Genome-wide identification of the MIOX gene family and their expression profile in cotton development and response to abiotic stress.

The enzyme myo-inositol oxygenase (MIOX) catalyzes the myo-inositol into glucuronic acid. In this study, 6 MIOX genes were identified from all of the three diploid cotton species (Gossypium arboretum, Gossypium herbaceum and Gossypium raimondii) and Gossypioides kirkii, 12 MIOX genes were identified...

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Main Authors: Zhaoguo Li, Zhen Liu, Yangyang Wei, Yuling Liu, Linxue Xing, Mengjie Liu, Pengtao Li, Quanwei Lu, Renhai Peng
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2021-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0254111
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spelling doaj-b0db9eec5be74910ac34858c26593cb72021-07-24T04:32:44ZengPublic Library of Science (PLoS)PLoS ONE1932-62032021-01-01167e025411110.1371/journal.pone.0254111Genome-wide identification of the MIOX gene family and their expression profile in cotton development and response to abiotic stress.Zhaoguo LiZhen LiuYangyang WeiYuling LiuLinxue XingMengjie LiuPengtao LiQuanwei LuRenhai PengThe enzyme myo-inositol oxygenase (MIOX) catalyzes the myo-inositol into glucuronic acid. In this study, 6 MIOX genes were identified from all of the three diploid cotton species (Gossypium arboretum, Gossypium herbaceum and Gossypium raimondii) and Gossypioides kirkii, 12 MIOX genes were identified from two domesticated tetraploid cottons Gossypium hirsutum, Gossypium barbadense, and 11 MIOX genes were identified from three wild tetraploid cottons Gossypium tomentosum, Gossypium mustelinum and Gossypium darwinii. The number of MIOX genes in tetraploid cotton genome is roughly twice that of diploid cotton genome. Members of MIOX family were classified into six groups based on the phylogenetic analysis. Integrated analysis of collinearity events and chromosome locations suggested that both whole genome duplication and segmental duplication events contributed to the expansion of MIOX genes during cotton evolution. The ratios of non-synonymous (Ka) and synonymous (Ks) substitution rates revealed that purifying selection was the main force driving the evolution of MIOX genes. Numerous cis-acting elements related to light responsive element, defense and stress responsive element were identified in the promoter of the MIOX genes. Expression analyses of MIOX genes based on RNA-seq data and quantitative real time PCR showed that MIOX genes within the same group shared similar expression patterns with each other. All of these results provide the foundation for further study of the biological functions of MIOX genes in cotton environmental adaptability.https://doi.org/10.1371/journal.pone.0254111
collection DOAJ
language English
format Article
sources DOAJ
author Zhaoguo Li
Zhen Liu
Yangyang Wei
Yuling Liu
Linxue Xing
Mengjie Liu
Pengtao Li
Quanwei Lu
Renhai Peng
spellingShingle Zhaoguo Li
Zhen Liu
Yangyang Wei
Yuling Liu
Linxue Xing
Mengjie Liu
Pengtao Li
Quanwei Lu
Renhai Peng
Genome-wide identification of the MIOX gene family and their expression profile in cotton development and response to abiotic stress.
PLoS ONE
author_facet Zhaoguo Li
Zhen Liu
Yangyang Wei
Yuling Liu
Linxue Xing
Mengjie Liu
Pengtao Li
Quanwei Lu
Renhai Peng
author_sort Zhaoguo Li
title Genome-wide identification of the MIOX gene family and their expression profile in cotton development and response to abiotic stress.
title_short Genome-wide identification of the MIOX gene family and their expression profile in cotton development and response to abiotic stress.
title_full Genome-wide identification of the MIOX gene family and their expression profile in cotton development and response to abiotic stress.
title_fullStr Genome-wide identification of the MIOX gene family and their expression profile in cotton development and response to abiotic stress.
title_full_unstemmed Genome-wide identification of the MIOX gene family and their expression profile in cotton development and response to abiotic stress.
title_sort genome-wide identification of the miox gene family and their expression profile in cotton development and response to abiotic stress.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2021-01-01
description The enzyme myo-inositol oxygenase (MIOX) catalyzes the myo-inositol into glucuronic acid. In this study, 6 MIOX genes were identified from all of the three diploid cotton species (Gossypium arboretum, Gossypium herbaceum and Gossypium raimondii) and Gossypioides kirkii, 12 MIOX genes were identified from two domesticated tetraploid cottons Gossypium hirsutum, Gossypium barbadense, and 11 MIOX genes were identified from three wild tetraploid cottons Gossypium tomentosum, Gossypium mustelinum and Gossypium darwinii. The number of MIOX genes in tetraploid cotton genome is roughly twice that of diploid cotton genome. Members of MIOX family were classified into six groups based on the phylogenetic analysis. Integrated analysis of collinearity events and chromosome locations suggested that both whole genome duplication and segmental duplication events contributed to the expansion of MIOX genes during cotton evolution. The ratios of non-synonymous (Ka) and synonymous (Ks) substitution rates revealed that purifying selection was the main force driving the evolution of MIOX genes. Numerous cis-acting elements related to light responsive element, defense and stress responsive element were identified in the promoter of the MIOX genes. Expression analyses of MIOX genes based on RNA-seq data and quantitative real time PCR showed that MIOX genes within the same group shared similar expression patterns with each other. All of these results provide the foundation for further study of the biological functions of MIOX genes in cotton environmental adaptability.
url https://doi.org/10.1371/journal.pone.0254111
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