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Regulation of cell behavior and tissue patterning by bioelectrical signals: Challenges and opportunities for biomedical engineering

机译:通过生物电信号调节细胞行为和组织模式:生物医学工程的挑战和机遇

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Achieving control over cell behavior and pattern formation requires molecular-level understanding of regulatory mechanisms. Alongside transcriptional networks and biochemical gradients, there functions an important system of cellular communication and control: transmembrane voltage gradients (Vmem). Bioelectrical signals encoded in spatiotemporal changes of Vmem control cell proliferation, migration, and differentiation. Moreover, endogenous bioelectrical gradients serve as instructive cues mediating anatomical polarity and other organ-level aspects of morphogenesis. In the past decade, significant advances in molecular physiology have enabled the development of new genetic and biophysical tools for the investigation and functional manipulation of bioelectric cues. Recent data implicate Vmem as a crucial epigenetic regulator of patterning events in embryogenesis, regeneration, and cancer. We review new conceptual and methodological developments in this fascinating field. Bioelectricity offers a novel way of quantitatively understanding regulation of growth and form in vivo, and it reveals tractable, powerful control points that will enable truly transformative applications in bioengineering, regenerative medicine, and synthetic biology.
机译:要实现对细胞行为和模式形成的控制,需要从分子水平上了解调节机制。除转录网络和生化梯度外,还有一个重要的细胞通讯和控制系统:跨膜电压梯度(Vmem)。 Vmem的时空变化编码的生物电信号控制细胞的增殖,迁移和分化。此外,内源性生物电梯度充当指导性提示,介导解剖学极性和形态发生的其他器官水平方面。在过去的十年中,分子生理学的重大进步使得能够开发新的遗传和生物物理工具来研究和控制生物电信号。最新数据表明,Vmem是胚胎发生,再生和癌症中构图事件的重要表观遗传调控因子。我们回顾了这个引人入胜的领域中新的概念和方法的发展。生物电学提供了一种定量了解体内生长和形态调节的新颖方法,并揭示了易于控制的强大控制点,这些控制点将能够在生物工程,再生医学和合成生物学中实现真正的变革性应用。

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