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Century-long timelines of herbarium genomes predict plant stomatal response to climate change
by
Amador, Gabriel
, Lasky, Jesse
, Burbano, Hernán
, Lang, Patricia
, Erberich, Joel
, Latorre, Sergio
, Bergmann, Dominique
, Weiß, Clemens
, Expósito-Alonso, Moisés
, Fung, Hannah
, Lopez, Lua
in
Environmental Sciences & Ecology
/ Evolutionary Biology
2024
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Century-long timelines of herbarium genomes predict plant stomatal response to climate change
by
Amador, Gabriel
, Lasky, Jesse
, Burbano, Hernán
, Lang, Patricia
, Erberich, Joel
, Latorre, Sergio
, Bergmann, Dominique
, Weiß, Clemens
, Expósito-Alonso, Moisés
, Fung, Hannah
, Lopez, Lua
in
Environmental Sciences & Ecology
/ Evolutionary Biology
2024
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Do you wish to request the book?
Century-long timelines of herbarium genomes predict plant stomatal response to climate change
by
Amador, Gabriel
, Lasky, Jesse
, Burbano, Hernán
, Lang, Patricia
, Erberich, Joel
, Latorre, Sergio
, Bergmann, Dominique
, Weiß, Clemens
, Expósito-Alonso, Moisés
, Fung, Hannah
, Lopez, Lua
in
Environmental Sciences & Ecology
/ Evolutionary Biology
2024
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Century-long timelines of herbarium genomes predict plant stomatal response to climate change
Journal Article
Century-long timelines of herbarium genomes predict plant stomatal response to climate change
2024
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Overview
Abstract
Dissecting plant responses to the environment is key to understanding whether and how plants adapt to anthropogenic climate change. Stomata, plants’ pores for gas exchange, are expected to decrease in density following increased CO2concentrations, a trend already observed in multiple plant species. However, it is unclear whether such responses are based on genetic changes and evolutionary adaptation. Here we make use of extensive knowledge of 43 genes in the stomatal development pathway and newly generated genome information of 191Arabidopsis thalianahistorical herbarium specimens collected over 193 years to directly link genetic variation with climate change. While we find that the essential transcription factors SPCH, MUTE and FAMA, central to stomatal development, are under strong evolutionary constraints, several regulators of stomatal development show signs of local adaptation in contemporary samples from different geographic regions. We then develop a functional score based on known effects of gene knock-out on stomatal development that recovers a classic pattern of stomatal density decrease over the past centuries, suggesting a genetic component contributing to this change. This approach combining historical genomics with functional experimental knowledge could allow further investigations of how different, even in historical samples unmeasurable, cellular plant phenotypes may have already responded to climate change through adaptive evolution.
Publisher
Nature Publishing Group
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