Non-thermal plasma enhances rice seed germination, seedling development, and root growth under low-temperature stress

被引:0
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作者
Jing-Yang Bian
Xiao-Yu Guo
Dong Hun Lee
Xing-Rong Sun
Lin-Shuai Liu
Kai Shao
Kai Liu
Hu-Nan Sun
Taeho Kwon
机构
[1] Daqing Branch of Heilongjiang Academy of Agricultural Sciences,Stem Cell and Regenerative Biology Laboratory, College of Life Science & Biotechnology
[2] Heilongjiang Bayi Agricultural University,Department of Biological Sciences, Research Center of Ecomimetics
[3] Chonnam National University,Primate Resources Center
[4] Korea Research Institute of Bioscience and Biotechnology (KRIBB),Department of Functional Genomics, KRIBB School of Bioscience
[5] Korea National University of Science and Technology (UST),undefined
关键词
Non-thermal plasma; Rice (; L.) root; Antioxidant enzyme; Growth-regulating factor;
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摘要
Recently, non-thermal plasma (NTP) technologies have found widespread application across diverse fields, including plant growth, medical science, and biological and environmental research. Rice (Oryza sativa L.) is exceptionally sensitive to temperature changes. Notably, low-temperature stress primarily affects the germination and reproductive stages of rice, often leading to reduced crop yield. This study aimed to identify optimal conditions for enhancing rice seed germination and seedling growth under low temperatures using NTP technology. Our research indicated that NTP treatment at 15.0 kV for 30 s optimally promotes rice seed germination and growth under low-temperature stress. Furthermore, NTP treatment increases the activity and expression of antioxidant enzymes, such as superoxide dismutase (SOD), catalase (CAT), and peroxidase (POD), under low-temperature conditions. Moreover, it downregulates the expression of β-ketoacyl-[acyl carrier protein] synthase I (KASI) and cis-epoxy carotenoid dioxygenase 3 (NCED3) and upregulates the expression of alternative oxidase (AOX1B), BREVIS RADIX-like homologous gene (BRXL2), WRKY transcription factor 29 (WRKY29), and EREBP transcription factor 2 (EREBP2) in roots after tandem 7 days low-temperature (16 ℃) and 7 days room-temperature (28 ℃) treatments. Transcriptomic analysis revealed the involvement of various key genes in phosphotransferase activity, phosphate-containing compound metabolic processes, and defense responses. These analyses provide comprehensive information on gene expression at the transcriptional level, offering new insights for a deeper understanding of candidate genes required for root growth in rice.
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