微管作为信号中枢,在应对机械力时促进轴突生长。

Microtubules as a signal hub for axon growth in response to mechanical force.

机构信息

Department of Biology, Università di Pisa, Pisa, 56127, Italy.

出版信息

Biol Chem. 2023 Sep 8;405(1):67-77. doi: 10.1515/hsz-2023-0173. Print 2024 Jan 29.

Abstract

Microtubules are highly polar structures and are characterized by high anisotropy and stiffness. In neurons, they play a key role in the directional transport of vesicles and organelles. In the neuronal projections called axons, they form parallel bundles, mostly oriented with the plus-end towards the axonal termination. Their physico-chemical properties have recently attracted attention as a potential candidate in sensing, processing and transducing physical signals generated by mechanical forces. Here, we discuss the main evidence supporting the role of microtubules as a signal hub for axon growth in response to a traction force. Applying a tension to the axon appears to stabilize the microtubules, which, in turn, coordinate a modulation of axonal transport, local translation and their cross-talk. We speculate on the possible mechanisms modulating microtubule dynamics under tension, based on evidence collected in neuronal and non-neuronal cell types. However, the fundamental question of the causal relationship between these mechanisms is still elusive because the mechano-sensitive element in this chain has not yet been identified.

摘要

微管是高度极性的结构,其特点是具有高各向异性和刚性。在神经元中,它们在囊泡和细胞器的定向运输中发挥关键作用。在称为轴突的神经元突起中,它们形成平行束,主要与轴突末端的正极方向一致。最近,它们的物理化学性质作为一种潜在的候选物,引起了人们对机械力产生的物理信号的传感、处理和转导的关注。在这里,我们讨论了支持微管作为牵引力作用下轴突生长信号中枢的主要证据。对轴突施加张力似乎可以稳定微管,微管反过来协调轴突运输、局部翻译及其串扰的调节。我们根据在神经元和非神经元细胞类型中收集的证据,推测在张力下调节微管动力学的可能机制。然而,由于尚未确定该链中的机械敏感元件,因此关于这些机制之间因果关系的基本问题仍然难以捉摸。

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