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研究盐诱导的两种不同物种中硫代葡萄糖苷转运蛋白基因表达模式的变化及硫代葡萄糖苷的积累

Studying Salt-Induced Shifts in Gene Expression Patterns of Glucosinolate Transporters and Glucosinolate Accumulation in Two Contrasting Species.

作者信息

Fatima Samia, Khan Muhammad Omar, Iqbal Nadia, Iqbal Muhammad Mudassar, Qamar Huma, Imtiaz Muhammad, Hundleby Penny, Wei Zhengyi, Ahmad Niaz

机构信息

National Institute for Biotechnology and Genetic Engineering College (NIBGE-C), Pakistan Institute for Engineering and Applied Sciences (PIEAS), Faisalabad 38000, Pakistan.

Oilseeds Research Institute, Ayub Agricultural Research Institute, Faisalabad 38000, Pakistan.

出版信息

Metabolites. 2024 Mar 22;14(4):179. doi: 10.3390/metabo14040179.

Abstract

crops are well known for the accumulation of glucosinolates-secondary metabolites crucial for plants' adaptation to various stresses. Glucosinolates also functioning as defence compounds pose challenges to food quality due to their goitrogenic properties. Their disruption leaves plants susceptible to insect pests and diseases. Hence, a targeted reduction in seed glucosinolate content is of paramount importance to increase food acceptance. () present a promising avenue for selectively reducing glucosinolate concentrations in seeds while preserving biosynthesis elsewhere. In this study, 54 putative GTR protein sequences found in were retrieved, employing Arabidopsis GTR1 and GTR2 templates. Comprehensive bioinformatics analyses, encompassing gene structure organization, domain analysis, motif assessments, promoter analysis, and cis-regulatory elements, affirmed the existence of transporter domains and stress-related regulatory elements. Phylogenetic analysis revealed patterns of conservation and divergence across species. Glucosinolates have been shown to increase under stress conditions, indicating a potential role in stress response. To elucidate the role of GTRs in glucosinolate transportation under NaCl stress in two distinct species, and , plants were subjected to 0, 100, or 200 mM NaCl. Based on the literature, key genes were chosen and their expression across various plant parts was assessed. Both species displayed divergent trends in their biochemical profiles as well as glucosinolate contents under elevated salt stress conditions. Statistical modelling identified significant contributors to glucosinolate variations, guiding the development of targeted breeding strategies for low-glucosinolate varieties. Notably, exhibited pronounced expressions in stems, contributing approximately 52% to glucosinolate content variance, while displayed significant expression in flowers. Additionally, and demonstrated noteworthy expression in roots. This study enhances our understanding of glucosinolate regulation under stress conditions, offering avenues to improve crop quality and resilience.

摘要

作物因积累硫代葡萄糖苷而闻名,硫代葡萄糖苷是植物适应各种胁迫的关键次生代谢产物。硫代葡萄糖苷还作为防御化合物发挥作用,由于其致甲状腺肿特性,对食品质量构成挑战。它们的破坏使植物易受病虫害侵害。因此,有针对性地降低种子硫代葡萄糖苷含量对于提高食品可接受性至关重要。()为选择性降低种子中硫代葡萄糖苷浓度同时保留其他部位的生物合成提供了一条有前景的途径。在本研究中,利用拟南芥GTR1和GTR2模板,检索了在[具体物种]中发现的54个假定的GTR蛋白序列。综合生物信息学分析,包括基因结构组织、结构域分析、基序评估、启动子分析和顺式调控元件,证实了转运结构域和胁迫相关调控元件的存在。系统发育分析揭示了不同物种间的保守和分化模式。已表明硫代葡萄糖苷在胁迫条件下会增加,表明其在胁迫反应中可能发挥作用。为阐明GTRs在两个不同[具体物种]([物种名称1]和[物种名称2])的NaCl胁迫下硫代葡萄糖苷运输中的作用,将植物置于0、100或200 mM NaCl处理下。根据文献,选择关键[具体基因名称]基因,并评估其在不同植物部位的表达。在盐胁迫升高的条件下,两个物种在生化特征以及硫代葡萄糖苷含量方面均表现出不同的趋势。统计建模确定了硫代葡萄糖苷变异的重要贡献因素,为低硫代葡萄糖苷品种的定向育种策略的制定提供了指导。值得注意的是,[基因名称1]在茎中表现出明显的表达,对硫代葡萄糖苷含量变异的贡献约为52%,而[基因名称2]在花中表现出显著表达。此外,[基因名称3]和[基因名称4]在根中表现出值得注意的表达。本研究增进了我们对胁迫条件下硫代葡萄糖苷调控的理解,为提高[作物名称]作物质量和抗逆性提供了途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6800/11052333/bbae46d66ee7/metabolites-14-00179-g001.jpg

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