Cargando…

Transcriptome Changes Reveal the Molecular Mechanisms of Humic Acid-Induced Salt Stress Tolerance in Arabidopsis

Humic acid (HA) is a principal component of humic substances, which make up the complex organic matter that broadly exists in soil environments. HA promotes plant development as well as stress tolerance, however the precise molecular mechanism for these is little known. Here we conducted transcripto...

Descripción completa

Detalles Bibliográficos
Autores principales: Cha, Joon-Yung, Kang, Sang-Ho, Ji, Myung Geun, Shin, Gyeong-Im, Jeong, Song Yi, Ahn, Gyeongik, Kim, Min Gab, Jeon, Jong-Rok, Kim, Woe-Yeon
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7913487/
https://www.ncbi.nlm.nih.gov/pubmed/33546346
http://dx.doi.org/10.3390/molecules26040782
_version_ 1783656813359529984
author Cha, Joon-Yung
Kang, Sang-Ho
Ji, Myung Geun
Shin, Gyeong-Im
Jeong, Song Yi
Ahn, Gyeongik
Kim, Min Gab
Jeon, Jong-Rok
Kim, Woe-Yeon
author_facet Cha, Joon-Yung
Kang, Sang-Ho
Ji, Myung Geun
Shin, Gyeong-Im
Jeong, Song Yi
Ahn, Gyeongik
Kim, Min Gab
Jeon, Jong-Rok
Kim, Woe-Yeon
author_sort Cha, Joon-Yung
collection PubMed
description Humic acid (HA) is a principal component of humic substances, which make up the complex organic matter that broadly exists in soil environments. HA promotes plant development as well as stress tolerance, however the precise molecular mechanism for these is little known. Here we conducted transcriptome analysis to elucidate the molecular mechanisms by which HA enhances salt stress tolerance. Gene Ontology Enrichment Analysis pointed to the involvement of diverse abiotic stress-related genes encoding HEAT-SHOCK PROTEINs and redox proteins, which were up-regulated by HA regardless of salt stress. Genes related to biotic stress and secondary metabolic process were mainly down-regulated by HA. In addition, HA up-regulated genes encoding transcription factors (TFs) involved in plant development as well as abiotic stress tolerance, and down-regulated TF genes involved in secondary metabolic processes. Our transcriptome information provided here provides molecular evidences and improves our understanding of how HA confers tolerance to salinity stress in plants.
format Online
Article
Text
id pubmed-7913487
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-79134872021-02-28 Transcriptome Changes Reveal the Molecular Mechanisms of Humic Acid-Induced Salt Stress Tolerance in Arabidopsis Cha, Joon-Yung Kang, Sang-Ho Ji, Myung Geun Shin, Gyeong-Im Jeong, Song Yi Ahn, Gyeongik Kim, Min Gab Jeon, Jong-Rok Kim, Woe-Yeon Molecules Article Humic acid (HA) is a principal component of humic substances, which make up the complex organic matter that broadly exists in soil environments. HA promotes plant development as well as stress tolerance, however the precise molecular mechanism for these is little known. Here we conducted transcriptome analysis to elucidate the molecular mechanisms by which HA enhances salt stress tolerance. Gene Ontology Enrichment Analysis pointed to the involvement of diverse abiotic stress-related genes encoding HEAT-SHOCK PROTEINs and redox proteins, which were up-regulated by HA regardless of salt stress. Genes related to biotic stress and secondary metabolic process were mainly down-regulated by HA. In addition, HA up-regulated genes encoding transcription factors (TFs) involved in plant development as well as abiotic stress tolerance, and down-regulated TF genes involved in secondary metabolic processes. Our transcriptome information provided here provides molecular evidences and improves our understanding of how HA confers tolerance to salinity stress in plants. MDPI 2021-02-03 /pmc/articles/PMC7913487/ /pubmed/33546346 http://dx.doi.org/10.3390/molecules26040782 Text en © 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Cha, Joon-Yung
Kang, Sang-Ho
Ji, Myung Geun
Shin, Gyeong-Im
Jeong, Song Yi
Ahn, Gyeongik
Kim, Min Gab
Jeon, Jong-Rok
Kim, Woe-Yeon
Transcriptome Changes Reveal the Molecular Mechanisms of Humic Acid-Induced Salt Stress Tolerance in Arabidopsis
title Transcriptome Changes Reveal the Molecular Mechanisms of Humic Acid-Induced Salt Stress Tolerance in Arabidopsis
title_full Transcriptome Changes Reveal the Molecular Mechanisms of Humic Acid-Induced Salt Stress Tolerance in Arabidopsis
title_fullStr Transcriptome Changes Reveal the Molecular Mechanisms of Humic Acid-Induced Salt Stress Tolerance in Arabidopsis
title_full_unstemmed Transcriptome Changes Reveal the Molecular Mechanisms of Humic Acid-Induced Salt Stress Tolerance in Arabidopsis
title_short Transcriptome Changes Reveal the Molecular Mechanisms of Humic Acid-Induced Salt Stress Tolerance in Arabidopsis
title_sort transcriptome changes reveal the molecular mechanisms of humic acid-induced salt stress tolerance in arabidopsis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7913487/
https://www.ncbi.nlm.nih.gov/pubmed/33546346
http://dx.doi.org/10.3390/molecules26040782
work_keys_str_mv AT chajoonyung transcriptomechangesrevealthemolecularmechanismsofhumicacidinducedsaltstresstoleranceinarabidopsis
AT kangsangho transcriptomechangesrevealthemolecularmechanismsofhumicacidinducedsaltstresstoleranceinarabidopsis
AT jimyunggeun transcriptomechangesrevealthemolecularmechanismsofhumicacidinducedsaltstresstoleranceinarabidopsis
AT shingyeongim transcriptomechangesrevealthemolecularmechanismsofhumicacidinducedsaltstresstoleranceinarabidopsis
AT jeongsongyi transcriptomechangesrevealthemolecularmechanismsofhumicacidinducedsaltstresstoleranceinarabidopsis
AT ahngyeongik transcriptomechangesrevealthemolecularmechanismsofhumicacidinducedsaltstresstoleranceinarabidopsis
AT kimmingab transcriptomechangesrevealthemolecularmechanismsofhumicacidinducedsaltstresstoleranceinarabidopsis
AT jeonjongrok transcriptomechangesrevealthemolecularmechanismsofhumicacidinducedsaltstresstoleranceinarabidopsis
AT kimwoeyeon transcriptomechangesrevealthemolecularmechanismsofhumicacidinducedsaltstresstoleranceinarabidopsis