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三维纤维连接蛋白和纤维连接蛋白-胶原细胞外基质对神经突生长和生长锥形态的差异调节。

Differential Regulation of Neurite Outgrowth and Growth Cone Morphology by 3D Fibronectin and Fibronectin-Collagen Extracellular Matrices.

机构信息

Department of Molecular Biology, Princeton University, Princeton, NJ, 08544, USA.

出版信息

Mol Neurobiol. 2022 Feb;59(2):1112-1123. doi: 10.1007/s12035-021-02637-x. Epub 2021 Nov 30.

Abstract

The extracellular matrix (ECM) plays a critical role in development, homeostasis, and regeneration of tissue structures and functions. Cell interactions with the ECM are dynamic and cells respond to ECM remodeling by changes in morphology and motility. During nerve regeneration, the ECM facilitates neurite outgrowth and guides axons with target specificity. Decellularized ECMs retain structural, biochemical, and biomechanical cues of native ECM and have the potential to replace damaged matrix to support cell activities during tissue repair. To determine the ECM components that contribute to nerve regeneration, we analyzed neuron-ECM interactions on two types of decellularized ECM. One matrix was composed primarily of fibronectin (FN) fibrils, and the other FN-rich ECM also contained significant numbers of type I collagen (COL I) fibrils. Using primary neurons dissociated from superior cervical ganglion (SCG) explants, we found that neurites were extended on both matrices without a significant difference in average neurite length after 24 h. The most distinctive features of neurites on the FN matrix were numerous short actin-filled protrusions and longer branches extending from neurite shafts. Very few protrusions and branches were detected on FN-COL matrix. Growth cone morphologies also differed with mostly filopodial growth cones on FN matrix whereas on FN-COL matrix, equivalent numbers of filopodial and slender growth cones were formed. Our work provides new information about how changes in major components of the ECM during tissue repair modulate neuron and growth cone morphologies and helps to define the contributions of neuron-ECM interactions to nerve development and regeneration.

摘要

细胞外基质 (ECM) 在组织结构和功能的发育、稳态和再生中起着关键作用。细胞与 ECM 的相互作用是动态的,细胞通过形态和运动的变化来响应 ECM 的重塑。在神经再生过程中,ECM 促进轴突生长并具有靶向特异性地引导轴突。脱细胞 ECM 保留了天然 ECM 的结构、生化和生物力学线索,并且具有替代受损基质的潜力,以在组织修复过程中支持细胞活动。为了确定有助于神经再生的 ECM 成分,我们分析了两种脱细胞 ECM 上的神经元-ECM 相互作用。一种基质主要由纤维连接蛋白 (FN) 纤维组成,而另一种富含 FN 的 ECM 还含有大量的 I 型胶原 (COL I) 纤维。使用从颈上神经节 (SCG) 外植体分离的原代神经元,我们发现,在 24 小时后,神经元在两种基质上都延伸了轴突,平均轴突长度没有显著差异。在 FN 基质上,轴突的最显著特征是有许多充满肌动蛋白的短突起和从轴突干延伸的较长分支。在 FN-COL 基质上,很少检测到突起和分支。生长锥形态也不同,FN 基质上主要是丝状生长锥,而 FN-COL 基质上则形成了等量的丝状和细长生长锥。我们的工作提供了关于组织修复过程中 ECM 主要成分变化如何调节神经元和生长锥形态的新信息,并有助于确定神经元-ECM 相互作用对神经发育和再生的贡献。

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本文引用的文献

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Cell-derived decellularized extracellular matrices.细胞衍生的去细胞化细胞外基质。
Methods Cell Biol. 2018;143:97-114. doi: 10.1016/bs.mcb.2017.08.007. Epub 2017 Nov 2.
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Actin-based growth cone motility and guidance.基于肌动蛋白的生长锥运动和导向。
Mol Cell Neurosci. 2017 Oct;84:4-10. doi: 10.1016/j.mcn.2017.03.001. Epub 2017 Mar 6.

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