Heterogeneous focal adhesion cytoskeleton nanoarchitectures from microengineered interfacial curvature to oversee nuclear remodeling and mechanotransduction of mesenchymal stem cells.

IF 10.2 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Cellular & Molecular Biology Letters Pub Date : 2025-01-24 DOI:10.1186/s11658-025-00692-z
Huayu Fan, Hui Zhao, Yan Hou, Danni Meng, Jizong Jiang, Eon-Bee Lee, Yinzheng Fu, Xiangdong Zhang, Rui Chen, Yongtao Wang
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Abstract

Background: Interfacial heterogeneity is widely explored to reveal molecular mechanisms of force-mediated pathways due to biased tension. However, the influence of cell density,, curvature, and interfacial heterogeneity on underlying pathways of mechanotransduction is obscure.

Methods: Polydimethylsiloxane (PDMS)-based stencils were micropatterned to prepare the micropores for cell culture. The colonies of human mesenchymal stem cells (hMSCs) were formed by controlling cell seeding density to investigate the influences of cell density, curvature and heterogeneity on mechanotransduction. Immunofluorescent staining of integrin, vinculin, and talin-1 was conducted to evaluate adhesion-related expression levels. Then, immunofluorescent staining of actin, actinin, and myosin was performed to detect cytoskeleton distribution, especially at the periphery. Nuclear force-sensing mechanotransduction was explained by yes-associated protein (YAP) and laminA/C analysis.

Results: The micropatterned colony of hMSCs demonstrated the coincident characters with engineered micropores of microstencils. The cell colony obviously developed the heterogeneous morphogenesis. Heterogeneous focal adhesion guided the development of actin, actinin, and myosin together to regulate cellular contractility and movement by integrin, vinculin, and talin-1. Cytoskeletal staining showed that actin, actinin, and myosin fibers were reorganized at the periphery of microstencils. YAP nuclear translocation and laminA/C nuclear remodeling were enhanced at the periphery by the regulation of heterogeneous focal adhesion (FA) and cytoskeleton arrangement.

Conclusions: The characters of the engineered clustering colony showed similar results with prepared microstencils, and colony curvature was also well adjusted to establish heterogeneous balance at the periphery of cell colony. The mechanism of curvature, spreading, and elongation was also investigated to disclose the compliance of FA and cytoskeleton along with curvature microarrays for increased nuclear force-sensing mechanotransduction. The results may provide helpful information for understanding interfacial heterogeneity and nuclear mechanotransduction of stem cells.

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从微工程界面曲率观察间充质干细胞核重塑和机械转导的异质局灶黏附细胞骨架纳米结构。
背景:界面非均质性被广泛研究,以揭示由偏张力引起的力介导途径的分子机制。然而,细胞密度、曲率和界面异质性对机械转导的潜在途径的影响尚不清楚。方法:采用聚二甲基硅氧烷(PDMS)为基质,制备微孔进行细胞培养。通过控制细胞播种密度形成人间充质干细胞(hMSCs)集落,探讨细胞密度、曲率和非均质性对机械转导的影响。免疫荧光染色整合素、血管素和talin-1来评估粘附相关的表达水平。然后,对肌动蛋白、肌动蛋白和肌球蛋白进行免疫荧光染色,以检测细胞骨架的分布,特别是在周围。核力传感机械转导由yes-associated protein (YAP)和laminA/C分析解释。结果:hMSCs的微图案集落与微模板的工程微孔具有一致性。细胞群明显发生异质形态发生。异质局灶黏附引导肌动蛋白、肌动蛋白和肌凝蛋白共同发育,通过整合素、血管素和talin-1调节细胞收缩和运动。细胞骨架染色显示肌动蛋白、肌动蛋白和肌球蛋白纤维在微模板周围重组。外周YAP核易位和laminA/C核重构通过调控异质局灶黏附(FA)和细胞骨架排列而增强。结论:工程聚类菌落的特性与制备的微模板相似,菌落曲率也得到了很好的调整,在细胞菌落周围建立了异质平衡。研究人员还研究了曲率、扩散和伸长的机制,以揭示FA和细胞骨架以及曲率微阵列对增加核力传感机械转导的顺应性。这一结果可能为理解干细胞的界面异质性和核机械转导提供有益的信息。
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来源期刊
Cellular & Molecular Biology Letters
Cellular & Molecular Biology Letters 生物-生化与分子生物学
CiteScore
11.60
自引率
13.30%
发文量
101
审稿时长
3 months
期刊介绍: Cellular & Molecular Biology Letters is an international journal dedicated to the dissemination of fundamental knowledge in all areas of cellular and molecular biology, cancer cell biology, and certain aspects of biochemistry, biophysics and biotechnology.
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