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Genome mining reveals abiotic stress resistance genes in plant genomes acquired from microbes via HGT

Colonization by beneficial microbes can enhance plant tolerance to abiotic stresses. However, there are still many unknown fields regarding the beneficial plant-microbe interactions. In this study, we have assessed the amount or impact of horizontal gene transfer (HGT)-derived genes in plants that h...

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Autores principales: Li, Liangzhi, Peng, Shuguang, Wang, Zhenhua, Zhang, Teng, Li, Hongguang, Xiao, Yansong, Li, Jingjun, Liu, Yongjun, Yin, Huaqun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9667741/
https://www.ncbi.nlm.nih.gov/pubmed/36407614
http://dx.doi.org/10.3389/fpls.2022.1025122
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author Li, Liangzhi
Peng, Shuguang
Wang, Zhenhua
Zhang, Teng
Li, Hongguang
Xiao, Yansong
Li, Jingjun
Liu, Yongjun
Yin, Huaqun
author_facet Li, Liangzhi
Peng, Shuguang
Wang, Zhenhua
Zhang, Teng
Li, Hongguang
Xiao, Yansong
Li, Jingjun
Liu, Yongjun
Yin, Huaqun
author_sort Li, Liangzhi
collection PubMed
description Colonization by beneficial microbes can enhance plant tolerance to abiotic stresses. However, there are still many unknown fields regarding the beneficial plant-microbe interactions. In this study, we have assessed the amount or impact of horizontal gene transfer (HGT)-derived genes in plants that have potentials to confer abiotic stress resistance. We have identified a total of 235 gene entries in fourteen high-quality plant genomes belonging to phyla Chlorophyta and Streptophyta that confer resistance against a wide range of abiotic pressures acquired from microbes through independent HGTs. These genes encode proteins contributed to toxic metal resistance (e.g., ChrA, CopA, CorA), osmotic and drought stress resistance (e.g., Na(+)/proline symporter, potassium/proton antiporter), acid resistance (e.g., PcxA, ArcA, YhdG), heat and cold stress resistance (e.g., DnaJ, Hsp20, CspA), oxidative stress resistance (e.g., GST, PoxA, glutaredoxin), DNA damage resistance (e.g., Rad25, Rad51, UvrD), and organic pollutant resistance (e.g., CytP450, laccase, CbbY). Phylogenetic analyses have supported the HGT inferences as the plant lineages are all clustering closely with distant microbial lineages. Deep-learning-based protein structure prediction and analyses, in combination with expression assessment based on codon adaption index (CAI) further corroborated the functionality and expressivity of the HGT genes in plant genomes. A case-study applying fold comparison and molecular dynamics (MD) of the HGT-driven CytP450 gave a more detailed illustration on the resemblance and evolutionary linkage between the plant recipient and microbial donor sequences. Together, the microbe-originated HGT genes identified in plant genomes and their participation in abiotic pressures resistance indicate a more profound impact of HGT on the adaptive evolution of plants.
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spelling pubmed-96677412022-11-17 Genome mining reveals abiotic stress resistance genes in plant genomes acquired from microbes via HGT Li, Liangzhi Peng, Shuguang Wang, Zhenhua Zhang, Teng Li, Hongguang Xiao, Yansong Li, Jingjun Liu, Yongjun Yin, Huaqun Front Plant Sci Plant Science Colonization by beneficial microbes can enhance plant tolerance to abiotic stresses. However, there are still many unknown fields regarding the beneficial plant-microbe interactions. In this study, we have assessed the amount or impact of horizontal gene transfer (HGT)-derived genes in plants that have potentials to confer abiotic stress resistance. We have identified a total of 235 gene entries in fourteen high-quality plant genomes belonging to phyla Chlorophyta and Streptophyta that confer resistance against a wide range of abiotic pressures acquired from microbes through independent HGTs. These genes encode proteins contributed to toxic metal resistance (e.g., ChrA, CopA, CorA), osmotic and drought stress resistance (e.g., Na(+)/proline symporter, potassium/proton antiporter), acid resistance (e.g., PcxA, ArcA, YhdG), heat and cold stress resistance (e.g., DnaJ, Hsp20, CspA), oxidative stress resistance (e.g., GST, PoxA, glutaredoxin), DNA damage resistance (e.g., Rad25, Rad51, UvrD), and organic pollutant resistance (e.g., CytP450, laccase, CbbY). Phylogenetic analyses have supported the HGT inferences as the plant lineages are all clustering closely with distant microbial lineages. Deep-learning-based protein structure prediction and analyses, in combination with expression assessment based on codon adaption index (CAI) further corroborated the functionality and expressivity of the HGT genes in plant genomes. A case-study applying fold comparison and molecular dynamics (MD) of the HGT-driven CytP450 gave a more detailed illustration on the resemblance and evolutionary linkage between the plant recipient and microbial donor sequences. Together, the microbe-originated HGT genes identified in plant genomes and their participation in abiotic pressures resistance indicate a more profound impact of HGT on the adaptive evolution of plants. Frontiers Media S.A. 2022-11-02 /pmc/articles/PMC9667741/ /pubmed/36407614 http://dx.doi.org/10.3389/fpls.2022.1025122 Text en Copyright © 2022 Li, Peng, Wang, Zhang, Li, Xiao, Li, Liu and Yin 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
Li, Liangzhi
Peng, Shuguang
Wang, Zhenhua
Zhang, Teng
Li, Hongguang
Xiao, Yansong
Li, Jingjun
Liu, Yongjun
Yin, Huaqun
Genome mining reveals abiotic stress resistance genes in plant genomes acquired from microbes via HGT
title Genome mining reveals abiotic stress resistance genes in plant genomes acquired from microbes via HGT
title_full Genome mining reveals abiotic stress resistance genes in plant genomes acquired from microbes via HGT
title_fullStr Genome mining reveals abiotic stress resistance genes in plant genomes acquired from microbes via HGT
title_full_unstemmed Genome mining reveals abiotic stress resistance genes in plant genomes acquired from microbes via HGT
title_short Genome mining reveals abiotic stress resistance genes in plant genomes acquired from microbes via HGT
title_sort genome mining reveals abiotic stress resistance genes in plant genomes acquired from microbes via hgt
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9667741/
https://www.ncbi.nlm.nih.gov/pubmed/36407614
http://dx.doi.org/10.3389/fpls.2022.1025122
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