Identification of a physiologic vasculogenic fibroblast state to achieve tissue repair

Author:

Pal Durba,Ghatak Subhadip,Singh Kanhaiya,Abouhashem Ahmed Safwat,Kumar Manishekhar,El Masry Mohamed SORCID,Mohanty Sujit K.,Palakurti Ravichand,Rustagi Yashika,Tabasum Saba,Khona Dolly K.ORCID,Khanna Savita,Kacar SedatORCID,Srivastava Rajneesh,Bhasme Pramod,Verma Sumit S.,Hernandez Edward,Sharma Anu,Reese Diamond,Verma Priyanka,Ghosh Nandini,Gorain MahadeoORCID,Wan JunORCID,Liu Sheng,Liu YunlongORCID,Castro Natalia Higuita,Gnyawali Surya C.ORCID,Lawrence WilliamORCID,Moore Jordan,Perez Daniel GallegoORCID,Roy Sashwati,Yoder Mervin C.ORCID,Sen Chandan K.ORCID

Abstract

AbstractTissue injury to skin diminishes miR-200b in dermal fibroblasts. Fibroblasts are widely reported to directly reprogram into endothelial-like cells and we hypothesized that miR-200b inhibition may cause such changes. We transfected human dermal fibroblasts with anti-miR-200b oligonucleotide, then using single cell RNA sequencing, identified emergence of a vasculogenic subset with a distinct fibroblast transcriptome and demonstrated blood vessel forming function in vivo. Anti-miR-200b delivery to murine injury sites likewise enhanced tissue perfusion, wound closure, and vasculogenic fibroblast contribution to perfused vessels in a FLI1 dependent manner. Vasculogenic fibroblast subset emergence was blunted in delayed healing wounds of diabetic animals but, topical tissue nanotransfection of a single anti-miR-200b oligonucleotide was sufficient to restore FLI1 expression, vasculogenic fibroblast emergence, tissue perfusion, and wound healing. Augmenting a physiologic tissue injury adaptive response mechanism that produces a vasculogenic fibroblast state change opens new avenues for therapeutic tissue vascularization of ischemic wounds.

Funder

U.S. Department of Health & Human Services | NIH | National Institute of Diabetes and Digestive and Kidney Diseases

U.S. Department of Health & Human Services | NIH | National Institute of General Medical Sciences

U.S. Department of Health & Human Services | NIH | National Institute of Nursing Research

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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