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反应扩散信号如何控制蝾螈脊髓再生:一项建模研究。

How a reaction-diffusion signal can control spinal cord regeneration in axolotls: A modeling study.

作者信息

Caliaro Valeria, Peurichard Diane, Chara Osvaldo

机构信息

Inria Paris, team MAMBA, Sorbonne Université, CNRS, Université de Paris, Laboratoire Jacques-Louis Lions UMR7598, 75005 Paris, France.

School of Biosciences, University of Nottingham, Sutton Bonington Campus, Nottingham LE12 5RD, UK.

出版信息

iScience. 2024 Jun 6;27(7):110197. doi: 10.1016/j.isci.2024.110197. eCollection 2024 Jul 19.

Abstract

Axolotls are uniquely able to completely regenerate the spinal cord after amputation. The underlying governing mechanisms of this regenerative response have not yet been fully elucidated. We previously found that spinal cord regeneration is mainly driven by cell-cycle acceleration of ependymal cells, recruited by a hypothetical signal propagating from the injury. However, the nature of the signal and its propagation remain unknown. In this theoretical study, we investigated whether the regeneration-inducing signal can follow a reaction-diffusion process. We developed a computational model, validated it with experimental data, and showed that the signal dynamics can be understood in terms of reaction-diffusion mechanism. By developing a theory of the regenerating outgrowth in the limit of fast reaction-diffusion, we demonstrate that control of regenerative response solely relies on cell-to-signal sensitivity and the signal reaction-diffusion characteristic length. This study lays foundations for further identification of the signal controlling regeneration of the spinal cord.

摘要

美西螈在脊髓切断后能够独特地完全再生脊髓。这种再生反应的潜在调控机制尚未完全阐明。我们之前发现,脊髓再生主要由室管膜细胞的细胞周期加速驱动,室管膜细胞是由从损伤处传播的一种假设信号招募而来的。然而,该信号的性质及其传播方式仍然未知。在这项理论研究中,我们研究了再生诱导信号是否能遵循反应扩散过程。我们开发了一个计算模型,并用实验数据对其进行了验证,结果表明信号动力学可以用反应扩散机制来理解。通过在快速反应扩散的极限情况下建立再生生长的理论,我们证明了对再生反应的控制仅依赖于细胞对信号的敏感性和信号反应扩散特征长度。这项研究为进一步识别控制脊髓再生的信号奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e918/11253152/1ca6bf85f51a/fx1.jpg

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