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Integrated omics reveal novel functions and underlying mechanisms of the receptor kinase FERONIA in Arabidopsis thaliana

The receptor kinase FERONIA (FER) is a versatile regulator of plant growth and development, biotic and abiotic stress responses, and reproduction. To gain new insights into the molecular interplay of these processes and to identify new FER functions, we carried out quantitative transcriptome, proteo...

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Autores principales: Wang, Ping, Clark, Natalie M, Nolan, Trevor M, Song, Gaoyuan, Bartz, Parker M, Liao, Ching-Yi, Montes-Serey, Christian, Katz, Ella, Polko, Joanna K, Kieber, Joseph J, Kliebenstein, Daniel J, Bassham, Diane C, Walley, Justin W, Yin, Yanhai, Guo, Hongqing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9252503/
https://www.ncbi.nlm.nih.gov/pubmed/35435236
http://dx.doi.org/10.1093/plcell/koac111
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author Wang, Ping
Clark, Natalie M
Nolan, Trevor M
Song, Gaoyuan
Bartz, Parker M
Liao, Ching-Yi
Montes-Serey, Christian
Katz, Ella
Polko, Joanna K
Kieber, Joseph J
Kliebenstein, Daniel J
Bassham, Diane C
Walley, Justin W
Yin, Yanhai
Guo, Hongqing
author_facet Wang, Ping
Clark, Natalie M
Nolan, Trevor M
Song, Gaoyuan
Bartz, Parker M
Liao, Ching-Yi
Montes-Serey, Christian
Katz, Ella
Polko, Joanna K
Kieber, Joseph J
Kliebenstein, Daniel J
Bassham, Diane C
Walley, Justin W
Yin, Yanhai
Guo, Hongqing
author_sort Wang, Ping
collection PubMed
description The receptor kinase FERONIA (FER) is a versatile regulator of plant growth and development, biotic and abiotic stress responses, and reproduction. To gain new insights into the molecular interplay of these processes and to identify new FER functions, we carried out quantitative transcriptome, proteome, and phosphoproteome profiling of Arabidopsis (Arabidopsis thaliana) wild-type and fer-4 loss-of-function mutant plants. Gene ontology terms for phytohormone signaling, abiotic stress, and biotic stress were significantly enriched among differentially expressed transcripts, differentially abundant proteins, and/or misphosphorylated proteins, in agreement with the known roles for FER in these processes. Analysis of multiomics data and subsequent experimental evidence revealed previously unknown functions for FER in endoplasmic reticulum (ER) body formation and glucosinolate biosynthesis. FER functions through the transcription factor NAI1 to mediate ER body formation. FER also negatively regulates indole glucosinolate biosynthesis, partially through NAI1. Furthermore, we found that a group of abscisic acid (ABA)-induced transcription factors is hypophosphorylated in the fer-4 mutant and demonstrated that FER acts through the transcription factor ABA INSENSITIVE5 (ABI5) to negatively regulate the ABA response during cotyledon greening. Our integrated omics study, therefore, reveals novel functions for FER and provides new insights into the underlying mechanisms of FER function.
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spelling pubmed-92525032022-12-16 Integrated omics reveal novel functions and underlying mechanisms of the receptor kinase FERONIA in Arabidopsis thaliana Wang, Ping Clark, Natalie M Nolan, Trevor M Song, Gaoyuan Bartz, Parker M Liao, Ching-Yi Montes-Serey, Christian Katz, Ella Polko, Joanna K Kieber, Joseph J Kliebenstein, Daniel J Bassham, Diane C Walley, Justin W Yin, Yanhai Guo, Hongqing Plant Cell Regular Content The receptor kinase FERONIA (FER) is a versatile regulator of plant growth and development, biotic and abiotic stress responses, and reproduction. To gain new insights into the molecular interplay of these processes and to identify new FER functions, we carried out quantitative transcriptome, proteome, and phosphoproteome profiling of Arabidopsis (Arabidopsis thaliana) wild-type and fer-4 loss-of-function mutant plants. Gene ontology terms for phytohormone signaling, abiotic stress, and biotic stress were significantly enriched among differentially expressed transcripts, differentially abundant proteins, and/or misphosphorylated proteins, in agreement with the known roles for FER in these processes. Analysis of multiomics data and subsequent experimental evidence revealed previously unknown functions for FER in endoplasmic reticulum (ER) body formation and glucosinolate biosynthesis. FER functions through the transcription factor NAI1 to mediate ER body formation. FER also negatively regulates indole glucosinolate biosynthesis, partially through NAI1. Furthermore, we found that a group of abscisic acid (ABA)-induced transcription factors is hypophosphorylated in the fer-4 mutant and demonstrated that FER acts through the transcription factor ABA INSENSITIVE5 (ABI5) to negatively regulate the ABA response during cotyledon greening. Our integrated omics study, therefore, reveals novel functions for FER and provides new insights into the underlying mechanisms of FER function. Oxford University Press 2022-04-18 /pmc/articles/PMC9252503/ /pubmed/35435236 http://dx.doi.org/10.1093/plcell/koac111 Text en � The Author(s) 2022. Published by Oxford University Press on behalf of American Society of Plant Biologists. https://creativecommons.org/licenses/by/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Regular Content
Wang, Ping
Clark, Natalie M
Nolan, Trevor M
Song, Gaoyuan
Bartz, Parker M
Liao, Ching-Yi
Montes-Serey, Christian
Katz, Ella
Polko, Joanna K
Kieber, Joseph J
Kliebenstein, Daniel J
Bassham, Diane C
Walley, Justin W
Yin, Yanhai
Guo, Hongqing
Integrated omics reveal novel functions and underlying mechanisms of the receptor kinase FERONIA in Arabidopsis thaliana
title Integrated omics reveal novel functions and underlying mechanisms of the receptor kinase FERONIA in Arabidopsis thaliana
title_full Integrated omics reveal novel functions and underlying mechanisms of the receptor kinase FERONIA in Arabidopsis thaliana
title_fullStr Integrated omics reveal novel functions and underlying mechanisms of the receptor kinase FERONIA in Arabidopsis thaliana
title_full_unstemmed Integrated omics reveal novel functions and underlying mechanisms of the receptor kinase FERONIA in Arabidopsis thaliana
title_short Integrated omics reveal novel functions and underlying mechanisms of the receptor kinase FERONIA in Arabidopsis thaliana
title_sort integrated omics reveal novel functions and underlying mechanisms of the receptor kinase feronia in arabidopsis thaliana
topic Regular Content
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9252503/
https://www.ncbi.nlm.nih.gov/pubmed/35435236
http://dx.doi.org/10.1093/plcell/koac111
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