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Published on: November 24, 2020
Severe Hypertriglyceridaemia and Chylomicronaemia Syndrome-Causes, Clinical Presentation, and Therapeutic Options
Bilal Bashir1,2, Jan H Ho3, Paul Downie4
1Faculty of Biology Medicine and Health, University of Manchester, Manchester M13 9PL, UK.
Insights
Familial chylomicronaemia syndrome (FCS) and multifactorial chylomicronaemia syndrome (MCS) involve genetic hypertriglyceridaemia. FCS, caused by single gene variants, carries higher pancreatic risks than MCS, while novel therapies show promise for both.
Area of Science:
- Genetics
- Metabolic Disorders
- Pharmacology
Background:
- Severe hypertriglyceridaemia (>10 mmol/L) is rare (<1%) with complex genetic underpinnings.
- Monogenic forms (Familial Chylomicronaemia Syndrome - FCS) result from single high-effect variants (e.g., LPL gene).
- Polygenic forms (Multifactorial Chylomicronaemia Syndrome - MCS) arise from multiple low-effect variants and acquired factors.
Purpose of the Study:
- To review the genetic basis of chylomicronaemia.
- To differentiate between monogenic (FCS) and polygenic (MCS) hypertriglyceridaemia.
- To examine complications, current management, and future pharmacotherapies for severe hypertriglyceridaemia.
Main Methods:
- Literature review of genetic basis, pathophysiology, complications, and treatments.
- Comparison of clinical profiles and risks between FCS and MCS.
- Analysis of current and emerging pharmacotherapeutic strategies.
Main Results:
- FCS has higher pancreatic complication risks but a better cardiometabolic profile than MCS.
- FCS is unresponsive to traditional lipid-lowering drugs; diet is primary management.
- Novel agents like Volanesorsen show efficacy in reducing triglycerides and pancreatitis frequency in both FCS and MCS.
Conclusions:
- Understanding the distinct natural histories of FCS and MCS is crucial for targeted treatment and resource allocation.
- Further research is needed on genotype-phenotype correlations in FCS.
- Development of novel pharmacotherapies offers new hope for managing severe hypertriglyceridaemia.
Abstract:
We have reviewed the genetic basis of chylomicronaemia, the difference between monogenic and polygenic hypertriglyceridaemia, its effects on pancreatic, cardiovascular, and microvascular complications, and current and potential future pharmacotherapies. Severe hypertriglyceridaemia (TG > 10 mmol/L or 1000 mg/dL) is rare with a prevalence of <1%. It has a complex genetic basis. In some individuals, the inheritance of a single rare variant with a large effect size leads to severe hypertriglyceridaemia and fasting chylomicronaemia of monogenic origin, termed as familial chylomicronaemia syndrome (FCS). Alternatively, the accumulation of multiple low-effect variants causes polygenic hypertriglyceridaemia, which increases the tendency to develop fasting chylomicronaemia in presence of acquired factors, termed as multifactorial chylomicronaemia syndrome (MCS). FCS is an autosomal recessive disease characterized by a pathogenic variant of the lipoprotein lipase (LPL) gene or one of its regulators. The risk of pancreatic complications and associated morbidity and mortality are higher in FCS than in MCS. FCS has a more favourable cardiometabolic profile and a low prevalence of atherosclerotic cardiovascular disease (ASCVD) compared to MCS. The cornerstone of the management of severe hypertriglyceridaemia is a very-low-fat diet. FCS does not respond to traditional lipid-lowering therapies. Several novel pharmacotherapeutic agents are in various phases of development. Data on the correlation between genotype and phenotype in FCS are scarce. Further research to investigate the impact of individual gene variants on the natural history of the disease, and its link with ASCVD, microvascular disease, and acute or recurrent pancreatitis, is warranted. Volanesorsen reduces triglyceride concentration and frequency of pancreatitis effectively in patients with FCS and MCS. Several other therapeutic agents are in development. Understanding the natural history of FCS and MCS is necessary to rationalise healthcare resources and decide when to deploy these high-cost low-volume therapeutic agents.
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