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Experimental Evolution in a Warming World: The Omics Era.

Marta A Santos | Ana Carromeu-Santos | Ana S Quina | Marta A Antunes | Torsten N Kristensen | Mauro Santos | Margarida Matos | Inês Fragata | Pedro Simões
Molecular biology and evolution | 2024

A comprehensive understanding of the genetic mechanisms that shape species responses to thermal variation is essential for more accurate predictions of the impacts of climate change on biodiversity. Experimental evolution with high-throughput resequencing approaches (evolve and resequence) is a highly effective tool that has been increasingly employed to elucidate the genetic basis of adaptation. The number of thermal evolve and resequence studies is rising, yet there is a dearth of efforts to integrate this new wealth of knowledge. Here, we review this literature showing how these studies have contributed to increase our understanding on the genetic basis of thermal adaptation. We identify two major trends: highly polygenic basis of thermal adaptation and general lack of consistency in candidate targets of selection between studies. These findings indicate that the adaptive responses to specific environments are rather independent. A review of the literature reveals several gaps in the existing research. Firstly, there is a paucity of studies done with organisms of diverse taxa. Secondly, there is a need to apply more dynamic and ecologically relevant thermal environments. Thirdly, there is a lack of studies that integrate genomic changes with changes in life history and behavioral traits. Addressing these issues would allow a more in-depth understanding of the relationship between genotype and phenotype. We highlight key methodological aspects that can address some of the limitations and omissions identified. These include the need for greater standardization of methodologies and the utilization of new technologies focusing on the integration of genomic and phenotypic variation in the context of thermal adaptation.

Pubmed ID: 39034684

Research resources used in this publication

None found

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Antibodies used in this publication

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Associated grants

  • Agency: Fundação para a Ciência e a Tecnologia,
    Id: 50110000187
  • Agency: European Research Council, International
    Id: 101042392
  • Agency: National Funds,
    Id: CEECIND/0216/2018
  • Agency: Ministerio de Ciencia e Innovación,
    Id: 2021 SGR 00526
  • Agency: Generalitat de Catalunya,

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FlyBase (tool)

RRID:SCR_006549

Database of Drosophila genetic and genomic information with information about stock collections and fly genetic tools. Gene Ontology (GO) terms are used to describe three attributes of wild-type gene products: their molecular function, the biological processes in which they play a role, and their subcellular location. Additionally, FlyBase accepts data submissions. FlyBase can be searched for genes, alleles, aberrations and other genetic objects, phenotypes, sequences, stocks, images and movies, controlled terms, and Drosophila researchers using the tools available from the "Tools" drop-down menu in the Navigation bar.

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