A DISCRETE-EVENT SIMULATION APPROACH TO IDENTIFY RULES THAT GOVERN ARBOR REMODELING FOR BRANCHING CUTANEOUS AFFERENTS IN HAIRY SKIN.

Hyojung Kang, Rachel L Orlowsky, Gregory J Gerling
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Abstract

In mammals, touch is encoded by sensory receptors embedded in the skin. For one class of receptors in the mouse, the architecture of its Merkel cells, unmyelinated neurites, and heminodes follow particular renewal and remodeling trends over hair cycle stages from ages 4 to 10 weeks. As it is currently impossible to observe such trends across a single animal's hair cycle, this work employs discrete event simulation to identify and evaluate policies of Merkel cell and heminode dynamics. Well matching the observed data, the results show that the baseline model replicates dynamic remodeling behaviors between stages of the hair cycle - based on particular addition and removal polices and estimated probabilities tied to constituent parts of Merkel cells, terminal branch neurites and heminodes. The analysis shows further that certain policies hold greater influence than others. This use of computation is a novel approach to understanding neuronal development.

Abstract Image

Abstract Image

Abstract Image

一种离散事件模拟方法,以确定控制毛状皮肤分支皮肤传入的乔木重塑规则。
在哺乳动物中,触觉是由嵌入皮肤中的感觉受体编码的。对于小鼠中的一类受体,其默克尔细胞、无髓鞘神经突和半突的结构在4至10周的头发周期阶段遵循特定的更新和重塑趋势。由于目前不可能观察到单个动物毛发周期的这种趋势,因此本研究采用离散事件模拟来识别和评估默克尔细胞和heminode动力学的政策。与观察到的数据很好地匹配,结果表明,基线模型复制了毛发周期各阶段之间的动态重塑行为——基于特定的添加和移除策略,以及与默克尔细胞、末端分支神经突和半球相关的组成部分的估计概率。分析进一步表明,某些政策的影响力大于其他政策。这种计算的使用是一种理解神经元发育的新方法。
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