Advances in signaling in vertebrate regeneration as a prelude to regenerative medicine

被引:235
作者
Stoick-Cooper, Cristi L.
Moon, Randall T. [1 ]
Weidinger, Gilbert
机构
[1] Univ Washington, Sch Med, Dept Pharmacol, Howard Hughes Med Inst, Seattle, WA 98195 USA
[2] Univ Washington, Sch Med, Inst Stem Cell & Regenerat Med, Seattle, WA 98195 USA
[3] Univ Washington, Sch Med, Grad Program Neurobiol & Behav, Seattle, WA 98195 USA
[4] Univ Dresden, Ctr Biotechnol, D-01377 Dresden, Germany
[5] Univ Dresden, Ctr Regenerat Therapies, D-01377 Dresden, Germany
关键词
Wnt; FGF; blastema; zebrafish; Xenopus; limb;
D O I
10.1101/gad.1540507
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
While all animals have evolved strategies to respond to injury and disease, their ability to functionally recover from loss of or damage to organs or appendages varies widely damage to skeletal muscle, but, unlike amphibians and fish, they fail to regenerate heart, lens, retina, or appendages. The relatively young field of regenerative medicine strives to develop therapies aimed at improving regenerative processes in humans and is predicated on > 40 years of success with bone marrow transplants. Further progress will be accelerated by implementing knowledge about the molecular mechanisms that regulate regenerative processes in model organisms that naturally possess the ability to regenerate organs and/ or appendages. In this review we summarize the current knowledge about the signaling pathways that regulate regeneration of amphibian and fish appendages, fish heart, and mammalian liver and skeletal muscle. While the cellular mechanisms and the cell types involved in regeneration of these systems vary widely, it is evident that shared signals are involved in tissue regeneration. Signals provided by the immune system appear to act as triggers of many regenerative processes. Subsequently, pathways that are best known for their importance in regulating embryonic development, in particular fibroblast growth factor (FGF) and Wnt/ beta-catenin signaling ( as well as others), are required for progenitor cell formation or activation and for cell proliferation and specification leading to tissue regrowth. Experimental activation of these pathways or interference with signals that inhibit regenerative processes can augment or even trigger regeneration in certain contexts.
引用
收藏
页码:1292 / 1315
页数:24
相关论文
共 222 条
[31]   Control of muscle regeneration in the Xenopus tadpole tail by Pax7 [J].
Chen, Ying ;
Lin, Gufa ;
Slack, Jonathan M. W. .
DEVELOPMENT, 2006, 133 (12) :2303-2313
[32]   FGF-8 is associated with anteroposterior patterning and limb regeneration in Xenopus [J].
Christen, B ;
Slack, JMW .
DEVELOPMENTAL BIOLOGY, 1997, 192 (02) :455-466
[33]   Expression of fibroblast growth factors 4, 8, and 10 in limbs, flanks, and blastemas of Ambystoma [J].
Christensen, RN ;
Weinstein, M ;
Tassava, RA .
DEVELOPMENTAL DYNAMICS, 2002, 223 (02) :193-203
[34]   Fibroblast growth factors in regenerating limbs of Ambystoma:: Cloning and semi-quantitative RT-PCR expression studies [J].
Christensen, RN ;
Weinstein, M ;
Tassava, RA .
JOURNAL OF EXPERIMENTAL ZOOLOGY, 2001, 290 (05) :529-540
[35]   Tumor necrosis factor-α gene transfer induces cachexia and inhibits muscle regeneration [J].
Coletti, D ;
Moresi, V ;
Adamo, S ;
Molinaro, M ;
Sassoon, D .
GENESIS, 2005, 43 (03) :120-128
[36]   The role of tumor necrosis factor-alpha (TNF-α) in skeletal muscle regeneration:: Studies in TNF-α(-/-) and TNF-α(-/-)/LT-α(-/-) mice [J].
Collins, RA ;
Grounds, MD .
JOURNAL OF HISTOCHEMISTRY & CYTOCHEMISTRY, 2001, 49 (08) :989-1001
[37]   The regulation of notch signaling controls satellite cell activation and cell fate determination in postnatal myogenesis [J].
Conboy, IM ;
Rando, TA .
DEVELOPMENTAL CELL, 2002, 3 (03) :397-409
[38]   Rejuvenation of aged progenitor cells by exposure to a young systemic environment [J].
Conboy, IM ;
Conboy, MJ ;
Wagers, AJ ;
Girma, ER ;
Weissman, IL ;
Rando, TA .
NATURE, 2005, 433 (7027) :760-764
[39]   Notch-mediated restoration of regenerative potential to aged muscle [J].
Conboy, IM ;
Conboy, MJ ;
Smythe, GM ;
Rando, TA .
SCIENCE, 2003, 302 (5650) :1575-1577
[40]   Contribution of hematopoietic stem cells to skeletal muscle [J].
Corbel, SY ;
Lee, A ;
Yi, L ;
Duenas, J ;
Brazelton, TR ;
Blau, HM ;
Rossi, FMV .
NATURE MEDICINE, 2003, 9 (12) :1528-1532