Genetics, Vol. 151, 1531-1545, April 1999, Copyright © 1999

Preservation of Duplicate Genes by Complementary, Degenerative Mutations

Allan Forcea, Michael Lyncha, F. Bryan Pickettb, Angel Amoresa, Yi-lin Yana, and John Postlethwaita
a Department of Biology, University of Oregon, Eugene, Oregon 97403
b Department of Biology, Loyola University of Chicago, Chicago, Illinois 60626

Corresponding author: Allan Force, Department of Biology, University of Oregon, Eugene, OR 97403., force{at}oregon.uoregon.edu (E-mail)

Communicating editor: A. G. CLARK

The origin of organismal complexity is generally thought to be tightly coupled to the evolution of new gene functions arising subsequent to gene duplication. Under the classical model for the evolution of duplicate genes, one member of the duplicated pair usually degenerates within a few million years by accumulating deleterious mutations, while the other duplicate retains the original function. This model further predicts that on rare occasions, one duplicate may acquire a new adaptive function, resulting in the preservation of both members of the pair, one with the new function and the other retaining the old. However, empirical data suggest that a much greater proportion of gene duplicates is preserved than predicted by the classical model. Here we present a new conceptual framework for understanding the evolution of duplicate genes that may help explain this conundrum. Focusing on the regulatory complexity of eukaryotic genes, we show how complementary degenerative mutations in different regulatory elements of duplicated genes can facilitate the preservation of both duplicates, thereby increasing long-term opportunities for the evolution of new gene functions. The duplication-degeneration-complementation (DDC) model predicts that (1) degenerative mutations in regulatory elements can increase rather than reduce the probability of duplicate gene preservation and (2) the usual mechanism of duplicate gene preservation is the partitioning of ancestral functions rather than the evolution of new functions. We present several examples (including analysis of a new engrailed gene in zebrafish) that appear to be consistent with the DDC model, and we suggest several analytical and experimental approaches for determining whether the complementary loss of gene subfunctions or the acquisition of novel functions are likely to be the primary mechanisms for the preservation of gene duplicates. For a newly duplicated paralog, survival depends on the outcome of the race between entropic decay and chance acquisition of an advantageous regulatory mutation.

SIDOW 1996 Down(p. 717) On one hand, it may fix an advantageous allele giving it a slightly different, and selectable, function from its original copy. This initial fixation provides substantial protection against future fixation of null mutations, allowing additional mutations to accumulate that refine functional differentiation. Alternatively, a duplicate locus can instead first fix a null allele, becoming a pseudogene.

WALSH 1995 Down(p. 426) Duplicated genes persist only if mutations create new and essential protein functions, an event that is predicted to occur rarely.

NADEAU and SANKOFF 1997 Down(p. 1259) Thus overall, with complex metazoans, the major mechanism for retention of ancient gene duplicates would appear to have been the acquisition of novel expression sites for developmental genes, with its accompanying opportunity for new gene roles underlying the progressive extension of development itself.

COOKE et al. 1997 Down(p. 362)





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D. Houzelstein, I. R. Goncalves, A. Orth, F. Bonhomme, and P. Netter
Lgals6, a 2-Million-Year-Old Gene in Mice: A Case of Positive Darwinian Selection and Presence/Absence Polymorphism
Genetics, March 1, 2008; 178(3): 1533 - 1545.
[Abstract] [Full Text] [PDF]


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GeneticsHome page
M.-S. Shiao, B.-Y. Liao, M. Long, and H.-T. Yu
Adaptive Evolution of the Insulin Two-Gene System in Mouse
Genetics, March 1, 2008; 178(3): 1683 - 1691.
[Abstract] [Full Text] [PDF]


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GeneticsHome page
J. F. Storz, F. G. Hoffmann, J. C. Opazo, and H. Moriyama
Adaptive Functional Divergence Among Triplicated {alpha}-Globin Genes in Rodents
Genetics, March 1, 2008; 178(3): 1623 - 1638.
[Abstract] [Full Text] [PDF]


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J R Soc InterfaceHome page
M. A Fuentes and D. C Krakauer
The evolution of developmental patterning under genetic duplication constraints
J R Soc Interface, February 6, 2008; 5(19): 237 - 245.
[Abstract] [Full Text] [PDF]


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Genome ResHome page
A. Prachumwat and W.-H. Li
Gene number expansion and contraction in vertebrate genomes with respect to invertebrate genomes
Genome Res., February 1, 2008; 18(2): 221 - 232.
[Abstract] [Full Text] [PDF]


