Eom Seung Hee, Ahn Min-A, Kim Eunhui, Lee Hee Ju, Lee Jin Hyoung, Wi Seung Hwan, Kim Sung Kyeom, Lim Heung Bin, Hyun Tae Kyung
Department of Industrial Plant Science and Technology, College of Agricultural, Life and Environmental Sciences, Chungbuk National University, Cheongju 28644, Korea.
Vegetable Research Division, National Institute of Horticultural & Herbal Science, Wanju 55365, Korea.
Antioxidants (Basel). 2022 Apr 1;11(4):700. doi: 10.3390/antiox11040700.
Cold stress is known as the important yield-limiting factor of heading type Kimchi cabbage (HtKc, L. ssp. pekinensis), which is an economically important crop worldwide. However, the biochemical and molecular responses to cold stress in HtKc are largely unknown. In this study, we conducted transcriptome analyses on HtKc grown under normal versus cold conditions to investigate the molecular mechanism underlying HtKc responses to cold stress. A total of 2131 genes (936 up-regulated and 1195 down-regulated) were identified as differentially expressed genes and were significantly annotated in the category of "response to stimulus". In addition, cold stress caused the accumulation of polyphenolic compounds, including p-coumaric, ferulic, and sinapic acids, in HtKc by inducing the phenylpropanoid pathway. The results of the chemical-based antioxidant assay indicated that the cold-induced polyphenolic compounds improved the free-radical scavenging activity and antioxidant capacity, suggesting that the phenylpropanoid pathway induced by cold stress contributes to resistance to cold-induced reactive oxygen species in HtKc. Taken together, our results will serve as an important base to improve the cold tolerance in plants via enhancing the antioxidant machinery.
冷胁迫是结球型泡菜用白菜(HtKc,即大白菜亚种)产量的重要限制因素,大白菜是全球一种具有重要经济价值的作物。然而,HtKc对冷胁迫的生化和分子反应在很大程度上尚不明确。在本研究中,我们对正常条件和冷胁迫条件下生长的HtKc进行了转录组分析,以探究HtKc对冷胁迫反应的分子机制。共鉴定出2131个差异表达基因(936个上调基因和1195个下调基因),这些基因在“对刺激的反应”类别中得到了显著注释。此外,冷胁迫通过诱导苯丙烷途径,导致HtKc中多酚类化合物(包括对香豆酸、阿魏酸和芥子酸)的积累。基于化学的抗氧化测定结果表明,冷诱导的多酚类化合物提高了自由基清除活性和抗氧化能力,这表明冷胁迫诱导的苯丙烷途径有助于HtKc抵抗冷诱导的活性氧。综上所述,我们的研究结果将为通过增强抗氧化机制提高植物的耐寒性提供重要依据。