论文标题

视网膜器官:进入神经元系统的生物物理学的窗口

Retina organoids: Window into the biophysics of neuronal systems

论文作者

Salbaum, Katja A., Shelton, Elijah R., Serwane, Friedhelm

论文摘要

人类视网膜具有一种磁性,吸引了神经科学家和物理学家的眼睛。它作为一个自组织系统具有吸引力,它通过生化和机械提示形成中枢神经系统的一部分。视网膜还吸引了作为电光装置,将光子转换为电压以在将信号发送到我们的大脑之前进行直通过滤。在这里,我们考虑了干细胞在视网膜的体外类似物中的出现,称为视网膜类器官,在复杂的神经元网络中对光学,电气和力学之间的相互作用进行了探索,所有这些都在Petri菜肴中。这篇综述通过强调与体内视网膜生成的生化和机械信号的联系来介绍最新的视网膜器官方案。当视网膜类器官产生光敏并突触连接的感光体时,活动信号处理的电生理记录变得可能是可能的。实验性生物物理工具提供了数据,以指导以不同级别的粗晶状体运行的数学模型的发展。在协同的过程中,它们提供了一种研究机械因素如何指导视网膜自组装的方法。反过来,这种理解为定制神经元网络形态增长所需的机械信号的工程提供了信息。解决视网膜中复杂的发展和计算过程需要跨学科的努力组合实验与理论,物理学和生物学。奖励是诱人的:在接下来的几年中,视网膜类型器可以在同时的细胞自组装和信号处理的机械内瞥见,这都是在体外环境中的。

With a kind of magnetism, the human retina draws the eye of neuroscientist and physicist alike. It is attractive as a self-organizing system, which forms as a part of the central nervous system via biochemical and mechanical cues. The retina is also intriguing as an electro-optical device, converting photons into voltages to perform on-the-fly filtering before the signals are sent to our brain. Here, we consider how the advent of stem cell derived in vitro analogs of the retina, termed retina organoids, opens up an exploration of the interplay between optics, electrics, and mechanics in a complex neuronal network, all in a Petri dish. This review presents state-of-the-art retina organoid protocols by emphasizing links to the biochemical and mechanical signals of in vivo retinogenesis. Electrophysiological recording of active signal processing becomes possible as retina organoids generate light sensitive and synaptically connected photoreceptors. Experimental biophysical tools provide data to steer the development of mathematical models operating at different levels of coarse-graining. In concert, they provide a means to study how mechanical factors guide retina self-assembly. In turn, this understanding informs the engineering of mechanical signals required to tailor the growth of neuronal network morphology. Tackling the complex developmental and computational processes in the retina requires an interdisciplinary endeavor combining experiment and theory, physics, and biology. The reward is enticing: in the next few years, retina organoids could offer a glimpse inside the machinery of simultaneous cellular self-assembly and signal processing, all in an in vitro setting.

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