Interlocus Gene Conversion, Natural Selection, and Paralog Homogenization

Author:

Yang Yixuan1,Xu Tanchumin12,Conant Gavin13,Kishino Hirohisa4,Thorne Jeffrey L123,Ji Xiang5

Affiliation:

1. Bioinformatics Research Center, North Carolina State University , Raleigh, NC , USA

2. Department of Statistics, North Carolina State University , Raleigh, NC , USA

3. Department of Biological Sciences, North Carolina State University , Raleigh, NC , USA

4. AI/Data Science Social Implementation Laboratory, Chuo University , Tokyo , Japan

5. Department of Mathematics, Tulane University , New Orleans, LA , USA

Abstract

Abstract Following a duplication, the resulting paralogs tend to diverge. While mutation and natural selection can accelerate this process, they can also slow it. Here, we quantify the paralog homogenization that is caused by point mutations and interlocus gene conversion (IGC). Among 164 duplicated teleost genes, the median percentage of postduplication codon substitutions that arise from IGC rather than point mutation is estimated to be between 7% and 8%. By differentiating between the nonsynonymous codon substitutions that homogenize the protein sequences of paralogs and the nonhomogenizing nonsynonymous substitutions, we estimate the homogenizing nonsynonymous rates to be higher for 163 of the 164 teleost data sets as well as for all 14 data sets of duplicated yeast ribosomal protein-coding genes that we consider. For all 14 yeast data sets, the estimated homogenizing nonsynonymous rates exceed the synonymous rates.

Funder

NSF

Japan Society for the Promotion of Science

NVIDIA

Publisher

Oxford University Press (OUP)

Subject

Genetics,Molecular Biology,Ecology, Evolution, Behavior and Systematics

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