Segmentation and somitogenesis derived from phase dynamics in growing oscillatory media

被引:53
作者
Kærn, M
Menzinger, M
Hunding, A
机构
[1] Univ Toronto, Dept Chem, Toronto, ON M5S 3H6, Canada
[2] Univ Copenhagen, Dept Chem, DK-2100 Copenhagen, Denmark
关键词
D O I
10.1006/jtbi.2000.2183
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The formation of spatially repetitive structures along the growth axis of a developing embryo is a common theme in developmental biology. Here we apply the novel flow-distributed oscillator (FDO) mechanism of wave pattern formation to the problem of axial segmentation in general and to somitogenesis in particular. We argue that the conditions for formation of FDO waves are satisfied during somitogenesis in the chick and mouse and that the waves of gene expression observed in these species arise from phase dynamics in a growing oscillatory medium. We substantiate this claim by showing that the FDO mechanism allows the waves to be mimicked by an inorganic experiment and that it predicts a wavelength that coincides with that observed experimentally. To see whether the FDO mechanism is compatible with other aspects of somitogenesis, we construct an FDO-based model of somitogenesis and successfully test it against a number of experimental observations, including the effect of heat shock. Our analysis provides a rigorous physical basis for the hypothesis that the phase dynamics of a segmental clock controls important stages of segmentation during somitogenesis in the chick and mouse as well as in other organisms that undergo segmentation during their axial growth. (C) 2000 Academic Press.
引用
收藏
页码:473 / 493
页数:21
相关论文
共 62 条
[1]   Stationary space-periodic structures with equal diffusion coefficients [J].
Andresén, P ;
Bache, M ;
Mosekilde, E ;
Dewel, G ;
Borckmans, P .
PHYSICAL REVIEW E, 1999, 60 (01) :297-301
[2]   Dynamic expression of lunatic fringe suggests a link between notch signaling and an autonomous cellular oscillator driving somite segmentation [J].
Aulehla, A ;
Johnson, RL .
DEVELOPMENTAL BIOLOGY, 1999, 207 (01) :49-61
[3]   Interaction between Notch signalling and Lunatic fringe during somite boundary formation in the mouse [J].
Barrantes, ID ;
Elia, AJ ;
Wünsch, K ;
De Angelis, MH ;
Mak, TW ;
Rossant, J ;
Conlon, RA ;
Gossler, A ;
de la Pompa, JL .
CURRENT BIOLOGY, 1999, 9 (09) :470-480
[4]   EXPERIMENTAL-EVIDENCE OF A SUSTAINED STANDING TURING-TYPE NONEQUILIBRIUM CHEMICAL-PATTERN [J].
CASTETS, V ;
DULOS, E ;
BOISSONADE, J ;
DEKEPPER, P .
PHYSICAL REVIEW LETTERS, 1990, 64 (24) :2953-2956
[5]   A cell cycle model for somitogenesis: Mathematical formulation and numerical simulation [J].
Collier, JR ;
McInerney, D ;
Schnell, S ;
Maini, PK ;
Gavaghan, DJ ;
Houston, P ;
Stern, CD .
JOURNAL OF THEORETICAL BIOLOGY, 2000, 207 (03) :305-316
[6]   A gene that resuscitates a theory - somitogenesis and a molecular oscillator [J].
Cooke, J .
TRENDS IN GENETICS, 1998, 14 (03) :85-88
[7]   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
[8]   CONTROL OF SOMITE NUMBER DURING MORPHOGENESIS OF A VERTEBRATE, XENOPUS-LAEVIS [J].
COOKE, J .
NATURE, 1975, 254 (5497) :196-199
[9]  
Dale KJ, 2000, BIOESSAYS, V22, P72, DOI 10.1002/(SICI)1521-1878(200001)22:1<72::AID-BIES12>3.0.CO
[10]  
2-S