机械转导蛋白STOML3是周围神经再生后本体感受器可塑性所必需的。

IF 2.6 4区 医学 Q2 PHYSIOLOGY
Julia Haseleu, Jan Walcher, Gary R Lewin
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引用次数: 0

摘要

神经再生与感觉神经元的可塑性有关,因此,即使是指向皮肤的肌肉传入神经也会形成适合新目标的机械敏感感受野。STOML3是许多皮肤机械感受器中必不可少的机械转导成分。在这里,我们询问周围神经再生后是否需要STOML3来维持功能和解剖可塑性。我们使用了一个适合小鼠的交叉吻合模型,其中腓肠肌内侧神经被重定向到支配先前被腓肠神经占据的毛状皮肤。我们记录了神经支配皮肤的肌肉传入神经,发现野生型小鼠的接受特性与正常皮肤机械感受器基本相同。然而,在缺乏STOML3的小鼠中,肌肉传入神经在很大程度上未能形成功能性的机械敏感感受野,尽管在皮肤中形成了解剖学上合适的末梢。我们的追踪实验表明,野生型和stoml3突变小鼠的肌肉传入神经都表现出显著的解剖可塑性,在代表腓肠神经区域的背角区域形成新的体位适宜的突触终端。在stoml3突变小鼠中,交叉吻合腓肠肌神经刺激引起的活动的急剧减少并没有阻止中枢解剖可塑性。我们的研究结果已经确定了周围神经损伤后功能可塑性所需的分子因子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The mechanotransduction protein STOML3 is required for proprioceptor plasticity following peripheral nerve regeneration.

Nerve regeneration is associated with the plasticity of sensory neurons such that even muscle afferents directed to the skin form mechanosensitive receptive fields appropriate for the new target. STOML3 is an essential mechanotransduction component in many cutaneous mechanoreceptors. Here, we asked whether STOML3 is required for functional and anatomical plasticity following peripheral nerve regeneration. We used a cross-anastomosis model adapted to the mouse, in which the medial gastrocnemius nerve was redirected to innervate hairy skin previously occupied by the sural nerve. We recorded from muscle afferents innervating the skin and found that in wild-type mice their receptive properties were largely identical to normal skin mechanoreceptors. However, in mice lacking STOML3, muscle afferents largely failed to form functional mechanosensitive receptive fields, despite making anatomically appropriate endings in the skin. Our tracing experiments demonstrated that muscle afferents from both wild-type and stoml3 mutant mice display remarkable anatomical plasticity, forming new somatotopically appropriate synaptic terminals in the region of the dorsal horn representing the sural nerve territory. The dramatic reduction in stimulus-evoked activity from the cross-anastomosed gastrocnemius nerve in stoml3 mutant mice did not prevent central anatomical plasticity. Our results have identified a molecular factor required for functional plasticity following peripheral nerve injury.

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来源期刊
Experimental Physiology
Experimental Physiology 医学-生理学
CiteScore
5.10
自引率
3.70%
发文量
262
审稿时长
1 months
期刊介绍: Experimental Physiology publishes research papers that report novel insights into homeostatic and adaptive responses in health, as well as those that further our understanding of pathophysiological mechanisms in disease. We encourage papers that embrace the journal’s orientation of translation and integration, including studies of the adaptive responses to exercise, acute and chronic environmental stressors, growth and aging, and diseases where integrative homeostatic mechanisms play a key role in the response to and evolution of the disease process. Examples of such diseases include hypertension, heart failure, hypoxic lung disease, endocrine and neurological disorders. We are also keen to publish research that has a translational aspect or clinical application. Comparative physiology work that can be applied to aid the understanding human physiology is also encouraged. Manuscripts that report the use of bioinformatic, genomic, molecular, proteomic and cellular techniques to provide novel insights into integrative physiological and pathophysiological mechanisms are welcomed.
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