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Cracking the bioelectric code

机译:破解生物电密码

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摘要

Patterns of resting potential in non-excitable cells of living tissue are now known to be instructive signals for pattern formation during embryogenesis, regeneration and cancer suppression. The development of molecular-level techniques for tracking ion flows and functionally manipulating the activity of ion channels and pumps has begun to reveal the mechanisms by which voltage gradients regulate cell behaviors and the assembly of complex large-scale structures. A recent paper demonstrated that a specific voltage range is necessary for demarcation of eye fields in the frog embryo. Remarkably, artificially setting other somatic cells to the eye-specific voltage range resulted in formation of eyes in aberrant locations, including tissues that are not in the normal anterior ectoderm lineage: eyes could be formed in the gut, on the tail, or in the lateral plate mesoderm. These data challenge the existing models of eye fate restriction and tissue competence maps, and suggest the presence of a bioelectric code—a mapping of physiological properties to anatomical outcomes. This Addendum summarizes the current state of knowledge in developmental bioelectricity, proposes three possible interpretations of the bioelectric code that functionally maps physiological states to anatomical outcomes, and highlights the biggest open questions in this field. We also suggest a speculative hypothesis at the intersection of cognitive science and developmental biology: that bioelectrical signaling among non-excitable cells coupled by gap junctions simulates neural network-like dynamics, and underlies the information processing functions required by complex pattern formation in vivo. Understanding and learning to control the information stored in physiological networks will have transformative implications for developmental biology, regenerative medicine and synthetic bioengineering.
机译:现在已知,活组织的非兴奋性细胞中的静息电位模式是在胚胎发生,再生和癌症抑制过程中形成模式的指导性信号。跟踪离子流并在功能上操纵离子通道和泵的活动的分子水平技术的发展已开始揭示电压梯度调节细胞行为和复杂大规模结构组装的机制。最近的一篇论文表明,特定的电压范围对于青蛙胚胎的眼界标定是必需的。值得注意的是,将其他体细胞人工设置到特定于眼睛的电压范围会导致在异常位置形成眼睛,包括不在正常前外胚层谱系中的组织:眼睛可能会在肠道,尾巴或鼻中形成。侧板中胚层。这些数据挑战了现有的眼球限制和组织能力图模型,并暗示了生物电码的存在-生理特性与解剖结果的映射。本附录总结了发展性生物电的当前知识状态,提出了对生物电代码的三种可能的解释,这些解释在功能上将生理状态映射到解剖结果,并突出了该领域最大的开放性问题。我们还在认知科学和发育生物学的交叉点提出了一个推测性假设:通过间隙连接耦合的非兴奋性细胞之间的生物电信号传导模拟了类似神经网络的动力学,并奠定了体内复杂模式形成所需的信息处理功能的基础。理解和学习控制存储在生理网络中的信息将对发育生物学,再生医学和合成生物工程产生变革性的影响。

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