Cargando…

Metabolic Regulation and Lipidomic Remodeling in Relation to Spermidine-induced Stress Tolerance to High Temperature in Plants

Beneficial effects of spermidine (Spd) on alleviating abiotic stress damage have been explored in plants for hundreds of years, but limited information is available about its roles in regulating lipids signaling and metabolism during heat stress. White clover (Trifolium repens) plants were pretreate...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Zhou, Cheng, Bizhen, Zhao, Yue, Luo, Lin, Zhang, Yan, Feng, Guangyan, Han, Liebao, Peng, Yan, Zhang, Xinquan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9602532/
https://www.ncbi.nlm.nih.gov/pubmed/36293104
http://dx.doi.org/10.3390/ijms232012247
_version_ 1784817341783080960
author Li, Zhou
Cheng, Bizhen
Zhao, Yue
Luo, Lin
Zhang, Yan
Feng, Guangyan
Han, Liebao
Peng, Yan
Zhang, Xinquan
author_facet Li, Zhou
Cheng, Bizhen
Zhao, Yue
Luo, Lin
Zhang, Yan
Feng, Guangyan
Han, Liebao
Peng, Yan
Zhang, Xinquan
author_sort Li, Zhou
collection PubMed
description Beneficial effects of spermidine (Spd) on alleviating abiotic stress damage have been explored in plants for hundreds of years, but limited information is available about its roles in regulating lipids signaling and metabolism during heat stress. White clover (Trifolium repens) plants were pretreated with 70 μM Spd and then subjected to high temperature (38/33 °C) stress for 20 days. To further investigate the effect of Spd on heat tolerance, transgenic Arabidopsis thaliana overexpressing a TrSAMS encoding a key enzyme involved in Spd biosynthesis was exposed to high temperature (38/33 °C) stress for 10 days. A significant increase in endogenous Spd content in white clover by exogenous application of Spd or the TrSAMS overexpression in Arabidopsis thaliana could effectively mitigate heat-induced growth retardation, oxidative damage to lipids, and declines in photochemical efficiency and cell membrane stability. Based on the analysis of metabolomics, the amino acids and vitamins metabolism, biosynthesis of secondary metabolites, and lipids metabolism were main metabolic pathways regulated by the Spd in cool-season white clover under heat stress. Further analysis of lipidomics found the TrSAMS-transgenic plants maintained relatively higher accumulations of total lipids, eight phospholipids (PC, phosphatidylcholine; PG, phosphatidylglycerol; PS, phosphatidylserine; CL, cardiolipin; LPA, lysophosphatidic acid; LPC, lyso phosphatidylcholine; LPG, lyso phosphatidylglycerol; and LPI, lyso phosphatidylinositol), one glycoglycerolipid (DGDG, digalactosyl diacylglycerol), and four sphingolipids (Cer, ceramide; CerG2GNAc1, dihexosyl N-acetylhexosyl ceramide; Hex1Cer, hexosyl ceramide; and ST, sulfatide), higher ratio of DGDG: monogalactosyl diacylglycerol (MGDG), and lower unsaturation level than wild-type Arabidopsis thaliana in response to heat stress. Spd-induced lipids accumulation and remodeling could contribute to better maintenance of membrane stability, integrity, and functionality when plants underwent a long period of heat stress. In addition, the Spd significantly up-regulated PIP2 and PA signaling pathways, which was beneficial to signal perception and transduction for stress defense. Current findings provide a novel insight into the function of Spd against heat stress through regulating lipids signaling and reprograming in plants.
