Surface ectoderm is necessary for the morphogenesis of somites

被引:51
作者
Correia, KM [1 ]
Conlon, RA
机构
[1] Case Western Reserve Univ, Dept Genet, Cleveland, OH 44106 USA
[2] Univ Hosp Cleveland, Cleveland, OH 44106 USA
基金
美国国家科学基金会; 美国国家卫生研究院;
关键词
somites; segmentation; epithelialization; inductive signaling;
D O I
10.1016/S0925-4773(99)00260-9
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The paraxial mesoderm of the neck and trunk of mouse embryos undergoes extensive morphogenesis in forming somites. Paraxial mesoderm is divided into segments, it elongates along its anterior posterior axis, and its cells organize into epithelia. Experiments were performed to determine if these processes are autonomous to the mesoderm that gives rise to the somites. Presomitic mesoderm at the tailbud stage was cultured in the presence and absence of its adjacent tissues. Somite segmentation occurred in the absence of neural tube, notochord, gut and surface ectoderm. and occurred in posterior fragments in the absence of anterior presomitic mesoderm. Mesodermal expression of DllI and NotchI, genes with roles in segmentation, was largely independent of other tissues, consistent with autonomous segmentation. However, surface ectoderm was found to be necessary for elongation of the mesoderm along the anterior-posterior axis and for somite epithelialization. To determine if there is specificity in the interaction between ectoderm and mesoderm, ectoderm from different sources was recombined with presomitic mesoderm. Surface ectoderm from only certain parts of the embryo supported somite epithelialization and elongation. Somite epithelialization induced by ectoderm was correlated with expression of the basic-helix-loop-helix gene Paraxis in the mesoderm. This is consistent with the genetically defined requirement for Paraxis in somite epithelialization. However, trunk ectoderm was able to induce somite epithelialization in the absence of strong Paraxis expression. We conclude that somitogenesis consists of autonomous segmentation patterned by Notch signaling and nonautonomous induction of elongation and epithelialization by surface ectoderm. (C) 2000 Elsevier Science Ireland Ltd. All rights reserved.
引用
收藏
页码:19 / 30
页数:12
相关论文
共 53 条
[1]  
BETTENHAUSEN B, 1995, DEVELOPMENT, V121, P2407
[2]   MESO1, A BASIC-HELIX-LOOP-HELIX PROTEIN INVOLVED IN MAMMALIAN PRESOMITIC MESODERM DEVELOPMENT [J].
BLANAR, MA ;
CROSSLEY, PH ;
PETERS, KG ;
STEINGRIMSSON, E ;
COPELAND, NG ;
JENKINS, NA ;
MARTIN, GR ;
RUTTER, WJ .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1995, 92 (13) :5870-5874
[3]  
Borycki AG, 1998, DEVELOPMENT, V125, P777
[4]   cMeso-1, a novel bHLH transcription factor, is involved in somite formation in chicken embryos [J].
Buchberger, A ;
Seidl, K ;
Klein, C ;
Eberhardt, H ;
Arnold, HH .
DEVELOPMENTAL BIOLOGY, 1998, 199 (02) :201-215
[5]   Requirement of the paraxis gene for somite formation and musculoskeletal patterning [J].
Burgess, R ;
Rawls, A ;
Brown, D ;
Bradley, A ;
Olson, EN .
NATURE, 1996, 384 (6609) :570-573
[6]   PARAXIS - A BASIC HELIX-LOOP-HELIX PROTEIN EXPRESSED IN PARAXIAL MESODERM AND DEVELOPING SOMITES [J].
BURGESS, R ;
CSERJESI, P ;
LIGON, KL ;
OLSON, EN .
DEVELOPMENTAL BIOLOGY, 1995, 168 (02) :296-306
[7]  
Christ B, 1998, ANAT EMBRYOL, V197, P1
[8]  
CONLON RA, 1995, DEVELOPMENT, V121, P1533
[9]   RETINOIC ACID AND PATTERN-FORMATION IN VERTEBRATES [J].
CONLON, RA .
TRENDS IN GENETICS, 1995, 11 (08) :314-319
[10]   CLOCK AND WAVEFRONT MODEL FOR CONTROL OF NUMBER OF REPEATED STRUCTURES DURING ANIMAL MORPHOGENESIS [J].
COOKE, J ;
ZEEMAN, EC .
JOURNAL OF THEORETICAL BIOLOGY, 1976, 58 (02) :455-476