Literature DB >> 34664947

In Situ Prevascularization Strategy with Three-Dimensional Porous Conduits for Neural Tissue Engineering.

Junjie Shen1,2, Jiayan Wang3,4, Xuanzhe Liu1, Yi Sun1, Anlin Yin3,4, Yimin Chai1, Kuihua Zhang3,4, Chunyang Wang1,2, Xianyou Zheng1.   

Abstract

Neovascularization is crucial for peripheral nerve regeneration and long-term functional restoration. Previous studies have emphasized strategies that enhance axonal repair over vascularization. Here, we describe the development and application of an in situ prevascularization strategy that uses 3D porous nerve guidance conduits (NGCs) to achieve angiogenesis-mediated neural regeneration. The optimal porosity of the NGC is a critical feature for achieving neovascularization and nerve growth patency. Hollow silk fibroin/poly(l-lactic acid-co-ε-caprolactone) NGCs with 3D sponge-like walls were fabricated using electrospinning and freeze-drying. In vitro results showed that 3D porous NGC favored cell biocompatibility had neuroregeneration potential and, most importantly, had angiogenic activity. Results from our mechanistic studies suggest that activation of HIF-1α signaling might be associated with this process. We also tested in situ prevascularized 3D porous NGCs in vivo by transplanting them into a 10 mm rat sciatic nerve defect model with the aim of regenerating the severed nerve. The prevascularized 3D porous NGCs greatly enhanced intraneural angiogenesis, resulting in demonstrable neurogenesis. Eight weeks after transplantation, the performance of the prevascularized 3D NGCs was similar to that of traditional autografts in terms of improved anatomical structure, morphology, and neural function. In conclusion, combining a reasonably fabricated 3D-pore conduit structure with in situ prevascularization promoted functional nerve regeneration, suggesting an alternative strategy for achieving functional recovery after peripheral nerve trauma.

Entities:  

Keywords:  nerve guidance conduits; peripheral nerve regeneration; porosity; prevascularization; tissue engineering

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Year:  2021        PMID: 34664947     DOI: 10.1021/acsami.1c16138

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  2 in total

1.  Novel Tissue-Engineered Multimodular Hyaluronic Acid-Polylactic Acid Conduits for the Regeneration of Sciatic Nerve Defect.

Authors:  Fernando Gisbert Roca; Luis Gil Santos; Manuel Mata Roig; Lara Milian Medina; Cristina Martínez-Ramos; Manuel Monleón Pradas
Journal:  Biomedicines       Date:  2022-04-21

2.  Ti3C2Tx MXene-Coated Electrospun PCL Conduits for Enhancing Neurite Regeneration and Angiogenesis.

Authors:  Li-Ping Nan; Zeng Lin; Feng Wang; Xue-Han Jin; Jia-Qi Fang; Bo Xu; Shu-Hao Liu; Fan Zhang; Zhong Wu; Zi-Fei Zhou; Feng Chen; Wen-Tao Cao; Jian-Guang Wang; Jun-Jian Liu
Journal:  Front Bioeng Biotechnol       Date:  2022-03-16
  2 in total

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