Grafted muscle-derived stem cells promote the therapeutic efficiency of epimysium conduits in mice with peripheral nerve gap injury.

Artificial organs 2020 Vol.44(5) p. E214-E225

Xu Z, Chen Z, Feng W, Huang M, Yang X, Qi Z

Abstract

Our research aimed to build allogeneic artificial conduits with epimysium and muscle-derived stem cells (MDSCs) from the skeletal muscle of mice. We applied the conduit to repair peripheral nerve defects and estimated the effectiveness of the repair process. In the research, we prepared epimysium conduits with lumens to bridge repair a 5-mm-long sciatic nerve defect from C57 wild-type mice and then transplanted green fluorescent protein (GFP)-MDSCs and Matrigel suspensions into the conduit. Histological and functional assessments were performed 4 and 8 weeks after surgery. The tissue-engineered conduit from muscle effectively repaired the nerve defect, while the group with GFP-MDSCs showed improved histological examinations and functional assessments, and the newborn nerves highly expressed GFP. As the results suggested, autologous epimysium conduits represent a reliable method to repair peripheral nerve defects, and the addition of MDSCs promote the effectiveness of differentiating into multiple lineages. Our research simultaneously demonstrated the myogenic, neurogenic, and angiogenic potential of MDSCs in vivo for the first time.

추출된 의학 개체 (NER)

유형영어 표현한국어 / 풀이UMLS CUI출처등장
해부 muscle-derived stem cells scispacy 1
해부 conduits scispacy 1
해부 epimysium scispacy 1
해부 MDSCs → muscle-derived stem cells scispacy 1
해부 skeletal muscle scispacy 1
해부 conduit scispacy 1
해부 lumens scispacy 1
해부 muscle scispacy 1
해부 nerves scispacy 1
해부 epimysium conduits scispacy 1
질환 peripheral nerve defects scispacy 1
기타 epimysium conduits scispacy 1
기타 mice scispacy 1
기타 peripheral nerve scispacy 1
기타 sciatic nerve scispacy 1
기타 C57 scispacy 1
기타 green fluorescent protein scispacy 1
기타 GFP scispacy 1

MeSH Terms

Animals; Female; Mice, Inbred C57BL; Muscle, Skeletal; Peripheral Nerve Injuries; Recovery of Function; Remyelination; Stem Cell Transplantation; Tissue Engineering