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How Genetic Variants in Children with Familial Hypercholesterolemia Not Only Guide Detection, but Also Treatment
Sibbeliene E van den Bosch1, Willemijn E Corpeleijn1, Barbara A Hutten2
1Department of Pediatrics, Amsterdam Cardiovascular Sciences, Amsterdam Gastroenterology Endocrinology Metabolism, Amsterdam University Medical Center, Location AMC, 1105 AZ Amsterdam, The Netherlands.
Insights
Familial hypercholesterolemia (FH) is a genetic disorder causing high LDL-C and premature cardiovascular disease. New therapies targeting PCSK9 and ANGPTL3 show promise for managing FH, while Lp(a) requires further research.
Area of Science:
- Genetics
- Cardiology
- Biochemistry
Background:
- Familial hypercholesterolemia (FH) is an inherited condition characterized by extremely high low-density lipoprotein cholesterol (LDL-C) levels.
- This elevation significantly increases the risk of early-onset cardiovascular disease.
- Genetic variants in LDLR, APOB, PCSK9, and LDLRAP1 are known causes of FH, presenting in heterozygous (HeFH) or homozygous (HoFH) forms.
Purpose of the Study:
- To review current and emerging therapeutic strategies for managing FH.
- To highlight advancements in understanding the genetic basis of LDL-C metabolism and related cardiovascular risks.
- To discuss the potential of novel therapies for FH and lipoprotein(a) (Lp(a)) related conditions.
Main Methods:
- Review of genetic variants associated with FH.
- Analysis of current and investigational lipid-lowering therapies, including PCSK9 inhibitors and ANGPTL3 inhibitors.
- Examination of the role of lipoprotein(a) (Lp(a)) as a cardiovascular risk factor.
Main Results:
- PCSK9 inhibitors offer significant LDL-C reduction, though efficacy depends on residual LDL receptor (LDLR) activity.
- Emerging ANGPTL3 inhibitors show potential to reduce apheresis frequency in HoFH patients, irrespective of LDLR function.
- Elevated Lp(a) is a key risk factor for premature cardiovascular disease, with current treatments being limited.
Conclusions:
- Early diagnosis and treatment initiation are crucial for managing FH and preventing cardiovascular events.
- Novel therapies targeting PCSK9 and ANGPTL3 represent significant advancements in FH management.
- Further research into Lp(a) metabolism is essential for developing effective treatments for this independent cardiovascular risk factor.
Abstract:
Familial hypercholesterolemia (FH) is a hereditary disorder that causes severely elevated low-density lipoprotein (LDL-C) levels, which leads to an increased risk for premature cardiovascular disease. A variety of genetic variants can cause FH, namely variants in the genes for the LDL receptor (LDLR), apolipoprotein B (APOB), proprotein convertase subtilisin/kexin type 9 (PCSK9), and/or LDL-receptor adaptor protein 1 (LDLRAP1). Variants can exist in a heterozygous form (HeFH) or the more severe homozygous form (HoFH). If affected individuals are diagnosed early (through screening), they benefit tremendously from early initiation of lipid-lowering therapy, such as statins, and cardiovascular imaging to detect possible atherosclerosis. Over the last years, due to intensive research on the genetic basis of LDL-C metabolism, novel, promising therapies have been developed to reduce LDL-C levels and subsequently reduce cardiovascular risk. Results from studies on therapies focused on inhibiting PCSK9, a protein responsible for degradation of the LDLR, are impressive. As the effect of PCSK9 inhibitors (PCSK9-i) is dependent of residual LDLR activity, this medication is less potent in patients without functional LDLR (e.g., null/null variant). Novel therapies that are expected to become available in the near future focused on inhibition of another major regulatory protein in lipid metabolism (angiopoietin-like 3 (ANGPTL3)) might dramatically reduce the frequency of apheresis in children with HoFH, independently of their residual LDLR. At present, another independent risk factor for premature cardiovascular disease, elevated levels of lipoprotein(a) (Lp(a)), cannot be effectively treated with medication. Further understanding of the genetic basis of Lp(a) metabolism, however, offers a possibility for the development of novel therapies.
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