Evolution and comparative transcriptome analysis of glucosinolate pathway genes in Brassica napus L.

IF 4.1 2区 生物学 Q1 PLANT SCIENCES Frontiers in Plant Science Pub Date : 2024-12-10 eCollection Date: 2024-01-01 DOI:10.3389/fpls.2024.1483635
Shiying Liu, Zexuan Wu, Xingying Chen, Zhuo Chen, Yibing Shen, Salman Qadir, Huafang Wan, Huiyan Zhao, Nengwen Yin, Jiana Li, Cunmin Qu, Hai Du
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Abstract

Glucosinolates (GSLs) are important secondary metabolites abundantly distributed in Brassicaceae plants, whose degradation products benefit plant resistance but are regarded as disadvantageous factors for human health. Thus, reducing GSL content is an important goal in the breeding program in crops, such as Brassica napus. In this study, 1280 genes in the GSL pathway were identified from 14 land plant genomes, which are specifically distributed in Brassicaceae and are extensively expanded in B. napus. Most GSL pathway genes had many positive selection sites, especially the encoding genes of transcription factors (TFs) and structural genes involved in the GSL breakdown process. There are 344 genes in the GSL pathway in the B. napus genome, which are unequally distributed on the 19 chromosomes. Whole-genome duplication mainly contributed to the gene expansion of the GSL pathway in B. napus. The genes in GSL biosynthesis were regulated by various TFs and cis-elements in B. napus and mainly response to abiotic stress and hormone induction. A comparative transcriptome atlas of the roots, stems, leaves, flowers, siliques, and seeds of a high- (ZY821), and a low-GSL-content (ZS11) cultivar was constructed. The features of the two cultivars may be attributed to diverse expression differences in each organ at different stages, especially in seeds. In all, 65 differential expressed genes (DEGs) concentrated on the core structure pathway were inferred to mainly influence the GSL contents between ZY821 and ZS11. This study provides an important RNA-seq dataset and diverse gene resources for future manipulating GSLs biosynthesis and distribution in B. napus using molecular breeding methods.

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甘蓝型油菜硫代葡萄糖苷途径基因的进化与比较转录组分析。
硫代葡萄糖苷(Glucosinolates, GSLs)是油菜科植物中丰富分布的重要次生代谢物,其降解产物有利于植物的抗性,但对人体健康不利。因此,降低GSL含量是甘蓝型油菜等作物育种计划的一个重要目标。本研究从14个陆生植物基因组中鉴定出1280个GSL通路基因,这些基因特异分布于芸苔科植物中,并在甘蓝型油菜中广泛扩增。大多数GSL途径基因都有许多正选择位点,尤其是转录因子编码基因和参与GSL分解过程的结构基因。甘蓝型油菜基因组GSL通路共有344个基因,不均匀分布在19条染色体上。全基因组复制是甘蓝型油菜GSL通路基因扩增的主要原因。甘油三酯生物合成基因受甘油三酯和顺式元件的调控,主要响应非生物胁迫和激素诱导。构建了gsl高含量品种(ZY821)和低含量品种(ZS11)的根、茎、叶、花、茎和种子的比较转录组图谱。这两个品种的特征可能是由于不同时期各器官的表达差异,特别是在种子中。总共推断出65个集中在核心结构通路上的差异表达基因(DEGs)主要影响ZY821和ZS11之间的GSL含量。该研究为今后利用分子育种方法调控甘蓝型油菜GSLs的合成和分布提供了重要的RNA-seq数据集和丰富的基因资源。
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来源期刊
Frontiers in Plant Science
Frontiers in Plant Science PLANT SCIENCES-
CiteScore
7.30
自引率
14.30%
发文量
4844
审稿时长
14 weeks
期刊介绍: In an ever changing world, plant science is of the utmost importance for securing the future well-being of humankind. Plants provide oxygen, food, feed, fibers, and building materials. In addition, they are a diverse source of industrial and pharmaceutical chemicals. Plants are centrally important to the health of ecosystems, and their understanding is critical for learning how to manage and maintain a sustainable biosphere. Plant science is extremely interdisciplinary, reaching from agricultural science to paleobotany, and molecular physiology to ecology. It uses the latest developments in computer science, optics, molecular biology and genomics to address challenges in model systems, agricultural crops, and ecosystems. Plant science research inquires into the form, function, development, diversity, reproduction, evolution and uses of both higher and lower plants and their interactions with other organisms throughout the biosphere. Frontiers in Plant Science welcomes outstanding contributions in any field of plant science from basic to applied research, from organismal to molecular studies, from single plant analysis to studies of populations and whole ecosystems, and from molecular to biophysical to computational approaches. Frontiers in Plant Science publishes articles on the most outstanding discoveries across a wide research spectrum of Plant Science. The mission of Frontiers in Plant Science is to bring all relevant Plant Science areas together on a single platform.
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