibitors, lomitapide, mipomersen, and LDL apheresis.
- Lipoprotein lipase deficiency management includes strict diet and gene therapy, with experimental use of lomitapide.
- Dysbetalipoproteinemia requires management of lipid levels and addresses premature atherosclerosis, with apolipoprotein E gene defect as the cause.
Abstract:
Hyperlipoproteinemia (HLP) and dyslipidemia (DLP) are of course mainly perceived as diseases of common incidence and are typically seen as the greatest risk factors (RF) in the context of the pandemic of cardiovascular diseases. This is certainly true and HLP or DLP overall affect tens of percents of adults. However we cannot overlook the fact that disorders (mostly congenital) of lipid metabolism exist which, though not formally defined as such, amply satisfy the conditions for classification as rare diseases. Our account only includes a brief overview of the rare HLPs based on the dominant disorder of lipid metabolism, i.e. we shall mention the rare primary forms of hypercholesterolemia, primary forms of hypertriglyceridemia and the rare primary combined forms of HLP. In recent years an amazing progress has been reached relating to these diseases, in particular in the area of exact identification of the genetic defect and the mechanism of defect formation, however each of these diseases would require a separate article, though outside the field of clinical internal medicine. Therefore we shall discuss homozygous familial hypercholesterolemia (FH) in greater depth, partially also the "severe" form of heterozygous FH and in the following part the lipoprotein lipase deficiency; that means, diseases which present an extreme and even fatal risk for their carriers at a young age, but on the other hand, new therapeutic possibilities are offered within their treatment. An internist then should be alert to the suspicion that the described diseases may be involved, know about their main symptoms, where to refer the patient and how to treat them. Also dysbetalipoproteinemia (or type III HLP) will be briefly mentioned. Homozygous FH occurs with the frequency of 1 : 1 000 000 (maybe even more frequently, 1 : 160 000), it is characterized by severe isolated hypercholesterolemia (overall cholesterol typically equal to 15 mmol/l or more), xanthomatosis and first of all by a very early manifestation of a cardiovascular disease. Myocardial infarction is not an exception even in childhood. The therapy is based on high-dose statins, statins in combination with ezetimib and now also newly on PCSK9 inhibitors. Lomitapid and partly also mipomersen hold great promise for patients. LDL apheresis then represents an aggressive form of treatment. Lipoprotein lipase deficiency (type I HLP) is mainly characterized by severe hypertriglyceridemia, serum milky in colour, and xanthomatosis. A fatal complication is acute recurrent pancreatitis. A critical part of the treatment is diet, however it alone is not enough to control a genetic disorder. The only approved treatment is gene therapy. Experimentally, as an "off label" therapy, it is used in case studies with a lomitapid effect. We have our own experience with this experimental therapy. Dysbetalipoproteinemia is a congenital disorder of lipoprotein metabolism, characterized by high cholesterol (CH) and triglyceride (TG) levels. The underlying cause of this disease is the defect of the gene providing for apolipoprotein E. It is clinically manifested by xanthomatosis, however primarily by an early manifestation of atherosclerosis (rather peripheral than coronary).Key words: Lipoprotein lipase deficiency - dysbetalipoproteinemia - familial hypercholesterolemia - gene therapy - homozygous FH - LDL apheresis - lomitapid - mipomersen - PCSK9 inhibitors - rare diseases.
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