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Suppression of Pro-fibrotic Signaling Potentiates Factor-mediated Reprogramming of Mouse Embryonic Fibroblasts into Induced Cardiomyocytes
Published on: June 3, 2018
Regenerative phenotype in mice with a point mutation in transforming growth factor beta type I receptor (TGFBR1)
Jun Liu1, Kristen Johnson, Jie Li
1Genomics Institute of the Novartis Research Foundation, San Diego, CA 92121, USA.
Abstract:
Regeneration of peripheral differentiated tissue in mammals is rare, and regulators of this process are largely unknown. We carried out a forward genetic screen in mice using N-ethyl-N-nitrosourea mutagenesis to identify genetic mutations that affect regenerative healing in vivo. More than 400 pedigrees were screened for closure of a through-and-through punch wound in the mouse ear. This led to the identification of a single pedigree with a heritable, fast, and regenerative wound-healing phenotype. Within 5 wk after ear-punch, a threefold decrease in the diameter of the wound was observed in the mutant mice compared with the wild-type mice. At 22 wk, new cartilage, hair follicles, and sebaceous glands were observed in the newly generated tissue. This trait was mapped to a point mutation in a receptor for TGF-β, TGFBR1. Mouse embryonic fibroblasts from the affected mice had increased expression of a subset of TGF-β target genes, suggesting that the mutation caused partial activation of the receptor. Further, bone marrow stromal cells from the mutant mice more readily differentiated to chondrogenic precursors, providing a plausible explanation for the enhanced development of cartilage islands in the regenerated ears. This mutant mouse strain provides a unique model to further explore regeneration in mammals and, in particular, the role of TGFBR1 in chondrogenesis and regenerative wound healing.
Insights
Researchers identified a genetic mutation enhancing mammalian wound healing. This discovery in mice reveals a new pathway for regenerative medicine and cartilage development.
Area of Science:
- Mammalian regeneration
- Genetic screening
- Wound healing research
Background:
- Regeneration of differentiated peripheral tissue in mammals is infrequent.
- The genetic regulators of mammalian tissue regeneration remain largely unidentified.
Purpose of the Study:
- To identify genetic mutations influencing in vivo regenerative wound healing.
- To investigate the molecular mechanisms underlying enhanced mammalian regeneration.
Main Methods:
- Forward genetic screen utilizing N-ethyl-N-nitrosourea mutagenesis in mice.
- Phenotypic analysis of wound closure and tissue regeneration in mouse ear punch wounds.
- Genetic mapping and molecular characterization of the mutation in TGFBR1.
Main Results:
- A novel mouse mutant exhibiting accelerated and regenerative wound healing was identified.
- Mutant mice showed significant wound closure and regeneration of cartilage, hair follicles, and sebaceous glands.
- The regenerative phenotype was linked to a point mutation in the TGF-beta receptor 1 (TGFBR1), causing partial receptor activation and enhanced chondrogenic differentiation.
Conclusions:
- A specific mutation in TGFBR1 significantly enhances mammalian regenerative wound healing.
- This mutant mouse model offers a valuable tool for studying mammalian regeneration and chondrogenesis.
- The findings highlight the role of TGFBR1 signaling in tissue repair and regeneration.

