Sequencing and comparative analysis of fugu protocadherin clusters reveal diversity of protocadherin genes among teleosts

被引:27
作者
Yu, Wei-Ping
Yew, Kenneth
Rajasegaran, Vikneswari
Venkatesh, Byrappa
机构
[1] Natl Inst Neurosci, Gene Regulat Lab, Singapore 308433, Singapore
[2] Inst Mol & Cell Biol, Singapore 138673, Singapore
关键词
D O I
10.1186/1471-2148-7-49
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: The synaptic cell adhesion molecules, protocadherins, are a vertebrate innovation that accompanied the emergence of the neural tube and the elaborate central nervous system. In mammals, the protocadherins are encoded by three closely-linked clusters (alpha, beta and gamma) of tandem genes and are hypothesized to provide a molecular code for specifying the remarkably-diverse neural connections in the central nervous system. Like mammals, the coelacanth, a lobe-finned fish, contains a single protocadherin locus, also arranged into alpha, beta and gamma clusters. Zebrafish, however, possesses two protocadherin loci that contain more than twice the number of genes as the coelacanth, but arranged only into a and. clusters. To gain further insight into the evolutionary history of protocadherin clusters, we have sequenced and analyzed protocadherin clusters from the compact genome of the pufferfish, Fugu rubripes. Results: Fugu contains two unlinked protocadherin loci, Pcdh1 and Pcdh2, that collectively consist of at least 77 genes. The fugu Pcdh1 locus has been subject to extensive degeneration, resulting in the complete loss of Pcdh1 gamma cluster. The fugu Pcdh genes have undergone lineage-specific regional gene conversion processes that have resulted in a remarkable regional sequence homogenization among paralogs in the same subcluster. Phylogenetic analyses show that most protocadherin genes are orthologous between fugu and zebrafish either individually or as paralog groups. Based on the inferred phylogenetic relationships of fugu and zebrafish genes, we have reconstructed the evolutionary history of protocadherin clusters in the teleost fish lineage. Conclusion: Our results demonstrate the exceptional evolutionary dynamism of protocadherin genes in vertebrates in general, and in teleost fishes in particular. Besides the 'fish-specific' whole genome duplication, the evolution of protocadherin genes in teleost fishes is influenced by lineage-specific gene losses, tandem gene duplications and regional sequence homogenization. The dynamic protocadherin clusters might have led to the diversification of neural circuitry among teleosts, and contributed to the behavioral and physiological diversity of teleosts.
引用
收藏
页数:12
相关论文
共 33 条
[1]   Whole-genome shotgun assembly and analysis of the genome of Fugu rubripes [J].
Aparicio, S ;
Chapman, J ;
Stupka, E ;
Putnam, N ;
Chia, J ;
Dehal, P ;
Christoffels, A ;
Rash, S ;
Hoon, S ;
Smit, A ;
Gelpke, MDS ;
Roach, J ;
Oh, T ;
Ho, IY ;
Wong, M ;
Detter, C ;
Verhoef, F ;
Predki, P ;
Tay, A ;
Lucas, S ;
Richardson, P ;
Smith, SF ;
Clark, MS ;
Edwards, YJK ;
Doggett, N ;
Zharkikh, A ;
Tavtigian, SV ;
Pruss, D ;
Barnstead, M ;
Evans, C ;
Baden, H ;
Powell, J ;
Glusman, G ;
Rowen, L ;
Hood, L ;
Tan, YH ;
Elgar, G ;
Hawkins, T ;
Venkatesh, B ;
Rokhsar, D ;
Brenner, S .
SCIENCE, 2002, 297 (5585) :1301-1310
[2]   Prediction of complete gene structures in human genomic DNA [J].
Burge, C ;
Karlin, S .
JOURNAL OF MOLECULAR BIOLOGY, 1997, 268 (01) :78-94
[3]   Fugu genome analysis provides evidence for a whole-genome duplication early during the evolution of ray-finned fishes [J].
Christoffels, A ;
Koh, EGL ;
Chia, JM ;
Brenner, S ;
Aparicio, S ;
Venkatesh, B .
MOLECULAR BIOLOGY AND EVOLUTION, 2004, 21 (06) :1146-1151
[4]   Detecting and characterizing gene conversions between multigene family members [J].
Drouin, G ;
Prat, F ;
Ell, M ;
Clarke, GDP .
MOLECULAR BIOLOGY AND EVOLUTION, 1999, 16 (10) :1369-1390
[5]   Monoallelic yet combinatorial expression of variable exons of the protocadherin-α gene cluster in single neurons [J].
Esumi, S ;
Kakazu, N ;
Taguchi, Y ;
Hirayama, T ;
Sasaki, A ;
Hirabayashi, T ;
Koide, T ;
Kitsukawa, T ;
Hamada, S ;
Yagi, T .
NATURE GENETICS, 2005, 37 (02) :171-176
[6]  
FRANK M, 2005, MOL CELL NEUROSCI, V603, P29
[7]  
Galtier N, 2001, GENETICS, V159, P907
[8]   Cadherin superfamily proteins in Caenorhabditis elegans and Drosophila melanogaster [J].
Hill, E ;
Broadbent, ID ;
Chothia, C ;
Pettitt, J .
JOURNAL OF MOLECULAR BIOLOGY, 2001, 305 (05) :1011-1024
[9]   Genome duplication in the teleost fish Tetraodon nigroviridis reveals the early vertebrate proto-karyotype [J].
Jaillon, O ;
Aury, JM ;
Brunet, F ;
Petit, JL ;
Stange-Thomann, N ;
Mauceli, E ;
Bouneau, L ;
Fischer, C ;
Ozouf-Costaz, C ;
Bernot, A ;
Nicaud, S ;
Jaffe, D ;
Fisher, S ;
Lutfalla, G ;
Dossat, C ;
Segurens, B ;
Dasilva, C ;
Salanoubat, M ;
Levy, M ;
Boudet, N ;
Castellano, S ;
Anthouard, R ;
Jubin, C ;
Castelli, V ;
Katinka, M ;
Vacherie, B ;
Biémont, C ;
Skalli, Z ;
Cattolico, L ;
Poulain, J ;
de Berardinis, V ;
Cruaud, C ;
Duprat, S ;
Brottier, P ;
Coutanceau, JP ;
Gouzy, J ;
Parra, G ;
Lardier, G ;
Chapple, C ;
McKernan, KJ ;
McEwan, P ;
Bosak, S ;
Kellis, M ;
Volff, JN ;
Guigó, R ;
Zody, MC ;
Mesirov, J ;
Lindblad-Toh, K ;
Birren, B ;
Nusbaum, C .
NATURE, 2004, 431 (7011) :946-957
[10]   Diversity revealed by a novel family of cadherins expressed in neurons at a synaptic complex [J].
Kohmura, N ;
Senzaki, K ;
Hamada, S ;
Kai, N ;
Yasuda, R ;
Watanabe, M ;
Ishii, H ;
Yasuda, M ;
Mishina, M ;
Yagi, T .
NEURON, 1998, 20 (06) :1137-1151