Complex tissue regeneration in <i>Lophuromys</i> reveals a phylogenetic signal for enhanced regenerative ability in deomyine rodents

B Brennan Riddell (Department of Biology, University of Kentucky) M Molly McDonough (Department of Biological Sciences, Chicago State University) A Adam Ferguson (Gantz Family Collection Center, Field Museum of Natural History) J John M. Kimani (Department of Veterinary Anatomy and Physiology, University of Nairobi) T Thomas R. Gawriluk (Department of Biology, University of Kentucky) C Chi Peng (Department of Pharmacology and Nutritional Sciences, University of Kentucky) S Stephen G. Kiama (Department of Veterinary Anatomy and Physiology, University of Nairobi) V Vanessa O. Ezenwa (Department of Ecology and Evolutionary Biology, Yale University) A Ashley W. Seifert (Department of Biology, University of Kentucky)

Abstract

Identifying why complex tissue regeneration is present or absent in specific vertebrate lineages has remained elusive. One also wonders whether the isolated examples where regeneration is observed represent cases of convergent evolution or are instead the product of phylogenetic inertia from a common ancestral program. Testing alternative hypotheses to identify genetic regulation, cell states, and tissue physiology that explain how regenerative healing emerges in some species requires sampling multiple species among which there is variation in regenerative ability across a phylogenetic framework. Here, we interrogate tissue healing across eleven rodents and show that brush-furred mice ( Lophuromys zena ) are capable of musculoskeletal regeneration where new tissue faithfully maintains axial polarity and tissue identity as previously observed in spiny mice ( Acomys spp. ). In contrast, we find that all nondeomyine rodents heal identical ear pinna injuries via fibrotic repair with scar tissue. Together, these data reveal a phylogenetic signal for enhanced regenerative ability in Deomyinae which is key to testing evolutionary hypotheses about the emergence of regenerative ability in mammals.

Article Details

Volume / Issue Vol. 122, Issue 1
Published January 07, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (9)

B

Brennan Riddell

Department of Biology, University of Kentucky

M

Molly McDonough

Department of Biological Sciences, Chicago State University

A

Adam Ferguson

Gantz Family Collection Center, Field Museum of Natural History

J

John M. Kimani

Department of Veterinary Anatomy and Physiology, University of Nairobi

T

Thomas R. Gawriluk

Department of Biology, University of Kentucky

C

Chi Peng

Department of Pharmacology and Nutritional Sciences, University of Kentucky

S

Stephen G. Kiama

Department of Veterinary Anatomy and Physiology, University of Nairobi

V

Vanessa O. Ezenwa

Department of Ecology and Evolutionary Biology, Yale University

A

Ashley W. Seifert

Department of Biology, University of Kentucky