Calcium silicate accelerates cutaneous wound healing with enhanced re-epithelialization through EGF/EGFR/ERK-mediated promotion of epidermal stem cell functions

Author:

Li Bingmin12,Tang Haowen3,Bian Xiaowei1,Ma Kui1,Chang Jiang4,Fu Xiaobing15,Zhang Cuiping1ORCID

Affiliation:

1. Research Center for Tissue Repair and Regeneration affiliated to the Medical Innovation Research Division and Fourth Medical Center of Chinese PLA General Hospital, 100048, Beijing, China

2. Department of Dermatology, Fourth Medical Center of Chinese PLA General Hospital, 100048, Beijing, China

3. Faculty of Hepato-Biliary-Pancreatic Surgery, Chinese PLA General Hospital, 100853, Beijing, China

4. Shanghai Institute of Ceramics, Chinese Academy of Sciences, 200050, Shanghai, China

5. Research Unit of Trauma Care, Tissue Repair and Regeneration, Chinese Academy of Medical Sciences, 100048, Beijing, China

Abstract

Abstract Background Human epidermal stem cells (hESCs) play an important role in re-epithelialization and thereby in facilitating wound healing, while an effective way to activate hESCs remains to be explored. Calcium silicate (CS) is a form of bioceramic that can alter cell behavior and promote tissue regeneration. Here, we have observed the effect of CS on hESCs and investigated its possible mechanism. Methods Using a mouse full-thickness skin excision model, we explored the therapeutic effect of CS on wound healing and re-epithelialization. In vitro, hESCs were cultured with diluted CS ion extracts (CSIEs), and the proliferation, migration ability and stemness of hESCs were evaluated. The effects of CS on the epidermal growth factor (EGF), epidermal growth factor receptor (EGFR) and extracellular signal-related kinase (ERK) signaling pathway were also explored. Results In vivo, CS accelerated wound healing and re-epithelialization. Immunohistochemistry demonstrated that CS upregulated cytokeratin 19 and integrin β1 expression, indicating that CS improved hESCs stemness. In vitro studies confirmed that CS improved the biological function of hESCs. And the possible mechanism could be due to the activation of the EGF/EGFR/ERK signaling pathway. Conclusion CS can promote re-epithelialization and improve the biological functions of hESCs via activating the EGF/EGFR/ERK signaling pathway.

Funder

National Nature Science Foundation of China

National Key Research Development Plan

CAMS Innovation Fund for Medical Sciences

Military Medical Research and Development Projects

Beijing Natural Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Critical Care and Intensive Care Medicine,Dermatology,Biomedical Engineering,Emergency Medicine,Immunology and Allergy,Surgery

Reference32 articles.

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2. Microvesicles from human adipose stem cells promote wound healing by optimizing cellular functions via AKT and ERK signaling pathways;Ren;Stem Cell Res Ther,2019

3. Epithelial stem cells and implications for wound repair;Plikus;Semin Cell Dev Biol,2012

4. Can bioactive glasses be useful to accelerate the healing of epithelial tissues?;Kargozar;Korean J Couns Psychother,2019

5. Are hair follicle stem cells promising candidates for wound healing?;Li;Expert Opin Biol Ther,2019

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