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Allelic variation in rice Fertilization Independent Endosperm 1 contributes to grain width under high night temperature stress

A higher minimum (night‐time) temperature is considered a greater limiting factor for reduced rice yield than a similar increase in maximum (daytime) temperature. While the physiological impact of high night temperature (HNT) has been studied, the genetic and molecular basis of HNT stress response r...

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Autores principales: Dhatt, Balpreet K., Paul, Puneet, Sandhu, Jaspreet, Hussain, Waseem, Irvin, Larissa, Zhu, Feiyu, Adviento‐Borbe, Maria Arlene, Lorence, Argelia, Staswick, Paul, Yu, Hongfeng, Morota, Gota, Walia, Harkamal
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7756756/
https://www.ncbi.nlm.nih.gov/pubmed/32858766
http://dx.doi.org/10.1111/nph.16897
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author Dhatt, Balpreet K.
Paul, Puneet
Sandhu, Jaspreet
Hussain, Waseem
Irvin, Larissa
Zhu, Feiyu
Adviento‐Borbe, Maria Arlene
Lorence, Argelia
Staswick, Paul
Yu, Hongfeng
Morota, Gota
Walia, Harkamal
author_facet Dhatt, Balpreet K.
Paul, Puneet
Sandhu, Jaspreet
Hussain, Waseem
Irvin, Larissa
Zhu, Feiyu
Adviento‐Borbe, Maria Arlene
Lorence, Argelia
Staswick, Paul
Yu, Hongfeng
Morota, Gota
Walia, Harkamal
author_sort Dhatt, Balpreet K.
collection PubMed
description A higher minimum (night‐time) temperature is considered a greater limiting factor for reduced rice yield than a similar increase in maximum (daytime) temperature. While the physiological impact of high night temperature (HNT) has been studied, the genetic and molecular basis of HNT stress response remains unexplored. We examined the phenotypic variation for mature grain size (length and width) in a diverse set of rice accessions under HNT stress. Genome‐wide association analysis identified several HNT‐specific loci regulating grain size as well as loci that are common for optimal and HNT stress conditions. A novel locus contributing to grain width under HNT conditions colocalized with Fie1, a component of the FIS‐PRC2 complex. Our results suggest that the allelic difference controlling grain width under HNT is a result of differential transcript‐level response of Fie1 in grains developing under HNT stress. We present evidence to support the role of Fie1 in grain size regulation by testing overexpression (OE) and knockout mutants under heat stress. The OE mutants were either unaltered or had a positive impact on mature grain size under HNT, while the knockouts exhibited significant grain size reduction under these conditions.
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spelling pubmed-77567562020-12-28 Allelic variation in rice Fertilization Independent Endosperm 1 contributes to grain width under high night temperature stress Dhatt, Balpreet K. Paul, Puneet Sandhu, Jaspreet Hussain, Waseem Irvin, Larissa Zhu, Feiyu Adviento‐Borbe, Maria Arlene Lorence, Argelia Staswick, Paul Yu, Hongfeng Morota, Gota Walia, Harkamal New Phytol Research A higher minimum (night‐time) temperature is considered a greater limiting factor for reduced rice yield than a similar increase in maximum (daytime) temperature. While the physiological impact of high night temperature (HNT) has been studied, the genetic and molecular basis of HNT stress response remains unexplored. We examined the phenotypic variation for mature grain size (length and width) in a diverse set of rice accessions under HNT stress. Genome‐wide association analysis identified several HNT‐specific loci regulating grain size as well as loci that are common for optimal and HNT stress conditions. A novel locus contributing to grain width under HNT conditions colocalized with Fie1, a component of the FIS‐PRC2 complex. Our results suggest that the allelic difference controlling grain width under HNT is a result of differential transcript‐level response of Fie1 in grains developing under HNT stress. We present evidence to support the role of Fie1 in grain size regulation by testing overexpression (OE) and knockout mutants under heat stress. The OE mutants were either unaltered or had a positive impact on mature grain size under HNT, while the knockouts exhibited significant grain size reduction under these conditions. John Wiley and Sons Inc. 2020-09-23 2021-01 /pmc/articles/PMC7756756/ /pubmed/32858766 http://dx.doi.org/10.1111/nph.16897 Text en © 2020 The Authors New Phytologist © 2020 New Phytologist Trust This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Dhatt, Balpreet K.
Paul, Puneet
Sandhu, Jaspreet
Hussain, Waseem
Irvin, Larissa
Zhu, Feiyu
Adviento‐Borbe, Maria Arlene
Lorence, Argelia
Staswick, Paul
Yu, Hongfeng
Morota, Gota
Walia, Harkamal
Allelic variation in rice Fertilization Independent Endosperm 1 contributes to grain width under high night temperature stress
title Allelic variation in rice Fertilization Independent Endosperm 1 contributes to grain width under high night temperature stress
title_full Allelic variation in rice Fertilization Independent Endosperm 1 contributes to grain width under high night temperature stress
title_fullStr Allelic variation in rice Fertilization Independent Endosperm 1 contributes to grain width under high night temperature stress
title_full_unstemmed Allelic variation in rice Fertilization Independent Endosperm 1 contributes to grain width under high night temperature stress
title_short Allelic variation in rice Fertilization Independent Endosperm 1 contributes to grain width under high night temperature stress
title_sort allelic variation in rice fertilization independent endosperm 1 contributes to grain width under high night temperature stress
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7756756/
https://www.ncbi.nlm.nih.gov/pubmed/32858766
http://dx.doi.org/10.1111/nph.16897
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