[药用植物人参种子耐脱水及PLD基因家族的鉴定与表达分析]。

Q3 Pharmacology, Toxicology and Pharmaceutics
Chao-Lin Li, Min Huang, Na Ge, Qing-Yan Wang, Jin-Shan Jia, Ting Luo, Jin-Yan Zhang, Ping Zhou, Jun-Wen Chen
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引用次数: 0

摘要

人参多为珍贵的药用植物。虽然一些品种的种子对脱水敏感,但其他品种的种子对脱水的耐受性尚不清楚。磷脂酶D(PLD)基因在植物对脱水胁迫的反应中起重要作用。然而,不同脱水耐受性的人参种子中PLD基因家族的特征及其对脱水胁迫的响应机制尚不清楚。本研究以八种人参种子为材料,测定脱水后的发芽率和PLD活性,并分析脱水耐受性与种子性状的相关性。生物信息学分析还对PnPLD和PvPLD基因家族进行了表征,并评估了它们在脱水胁迫下的表达模式。人参种子的脱水耐受性由高到低依次为:人参、盾叶人参、西洋参、越南参、日本参、三七、沙棘参。脱水耐性与种子形状呈显著负相关(r=-0.792),扁型种子的脱水耐性较强。在三七和越南山参中分别鉴定出18个和19个PLD成员。这些成员被分为五个亚型:α, β, γ, δ和ζ。PnPLD和PvPLD的基因结构、亚细胞定位、理化性质等特征相似。这两种启动子都含有与植物生长发育、激素反应以及非生物和生物胁迫相关的调控元件。在脱水过程中,三七种子PLD酶活性随着含水量的降低而逐渐升高,而越南麻花种子PLD酶活性则先降低后升高。PLDα和PLDδ在三七种子中的表达呈先升高后降低的趋势,而在越南山茱萸种子中,PLDα和PLDδ的表达呈下降趋势。综上所述,人参种子的脱水耐受性与种子形状呈极显著负相关。越南花木的脱水耐受性和三七种子的脱水敏感性可能与PLD酶活性及PLDα和PLDδ基因的表达差异有关。本研究首次系统比较了人参种子的脱水耐受性,分析了耐受性差异的原因和超低温长期贮藏的最佳含水量,为不同脱水耐受性药用植物种子的短期和超低温长期贮藏提供了理论依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
[Identification and expression analysis of seed dehydration tolerance and PLD gene family in Panax medicinal plants].

Panax species are mostly valuable medicinal plants. While some species' seeds are sensitive to dehydration, the dehydration tolerance of seeds from other Panax species remains unclear. The phospholipase D(PLD) gene plays an important role in plant responses to dehydration stress. However, the characteristics of the PLD gene family and their mechanisms of response to dehydration stress in seeds of Panax species with different dehydration tolerances are not well understood. This study used seeds from eight Panax species to measure the germination rates and PLD activity after dehydration and to analyze the correlation between dehydration tolerance and seed traits. Bioinformatics analysis was also conducted to characterize the PnPLD and PvPLD gene families and to evaluate their expression patterns under dehydration stress. The dehydration tolerance of Panax seeds was ranked from high to low as follows: P. ginseng, P. zingiberensis, P. quinquefolius, P. vietnamensis var. fuscidiscus, P. japonicus var. angustifolius, P. japonicus, P. notoginseng, and P. stipuleanatus. A significant negative correlation was found between dehydration tolerance and seed shape(three-dimensional variance), with flatter seeds exhibiting stronger dehydration tolerance(r=-0.792). Eighteen and nineteen PLD members were identified in P. notoginseng and P. vietnamensis var. fuscidiscus, respectively. These members were classified into five isoforms: α, β, γ, δ, and ζ. The gene structures, subcellular localization, physicochemical properties, and other characteristics of PnPLD and PvPLD were similar. Both promoters contained regulatory elements associated with plant growth and development, hormone responses, and both abiotic and biotic stress. During dehydration, the PLD enzyme activity in P. notoginseng seeds gradually increased as the water content decreased, whereas in P. vietnamensis var. fuscidiscus, PLD activity first decreased and then increased. The expression of PLDα and PLDδ in P. notoginseng seeds initially increased and then decreased, whereas in P. vietnamensis var. fuscidiscus, the expression of PLDα and PLDδ consistently decreased. In conclusion, the dehydration tolerance of Panax seeds showed a significant negative correlation with seed shape. The dehydration tolerance in P. vietnamensis var. fuscidiscus and dehydration sensitivity of P. notoginseng seeds may be related to differences in PLD enzyme activity and the expression of PLDα and PLDδ genes. This study provided the first systematic comparison of dehydration tolerance in Panax seeds and analyzed the causes of tolerance differences and the optimal water content for long-term storage at ultra-low temperatures, thus providing a theoretical basis for the short-term and ultra-low temperature long-term storage of medicinal plant seeds with varying dehydration tolerances.

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来源期刊
Zhongguo Zhongyao Zazhi
Zhongguo Zhongyao Zazhi Pharmacology, Toxicology and Pharmaceutics-Pharmacology, Toxicology and Pharmaceutics (all)
CiteScore
1.50
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0.00%
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581
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