Comprehensive proteomic atlas of skin biomatrix scaffolds reveals a supportive microenvironment for epidermal development

Author:

Leng Ling12,Ma Jie3,Sun Xuer2,Guo Baolin2,Li Fanlu2,Zhang Wei2,Chang Mingyang2,Diao Jinmei2,Wang Yi2,Wang Wenjuan4,Wang Shuyong2,Zhu Yunping35,He Fuchu3,Reid Lola M6,Wang Yunfang27ORCID

Affiliation:

1. Stem cell and Regenerative Medicine Lab, Department of Medical Science Research Center, Translational Medicine Center, Peking Union Medical College Hospital, Peking Union Medical College and Chinese Academy of Medical Sciences, Beijing, China

2. Department of Stem Cell and Regenerative Medicine Laboratory, Institute of Health Service and Transfusion Medicine, Beijing, China

3. State Key Laboratory of Proteomics, Beijing Proteome Research Center, National Center for Protein Sciences (Beijing), Beijing Institute of Life Omics, Beijing, China

4. Department of Dermatology, Chinese PLA General Hospital, Beijing, China

5. Basic Medical School, Anhui Medical University, Anhui, China

6. Department of Cell Biology and Physiology Program in Molecular Biology and Biotechnology, Lineberger Cancer Center, University of North Carolina School of Medicine, Chapel Hill, USA

7. Translational Research Center, Beijing Tsinghua Chang Gung Hospital, Beijing, China

Abstract

Biomaterial scaffolds are increasingly being used to drive tissue regeneration. The limited success so far in human tissues rebuilding and therapy application may be due to inadequacy of the functionality biomaterial scaffold. We developed a new decellularized method to obtain complete anatomical skin biomatrix scaffold in situ with extracellular matrix (ECM) architecture preserved, in this study. We described a skin scaffold map by integrated proteomics and systematically analyzed the interaction between ECM proteins and epidermal cells in skin microenvironment on this basis. They were used to quantify structure and function of the skin’s Matrisome, comprised of core ECM components and ECM-associated soluble signals that are key regulators of epidermal development. We especially revealed that ECM played a role in determining the fate of epidermal stem cells through hemidesmosome components. These concepts not only bring us a new understanding of the role of the skin ECM niche, they also provide an attractive combinational strategy based on tissue engineering principles with skin biomatrix scaffold materials for the acceleration and enhancement of tissue regeneration.

Funder

Interdisciplinary Cooperation Project of Beijing Nova Program

national natural science foundation of china

National Major Scientific and Technological Special Project

National Key Research and Development Program of China

Publisher

SAGE Publications

Subject

Biomedical Engineering,Biomaterials,Medicine (miscellaneous)

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