Physiological controls of large-scale patterning in planarian regeneration: a molecular and computational perspective on growth and form.

Regeneration (Oxford, England) Pub Date : 2016-04-28 eCollection Date: 2016-04-01 DOI:10.1002/reg2.54
Fallon Durant, Daniel Lobo, Jennifer Hammelman, Michael Levin
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Abstract

Planaria are complex metazoans that repair damage to their bodies and cease remodeling when a correct anatomy has been achieved. This model system offers a unique opportunity to understand how large-scale anatomical homeostasis emerges from the activities of individual cells. Much progress has been made on the molecular genetics of stem cell activity in planaria. However, recent data also indicate that the global pattern is regulated by physiological circuits composed of ionic and neurotransmitter signaling. Here, we overview the multi-scale problem of understanding pattern regulation in planaria, with specific focus on bioelectric signaling via ion channels and gap junctions (electrical synapses), and computational efforts to extract explanatory models from functional and molecular data on regeneration. We present a perspective that interprets results in this fascinating field using concepts from dynamical systems theory and computational neuroscience. Serving as a tractable nexus between genetic, physiological, and computational approaches to pattern regulation, planarian pattern homeostasis harbors many deep insights for regenerative medicine, evolutionary biology, and engineering.

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刨形动物再生过程中大规模模式化的生理学控制:从分子和计算角度看生长和形态。
浮游动物是一种复杂的后生动物,它们会修复身体受到的损伤,并在获得正确的解剖结构后停止重塑。这种模式系统提供了一个独特的机会,让我们了解个体细胞的活动如何产生大规模的解剖平衡。干细胞活动的分子遗传学研究已取得很大进展。然而,最近的数据也表明,全局模式是由离子和神经递质信号组成的生理回路调节的。在此,我们概述了理解扁形目动物模式调控的多尺度问题,特别关注通过离子通道和缝隙连接(电突触)进行的生物电信号传导,以及从再生的功能和分子数据中提取解释模型的计算工作。我们提出了一个视角,利用动力系统理论和计算神经科学的概念来解释这一迷人领域的研究成果。作为基因、生理和计算模式调控方法之间的连接点,刨形动物的模式稳态为再生医学、进化生物学和工程学提供了许多深刻的见解。
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