4.8 Article

Electrospun Fibers Improving Cellular Respiration via Mitochondrial Protection

期刊

SMALL
卷 17, 期 46, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202104012

关键词

cellular respiration; diabetic fracture; Hif-1; mitochondrial function; tissue regeneration

资金

  1. National Key Research and Development Program of China [2020YFA0908200]
  2. National Natural Science Foundation of China [82072399]
  3. Science and Technology Commission of Shanghai Municipality [19440760400]
  4. Shanghai Municipal Education Commission-Gaofeng Clinical Medicine Grant Support [20171906]
  5. Shanghai Jiao Tong University Medical and Research Program [ZH2018ZDA04]

向作者/读者索取更多资源

The study utilized electrospun fibers loaded with Hif-1 pathway activator to improve cellular respiration of BMSCs in diabetic fractures, potentially enhancing cell survival and function by protecting mitochondrial function and reconstructing microcirculation.
Cellular respiration is the prerequisite for cell survival and functions, and mitochondrial function and microcirculation oxygen supply are essential for cellular respiration. However, in diabetic fracture, cellular respiration of bone marrow stem cells (BMSCs) is disrupted because of the dysfunction of mitochondria and microcirculation disorders. Here, the electrospun fibers of GelMA loaded with Hif-1 pathway activator (DFO) are constructed to improve the cellular respiration of BMSCs via protecting mitochondrial function and reconstructing microcirculation. The sequential process of electrospinning and UV crosslinking endowed the electrospun fibers with breathability and the biomechanical properties like the periosteum. In vitro biomolecular experiments showed that by crosslinking grafted polyethylene glycol acrylate liposomes loaded with DFO, the functional electrospun fibers can release DFO locally to activate Hif-1 in BMSCs, which can regulate the balance of Bcl-2/Bax to protect mitochondria and upregulate the expression of VEGF to reconstruct microcirculation. Animal experiments confirmed that the functional electrospun fibers can promote the recovery of diabetic fracture in vivo. These suggested that the functional electrospun fibers can improve cellular respiration for cell survival and functions of BMSCs. This study provides a new treatment strategy for diabetic fracture and other tissue regeneration on basis of cellular respiration improvement.

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