Adaptive introgression as a driver of local adaptation to climate in European white oaks.

Thibault Leroy, Jean-Marc Louvet, Céline Lalanne, Grégoire Le Provost, Karine Labadie, Jean-Marc Aury, Sylvain Delzon, Christophe Plomion, Antoine Kremer

Journal: The New phytologist 2021;226(4):1171-1182

PMID: 31394003

Abstract

Latitudinal and elevational gradients provide valuable experimental settings for studies of the potential impact of global warming on forest tree species. The availability of long-term phenological surveys in common garden experiments for traits associated with climate, such as bud flushing for sessile oaks (Quercus petraea), provide an ideal opportunity to investigate this impact. We sequenced 18 sessile oak populations and used available sequencing data for three other closely related European white oak species (Quercus pyrenaica, Quercus pubescens, and Quercus robur) to explore the evolutionary processes responsible for shaping the genetic variation across latitudinal and elevational gradients in extant sessile oaks. We used phenotypic surveys in common garden experiments and climatic data for the population of origin to perform genome-wide scans for population differentiation and genotype-environment and genotype-phenotype associations. The inferred historical relationships between Q. petraea populations suggest that interspecific gene flow occurred between Q. robur and Q. petraea populations from cooler or wetter areas. A genome-wide scan of differentiation between Q. petraea populations identified single nucleotide polymorphisms (SNPs) displaying strong interspecific relative divergence between these two species. These SNPs followed genetic clines along climatic or phenotypic gradients, providing further support for the likely contribution of introgression to the adaptive divergence of Q. petraea populations. Overall, the results indicate that outliers and associated SNPs are Q. robur ancestry-informative. We discuss the results of this study in the framework of the postglacial colonization scenario, in which introgression and diversifying selection have been proposed as essential drivers of Q. petraea microevolution.

© 2019 INRA New Phytologist © 2019 New Phytologist Trust.

Address: BIOGECO, INRA, Université de Bordeaux, 69 Route d'Arcachon, 33612, Cestas, France.; ISEM, CNRS, IRD, EPHE, University of Montpellier, Place Eugène Bataillon, 34095, Montpellier, France.; BIOGECO, INRA, Université de Bordeaux, 69 Route d'Arcachon, 33612, Cestas, France.; Genoscope, Institut de biologie François-Jacob, Commissariat à l'Energie Atomique (CEA), Université Paris-Saclay, Evry, France.
Bant logo

© Copyright 2026, Nutrition Evidence

NED wishes to thank the following organisations for their support:

We use cookies to improve your experience and analyze site traffic with Google Analytics. By continuing to use our site, you agree to our use of cookies. Learn more.