Jiang Wenli, Yao Xinghong, Zhong Jian, Ouyang Zhi, Shen Junyi, Qiu Yan, Zeng Ye
Institute of Biomedical Engineering, West China School of Basic Medical Sciences & Forensic Medicine, Sichuan University, Chengdu, PR China.
Department of Radiotherapy, Radiation Oncology Key Laboratory of Sichuan Province, Sichuan Clinical Research Center for Cancer, Sichuan Cancer Hospital and Institute, Sichuan Cancer Center, Affiliated Cancer Hospital of University of Electronic Science and Technology of China, Chengdu, PR China.
Mater Today Bio. 2024 Apr 30;26:101074. doi: 10.1016/j.mtbio.2024.101074. eCollection 2024 Jun.
The mechanical environment of vascular endothelial cells (ECs) encompasses a wide range of curvatures due to variations in blood vessel diameters. Integrins, key mediators of cell-matrix interactions, establish connections between the extracellular matrix and the actin cytoskeleton, influencing diverse cellular behaviors. In this study, we explored the impact of spatial confinement on human umbilical vein ECs (HUVECs) cultured within three-dimensional hydrogel microgrooves of varying curvatures and the underlying role of integrins in mediating cellular responses. Employing maskless lithography, we successfully fabricated precise and wall curvatures-controlled hydrogel microgrooves, conferring spatial constraints on the cells. Our investigations revealed substantial alterations in HUVEC behavior within the hydrogel microgrooves with varying sidewall curvatures, marked by reduced cell size, enhanced orientation, and increased apoptosis. Interestingly, microgroove curvature emerged as a crucial factor influencing cell orientation and apoptosis, with rectangular microgrooves eliciting distinct changes in cell orientation, while ring-form microgrooves exhibited higher apoptosis rates. The side-wall effect in the 20 μm region near the microgroove wall had the greatest influence on cell orientation and apoptosis. HUVECs within the microgrooves exhibited elevated integrin expression, and inhibition of αV-integrin by cilengitide significantly curtailed cell apoptosis without affecting proliferation. Additionally, integrin-mediated cell traction force closely correlated with the spatial confinement effect. Cilengitide not only reduced integrin and focal adhesion expression but also attenuated cell traction force and cytoskeletal actin filament alignment. Overall, our findings elucidate the spatial confinement of ECs in hydrogel microgrooves and underscores the pivotal role of integrins, particularly αV-integrin, in mediating cell traction force and apoptosis within this microenvironment.
由于血管直径的变化,血管内皮细胞(ECs)的力学环境包含了广泛的曲率范围。整合素是细胞与基质相互作用的关键介质,它在细胞外基质和肌动蛋白细胞骨架之间建立连接,影响多种细胞行为。在本研究中,我们探讨了空间限制对培养在不同曲率的三维水凝胶微槽中的人脐静脉内皮细胞(HUVECs)的影响,以及整合素在介导细胞反应中的潜在作用。利用无掩膜光刻技术,我们成功制造了精确且侧壁曲率可控的水凝胶微槽,从而对细胞施加了空间限制。我们的研究表明,在具有不同侧壁曲率的水凝胶微槽中,HUVECs的行为发生了显著变化,表现为细胞尺寸减小、取向增强和凋亡增加。有趣的是,微槽曲率成为影响细胞取向和凋亡的关键因素,矩形微槽引起细胞取向的明显变化,而环形微槽则表现出更高的凋亡率。微槽壁附近20μm区域的侧壁效应对细胞取向和凋亡的影响最大。微槽内的HUVECs整合素表达升高,西仑吉肽抑制αV整合素可显著减少细胞凋亡,而不影响细胞增殖。此外,整合素介导的细胞牵引力与空间限制效应密切相关。西仑吉肽不仅降低了整合素和粘着斑的表达,还减弱了细胞牵引力和细胞骨架肌动蛋白丝的排列。总的来说,我们的研究结果阐明了水凝胶微槽中ECs的空间限制,并强调了整合素,特别是αV整合素,在介导这种微环境中的细胞牵引力和凋亡方面的关键作用。