Cellular Plasticity During Vertebrate Appendage Regeneration

被引:20
|
作者
Monaghan, James R. [1 ]
Maden, Malcolm [2 ,3 ]
机构
[1] Northeastern Univ, Dept Biol, Boston, MA 02115 USA
[2] Univ Florida, Dept Biol, Gainesville, FL 32610 USA
[3] Univ Florida, UF Genet Inst, Gainesville, FL 32610 USA
来源
关键词
MUSCLE SATELLITE CELLS; LIMB REGENERATION; FORE LIMB; DEVELOPMENTAL POTENTIALITIES; DERMAL FIBROBLASTS; BLASTEMA FORMATION; LARVAL AMBLYSTOMA; TAIL REGENERATION; X-RADIATION; STEM-CELLS;
D O I
10.1007/82_2012_288
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
Many vertebrates have the amazing ability to regenerate all or portions of appendages including limbs, tails, fins, and digits. Unfortunately, our understanding of the cellular and molecular basis of appendage regeneration is severely lacking. However, recent technological advances that facilitate the tracking of cell lineages in vivo through space and time are allowing us to address the unknowns of regeneration, such as characterizing the cells that contribute to regeneration and identifying the tissues these cells differentiate into during regeneration. Here, we describe the experiments and the surprisingly uniform results that have emerged across diverse vertebrate species when specific cell lineages have been tracked during vertebrate appendage regeneration. These investigations show that vertebrates, from zebrafish to salamanders to mammals, utilize a limited amount of cellular plasticity to regenerate missing appendages. The universal approach to appendage regeneration is not to generate pluripotent cells that then differentiate into the new organ, but instead to generate lineage-restricted cells that are propagated in a progenitor-like state. Lessons learned from these natural cases of complex tissue regeneration might inform regenerative medicine on the best approach for re-growing complex tissues.
引用
收藏
页码:53 / 74
页数:22
相关论文
共 50 条
  • [1] Bioelectric Events and Vertebrate Appendage Regeneration
    Tseng, A.
    Levin, M.
    INTEGRATIVE AND COMPARATIVE BIOLOGY, 2010, 50 : E177 - E177
  • [2] New regulators of vertebrate appendage regeneration
    Yin, Viravuth P.
    Poss, Kenneth D.
    CURRENT OPINION IN GENETICS & DEVELOPMENT, 2008, 18 (04) : 381 - 386
  • [3] Retinoic acid signaling in vertebrate appendage regeneration
    Blum, Nicola
    Begemann, Gerrit
    MECHANISMS OF DEVELOPMENT, 2009, 126 : S296 - S297
  • [4] Positional information modulates transient regeneration-activated cell states during vertebrate appendage regeneration
    Granillo, Augusto Ortega
    Zamora, Daniel
    Schnittker, Robert R.
    Perera, Anoja G.
    Wang, Wei
    Alvarado, Alejandro Sanchez
    ISCIENCE, 2024, 27 (09)
  • [5] Carbohydrate metabolism during vertebrate appendage regeneration: What is its role? How is it regulated?
    Love, Nick R.
    Ziegler, Mathias
    Chen, Yaoyao
    Amaya, Enrique
    BIOESSAYS, 2014, 36 (01) : 27 - 33
  • [6] The Molecular and Cellular Choreography of Appendage Regeneration
    Tanaka, Elly M.
    CELL, 2016, 165 (07) : 1598 - 1608
  • [7] Appendage regeneration is context dependent at the cellular level
    Aztekin, Can
    OPEN BIOLOGY, 2021, 11 (07)
  • [8] Nav-mediated sodium transport is required for vertebrate appendage regeneration
    Tseng, Kelly Ai-Sun
    Beane, Wendy S.
    Lemire, Joan M.
    Masi, Alessio
    Levin, Michael
    DEVELOPMENTAL BIOLOGY, 2010, 344 (01) : 519 - 519
  • [9] Cellular insights into the morphogenesis of vertebrate repair and regeneration
    Haigo, S. L.
    Rodrigo-Albors, A.
    Tazaki, A.
    Tanaka, E. M.
    Reiter, J. F.
    INTEGRATIVE AND COMPARATIVE BIOLOGY, 2014, 54 : E83 - E83
  • [10] The cellular and molecular bases of vertebrate lens regeneration
    Henry, JJ
    INTERNATIONAL REVIEW OF CYTOLOGY - A SURVEY OF CELL BIOLOGY, VOL 228, 2003, 228 : 195 - 265