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October 10, 2025Molecular Biomedicine60 citationsOpen Access

Cholesterol metabolism: molecular mechanisms, biological functions, diseases, and therapeutic targets

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DCDaxin CuiXYXiaoqian YuQGQiuyue Guan

Key Points

  • Dysregulated cholesterol metabolism plays a critical role in diseases like atherosclerosis and fatty liver disease.
  • Cholesterol homeostasis involves complex metabolic pathways including biosynthesis and absorption, crucial for cell function.
  • Novel therapeutic strategies like CRISPR and siRNA are emerging to target cholesterol-related diseases effectively.
  • Pioneering approaches against specific targets are paving the way for personalized treatments in cardiometabolic medicine.

Abstract

Abstract Cholesterol, an indispensable structural and signaling lipid, is fundamental to cellular membrane integrity, steroidogenesis, and developmental morphogen pathways. Its homeostasis hinges on the precise coordination of four interdependent metabolic modules: de novo biosynthesis, intestinal absorption, enzymatic conversion, and systemic clearance. This review delineates the molecular machinery governing these processes—from the Bloch/Kandutsch-Russell synthesis pathways and niemann-pick C1-like 1 (NPC1L1)-mediated cholesterol uptake to cholesterol 7α-hydroxylase (CYP7A1)-driven bile acid synthesis and HDL-dependent reverse transport. We further elucidate cholesterol’s multifaceted roles in lipid raft assembly, Hedgehog signal transduction, and vitamin D/hormone production. Critically, dysregulation of cholesterol flux underpins pathogenesis in atherosclerosis, metabolic dysfunction-associated fatty liver disease (MAFLD), neurodegenerative disorders, and oncogenesis, with disrupted synthesis, efflux, or esterification cascades serving as key drivers. Emerging therapeutic strategies extend beyond conventional statins and proprotein convertase subtilisin/kexin type 9 (PCSK9) inhibitors to include transformative modalities: CRISPR-based in vivo gene editing (e.g., VERVE-101 targeting PCSK9 ), small interfering RNA (siRNA) therapeutics (inclisiran), and microbiota-directed interventions. Pioneering approaches against targets Such as angiopoietin-like 3 (ANGPTL3), lipoprotein(a) Lp(a), and asialoglycoprotein receptor 1 (ASGR1)—alongside repurposed natural agents (berberine, probiotics)—offer promise for mitigating residual cardiovascular risk and advancing precision cardiometabolic medicine. By integrating mechanistic insights with clinical advancements, this review underscores the transition from broad-spectrum therapies to personalized, multi-target regimens, offering a roadmap for mitigating cholesterol-related diseases in the era of genomic and metabolic medicine.

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Cite This Study

Cui et al. (2025) studied this question.

synapsesocial.com/papers/68e861857ef2f04ca37e3930https://doi.org/10.1186/s43556-025-00321-3
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