4.7 Article

Physiology-Inspired Multilayer Nanofibrous Membranes Modulating Endogenous Stem Cell Recruitment and Osteo-Differentiation for Staged Bone Regeneration

期刊

ADVANCED HEALTHCARE MATERIALS
卷 11, 期 21, 页码 -

出版社

WILEY
DOI: 10.1002/adhm.202201457

关键词

bone regeneration; cell recruitment; drug delivery; osteogenesis; tissue engineering

资金

  1. Anhui Educational Committee [KJ2020ZD51, KJ2021ZD0089]
  2. Natural Science Foundation of Anhui Province [1908085MH276, 2008085QH362]
  3. 512 Talents Development Project of Bengbu Medical College [by51202302, by51202309]
  4. Distinguished Young Scholars of First Affiliated Hospital of Bengbu Medical College [2021byyfyjq01]
  5. Science Research Project of Bengbu Medical College [2021bypd006]

向作者/读者索取更多资源

This study developed a multilayer nanofibrous membrane that mimics the endogenous cascades of bone regeneration. The membrane promotes migration and osteo-differentiation of bone marrow mesenchymal stem cells and exhibits good biocompatibility and a dual-delivery system, contributing to bone regeneration and vascularization.
Bone regeneration involves a cascade of sophisticated, multiple-staged cellular and molecular events, where early-phase stem cell recruitment mediated by chemokines and late-phase osteo-differentiation induced by pro-osteogenic factors play the crucial roles. Herein, enlightened by a bone physiological and regenerative mechanism, the multilayer nanofibrous membranes (PLLA@SDF-1 alpha@MT01) consisting of PLLA/MT01 micro-sol electrospun nanofibers as intima and PLLA/PEG/SDF-1 alpha electrospun nanofibers as adventitia are fabricated through micro-sol electrospinning and manual multi-layer stacking technologies. In vitro releasing profiles show that PLLA@SDF-1 alpha@MT01 represents the rapid release of stromal cell-derived SDF-1 alpha (SDF-1 alpha) in the outer layers, while with long-term sustained release of MT01 in the inner layer. Owing to interconnected porosity like the natural bone extracellular matrix and improved hydrophilia, PLLA@SDF-1 alpha@MT01 manifests good biocompatibility both in vitro and in vivo. Furthermore, PLLA@SDF-1 alpha@MT01 can promote bone marrow mesenchymal stem cells (BMSCs) migration by amplifying the SDF-1 alpha/CXCR4 axis and stimulating BMSCs osteo-differentiation via activating the MAPK pathway in vitro. PLLA@SDF-1 alpha@MT01, with a programmed dual-delivery system, exhibits the synergetic promotion of bone regeneration and vascularization by emulating key characteristics of the staged bone repair in vivo. Overall, PLLA@SDF-1 alpha@MT01 that mimics the endogenous cascades of bone regeneration can enrich the physiology-mimetic staged regenerative strategy and represent a promising tissue-engineered scaffold for the bone defect.

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