4.8 Article

Mesenchymal stem cell-laden, personalized 3D scaffolds with controlled structure and fiber alignment promote diabetic wound healing

Journal

ACTA BIOMATERIALIA
Volume 108, Issue -, Pages 153-167

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.actbio.2020.03.035

Keywords

Diabetic wound; Electrospun nanofibers; 3D scaffolds; Shape recoverable; BMSCs

Funding

  1. University of Nebraska Medical Center (UNMC)
  2. National Institute of General Medical Science (NIGMS) of the National Institutes of Health [R01GM123081]
  3. UNMC Regenerative Medicine Program pilot grant
  4. [NE LB606]

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The management of diabetic wounds remains a major therapeutic challenge in clinics. Herein, we report a personalized treatment using 3D scaffolds consisting of radially or vertically aligned nanofibers in combination with bone marrow mesenchymal stem cells (BMSCs). The 3D scaffolds have customizable sizes, depths, and shapes, enabling them to fit a variety of type 2 diabetic wounds. In addition, the 3D scaffolds are shape-recoverable in atmosphere and water following compression. The BMSCs-laden 3D scaffolds are capable of enhancing the formation of granulation tissue, promoting angiogenesis, and facilitating collagen deposition. Further, such scaffolds inhibit the formation of Ml-type macrophages and the expression of pro-inflammatory cytokines IL-6 and TNF-alpha and promote the formation of M2-type macrophages and the expression of anti-inflammatory cytokines IL-4 and IL-10. Taken together, BMSCs-laden, 3D nanofiber scaffolds with controlled structure and alignment hold great promise for the treatment of diabetic wounds. Statement of Significance In this study, we developed 3D radially and vertically aligned nanofiber scaffolds to transplant bone marrow mesenchymal stem cells (BMSCs). We personalized 3D scaffolds that could completely match the size, depth, and shape of diabetic wounds. Moreover, both the radially and vertically aligned nanofiber scaffolds could completely recover their shape and maintain structural integrity after repeated loads with compressive stresses. Furthermore, the BMSCs-laden 3D scaffolds are able to promote granulation tissue formation, angiogenesis, and collagen deposition, and switch the immune responses to the proregenerative direction. These 3D scaffolds consisting of radially or vertically aligned nanofibers in combination with BMSCs offer a robust, customizable platform potentially for a significant improvement of managing diabetic wounds. (C) 2020 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

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