血管内皮细胞形态和排列调节血管内皮生长因子诱导的内皮一氧化氮合酶活化。

IF 2.4 4区 生物学 Q4 CELL BIOLOGY Cytoskeleton Pub Date : 2024-05-22 DOI:10.1002/cm.21872
Aparna Bhattacharyya, Kenneth A. Barbee
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引用次数: 0

摘要

内皮一氧化氮合酶(eNOS)产生的一氧化氮(NO)可抑制血小板和白细胞粘附,同时促进平滑肌细胞的血管舒张。eNOS 的功能失调是各种血管病变(尤其是动脉粥样硬化)的标志,通常与内皮细胞(EC)上的低剪切应力区域有关。虽然人们承认内皮细胞形态与局部血流动力学之间存在联系,但内皮细胞形态对 eNOS 调节的具体影响仍不清楚。伸长、排列整齐的内皮细胞与多边形、随机定向的内皮细胞在形态上的差异对应于病灶粘附和细胞骨架组织的变化,这表明细胞骨架预压力的水平不同。然而,对细胞骨架预应力的功能结果,尤其是在没有剪切应力的情况下,还没有进行广泛的研究。一些证据表明,伸长的心血管细胞会降低免疫原性并增强 NO 的产生。本研究旨在阐明血管内皮生长因子刺激的 eNOS 在排列型心血管细胞表型中的调控信号通路,该表型的特点是单层细胞内伸长且排列整齐。利用各向异性的地形线索,牛主动脉内皮细胞(BAECs)被拉长和排列,然后在细胞骨架张力抑制剂存在或不存在的情况下进行 VEGF 处理。与未对齐的内皮细胞相比,对齐的内皮细胞对 VEGF 挑战的反应中 eNOS ser1179、AKT ser437 和 FAK Tyr397 的磷酸化显著增加。此外,这种反应还与细胞骨架张力密切相关,肌球蛋白 II ATP 酶抑制剂 blebbistatin 的存在导致反应减弱就证明了这一点。值得注意的是,这项研究首次证明了在血管内皮生长因子介导的 eNOS 激活过程中对 FAK 磷酸化的依赖性,以及细胞骨架机制在排列整齐和伸长的心血管中传播血管内皮生长因子-eNOS 信号方面相对更大的贡献。这项研究强调了在药物开发中使用适当血管模型的重要性,并揭示了血管功能和病理的潜在机制,有助于为血管移植设计提供依据。
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Vascular endothelial cell morphology and alignment regulate VEGF-induced endothelial nitric oxide synthase activation

Nitric oxide (NO) production by endothelial nitric oxide synthase (eNOS) inhibits platelet and leukocyte adhesion while promoting vasorelaxation in smooth muscle cells. Dysfunctional regulation of eNOS is a hallmark of various vascular pathologies, notably atherosclerosis, often associated with areas of low shear stress on endothelial cells (ECs). While the link between EC morphology and local hemodynamics is acknowledged, the specific impact of EC morphology on eNOS regulation remains unclear. Morphological differences between elongated, aligned ECs and polygonal, randomly oriented ECs correspond to variations in focal adhesion and cytoskeletal organization, suggesting differing levels of cytoskeletal prestress. However, the functional outcomes of cytoskeletal prestress, particularly in the absence of shear stress, are not extensively studied in ECs. Some evidence suggests that elongated ECs exhibit decreased immunogenicity and enhanced NO production. This study aims to elucidate the signaling pathways governing VEGF-stimulated eNOS regulation in the aligned EC phenotype characterized by elongated and aligned cells within a monolayer. Using anisotropic topographic cues, bovine aortic endothelial cells (BAECs) were elongated and aligned, followed by VEGF treatment in the presence or absence of cytoskeletal tension inhibitors. Phosphorylation of eNOS ser1179, AKT ser437 and FAK Tyr397 in response to VEGF challenge were significantly heightened in aligned ECs compared to unaligned ECs. Moreover this response proved to be robustly tied to cytoskeletal tension as evinced by the abrogation of responses in the presence of the myosin II ATPase inhibitor, blebbistatin. Notably, this work demonstrates for the first time the reliance on FAK phosphorylation in VEGF-mediated eNOS activation and the comparatively greater contribution of the cytoskeletal machinery in propagating VEGF-eNOS signaling in aligned and elongated ECs. This research underscores the importance of utilizing appropriate vascular models in drug development and sheds light on potential mechanisms underlying vascular function and pathology that can help inform vascular graft design.

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来源期刊
Cytoskeleton
Cytoskeleton CELL BIOLOGY-
CiteScore
5.50
自引率
3.40%
发文量
24
审稿时长
6-12 weeks
期刊介绍: Cytoskeleton focuses on all aspects of cytoskeletal research in healthy and diseased states, spanning genetic and cell biological observations, biochemical, biophysical and structural studies, mathematical modeling and theory. This includes, but is certainly not limited to, classic polymer systems of eukaryotic cells and their structural sites of attachment on membranes and organelles, as well as the bacterial cytoskeleton, the nucleoskeleton, and uncoventional polymer systems with structural/organizational roles. Cytoskeleton is published in 12 issues annually, and special issues will be dedicated to especially-active or newly-emerging areas of cytoskeletal research.
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