format Online
Article
Text
id pubmed-9602532
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-96025322022-10-27 Metabolic Regulation and Lipidomic Remodeling in Relation to Spermidine-induced Stress Tolerance to High Temperature in Plants Li, Zhou Cheng, Bizhen Zhao, Yue Luo, Lin Zhang, Yan Feng, Guangyan Han, Liebao Peng, Yan Zhang, Xinquan Int J Mol Sci Article Beneficial effects of spermidine (Spd) on alleviating abiotic stress damage have been explored in plants for hundreds of years, but limited information is available about its roles in regulating lipids signaling and metabolism during heat stress. White clover (Trifolium repens) plants were pretreated with 70 μM Spd and then subjected to high temperature (38/33 °C) stress for 20 days. To further investigate the effect of Spd on heat tolerance, transgenic Arabidopsis thaliana overexpressing a TrSAMS encoding a key enzyme involved in Spd biosynthesis was exposed to high temperature (38/33 °C) stress for 10 days. A significant increase in endogenous Spd content in white clover by exogenous application of Spd or the TrSAMS overexpression in Arabidopsis thaliana could effectively mitigate heat-induced growth retardation, oxidative damage to lipids, and declines in photochemical efficiency and cell membrane stability. Based on the analysis of metabolomics, the amino acids and vitamins metabolism, biosynthesis of secondary metabolites, and lipids metabolism were main metabolic pathways regulated by the Spd in cool-season white clover under heat stress. Further analysis of lipidomics found the TrSAMS-transgenic plants maintained relatively higher accumulations of total lipids, eight phospholipids (PC, phosphatidylcholine; PG, phosphatidylglycerol; PS, phosphatidylserine; CL, cardiolipin; LPA, lysophosphatidic acid; LPC, lyso phosphatidylcholine; LPG, lyso phosphatidylglycerol; and LPI, lyso phosphatidylinositol), one glycoglycerolipid (DGDG, digalactosyl diacylglycerol), and four sphingolipids (Cer, ceramide; CerG2GNAc1, dihexosyl N-acetylhexosyl ceramide; Hex1Cer, hexosyl ceramide; and ST, sulfatide), higher ratio of DGDG: monogalactosyl diacylglycerol (MGDG), and lower unsaturation level than wild-type Arabidopsis thaliana in response to heat stress. Spd-induced lipids accumulation and remodeling could contribute to better maintenance of membrane stability, integrity, and functionality when plants underwent a long period of heat stress. In addition, the Spd significantly up-regulated PIP2 and PA signaling pathways, which was beneficial to signal perception and transduction for stress defense. Current findings provide a novel insight into the function of Spd against heat stress through regulating lipids signaling and reprograming in plants. MDPI 2022-10-13 /pmc/articles/PMC9602532/ /pubmed/36293104 http://dx.doi.org/10.3390/ijms232012247 Text en © 2022 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
Li, Zhou
Cheng, Bizhen
Zhao, Yue
Luo, Lin
Zhang, Yan
Feng, Guangyan
Han, Liebao
Peng, Yan
Zhang, Xinquan
Metabolic Regulation and Lipidomic Remodeling in Relation to Spermidine-induced Stress Tolerance to High Temperature in Plants
title Metabolic Regulation and Lipidomic Remodeling in Relation to Spermidine-induced Stress Tolerance to High Temperature in Plants
title_full Metabolic Regulation and Lipidomic Remodeling in Relation to Spermidine-induced Stress Tolerance to High Temperature in Plants
title_fullStr Metabolic Regulation and Lipidomic Remodeling in Relation to Spermidine-induced Stress Tolerance to High Temperature in Plants
title_full_unstemmed Metabolic Regulation and Lipidomic Remodeling in Relation to Spermidine-induced Stress Tolerance to High Temperature in Plants
title_short Metabolic Regulation and Lipidomic Remodeling in Relation to Spermidine-induced Stress Tolerance to High Temperature in Plants
title_sort metabolic regulation and lipidomic remodeling in relation to spermidine-induced stress tolerance to high temperature in plants
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9602532/
https://www.ncbi.nlm.nih.gov/pubmed/36293104
http://dx.doi.org/10.3390/ijms232012247
work_keys_str_mv AT lizhou metabolicregulationandlipidomicremodelinginrelationtospermidineinducedstresstolerancetohightemperatureinplants
AT chengbizhen metabolicregulationandlipidomicremodelinginrelationtospermidineinducedstresstolerancetohightemperatureinplants
AT zhaoyue metabolicregulationandlipidomicremodelinginrelationtospermidineinducedstresstolerancetohightemperatureinplants
AT luolin metabolicregulationandlipidomicremodelinginrelationtospermidineinducedstresstolerancetohightemperatureinplants
AT zhangyan metabolicregulationandlipidomicremodelinginrelationtospermidineinducedstresstolerancetohightemperatureinplants
AT fengguangyan metabolicregulationandlipidomicremodelinginrelationtospermidineinducedstresstolerancetohightemperatureinplants
AT hanliebao metabolicregulationandlipidomicremodelinginrelationtospermidineinducedstresstolerancetohightemperatureinplants
AT pengyan metabolicregulationandlipidomicremodelinginrelationtospermidineinducedstresstolerancetohightemperatureinplants
AT zhangxinquan metabolicregulationandlipidomicremodelinginrelationtospermidineinducedstresstolerancetohightemperatureinplants