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通过将去细胞神经基质整合到纳米纤维引导上来促进神经突生长和雪旺细胞迁移。

Promoting Neurite Growth and Schwann Cell Migration by the Harnessing Decellularized Nerve Matrix onto Nanofibrous Guidance.

机构信息

Guangdong Peripheral Nerve Tissue Engineering and Technology Research Center, Department of Orthopedic and Microsurgery , The First Affiliated Hospital of Sun Yat-Sen University , Guangzhou 510080 , China.

Translational Tissue Engineering Center, and Department of Biomedical Engineering , Johns Hopkins University School of Medicine , Baltimore , Maryland 21287 , United States.

出版信息

ACS Appl Mater Interfaces. 2019 May 15;11(19):17167-17176. doi: 10.1021/acsami.9b01066. Epub 2019 Apr 30.

Abstract

Synergistic intercellular interactions have been widely acknowledged in tuning functional cell behaviors in vivo, and these interactions have inspired the development of a variety of scaffolds for regenerative medicine. In this paper, the promotion of Schwann cell (SC)-neurite interactions through the use of a nerve extracellular matrix-coated nanofiber composite in vitro was demonstrated using a cell culturing platform consisting of either random or aligned electrospun poly(l-lactic acid) nanofibers and decellularized peripheral nerve matrix gel (pDNM gel) from porcine peripheral nervous tissue. The pDNM-coated nanofiber platform served as a superior substrate for dorsal root ganglion culturing. Furthermore, SC migration was facilitated by pDNM gel coating on the nanofibers, accompanied with much faster axonal extension, in comparison with the effect of topographical guidance from the aligned electrospun fibers only. Finally, the decellularized nerve matrix promoted the ability of SCs to wrap around bundled neurites, triggering axonal remyelination toward nerve fiber functionalization.

摘要

细胞间的协同相互作用在调节体内功能性细胞行为方面已得到广泛认可,这些相互作用激发了各种用于再生医学的支架的发展。在本文中,通过使用涂覆有神经细胞外基质的纳米纤维复合材料,在体外展示了雪旺细胞(SC)-轴突相互作用的促进作用,该复合材料使用由随机或定向排列的电纺聚(L-丙交酯)纳米纤维和猪周围神经组织脱细胞周围神经基质凝胶(pDNM 凝胶)组成的细胞培养平台。pDNM 涂覆的纳米纤维平台是背根神经节培养的优异基底。此外,与仅通过定向电纺纤维的形貌引导的效果相比,纳米纤维上的 pDNM 凝胶涂层促进了 SC 的迁移,并伴随更快的轴突延伸。最后,脱细胞神经基质促进了 SC 包裹束状轴突的能力,引发了轴突的髓鞘再生,以实现对神经纤维功能化。

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