Luse Melissa A, Jackson Madeline G, Juśkiewicz Zuzanna J, Isakson Brant E
Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine.
Department of Molecular Physiology and Biophysics, University of Virginia School of Medicine.
Curr Opin Physiol. 2023 Oct;35. doi: 10.1016/j.cophys.2023.100701. Epub 2023 Jun 28.
Endothelial caveolae are essential for a wide range of physiological processes and have emerged as key players in vascular biology. Our understanding of caveolar biology in endothelial cells has expanded dramatically since their discovery revealing critical roles in mechanosensation, signal transduction, eNOS regulation, lymphatic transport, and metabolic disease progression. Furthermore, caveolae are involved in the organization of membrane domains, regulation of membrane fluidity, and endocytosis which contribute to endothelial function and integrity. Additionally, recent advances highlight the impact of caveolae-mediated signaling pathways on vascular homeostasis and pathology. Together, the diverse roles of caveolae discussed here represent a breadth of cellular functions presenting caveolae as a defining feature of endothelial form and function. In light of these new insights, targeting caveolae may hold potential for the development of novel therapeutic strategies to treat a range of vascular diseases.
内皮小窝对于广泛的生理过程至关重要,并且已成为血管生物学中的关键参与者。自从内皮细胞中的小窝生物学被发现以来,我们对其的理解有了显著扩展,揭示了它们在机械感受、信号转导、内皮型一氧化氮合酶调节、淋巴运输和代谢疾病进展中的关键作用。此外,小窝参与膜结构域的组织、膜流动性的调节以及内吞作用,这些都有助于内皮功能和完整性。此外,最近的进展突出了小窝介导的信号通路对血管稳态和病理的影响。总之,这里讨论的小窝的多种作用代表了广泛的细胞功能,将小窝呈现为内皮形态和功能的一个决定性特征。鉴于这些新见解,靶向小窝可能为开发治疗一系列血管疾病的新型治疗策略具有潜力。