Autophagy and the peroxisome proliferator-activated receptor signaling pathway: A molecular ballet in lipid metabolism and homeostasis.

IF 3.5 2区 生物学 Q3 CELL BIOLOGY
Molecular and Cellular Biochemistry Pub Date : 2025-06-01 Epub Date: 2025-02-01 DOI:10.1007/s11010-025-05207-0
Pouria Kiani, Elaheh Sadat Khodadadi, Ali Nikdasti, Sahar Yarahmadi, Mobina Gheibi, Zeynab Yousefi, Sajad Ehtiati, Sheida Yahyazadeh, Sayed Mohammad Shafiee, Motahareh Taghizadeh, Somayeh Igder, Seyyed Hossein Khatami, Saeed Karima, Omid Vakili, Morteza Pourfarzam
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引用次数: 0

Abstract

Lipids, which are indispensable for cellular architecture and energy storage, predominantly consist of triglycerides (TGs), phospholipids, cholesterol, and their derivatives. These hydrophobic entities are housed within dynamic lipid droplets (LDs), which expand and contract in response to nutrient availability. Historically perceived as a cellular waste disposal mechanism, autophagy has now been recognized as a crucial regulator of metabolism. Within this framework, lipophagy, the selective degradation of LDs, plays a fundamental role in maintaining lipid homeostasis. Dysregulated lipid metabolism and autophagy are frequently associated with metabolic disorders such as obesity and atherosclerosis. In this context, peroxisome proliferator-activated receptors (PPARs), particularly PPAR-γ, serve as intracellular lipid sensors and master regulators of gene expression. Their regulatory influence extends to both autophagy and lipid metabolism, indicating a complex interplay between these processes. This review explores the hypothesis that PPARs may directly modulate autophagy within the realm of lipid metabolism, thereby contributing to the pathogenesis of metabolic diseases. By elucidating the underlying molecular mechanisms, we aim to provide a comprehensive understanding of the intricate regulatory network that connects PPARs, autophagy, and lipid homeostasis. The crosstalk between PPARs and other signaling pathways underscores the complexity of their regulatory functions and the potential for therapeutic interventions targeting these pathways. The intricate relationships among PPARs, autophagy, and lipid metabolism represent a pivotal area of research with significant implications for understanding and treating metabolic disorders.

自噬和过氧化物酶体增殖体激活受体信号通路:脂质代谢和体内平衡的分子芭蕾。
脂质是细胞结构和能量储存不可或缺的物质,主要由甘油三酯(tg)、磷脂、胆固醇及其衍生物组成。这些疏水实体被安置在动态脂滴(ld)中,这些脂滴会根据营养物质的可用性而扩张和收缩。自噬历来被认为是一种细胞废物处理机制,现在已被认为是代谢的重要调节因子。在这一框架下,脂噬,即脂质选择性降解,在维持脂质稳态中起着重要作用。脂质代谢和自噬失调常与代谢紊乱如肥胖和动脉粥样硬化相关。在这种情况下,过氧化物酶体增殖物激活受体(PPAR),特别是PPAR-γ,作为细胞内脂质传感器和基因表达的主要调节剂。它们的调节作用延伸到自噬和脂质代谢,表明这些过程之间存在复杂的相互作用。本文探讨ppar可能直接调节脂质代谢领域的自噬,从而参与代谢性疾病的发病机制。通过阐明潜在的分子机制,我们旨在全面了解连接ppar、自噬和脂质稳态的复杂调控网络。ppar和其他信号通路之间的串扰强调了其调控功能的复杂性以及针对这些通路的治疗干预的潜力。ppar、自噬和脂质代谢之间的复杂关系代表了一个关键的研究领域,对理解和治疗代谢紊乱具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Molecular and Cellular Biochemistry
Molecular and Cellular Biochemistry 生物-细胞生物学
CiteScore
8.30
自引率
2.30%
发文量
293
审稿时长
1.7 months
期刊介绍: Molecular and Cellular Biochemistry: An International Journal for Chemical Biology in Health and Disease publishes original research papers and short communications in all areas of the biochemical sciences, emphasizing novel findings relevant to the biochemical basis of cellular function and disease processes, as well as the mechanics of action of hormones and chemical agents. Coverage includes membrane transport, receptor mechanism, immune response, secretory processes, and cytoskeletal function, as well as biochemical structure-function relationships in the cell. In addition to the reports of original research, the journal publishes state of the art reviews. Specific subjects covered by Molecular and Cellular Biochemistry include cellular metabolism, cellular pathophysiology, enzymology, ion transport, lipid biochemistry, membrane biochemistry, molecular biology, nuclear structure and function, and protein chemistry.
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