Spatiotemporal markers in expression of smooth muscle developing zebrafish gut

被引:49
作者
Georgijevic, Sonja
Subramanian, Yazhini
Rollins, Evvi-Lynn
Starovic-Subota, Olivera
Tang, Archie C. Y.
Childs, Sarah J. [1 ]
机构
[1] Univ Calgary, Dept Biochem & Mol Biol, Calgary, AB T2N 4N1, Canada
[2] Univ Calgary, Smooth Muscle Res Grp, Calgary, AB T2N 4N1, Canada
关键词
smooth muscle; alpha-smooth muscle actin; SM22; alpha; CPI-17; nonmuscle myosin heavy chain; smoothelin; tropomyosin; gut; swim bladder;
D O I
10.1002/dvdy.21165
中图分类号
R602 [外科病理学、解剖学]; R32 [人体形态学];
学科分类号
100101 ;
摘要
Smooth muscle is important for the contractility and elasticity of visceral organs. The zebrafish is an excellent model for understanding embryonic development, yet due to a lack of appropriate markers, visceral smooth muscle development remains poorly characterized. Here, we develop markers and trace the development of gut and swim bladder smooth muscle in embryonic and juvenile fish. The first smooth muscle marker we detect in the vicinity of the gut is the myoblast marker nonmuscle myosin heavy chain-b at 50 hours postfertilization (hpf), followed by the early smooth muscle markers SM22 alpha-b, and a-smooth muscle actin at 56 and 60 hpf, respectively. Markers of more differentiated smooth muscle, smoothelin-b and cpi-17, appear by 3 days postfertilization (dpf). Tropomyosin, a relatively late marker, is first expressed at 4 dpf. We find that smooth muscle marker expression in the swim bladder follows the same sequence of marker expression as the gut, but markers have a temporal delay reflecting the later formation of swim bladder smooth muscle.
引用
收藏
页码:1623 / 1632
页数:10
相关论文
共 42 条
[21]   Twenty ways to lose your bladder: common natural mutants in zebrafish and widespread convergence of swim bladder loss among teleost fishes [J].
McCune, AR ;
Carlson, RL .
EVOLUTION & DEVELOPMENT, 2004, 6 (04) :246-259
[22]   Molecular analysis of gastrointestinal smooth muscle development [J].
McHugh, KM .
JOURNAL OF PEDIATRIC GASTROENTEROLOGY AND NUTRITION, 1996, 23 (04) :379-394
[23]   MOLECULAR ANALYSIS OF SMOOTH-MUSCLE DEVELOPMENT IN THE MOUSE [J].
MCHUGH, KM .
DEVELOPMENTAL DYNAMICS, 1995, 204 (03) :278-290
[24]   SMOOTH-MUSCLE MYOSIN HEAVY-CHAIN EXCLUSIVELY MARKS THE SMOOTH-MUSCLE LINEAGE DURING MOUSE EMBRYOGENESIS [J].
MIANO, JM ;
CSERJESI, P ;
LIGON, KL ;
PERIASAMY, M ;
OLSON, EN .
CIRCULATION RESEARCH, 1994, 75 (05) :803-812
[25]   Formation of the digestive system in zebrafish: III. Intestinal epithelium morphogenesis [J].
Ng, ANY ;
de Jong-Curtain, TA ;
Mawdsley, DJ ;
White, SJ ;
Shin, J ;
Appel, B ;
Dong, PDS ;
Stainier, DYR ;
Heath, JK .
DEVELOPMENTAL BIOLOGY, 2005, 286 (01) :114-135
[26]   Molecular regulation of vascular smooth muscle cell differentiation in development and disease [J].
Owens, GK ;
Kumar, MS ;
Wamhoff, BR .
PHYSIOLOGICAL REVIEWS, 2004, 84 (03) :767-801
[27]  
Owens GK, 1996, J HYPERTENS, V14, pS55
[28]   Molecular control of vascular smooth muscle cell differentiation [J].
Owens, GK .
ACTA PHYSIOLOGICA SCANDINAVICA, 1998, 164 (04) :623-635
[29]   CLONING OF THE ZEBRAFISH KROX-20 GENE (KRX-20) AND ITS EXPRESSION DURING HINDBRAIN DEVELOPMENT [J].
OXTOBY, E ;
JOWETT, T .
NUCLEIC ACIDS RESEARCH, 1993, 21 (05) :1087-1095
[30]  
Panettieri Reynold A. Jr., 2002, Journal of Allergy and Clinical Immunology, V110, pS269, DOI 10.1067/mai.2002.129429