生理学研究和转录组分析揭示 Malus sieversii f. niedzwetzkyan 抗盐碱胁迫的机制

IF 3.1 3区 农林科学 Q1 HORTICULTURE
Lepu Jiang, Yan Yang, Zhengli Zhou, Xuesen Chen
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引用次数: 0

摘要

Malus sieversii f. niedzwetzkyan是一种能在新疆盐碱地上生长的野生物种,是最有希望改良盐碱荒地的园艺作物。然而,尼德孜木对盐碱胁迫的耐受性及其潜在的分子机制在很大程度上仍然未知。在此,我们进行了一项水培实验,将尼德茨维茨基亚麻和茉莉 "皇家嘎啦 "幼苗置于 150 毫摩尔的盐碱胁迫下。生理数据表明,M. niedzwetzkyana 具有很强的清除 ROS 能力和离子转运能力,其抗盐碱能力高于 M. "Royal Gala"。盐碱胁迫还促进了花青素的合成。在盐碱胁迫下的不同时间点(0 h、6 h 和 12 h),对尼德茨维茨基亚麻属植物的叶片和根进行了转录组分析。转录组分析表明,盐碱胁迫下调了大部分参与花青素类黄酮合成途径的基因。参与抗氧化酶活性和离子转运的基因转录水平也发生了变化。通过加权基因共表达网络分析,我们确定了与超氧化物歧化酶以及Na+和K+转运相关的枢纽基因。本研究首次在分子水平上阐明了 M. niedzwetzkyana 的耐盐碱能力,包括盐碱胁迫条件下调节活性氧平衡、离子吸收和花色苷合成途径的复杂变化。这项研究为鉴定参与盐碱胁迫响应的基因提供了重要的遗传资源。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Physiological Studies and Transcriptomic Analysis Reveal the Mechanism of Saline-Alkali Stress Resistance of Malus sieversii f. niedzwetzkyan
Malus sieversii f. niedzwetzkyan, a wild species capable of growing on saline-alkali soil in Xinjiang, is the most promising horticultural crop for improving the saline-alkali wasteland. However, the tolerance of M. niedzwetzkyan to saline-alkali stress and the underlying molecular mechanisms remains largely unknown. Here, we conducted a hydroponic experiment in which M. niedzwetzkyana and M. domestica “Royal Gala” seedlings were subjected to 150 mM saline-alkali stress. Physiological data showed that M. niedzwetzkyana had a strong ROS scavenging ability and ion transport ability, and its saline-alkali resistance was higher than that of M. “Royal Gala”. Saline-alkali stress also promoted the synthesis of anthocyanins in M. niedzwetzkyana. Transcriptome analysis was conducted on the leaves and roots of M. niedzwetzkyana at different time points under saline-alkali stress (0 h, 6 h, and 12 h). Transcriptome analysis revealed that saline stress down-regulated most genes involved in the anthocyanin flavonoid synthesis pathway. Transcription levels of genes involved in antioxidant enzyme activity and ion transport were altered. We identified hub genes related to superoxide dismutase as well as Na+ and K+ transport using weighted gene co-expression network analysis. This study elucidated, for the first time at the molecular level, the saline-alkali tolerance of M. niedzwetzkyana, including the complex changes in pathways that regulate reactive oxygen species homeostasis, ion uptake, and anthocyanoside synthesis under saline-alkali stress conditions. This research provides an important genetic resource for identifying genes involved in responses to saline-alkali stress.
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来源期刊
Horticulturae
Horticulturae HORTICULTURE-
CiteScore
3.50
自引率
19.40%
发文量
998
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