Osteoblast de- and redifferentiation are controlled by a dynamic response to retinoic acid during zebrafish fin regeneration

被引:43
作者
Blum, Nicola [1 ,2 ]
Begemann, Gerrit [1 ]
机构
[1] Univ Bayreuth, Dev Biol, D-95440 Bayreuth, Germany
[2] Univ Konstanz, Dept Biol, D-78457 Constance, Germany
来源
DEVELOPMENT | 2015年 / 142卷 / 17期
关键词
Bone; Osteoblast; Cyp26b1; Caudal fin; Zebrafish; R115866; Osteoclast; ENDOCHONDRAL BONE-FORMATION; SIGNALING PATHWAYS; APPENDAGE REGENERATION; LIMB SKELETOGENESIS; BLASTEMA; CYP26B1; ROLES; RAYS; DEDIFFERENTIATION; OSTEOGENESIS;
D O I
10.1242/dev.120204
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Zebrafish restore amputated fins by forming tissue-specific blastema cells that coordinately regenerate the lost structures. Fin amputation triggers the synthesis of several diffusible signaling factors that are required for regeneration, raising the question of how cell lineage-specific programs are protected from regenerative crosstalk between neighboring fin tissues. During fin regeneration, osteoblasts revert from a non-cycling, mature state to a cycling, preosteoblastic state to establish a pool of progenitors within the blastema. After several rounds of proliferation, preosteoblasts redifferentiate to produce new bone. Blastema formation and proliferation are driven by the continued synthesis of retinoic acid (RA). Here, we find that osteoblast dedifferentiation and redifferentiation are inhibited by RA signaling, and we uncover how the bone regenerative program is achieved against a background of massive RA synthesis. Stump osteoblasts manage to contribute to the blastema by upregulating expression of the RA-degrading enzyme cyp26b1. Redifferentiation is controlled by a presumptive gradient of RA, in which high RA levels towards the distal tip of the blastema suppress redifferentiation. We show that this might be achieved through a mechanism involving repression of Bmp signaling and promotion of Wnt/beta-catenin signaling. In turn, cyp26b1(+) fibroblast-derived blastema cells in the more proximal regenerate serve as a sink to reduce RA levels, thereby allowing differentiation of neighboring preosteoblasts. Our findings reveal a mechanism explaining how the osteoblast regenerative program is protected from adverse crosstalk with neighboring fibroblasts that advances our understanding of the regulation of bone repair by RA.
引用
收藏
页码:2894 / +
页数:25
相关论文
共 48 条
[1]   Integration of signaling pathways regulating chondrocyte differentiation during endochondral bone formation [J].
Adams, Sherrill L. ;
Cohen, Arthur J. ;
Lassova, Luisa .
JOURNAL OF CELLULAR PHYSIOLOGY, 2007, 213 (03) :635-641
[2]   Old questions, new tools, and some answers to the mystery of fin regeneration [J].
Akimenko, MA ;
Marí-Beffa, M ;
Becerra, J ;
Géraudie, J .
DEVELOPMENTAL DYNAMICS, 2003, 226 (02) :190-201
[3]   A role for retinoic acid in regulating the regeneration of deer antlers [J].
Allen, SP ;
Maden, M ;
Price, JS .
DEVELOPMENTAL BIOLOGY, 2002, 251 (02) :409-423
[4]   Retinoic acid signaling spatially restricts osteoblasts and controls ray-interray organization during zebrafish fin regeneration [J].
Blum, Nicola ;
Begemann, Gerrit .
DEVELOPMENT, 2015, 142 (17) :2888-+
[5]   The roles of endogenous retinoid signaling in organ and appendage regeneration [J].
Blum, Nicola ;
Begemann, Gerrit .
CELLULAR AND MOLECULAR LIFE SCIENCES, 2013, 70 (20) :3907-3927
[6]   Retinoic acid signaling controls the formation, proliferation and survival of the blastema during adult zebrafish fin regeneration [J].
Blum, Nicola ;
Begemann, Gerrit .
DEVELOPMENT, 2012, 139 (01) :107-116
[7]   IGF signaling between blastema and wound epidermis is required for fin regeneration [J].
Chablais, Fabian ;
Jazwinska, Anna .
DEVELOPMENT, 2010, 137 (06) :871-879
[8]   Vitamin A Metabolism, Action, and Role in Skeletal Homeostasis [J].
Conaway, H. Herschel ;
Henning, Petra ;
Lerner, Ulf H. .
ENDOCRINE REVIEWS, 2013, 34 (06) :766-797
[9]   Retinoids inhibit differentiation of hematopoetic osteoclast progenitors [J].
Conaway, H. Herschel ;
Persson, Emma ;
Halen, Marie ;
Granholm, Susanne ;
Svensson, Olle ;
Pettersson, Ulrika ;
Lie, Anita ;
Lerner, Ulf H. .
FASEB JOURNAL, 2009, 23 (10) :3526-3538
[10]   Feedback mechanisms regulate retinoic acid production and degradation in the zebrafish embryo [J].
Dobbs-McAuliffe, B ;
Zhao, QS ;
Linney, E .
MECHANISMS OF DEVELOPMENT, 2004, 121 (04) :339-350