Key Laboratory of Ministry of Education for Genetics, Breeding and Multiple Utilization of Crops / Fujian Key Laboratory for Crop Breeding by Design / College of Agriculture, Fujian Agriculture and Forestry University, Fuzhou, 350002, China.
Experiment Station of Ministry of Agriculture and Rural Affairs for Jute and Kenaf in Southeast China / Fujian Public Platform for Germplasm Resources of Bast Fiber Crops / Fujian International Science and Technology Cooperation Base for Genetics, Breeding and Multiple Utilization Development of Southern Economic Crops, Fujian Agriculture and Forestry University, Fuzhou, 350002, Fujian, China.
BMC Plant Biol. 2020 Sep 1;20(1):403. doi: 10.1186/s12870-020-02617-8.
WRKY is a group of transcription factors (TFs) that play a vital role in plant growth, development, and stress tolerance. To date, none of jute WRKY (CcWRKY) genes have been identified, even if jute (Corchorus capsularis) is one of the most important natural fiber crops in the world. Little information about the WRKY genes in jute is far from sufficient to understand the molecular mechanism of bast fiber biosynthesis.
A total of 244,489,479 clean reads were generated using Illumina paired-end sequencing. De novo assembly yielded 90,982 unigenes with an average length of 714 bp. By sequence similarity searching for known proteins, 48,896 (53.74%) unigenes were annotated. To mine the CcWRKY TFs and identify their potential function, the search for CcWRKYs against the transcriptome data of jute was performed, and a total of 43 CcWRKYs were identified in this study. The gene structure, phylogeny, conserved domain and three-dimensional structure of protein were analyzed by bioinformatics tools of GSDS2.0, MEGA7.0, DNAMAN5.0, WebLogo 3 and SWISS-MODEL respectively. Phylogenetic analysis showed that 43 CcWRKYs were divided into three groups: I, II and III, containing 9, 28, and 6 members respectively, according to the WRKY conserved domain features and the evolution analysis with Arabidopsis thaliana. Gene structure analysis indicated that the number of exons of these CcWRKYs varied from 3 to 11. Among the 43 CcWRKYs, 10, 2, 2, and 14 genes showed higher expression in leaves, stem sticks, stem barks, and roots at the vigorous vegetative growth stage, respectively. Moreover, the expression of 21 of 43 CcWRKYs was regulated significantly with secondary cell wall biosynthesis genes using FPKM and RT-qPCR by GA stress to a typical GA sensitive dwarf germplasm in comparison to an elite cultivar in jute. The Cis-element analysis showed that promoters of these 21 CcWRKYs had 1 to 4 cis-elements involved in gibberellin-responsiveness, suggesting that they might regulate the development of bast fiber in response to GA stress.
A total of 43 CcWRKYs were identified in jute for the first time. Analysis of phylogenetic relationship and gene structure revealed that these CcWRKYs might have a functional diversity. Expression analysis showed 21 TFs as GA stress responsive genes. The identification of these CcWRKYs and the characterization of their expression pattern will provide a basis for future clarification of their functions in bast fiber development in jute.
WRKY 是一类转录因子(TFs),在植物的生长、发育和应激耐受中发挥着重要作用。迄今为止,虽然黄麻(Corchorus capsularis)是世界上最重要的天然纤维作物之一,但尚未鉴定出任何黄麻 WRKY(CcWRKY)基因。有关黄麻 WRKY 基因的信息很少,远远不足以了解韧皮纤维生物合成的分子机制。
使用 Illumina 配对末端测序生成了总计 244,489,479 条清洁读取。从头组装产生了 90,982 条平均长度为 714bp 的 unigenes。通过对已知蛋白的序列相似性搜索,48,896(53.74%)条 unigenes被注释。为了挖掘 CcWRKY TFs 并鉴定其潜在功能,对黄麻的转录组数据进行了 CcWRKY 的搜索,本研究共鉴定出 43 个 CcWRKY。通过 GSDS2.0、MEGA7.0、DNAMAN5.0、WebLogo 3 和 SWISS-MODEL 等生物信息学工具分别分析了基因结构、系统发育、保守域和蛋白质的三维结构。系统发育分析表明,根据 WRKY 保守结构域特征和与拟南芥的进化分析,43 个 CcWRKY 分为 I、II 和 III 三组,分别包含 9、28 和 6 个成员。基因结构分析表明,这些 CcWRKY 的外显子数量从 3 到 11 不等。在 43 个 CcWRKY 中,10、2、2 和 14 个基因在旺盛营养生长阶段的叶片、茎棒、茎皮和根中表达水平较高。此外,与黄麻的典型 GA 敏感矮秆种质相比,在 GA 胁迫下,43 个 CcWRKY 中的 21 个基因的表达水平与次生细胞壁生物合成基因的 FPKM 和 RT-qPCR 显著调节。顺式元件分析表明,这 21 个 CcWRKY 的启动子具有 1 到 4 个参与赤霉素反应的顺式元件,表明它们可能通过 GA 胁迫响应调节韧皮纤维的发育。
本研究首次在黄麻中鉴定出 43 个 CcWRKY。系统发育关系和基因结构分析表明,这些 CcWRKY 可能具有功能多样性。表达分析表明,21 个 TF 作为 GA 应激响应基因。这些 CcWRKY 的鉴定及其表达模式的特征将为阐明它们在黄麻韧皮纤维发育中的功能提供基础。