Environment-specific selection alters flowering-time plasticity and results in pervasive pleiotropic responses in maize.

Nicole E Choquette, James B Holland, Teclemariam Weldekidan, Justine Drouault, Natalia de Leon, Sherry Flint-Garcia, Nick Lauter, Seth C Murray, Wenwei Xu, Randall J Wisser

Journal: The New phytologist 2023;238(2):737-749

PMID: 36683443

Abstract

Crop genetic diversity for climate adaptations is globally partitioned. We performed experimental evolution in maize to understand the response to selection and how plant germplasm can be moved across geographical zones. Initialized with a common population of tropical origin, artificial selection on flowering time was performed for two generations at eight field sites spanning 25° latitude, a 2800 km transect. We then jointly tested all selection lineages across the original sites of selection, for the target trait and 23 other traits. Modeling intergenerational shifts in a physiological reaction norm revealed separate components for flowering-time plasticity. Generalized and local modes of selection altered the plasticity of each lineage, leading to a latitudinal pattern in the responses to selection that were strongly driven by photoperiod. This transformation led to widespread changes in developmental, architectural, and yield traits, expressed collectively in an environment-dependent manner. Furthermore, selection for flowering time alone alleviated a maladaptive syndrome and improved yields for tropical maize in the temperate zone. Our findings show how phenotypic selection can rapidly shift the flowering phenology and plasticity of maize. They also demonstrate that selecting crops to local conditions can accelerate adaptation to climate change.

© 2023 The Authors. New Phytologist © 2023 New Phytologist Foundation.

Address: Department of Crop and Soil Sciences, North Carolina State University, Raleigh, NC, 27695, USA.; Department of Crop and Soil Sciences, North Carolina State University, Raleigh, NC, 27695, USA.; USDA-ARS Plant Science Research Unit, Raleigh, NC, 27695, USA.; Deptartment of Plant and Soil Sciences, University of Delaware, Newark, DE, 19716, USA.; Laboratoire d'Ecophysiologie des Plantes sous Stress Environmentaux, INRAE, University of Montpellier, L'Institut Agro, Montpellier, 34000, France.; Deptartment of Agronomy, University of Wisconsin, Madison, WI, 53706, USA.; USDA-ARS Plant Genetics Research Unit, Columbia, MO, 65211, USA.; USDA-ARS Corn Insects and Crop Genetics Research Unit, Ames, IA, 50011, USA.; Department of Soil and Crop Sciences, Texas A&M University, College Station, TX, 77843, USA.; Agricultural Research and Extension Center, Texas A&M AgriLife Research, Lubbock, TX, 79403, USA.; Deptartment of Plant and Soil Sciences, University of Delaware, Newark, DE, 19716, USA.; Laboratoire d'Ecophysiologie des Plantes sous Stress Environmentaux, INRAE, University of Montpellier, L'Institut Agro, Montpellier, 34000, France.

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