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Investigating the genetic basis of vertebrate dispersal combining RNA ‐seq, RAD ‐seq and quantitative genetics

Luis M. San‐Jose; Elvire Bestion; Félix Pellerin; Murielle Richard; Lucie Di Gesu; Jordi Salmona; Laurane Winandy; Delphine Legrand; Camille Bonneaud; Olivier Guillaume; Olivier Calvez; Kathryn R. Elmer; Andrey A. Yurchenko; Hans Recknagel; Jean Clobert; Julien Cote
Molecular Ecology · Vol. 32, Issue 12 · pp. 3060-3075 · 2023

Abstract

Although animal dispersal is known to play key roles in ecological and evolutionary processes such as colonization, population extinction and local adaptation, little is known about its genetic basis, particularly in vertebrates. Untapping the genetic basis of dispersal should deepen our understanding of how dispersal behaviour evolves, the molecular mechanisms that regulate it and link it to other phenotypic aspects in order to form the so‐called dispersal syndromes. Here, we comprehensively combined quantitative genetics, genome‐wide sequencing and transcriptome sequencing to investigate the genetic basis of natal dispersal in a known ecological and evolutionary model of vertebrate dispersal: the common lizard, Zootoca vivipara. Our study supports the heritability of dispersal in semi‐natural populations, with less variation attributable to maternal and natal environment effects. In addition, we found an association between natal dispersal and both variation in the carbonic anhydrase ( CA10 ) gene, and in the expression of several genes ( TGFB2 , SLC6A4 , NOS1 ) involved in central nervous system functioning. These findings suggest that neurotransmitters (serotonin and nitric oxide) are involved in the regulation of dispersal and shaping dispersal syndromes. Several genes from the circadian clock ( CRY2, KCTD21 ) were also differentially expressed between disperser and resident lizards, supporting that the circadian rhythm, known to be involved in long‐distance migration in other taxa, might affect dispersal as well. Since neuronal and circadian pathways are relatively well conserved across vertebrates, our results are likely to be generalisable, and we therefore encourage future studies to further investigate the role of these pathways in shaping dispersal in vertebrates.

Bibliographic Information

JournalMolecular Ecology
PublisherWiley
Publication Date2023-06-01
Publication Year2023
Volume32
Issue12
Pages3060-3075
Document TypeJournal Article
Print ISSN0962-1083
eISSN1365-294X
DOI10.1111/mec.16916
SubjectEcology & Organismal Biology

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/1365294X
Publisher PageOpen Publisher Page
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