Cargando…

Mechanism of Mepiquat Chloride Regulating Soybean Response to Drought Stress Revealed by Proteomics

Soybeans are the main sources of oil and protein for most of the global population. As the population grows, so does the demand for soybeans. However, drought is a major factor that limits soybean production. Regulating soybean response to drought stress using mepiquat chloride (MC) is a feasible me...

Descripción completa

Detalles Bibliográficos
Autores principales: Dong, Shoukun, Wang, Xin, Li, Xiaomei, Tian, Yumei, Zhou, Xinyu, Qu, Zhipeng, Wang, Xiyue, Liu, Lijun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10222127/
https://www.ncbi.nlm.nih.gov/pubmed/37653954
http://dx.doi.org/10.3390/plants12102037
_version_ 1785049622799974400
author Dong, Shoukun
Wang, Xin
Li, Xiaomei
Tian, Yumei
Zhou, Xinyu
Qu, Zhipeng
Wang, Xiyue
Liu, Lijun
author_facet Dong, Shoukun
Wang, Xin
Li, Xiaomei
Tian, Yumei
Zhou, Xinyu
Qu, Zhipeng
Wang, Xiyue
Liu, Lijun
author_sort Dong, Shoukun
collection PubMed
description Soybeans are the main sources of oil and protein for most of the global population. As the population grows, so does the demand for soybeans. However, drought is a major factor that limits soybean production. Regulating soybean response to drought stress using mepiquat chloride (MC) is a feasible method; however, its mechanism is still unclear. This study used PEG-6000 to simulate drought stress and quantitative proteomic techniques to reveal changes in Heinong44 (HN44) and Heinong65 (HN65) subjected to drought following the application of 100 mg/L of MC. The results showed that SOD in HN44 did not change significantly but decreased by 22.61% in HN65 after MC pretreatment, and MDA content decreased by 22.75% and 21.54% in HN44 and HN65, respectively. Furthermore, MC improved the GSH–ASA cycle and simultaneously promoted the Calvin cycle process to enable the plant to maintain a certain carbon assimilation rate under osmotic stress. In addition, MC upregulated some proteins during gluconeogenesis and starch metabolism and increased soluble sugar content by 8.41% in HN44. MC also reduced ribosomal protein abundance, affecting translation and amino acid metabolism. In summary, MC improved GSH–ASA cycle and Calvin cycle under stress to alleviate oxidative damage and maintain crop growth. Our study is the first to report the mechanism of MC regulation in soybean under osmotic stress, providing new insights for the rational application of MC in soybean.
format Online
Article
Text
id pubmed-10222127
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-102221272023-05-28 Mechanism of Mepiquat Chloride Regulating Soybean Response to Drought Stress Revealed by Proteomics Dong, Shoukun Wang, Xin Li, Xiaomei Tian, Yumei Zhou, Xinyu Qu, Zhipeng Wang, Xiyue Liu, Lijun Plants (Basel) Article Soybeans are the main sources of oil and protein for most of the global population. As the population grows, so does the demand for soybeans. However, drought is a major factor that limits soybean production. Regulating soybean response to drought stress using mepiquat chloride (MC) is a feasible method; however, its mechanism is still unclear. This study used PEG-6000 to simulate drought stress and quantitative proteomic techniques to reveal changes in Heinong44 (HN44) and Heinong65 (HN65) subjected to drought following the application of 100 mg/L of MC. The results showed that SOD in HN44 did not change significantly but decreased by 22.61% in HN65 after MC pretreatment, and MDA content decreased by 22.75% and 21.54% in HN44 and HN65, respectively. Furthermore, MC improved the GSH–ASA cycle and simultaneously promoted the Calvin cycle process to enable the plant to maintain a certain carbon assimilation rate under osmotic stress. In addition, MC upregulated some proteins during gluconeogenesis and starch metabolism and increased soluble sugar content by 8.41% in HN44. MC also reduced ribosomal protein abundance, affecting translation and amino acid metabolism. In summary, MC improved GSH–ASA cycle and Calvin cycle under stress to alleviate oxidative damage and maintain crop growth. Our study is the first to report the mechanism of MC regulation in soybean under osmotic stress, providing new insights for the rational application of MC in soybean. MDPI 2023-05-19 /pmc/articles/PMC10222127/ /pubmed/37653954 http://dx.doi.org/10.3390/plants12102037 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Dong, Shoukun
Wang, Xin
Li, Xiaomei
Tian, Yumei
Zhou, Xinyu
Qu, Zhipeng
Wang, Xiyue
Liu, Lijun
Mechanism of Mepiquat Chloride Regulating Soybean Response to Drought Stress Revealed by Proteomics
title Mechanism of Mepiquat Chloride Regulating Soybean Response to Drought Stress Revealed by Proteomics
title_full Mechanism of Mepiquat Chloride Regulating Soybean Response to Drought Stress Revealed by Proteomics
title_fullStr Mechanism of Mepiquat Chloride Regulating Soybean Response to Drought Stress Revealed by Proteomics
title_full_unstemmed Mechanism of Mepiquat Chloride Regulating Soybean Response to Drought Stress Revealed by Proteomics
title_short Mechanism of Mepiquat Chloride Regulating Soybean Response to Drought Stress Revealed by Proteomics
title_sort mechanism of mepiquat chloride regulating soybean response to drought stress revealed by proteomics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10222127/
https://www.ncbi.nlm.nih.gov/pubmed/37653954
http://dx.doi.org/10.3390/plants12102037
work_keys_str_mv AT dongshoukun mechanismofmepiquatchlorideregulatingsoybeanresponsetodroughtstressrevealedbyproteomics
AT wangxin mechanismofmepiquatchlorideregulatingsoybeanresponsetodroughtstressrevealedbyproteomics
AT lixiaomei mechanismofmepiquatchlorideregulatingsoybeanresponsetodroughtstressrevealedbyproteomics
AT tianyumei mechanismofmepiquatchlorideregulatingsoybeanresponsetodroughtstressrevealedbyproteomics
AT zhouxinyu mechanismofmepiquatchlorideregulatingsoybeanresponsetodroughtstressrevealedbyproteomics
AT quzhipeng mechanismofmepiquatchlorideregulatingsoybeanresponsetodroughtstressrevealedbyproteomics
AT wangxiyue mechanismofmepiquatchlorideregulatingsoybeanresponsetodroughtstressrevealedbyproteomics
AT liulijun mechanismofmepiquatchlorideregulatingsoybeanresponsetodroughtstressrevealedbyproteomics