Mechanisms and functions of lysosomal lipid homeostasis

IF 6.6 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Cell Chemical Biology Pub Date : 2025-03-06 DOI:10.1016/j.chembiol.2025.02.003
Michael Ebner, Florian Fröhlich, Volker Haucke
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Abstract

Lysosomes are the central degradative organelle of mammalian cells and have emerged as major intersections of cellular metabolite flux. Macromolecules derived from dietary and intracellular sources are delivered to the acidic lysosomal lumen where they are subjected to degradation by acid hydrolases. Lipids derived from lipoproteins, autophagy cargo, or autophagosomal membranes themselves constitute major lysosomal substrates. Dysregulation of lysosomal lipid processing, defective export of lipid catabolites, and lysosomal membrane permeabilization underly diseases ranging from neurodegeneration to metabolic syndromes and lysosomal storage disorders. Mammalian cells are equipped with sophisticated homeostatic control mechanisms that protect the lysosomal limiting membrane from excessive damage, prevent the spillage of luminal hydrolases into the cytoplasm, and preserve the lysosomal membrane composition in the face of constant fusion with heterotypic organelles such as endosomes and autophagosomes. In this review we discuss the molecular mechanisms that govern lysosomal lipid homeostasis and, thereby, lysosome function in health and disease.
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溶酶体是哺乳动物细胞的核心降解细胞器,已成为细胞代谢物通量的主要交汇点。来自食物和细胞内的大分子被输送到酸性溶酶体腔,在那里被酸性水解酶降解。来自脂蛋白、自吞噬货物或自吞噬体膜本身的脂质构成了溶酶体的主要底物。溶酶体脂质处理失调、脂质代谢产物输出缺陷以及溶酶体膜通透性是神经变性、代谢综合征和溶酶体贮积症等各种疾病的根源。哺乳动物细胞具有复杂的平衡控制机制,可保护溶酶体限制膜免受过度损伤,防止腔内水解酶溢出到细胞质中,并在溶酶体膜与内体和自噬体等异型细胞器不断融合的情况下保持溶酶体膜的组成。在这篇综述中,我们将讨论溶酶体脂质平衡的分子机制,以及溶酶体在健康和疾病中的功能。
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来源期刊
Cell Chemical Biology
Cell Chemical Biology Biochemistry, Genetics and Molecular Biology-Molecular Medicine
CiteScore
14.70
自引率
2.30%
发文量
143
期刊介绍: Cell Chemical Biology, a Cell Press journal established in 1994 as Chemistry & Biology, focuses on publishing crucial advances in chemical biology research with broad appeal to our diverse community, spanning basic scientists to clinicians. Pioneering investigations at the chemistry-biology interface, the journal fosters collaboration between these disciplines. We encourage submissions providing significant conceptual advancements of broad interest across chemical, biological, clinical, and related fields. Particularly sought are articles utilizing chemical tools to perturb, visualize, and measure biological systems, offering unique insights into molecular mechanisms, disease biology, and therapeutics.
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