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DevelopmentHome page
Y. Suzuki, J. W. Truman, and L. M. Riddiford
The role of Broad in the development of Tribolium castaneum: implications for the evolution of the holometabolous insect pupa
Development, February 1, 2008; 135(3): 569 - 577.
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Mol Biol EvolHome page
T. Yuri, R. T. Kimball, E. L. Braun, and M. J. Braun
Duplication of Accelerated Evolution and Growth Hormone Gene in Passerine Birds
Mol. Biol. Evol., February 1, 2008; 25(2): 352 - 361.
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BioinformaticsHome page
A. C. Tzika, R. Helaers, Y. Van de Peer, and M. C. Milinkovitch
MANTIS: a phylogenetic framework for multi-species genome comparisons
Bioinformatics, January 15, 2008; 24(2): 151 - 157.
[Abstract] [Full Text] [PDF]


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Genome ResHome page
D. R. Scannell and K. H. Wolfe
A burst of protein sequence evolution and a prolonged period of asymmetric evolution follow gene duplication in yeast
Genome Res., January 1, 2008; 18(1): 137 - 147.
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DevelopmentHome page
H. Bielen, S. Oberleitner, S. Marcellini, L. Gee, P. Lemaire, H. R. Bode, R. Rupp, and U. Technau
Divergent functions of two ancient Hydra Brachyury paralogues suggest specific roles for their C-terminal domains in tissue fate induction
Development, December 1, 2007; 134(23): 4187 - 4197.
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Genome ResHome page
J. G. Ruby, A. Stark, W. K. Johnston, M. Kellis, D. P. Bartel, and E. C. Lai
Evolution, biogenesis, expression, and target predictions of a substantially expanded set of Drosophila microRNAs
Genome Res., December 1, 2007; 17(12): 1850 - 1864.
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DevelopmentHome page
S. Drea, L. C. Hileman, G. de Martino, and V. F. Irish
Functional analyses of genetic pathways controlling petal specification in poppy
Development, December 1, 2007; 134(23): 4157 - 4166.
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Mol Biol EvolHome page
W. M. Patrick, E. M. Quandt, D. B. Swartzlander, and I. Matsumura
Multicopy Suppression Underpins Metabolic Evolvability
Mol. Biol. Evol., December 1, 2007; 24(12): 2716 - 2722.
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BloodHome page
N. Bahary, K. Goishi, C. Stuckenholz, G. Weber, J. LeBlanc, C. A. Schafer, S. S. Berman, M. Klagsbrun, and L. I. Zon
Duplicate VegfA genes and orthologues of the KDR receptor tyrosine kinase family mediate vascular development in the zebrafish
Blood, November 15, 2007; 110(10): 3627 - 3636.
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GeneticsHome page
M. L. Maeder, B. J. Polansky, B. E. Robson, and D. A. Eastman
Phylogenetic Footprinting Analysis in the Upstream Regulatory Regions of the Drosophila Enhancer of split Genes
Genetics, November 1, 2007; 177(3): 1377 - 1394.
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GeneticsHome page
A. E. Melchinger, H.-P. Piepho, H. F. Utz, J. Muminovic, T. Wegenast, O. Torjek, T. Altmann, and B. Kusterer
Genetic Basis of Heterosis for Growth-Related Traits in Arabidopsis Investigated by Testcross Progenies of Near-Isogenic Lines Reveals a Significant Role of Epistasis
Genetics, November 1, 2007; 177(3): 1827 - 1837.
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GeneticsHome page
W. Y. Low, H. L. Ng, C. J. Morton, M. W. Parker, P. Batterham, and C. Robin
Molecular Evolution of Glutathione S-Transferases in the Genus Drosophila
Genetics, November 1, 2007; 177(3): 1363 - 1375.
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Mol Biol EvolHome page
D. A. Johnson and M. A. Thomas
The Monosaccharide Transporter Gene Family in Arabidopsis and Rice: A History of Duplications, Adaptive Evolution, and Functional Divergence
Mol. Biol. Evol., November 1, 2007; 24(11): 2412 - 2423.
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Mol Biol EvolHome page
L. J. Leach, Z. Zhang, C. Lu, M. J. Kearsey, and Z. Luo
The Role of Cis-Regulatory Motifs and Genetical Control of Expression in the Divergence of Yeast Duplicate Genes
Mol. Biol. Evol., November 1, 2007; 24(11): 2556 - 2565.
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Proc. Natl. Acad. Sci. USAHome page
U. Bergthorsson, D. I. Andersson, and J. R. Roth
Ohno's dilemma: Evolution of new genes under continuous selection
PNAS, October 23, 2007; 104(43): 17004 - 17009.
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EndocrinologyHome page
C. A. Flanagan, C.-C. Chen, M. Coetsee, S. Mamputha, K. E. Whitlock, N. Bredenkamp, L. Grosenick, R. D. Fernald, and N. Illing
Expression, Structure, Function, and Evolution of Gonadotropin-Releasing Hormone (GnRH) Receptors GnRH-R1SHS and GnRH-R2PEY in the Teleost, Astatotilapia burtoni
Endocrinology, October 1, 2007; 148(10): 5060 - 5071.
[Abstract] [Full Text] [PDF]