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Article Abstract

In mammals, significant injury is generally followed by the formation of a fibrotic scar which provides structural integrity but fails to functionally restore damaged tissue. Spiny mice of the genus represent the first example of full skin autotomy in mammals. has evolved extremely weak skin as a strategy to avoid predation and is able to repeatedly regenerate healthy tissue without scar after severe skin injury or full-thickness ear punches. Extracellular matrix (ECM) composition is a critical regulator of wound repair and scar formation and previous studies have suggested that alterations in its expression may be responsible for the differences in regenerative capacity observed between and , yet analysis of this critical tissue component has been limited in previous studies by its insolubility and resistance to extraction. Here, we utilize a 2-step ECM-optimized extraction to perform proteomic analysis of tissue composition during wound repair after full-thickness ear punches in and from weeks 1 to 4 post-injury. We observe changes in a wide range of ECM proteins which have been previously implicated in wound regeneration and scar formation, including collagens, coagulation and provisional matrix proteins, and matricryptic signaling peptides. We additionally report differences in crosslinking enzyme activity and ECM protein solubility between and Furthermore, we observed rapid and sustained increases in CD206, a marker of pro-regenerative M2 macrophages, in whereas little or no increase in CD206 was detected in Together, these findings contribute to a comprehensive understanding of tissue cues which drive the regenerative capacity of and identify a number of potential targets for future pro-regenerative therapies.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10592745PMC
http://dx.doi.org/10.1101/2023.10.11.561940DOI Listing

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