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Transcriptomics Profiling of Acer pseudosieboldianum Molecular Mechanism against Freezing Stress

Low temperature is an important environmental factor that affects the growth and development of trees and leads to the introduction of failure in the genetic improvement of trees. Acer pseudosieboldianum is a tree species that is well-known for its bright red autumn leaf color. These trees are widel...

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Autores principales: Han, Zhiming, Xu, Xiangzhu, Zhang, Shikai, Zhao, Qiushuang, Li, Hanxi, Cui, Ying, Li, Xiao, Wang, Liran, Chen, Su, Zhao, Xiyang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9737005/
https://www.ncbi.nlm.nih.gov/pubmed/36499002
http://dx.doi.org/10.3390/ijms232314676
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author Han, Zhiming
Xu, Xiangzhu
Zhang, Shikai
Zhao, Qiushuang
Li, Hanxi
Cui, Ying
Li, Xiao
Wang, Liran
Chen, Su
Zhao, Xiyang
author_facet Han, Zhiming
Xu, Xiangzhu
Zhang, Shikai
Zhao, Qiushuang
Li, Hanxi
Cui, Ying
Li, Xiao
Wang, Liran
Chen, Su
Zhao, Xiyang
author_sort Han, Zhiming
collection PubMed
description Low temperature is an important environmental factor that affects the growth and development of trees and leads to the introduction of failure in the genetic improvement of trees. Acer pseudosieboldianum is a tree species that is well-known for its bright red autumn leaf color. These trees are widely used in landscaping in northeast China. However, due to their poor cold resistance, introduced A. pseudosieboldianum trees suffer severe freezing injury in many introduced environments. To elucidate the physiological indicators and molecular mechanisms associated with freezing damage, we analyzed the physiological indicators and transcriptome of A. pseudosieboldianum, using kits and RNA-Seq technology. The mechanism of A. pseudosieboldianum in response to freezing stress is an important scientific question. In this study, we used the shoots of four-year-old A. pseudosieboldianum twig seedlings, and the physiological index and the transcriptome of A. pseudosieboldianum under low temperature stress were investigated. The results showed that more than 20,000 genes were detected in A. pseudosieboldianum under low temperature (4 °C) and freezing temperatures (−10 °C, −20 °C, −30 °C, and −40 °C). There were 2505, 6021, 5125, and 3191 differential genes (DEGs) between −10 °C, −20°C, −30°C, −40 °C, and CK (4 °C), respectively. Among these differential genes, 48 genes are involved in the MAPK pathway and 533 genes are involved in the glucose metabolism pathway. In addition, the important transcription factors (MYB, AP2/ERF, and WRKY) involved in freezing stress were activated under different degrees of freezing stress. A total of 10 sets of physiological indicators of A. pseudosieboldianum were examined, including the activities of five enzymes and the accumulation of five hormones. All of the physiological indicators except SOD and GSH-Px reached their maximum values at −30 °C. The enzyme activity of SOD was highest at −10 °C, and that of GSH-Px was highest at −20 °C. Our study is the first to provide a more comprehensive understanding of the differential genes (DEGs) involved in A. pseudosieboldianum under freezing stress at different temperatures at the transcriptome level. These results may help to clarify the molecular mechanism of cold tolerance of A. pseudosieboldianum and provide new insights and candidate genes for the genetic improvement of the freezing tolerance of A. pseudosieboldianum.
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spelling pubmed-97370052022-12-11 Transcriptomics Profiling of Acer pseudosieboldianum Molecular Mechanism against Freezing Stress Han, Zhiming Xu, Xiangzhu Zhang, Shikai Zhao, Qiushuang Li, Hanxi Cui, Ying Li, Xiao Wang, Liran Chen, Su Zhao, Xiyang Int J Mol Sci Article Low temperature is an important environmental factor that affects the growth and development of trees and leads to the introduction of failure in the genetic improvement of trees. Acer pseudosieboldianum is a tree species that is well-known for its bright red autumn leaf color. These trees are widely used in landscaping in northeast China. However, due to their poor cold resistance, introduced A. pseudosieboldianum trees suffer severe freezing injury in many introduced environments. To elucidate the physiological indicators and molecular mechanisms associated with freezing damage, we analyzed the physiological indicators and transcriptome of A. pseudosieboldianum, using kits and RNA-Seq technology. The mechanism of A. pseudosieboldianum in response to freezing stress is an important scientific question. In this study, we used the shoots of four-year-old A. pseudosieboldianum twig seedlings, and the physiological index and the transcriptome of A. pseudosieboldianum under low temperature stress were investigated. The results showed that more than 20,000 genes were detected in A. pseudosieboldianum under low temperature (4 °C) and freezing temperatures (−10 °C, −20 °C, −30 °C, and −40 °C). There were 2505, 6021, 5125, and 3191 differential genes (DEGs) between −10 °C, −20°C, −30°C, −40 °C, and CK (4 °C), respectively. Among these differential genes, 48 genes are involved in the MAPK pathway and 533 genes are involved in the glucose metabolism pathway. In addition, the important transcription factors (MYB, AP2/ERF, and WRKY) involved in freezing stress were activated under different degrees of freezing stress. A total of 10 sets of physiological indicators of A. pseudosieboldianum were examined, including the activities of five enzymes and the accumulation of five hormones. All of the physiological indicators except SOD and GSH-Px reached their maximum values at −30 °C. The enzyme activity of SOD was highest at −10 °C, and that of GSH-Px was highest at −20 °C. Our study is the first to provide a more comprehensive understanding of the differential genes (DEGs) involved in A. pseudosieboldianum under freezing stress at different temperatures at the transcriptome level. These results may help to clarify the molecular mechanism of cold tolerance of A. pseudosieboldianum and provide new insights and candidate genes for the genetic improvement of the freezing tolerance of A. pseudosieboldianum. MDPI 2022-11-24 /pmc/articles/PMC9737005/ /pubmed/36499002 http://dx.doi.org/10.3390/ijms232314676 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
Han, Zhiming
Xu, Xiangzhu
Zhang, Shikai
Zhao, Qiushuang
Li, Hanxi
Cui, Ying
Li, Xiao
Wang, Liran
Chen, Su
Zhao, Xiyang
Transcriptomics Profiling of Acer pseudosieboldianum Molecular Mechanism against Freezing Stress
title Transcriptomics Profiling of Acer pseudosieboldianum Molecular Mechanism against Freezing Stress
title_full Transcriptomics Profiling of Acer pseudosieboldianum Molecular Mechanism against Freezing Stress
title_fullStr Transcriptomics Profiling of Acer pseudosieboldianum Molecular Mechanism against Freezing Stress
title_full_unstemmed Transcriptomics Profiling of Acer pseudosieboldianum Molecular Mechanism against Freezing Stress
title_short Transcriptomics Profiling of Acer pseudosieboldianum Molecular Mechanism against Freezing Stress
title_sort transcriptomics profiling of acer pseudosieboldianum molecular mechanism against freezing stress
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9737005/
https://www.ncbi.nlm.nih.gov/pubmed/36499002
http://dx.doi.org/10.3390/ijms232314676
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