Literature DB >> 33484593

Genetic architecture and adaptation of flowering time among environments.

Wenjie Yan1,2, Baosheng Wang3,4, Emily Chan2, Thomas Mitchell-Olds2.   

Abstract

The genetic basis of flowering time changes across environments, and pleiotropy may limit adaptive evolution of populations in response to local conditions. However, little information is known about how genetic architecture changes among environments. We used genome-wide association studies (GWAS) in Boechera stricta (Graham) Al-Shehbaz, a relative of Arabidopsis, to examine flowering variation among environments and associations with climate conditions in home environments. Also, we used molecular population genetics to search for evidence of historical natural selection. GWAS found 47 significant quantitative trait loci (QTLs) that influence flowering time in one or more environments, control plastic changes in phenology between experiments, or show associations with climate in sites of origin. Genetic architecture of flowering varied substantially among environments. We found that some pairs of QTLs showed similar patterns of pleiotropy across environments. A large-effect QTL showed molecular signatures of adaptive evolution and is associated with climate in home environments. The derived allele at this locus causes later flowering and predominates in sites with greater water availability. This work shows that GWAS of climate associations and ecologically important traits across diverse environments can be combined with molecular signatures of natural selection to elucidate ecological genetics of adaptive evolution.
© 2021 The Authors New Phytologist © 2021 New Phytologist Foundation.

Entities:  

Keywords:  zzm321990Boechera strictazzm321990; climate; flowering time; genetic architecture; genotype-environment interaction; plasticity; pleiotropy

Mesh:

Year:  2021        PMID: 33484593      PMCID: PMC8193995          DOI: 10.1111/nph.17229

Source DB:  PubMed          Journal:  New Phytol        ISSN: 0028-646X            Impact factor:   10.151


  80 in total

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2.  Adaptation from standing genetic variation.

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3.  Climate change disrupts local adaptation and favours upslope migration.

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4.  Arabidopsis thaliana populations show clinal variation in a climatic gradient associated with altitude.

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5.  Microgeographic Patterns of Genetic Divergence and Adaptation across Environmental Gradients in Boechera stricta (Brassicaceae).

Authors:  Jill T Anderson; Nadeesha Perera; Bashira Chowdhury; Thomas Mitchell-Olds
Journal:  Am Nat       Date:  2015-08-17       Impact factor: 3.926

6.  Altitudinal and climatic associations of seed dormancy and flowering traits evidence adaptation of annual life cycle timing in Arabidopsis thaliana.

Authors:  Deborah S Vidigal; Alexandre C S S Marques; Leo A J Willems; Gonda Buijs; Belén Méndez-Vigo; Henk W M Hilhorst; Leónie Bentsink; F Xavier Picó; Carlos Alonso-Blanco
Journal:  Plant Cell Environ       Date:  2016-05-04       Impact factor: 7.228

7.  Conditional effects of the epigenetic regulator JUMONJI 14 in Arabidopsis root growth.

Authors:  Pietro Cattaneo; Moritz Graeff; Petra Marhava; Christian S Hardtke
Journal:  Development       Date:  2019-12-11       Impact factor: 6.868

8.  Natural selection on the Arabidopsis thaliana genome in present and future climates.

Authors:  Moises Exposito-Alonso; Hernán A Burbano; Oliver Bossdorf; Rasmus Nielsen; Detlef Weigel
Journal:  Nature       Date:  2019-08-28       Impact factor: 49.962

9.  The effect of artificial selection on phenotypic plasticity in maize.

Authors:  Joseph L Gage; Diego Jarquin; Cinta Romay; Aaron Lorenz; Edward S Buckler; Shawn Kaeppler; Naser Alkhalifah; Martin Bohn; Darwin A Campbell; Jode Edwards; David Ertl; Sherry Flint-Garcia; Jack Gardiner; Byron Good; Candice N Hirsch; Jim Holland; David C Hooker; Joseph Knoll; Judith Kolkman; Greg Kruger; Nick Lauter; Carolyn J Lawrence-Dill; Elizabeth Lee; Jonathan Lynch; Seth C Murray; Rebecca Nelson; Jane Petzoldt; Torbert Rocheford; James Schnable; Patrick S Schnable; Brian Scully; Margaret Smith; Nathan M Springer; Srikant Srinivasan; Renee Walton; Teclemariam Weldekidan; Randall J Wisser; Wenwei Xu; Jianming Yu; Natalia de Leon
Journal:  Nat Commun       Date:  2017-11-07       Impact factor: 14.919

10.  Integrating viability and fecundity selection to illuminate the adaptive nature of genetic clines.

Authors:  Susana M Wadgymar; S Caroline Daws; Jill T Anderson
Journal:  Evol Lett       Date:  2017-05-03
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  4 in total

1.  Genotypic variation and plasticity in climate-adaptive traits after range expansion and fragmentation of red spruce (Picea rubens Sarg.).

Authors:  Anoob Prakash; Sonia DeYoung; Susanne Lachmuth; Jacquelyne L Adams; Kurt Johnsen; John R Butnor; David M Nelson; Matthew C Fitzpatrick; Stephen R Keller
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2022-02-21       Impact factor: 6.237

2.  Globally Relaxed Selection and Local Adaptation in Boechera stricta.

Authors:  Yi-Ye Liang; Xue-Yan Chen; Biao-Feng Zhou; Thomas Mitchell-Olds; Baosheng Wang
Journal:  Genome Biol Evol       Date:  2022-04-10       Impact factor: 4.065

3.  Quantitative trait loci mapping reveals an oligogenic architecture of a rapidly adapting trait during the European invasion of common ragweed.

Authors:  Diana Prapas; Romain Scalone; Jacqueline Lee; Kristin A Nurkowski; Sarah Bou-Assi; Loren Rieseberg; Paul Battlay; Kathryn A Hodgins
Journal:  Evol Appl       Date:  2022-08-04       Impact factor: 4.929

4.  LsARF3 mediates thermally induced bolting through promoting the expression of LsCO in lettuce (Lactuca sativa L.).

Authors:  Yunfeng Li; Jiaqi Zhu; Yixuan Feng; Zhenfeng Li; Zheng Ren; Ning Liu; Chaojie Liu; Jinghong Hao; Yingyan Han
Journal:  Front Plant Sci       Date:  2022-09-08       Impact factor: 6.627

  4 in total

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