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周围神经损伤诱导紧密连接成分的动态变化。

Peripheral Nerve Injury Induces Dynamic Changes of Tight Junction Components.

作者信息

Wang Xinghui, Miao Yang, Ni Jun, Wang Yaxian, Qian Tianmei, Yu Jun, Liu Qianyan, Wang Pan, Yi Sheng

机构信息

Key Laboratory of Neuroregeneration of Jiangsu and Ministry of Education, Co-innovation Center of Neuroregeneration, Nantong University, Nantong, China.

Department of Pharmacy, Yancheng City No. 1 Peoples' Hospital, Yancheng, China.

出版信息

Front Physiol. 2018 Oct 30;9:1519. doi: 10.3389/fphys.2018.01519. eCollection 2018.

Abstract

Tight junctions seal off physical barriers, regulate fluid and solute flow, and protect the endoneurial microenvironment of the peripheral nervous system. Physical barriers in the peripheral nervous system were disrupted after nerve injury. However, the dynamic changes of tight junction components after peripheral nerve injury have not been fully determined yet. In the current study, by using previously obtained deep sequencing outcomes and bioinformatic tools, we found that tight junction signaling pathway was activated after peripheral nerve injury. The investigation of the temporal expression patterns of components in tight junction signaling pathway suggested that many claudin family members were down-regulated after nerve injury. Moreover, we examined the effects of matrix metalloproteinases 7 and 9 (MMP7 and MMP9) on tight junction genes both and and found that MMP7 and MMP9 modulated the expressions of genes coding for claudin 1, claudin 10, and claudin 22. Our study revealed the dynamic changes of tight junction components after peripheral nerve injury and thus might contribute to the understanding of the molecular mechanisms underlying peripheral nerve injury and regeneration.

摘要

紧密连接封闭物理屏障,调节液体和溶质流动,并保护周围神经系统的神经内膜微环境。神经损伤后,周围神经系统中的物理屏障会被破坏。然而,周围神经损伤后紧密连接成分的动态变化尚未完全明确。在本研究中,通过使用先前获得的深度测序结果和生物信息学工具,我们发现周围神经损伤后紧密连接信号通路被激活。对紧密连接信号通路中成分的时间表达模式的研究表明,许多claudin家族成员在神经损伤后表达下调。此外,我们研究了基质金属蛋白酶7和9(MMP7和MMP9)对紧密连接基因的影响,发现MMP7和MMP9调节编码claudin 1、claudin 10和claudin 22的基因的表达。我们的研究揭示了周围神经损伤后紧密连接成分的动态变化,因此可能有助于理解周围神经损伤和再生的分子机制。

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