Literature DB >> 24268695

Fundamental differences in dedifferentiation and stem cell recruitment during skeletal muscle regeneration in two salamander species.

Tatiana Sandoval-Guzmán1, Heng Wang2, Shahryar Khattak3, Maritta Schuez3, Kathleen Roensch1, Eugeniu Nacu1, Akira Tazaki1, Alberto Joven2, Elly M Tanaka4, András Simon5.   

Abstract

Salamanders regenerate appendages via a progenitor pool called the blastema. The cellular mechanisms underlying regeneration of muscle have been much debated but have remained unclear. Here we applied Cre-loxP genetic fate mapping to skeletal muscle during limb regeneration in two salamander species, Notophthalmus viridescens (newt) and Ambystoma mexicanum (axolotl). Remarkably, we found that myofiber dedifferentiation is an integral part of limb regeneration in the newt, but not in axolotl. In the newt, myofiber fragmentation results in proliferating, PAX7(-) mononuclear cells in the blastema that give rise to the skeletal muscle in the new limb. In contrast, myofibers in axolotl do not generate proliferating cells, and do not contribute to newly regenerated muscle; instead, resident PAX7(+) cells provide the regeneration activity. Our results therefore show significant diversity in limb muscle regeneration mechanisms among salamanders and suggest that multiple strategies may be feasible for inducing regeneration in other species, including mammals.
Copyright © 2014 Elsevier Inc. All rights reserved.

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Year:  2013        PMID: 24268695     DOI: 10.1016/j.stem.2013.11.007

Source DB:  PubMed          Journal:  Cell Stem Cell        ISSN: 1875-9777            Impact factor:   24.633


  112 in total

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2.  In Toto Imaging of Dynamic Osteoblast Behaviors in Regenerating Skeletal Bone.

Authors:  Ben D Cox; Alessandro De Simone; Valerie A Tornini; Sumeet P Singh; Stefano Di Talia; Kenneth D Poss
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Review 3.  Model systems for regeneration: salamanders.

Authors:  Alberto Joven; Ahmed Elewa; András Simon
Journal:  Development       Date:  2019-07-22       Impact factor: 6.868

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Authors:  Kelsey G DeFrates; Daniela Franco; Ellen Heber-Katz; Phillip B Messersmith
Journal:  Biomaterials       Date:  2021-01-09       Impact factor: 12.479

Review 5.  Animal regeneration in the era of transcriptomics.

Authors:  Loïc Bideau; Pierre Kerner; Jerome Hui; Michel Vervoort; Eve Gazave
Journal:  Cell Mol Life Sci       Date:  2021-01-30       Impact factor: 9.261

Review 6.  Animal regeneration: ancestral character or evolutionary novelty?

Authors:  Jonathan Mw Slack
Journal:  EMBO Rep       Date:  2017-07-26       Impact factor: 8.807

Review 7.  A brief history of the study of nerve dependent regeneration.

Authors:  Johanna E Farkas; James R Monaghan
Journal:  Neurogenesis (Austin)       Date:  2017-04-10

8.  Hedgehog and Wnt Signaling Pathways Regulate Tail Regeneration.

Authors:  Bhairab N Singh; Cyprian V Weaver; Mary G Garry; Daniel J Garry
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9.  Salamander-like tail regeneration in the West African lungfish.

Authors:  Kellen Matos Verissimo; Louise Neiva Perez; Aline Cutrim Dragalzew; Gayani Senevirathne; Sylvain Darnet; Wainna Renata Barroso Mendes; Ciro Ariel Dos Santos Neves; Erika Monteiro Dos Santos; Cassia Nazare de Sousa Moraes; Ahmed Elewa; Neil Shubin; Nadia Belinda Fröbisch; Josane de Freitas Sousa; Igor Schneider
Journal:  Proc Biol Sci       Date:  2020-09-16       Impact factor: 5.349

10.  Mapping hematopoiesis in a fully regenerative vertebrate: the axolotl.

Authors:  David Lopez; Li Lin; James R Monaghan; Christopher R Cogle; Frank J Bova; Malcolm Maden; Edward W Scott
Journal:  Blood       Date:  2014-05-06       Impact factor: 22.113

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