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伤口反应的超快速和远距离协调对于全身再生至关重要。

Ultrafast and long-range coordination of wound responses is essential for whole-body regeneration.

作者信息

Fan Yuhang, Chai Chew, Li Pengyang, Zou Xinzhi, Ferrell James E, Wang Bo

机构信息

Department of Bioengineering, Stanford University, Stanford, CA, USA.

Department of Chemical and Systems Biology, Stanford University School of Medicine, Stanford, CA, USA.

出版信息

bioRxiv. 2023 Mar 16:2023.03.15.532844. doi: 10.1101/2023.03.15.532844.

Abstract

Injury induces systemic, global responses whose functions remain elusive. In addition, mechanisms that rapidly synchronize wound responses through long distances across the organismal scale are mostly unknown. Using planarians, which have extreme regenerative ability, we report that injury induces Erk activity to travel in a wave-like manner at an unexpected speed (∼1 mm/h), 10-100 times faster than those measured in other multicellular tissues. This ultrafast signal propagation requires longitudinal body-wall muscles, elongated cells forming dense parallel tracks running the length of the organism. Combining experiments and computational models, we show that the morphological properties of muscles allow them to minimize the number of slow intercellular signaling steps and act as bidirectional superhighways for propagating wound signals and instructing responses in other cell types. Inhibiting Erk propagation prevents cells distant to the wound from responding and blocks regeneration, which can be rescued by a second injury to distal tissues within a narrow time window after the first injury. These results suggest that rapid responses in uninjured tissues far from wounds are essential for regeneration. Our findings provide a mechanism for long-range signal propagation in large and complex tissues to coordinate cellular responses across diverse cell types, and highlights the function of feedback between spatially separated tissues during whole-body regeneration.

摘要

损伤会引发全身性的整体反应,但其功能仍不明确。此外,在整个生物体尺度上通过长距离快速同步伤口反应的机制大多尚不清楚。利用具有极强再生能力的涡虫,我们发现损伤会诱导细胞外信号调节激酶(Erk)活性以一种意想不到的速度(约1毫米/小时)呈波浪状传播,这比在其他多细胞组织中测得的速度快10至100倍。这种超快速的信号传播需要纵向体壁肌肉,这些细长的细胞形成密集的平行轨迹贯穿生物体的长度。结合实验和计算模型,我们表明肌肉的形态特性使其能够尽量减少缓慢的细胞间信号传导步骤的数量,并充当双向高速公路,用于传播伤口信号并指导其他细胞类型的反应。抑制Erk传播会阻止远离伤口的细胞做出反应并阻断再生,而在首次损伤后的狭窄时间窗口内对远端组织进行第二次损伤可以挽救这种情况。这些结果表明,远离伤口的未损伤组织中的快速反应对于再生至关重要。我们的发现为大型复杂组织中的长距离信号传播提供了一种机制,以协调不同细胞类型之间的细胞反应,并突出了全身再生过程中空间分离组织之间反馈的功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a22b/10055111/6480469683c6/nihpp-2023.03.15.532844v1-f0001.jpg

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