Sanghvi-Shah Rucha, Weber Gregory F
Department of Biological Sciences, Rutgers University-NewarkNewark, NJ, United States.
Front Cell Dev Biol. 2017 Sep 14;5:81. doi: 10.3389/fcell.2017.00081. eCollection 2017.
Mechanically induced signal transduction has an essential role in development. Cells actively transduce and respond to mechanical signals and their internal architecture must manage the associated forces while also being dynamically responsive. With unique assembly-disassembly dynamics and physical properties, cytoplasmic intermediate filaments play an important role in regulating cell shape and mechanical integrity. While this function has been recognized and appreciated for more than 30 years, continually emerging data also demonstrate important roles of intermediate filaments in cell signal transduction. In this review, with a particular focus on keratins and vimentin, the relationship between the physical state of intermediate filaments and their role in mechanotransduction signaling is illustrated through a survey of current literature. Association with adhesion receptors such as cadherins and integrins provides a critical interface through which intermediate filaments are exposed to forces from a cell's environment. As a consequence, these cytoskeletal networks are posttranslationally modified, remodeled and reorganized with direct impacts on local signal transduction events and cell migratory behaviors important to development. We propose that intermediate filaments provide an opportune platform for cells to both cope with mechanical forces and modulate signal transduction.
机械诱导的信号转导在发育过程中起着至关重要的作用。细胞积极地转导并响应机械信号,其内部结构必须在管理相关力的同时保持动态响应能力。细胞质中间丝具有独特的组装 - 拆卸动力学和物理特性,在调节细胞形状和机械完整性方面发挥着重要作用。尽管这一功能在30多年前就已被认识和重视,但不断涌现的数据也表明中间丝在细胞信号转导中具有重要作用。在这篇综述中,特别关注角蛋白和波形蛋白,通过对当前文献的综述,阐述了中间丝的物理状态与其在机械转导信号中的作用之间的关系。与钙黏蛋白和整合素等黏附受体的结合提供了一个关键界面,通过该界面中间丝暴露于来自细胞环境的力。因此,这些细胞骨架网络在翻译后被修饰、重塑和重组,直接影响局部信号转导事件和对发育重要的细胞迁移行为。我们认为中间丝为细胞应对机械力和调节信号转导提供了一个合适的平台。