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Genome-wide identification and multiple abiotic stress transcript profiling of potassium transport gene homologs in Sorghum bicolor

Potassium (K(+)) is the most abundant cation that plays a crucial role in various cellular processes in plants. Plants have developed an efficient mechanism for the acquisition of K(+) when grown in K(+) deficient or saline soils. A total of 47 K(+) transport gene homologs (27 HAKs, 4 HKTs, 2 KEAs,...

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Autores principales: Anil Kumar, S., Hima Kumari, P., Nagaraju, Marka, Sudhakar Reddy, Palakolanu, Durga Dheeraj, T., Mack, Alexis, Katam, Ramesh, Kavi Kishor, P. B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9478208/
https://www.ncbi.nlm.nih.gov/pubmed/36119582
http://dx.doi.org/10.3389/fpls.2022.965530
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author Anil Kumar, S.
Hima Kumari, P.
Nagaraju, Marka
Sudhakar Reddy, Palakolanu
Durga Dheeraj, T.
Mack, Alexis
Katam, Ramesh
Kavi Kishor, P. B.
author_facet Anil Kumar, S.
Hima Kumari, P.
Nagaraju, Marka
Sudhakar Reddy, Palakolanu
Durga Dheeraj, T.
Mack, Alexis
Katam, Ramesh
Kavi Kishor, P. B.
author_sort Anil Kumar, S.
collection PubMed
description Potassium (K(+)) is the most abundant cation that plays a crucial role in various cellular processes in plants. Plants have developed an efficient mechanism for the acquisition of K(+) when grown in K(+) deficient or saline soils. A total of 47 K(+) transport gene homologs (27 HAKs, 4 HKTs, 2 KEAs, 9 AKTs, 2 KATs, 2 TPCs, and 1 VDPC) have been identified in Sorghum bicolor. Of 47 homologs, 33 were identified as K(+) transporters and the remaining 14 as K(+) channels. Chromosome 2 has been found as the hotspot of K(+) transporters with 9 genes. Phylogenetic analysis revealed the conservation of sorghum K(+) transport genes akin to Oryza sativa. Analysis of regulatory elements indicates the key roles that K(+) transport genes play under different biotic and abiotic stress conditions. Digital expression data of different developmental stages disclosed that expressions were higher in milk, flowering, and tillering stages. Expression levels of the genes SbHAK27 and SbKEA2 were higher during milk, SbHAK17, SbHAK11, SbHAK18, and SbHAK7 during flowering, SbHAK18, SbHAK10, and 23 other gene expressions were elevated during tillering inferring the important role that K(+) transport genes play during plant growth and development. Differential transcript expression was observed in different tissues like root, stem, and leaf under abiotic stresses such as salt, drought, heat, and cold stresses. Collectively, the in-depth genome-wide analysis and differential transcript profiling of K(+) transport genes elucidate their role in ion homeostasis and stress tolerance mechanisms.
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spelling pubmed-94782082022-09-17 Genome-wide identification and multiple abiotic stress transcript profiling of potassium transport gene homologs in Sorghum bicolor Anil Kumar, S. Hima Kumari, P. Nagaraju, Marka Sudhakar Reddy, Palakolanu Durga Dheeraj, T. Mack, Alexis Katam, Ramesh Kavi Kishor, P. B. Front Plant Sci Plant Science Potassium (K(+)) is the most abundant cation that plays a crucial role in various cellular processes in plants. Plants have developed an efficient mechanism for the acquisition of K(+) when grown in K(+) deficient or saline soils. A total of 47 K(+) transport gene homologs (27 HAKs, 4 HKTs, 2 KEAs, 9 AKTs, 2 KATs, 2 TPCs, and 1 VDPC) have been identified in Sorghum bicolor. Of 47 homologs, 33 were identified as K(+) transporters and the remaining 14 as K(+) channels. Chromosome 2 has been found as the hotspot of K(+) transporters with 9 genes. Phylogenetic analysis revealed the conservation of sorghum K(+) transport genes akin to Oryza sativa. Analysis of regulatory elements indicates the key roles that K(+) transport genes play under different biotic and abiotic stress conditions. Digital expression data of different developmental stages disclosed that expressions were higher in milk, flowering, and tillering stages. Expression levels of the genes SbHAK27 and SbKEA2 were higher during milk, SbHAK17, SbHAK11, SbHAK18, and SbHAK7 during flowering, SbHAK18, SbHAK10, and 23 other gene expressions were elevated during tillering inferring the important role that K(+) transport genes play during plant growth and development. Differential transcript expression was observed in different tissues like root, stem, and leaf under abiotic stresses such as salt, drought, heat, and cold stresses. Collectively, the in-depth genome-wide analysis and differential transcript profiling of K(+) transport genes elucidate their role in ion homeostasis and stress tolerance mechanisms. Frontiers Media S.A. 2022-09-02 /pmc/articles/PMC9478208/ /pubmed/36119582 http://dx.doi.org/10.3389/fpls.2022.965530 Text en Copyright © 2022 Anil Kumar, Hima Kumari, Nagaraju, Sudhakar Reddy, Durga Dheeraj, Mack, Katam and Kavi Kishor. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Anil Kumar, S.
Hima Kumari, P.
Nagaraju, Marka
Sudhakar Reddy, Palakolanu
Durga Dheeraj, T.
Mack, Alexis
Katam, Ramesh
Kavi Kishor, P. B.
Genome-wide identification and multiple abiotic stress transcript profiling of potassium transport gene homologs in Sorghum bicolor
title Genome-wide identification and multiple abiotic stress transcript profiling of potassium transport gene homologs in Sorghum bicolor
title_full Genome-wide identification and multiple abiotic stress transcript profiling of potassium transport gene homologs in Sorghum bicolor
title_fullStr Genome-wide identification and multiple abiotic stress transcript profiling of potassium transport gene homologs in Sorghum bicolor
title_full_unstemmed Genome-wide identification and multiple abiotic stress transcript profiling of potassium transport gene homologs in Sorghum bicolor
title_short Genome-wide identification and multiple abiotic stress transcript profiling of potassium transport gene homologs in Sorghum bicolor
title_sort genome-wide identification and multiple abiotic stress transcript profiling of potassium transport gene homologs in sorghum bicolor
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9478208/
https://www.ncbi.nlm.nih.gov/pubmed/36119582
http://dx.doi.org/10.3389/fpls.2022.965530
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