Reverse engineering the gap gene network of Drosophila melanogaster

被引:127
作者
Perkins, Theodore J. [1 ]
Jaeger, Johannes
Reinitz, John
Glass, Leon
机构
[1] McGill Univ, McGill Ctr Informat, Montreal, PQ, Canada
[2] SUNY Stony Brook, Dept Appl Math & Stat, New York, NY USA
[3] SUNY Stony Brook, Ctr Dev Genet, Stony Brook, NY 11794 USA
[4] McGill Univ, Dept Physiol, Ctr Nonlinear Dynam, Montreal, PQ, Canada
关键词
D O I
10.1371/journal.pcbi.0020051
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
A fundamental problem in functional genomics is to determine the structure and dynamics of genetic networks based on expression data. We describe a new strategy for solving this problem and apply it to recently published data on early Drosophila melanogaster development. Our method is orders of magnitude faster than current fitting methods and allows us to fit different types of rules for expressing regulatory relationships. Specifically, we use our approach to fit models using a smooth nonlinear formalism for modeling gene regulation ( gene circuits) as well as models using logical rules based on activation and repression thresholds for transcription factors. Our technique also allows us to infer regulatory relationships de novo or to test network structures suggested by the literature. We fit a series of models to test several outstanding questions about gap gene regulation, including regulation of and by hunchback and the role of autoactivation. Based on our modeling results and validation against the experimental literature, we propose a revised network structure for the gap gene system. Interestingly, some relationships in standard textbook models of gap gene regulation appear to be unnecessary for or even inconsistent with the details of gap gene expression during wild-type development.
引用
收藏
页码:417 / 428
页数:12
相关论文
共 54 条
[21]   THE MOLECULAR-GENETICS OF EMBRYONIC PATTERN-FORMATION IN DROSOPHILA [J].
INGHAM, PW .
NATURE, 1988, 335 (6185) :25-34
[22]   CROSS-REGULATORY INTERACTIONS AMONG THE GAP GENES OF DROSOPHILA [J].
JACKLE, H ;
TAUTZ, D ;
SCHUH, R ;
SEIFERT, E ;
LEHMANN, R .
NATURE, 1986, 324 (6098) :668-670
[23]   Dynamical analysis of regulatory interactions in the gap gene system of Drosophila melanogaster [J].
Jaeger, J ;
Blagov, M ;
Kosman, D ;
Kozlov, KN ;
Manu ;
Myasnikova, E ;
Surkova, S ;
Vanario-Alonso, CE ;
Samsonova, M ;
Sharp, DH ;
Reinitz, J .
GENETICS, 2004, 167 (04) :1721-1737
[24]   Dynamic control of positional information in the early Drosophila embryo [J].
Jaeger, J ;
Surkova, S ;
Blagov, M ;
Janssens, H ;
Kosman, D ;
Kozlov, KN ;
Manu ;
Myasnikova, E ;
Vanario-Alonso, CE ;
Samsonova, M ;
Sharp, DH ;
Reinitz, J .
NATURE, 2004, 430 (6997) :368-371
[25]   A high-throughput method for quantifying gene expression data from early Drosophila embryos [J].
Janssens, H ;
Kosman, D ;
Vanario-Alonso, CE ;
Jaeger, J ;
Samsonova, M ;
Reinitz, J .
DEVELOPMENT GENES AND EVOLUTION, 2005, 215 (07) :374-381
[26]   Rapid preparation of a panel of polyclonal antibodies to Drosophila segmentation proteins [J].
Kosman, D ;
Small, S ;
Reinitz, J .
DEVELOPMENT GENES AND EVOLUTION, 1998, 208 (05) :290-294
[27]  
KRAUT R, 1991, DEVELOPMENT, V111, P601
[28]  
KRAUT R, 1991, DEVELOPMENT, V111, P611
[29]   Dynamics of the genetic regulatory network for Arabidopsis thaliana flower morphogenesis [J].
Mendoza, L ;
Alvarez-Buylla, ER .
JOURNAL OF THEORETICAL BIOLOGY, 1998, 193 (02) :307-319
[30]   Genetic control of flower morphogenesis in Arabidopsis thaliana:: a logical analysis [J].
Mendoza, L ;
Thieffry, D ;
Alvarez-Buylla, ER .
BIOINFORMATICS, 1999, 15 (7-8) :593-606