Genome-enabled discovery of evolutionary divergence in brains and behavior

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作者
Chinar Patil
Jonathan B. Sylvester
Kawther Abdilleh
Michael W. Norsworthy
Karen Pottin
Milan Malinsky
Ryan F. Bloomquist
Zachary V. Johnson
Patrick T. McGrath
Jeffrey T. Streelman
机构
[1] Georgia Institute of Technology,School of Biological Sciences and Petit Institute of Bioengineering and Bioscience
[2] Georgia State University,Department of Biology
[3] Catalog Technologies Inc.,Laboratoire de Biologie du Dévelopement (IBPS
[4] Freedom of Form Foundation,LBD, UMR7622), CNRS, Institut de Biologie Paris Seine
[5] Inc.,Department of Environmental Sciences, Zoological Institute
[6] Sorbonne Université,Department of Oral Biology and Diagnostic Sciences, Department of Restorative Sciences, Dental College of Georgia
[7] University of Basel,undefined
[8] Wellcome Trust Sanger Institute,undefined
[9] Augusta University,undefined
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摘要
Lake Malawi cichlid fishes exhibit extensive divergence in form and function built from a relatively small number of genetic changes. We compared the genomes of rock- and sand-dwelling species and asked which genetic variants differed among the groups. We found that 96% of differentiated variants reside in non-coding sequence but these non-coding diverged variants are evolutionarily conserved. Genome regions near differentiated variants are enriched for craniofacial, neural and behavioral categories. Following leads from genome sequence, we used rock- vs. sand-species and their hybrids to (i) delineate the push–pull roles of BMP signaling and irx1b in the specification of forebrain territories during gastrulation and (ii) reveal striking context-dependent brain gene expression during adult social behavior. Our results demonstrate how divergent genome sequences can predict differences in key evolutionary traits. We highlight the promise of evolutionary reverse genetics—the inference of phenotypic divergence from unbiased genome sequencing and then empirical validation in natural populations.
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