Full-length transcriptome and co-expression network analysis reveal molecular mechanisms of seed development in Elymus sibiricus

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Yuying Zheng, Xiaoshan Lin, Wengang Xie, Wenxian Liu
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Abstract

Grass seeds play a critical and fundamental role in grass breeding and production. Elymus sibiricus L. is a widespread Poaceae forage grass in northern Eurasia which is used for ecological restoration and forage production. Sucrose is the main source of substrate and energy required for starch synthesis in the seeds, so the hydrolysis of sucrose determines and influences starch synthesis and filling in the seeds, especially Poaceae. However, the process behind carbohydrate metabolism during E. sibiricus seed development remains unclear. This study addresses a significant gap in our understanding of the carbohydrate metabolism during seed development in E. sibiricus by employing full-length transcriptome sequencing across five developmental stages for the first time. Full-length transcriptome sequencing was performed on E. sibiricus seeds at five developmental stages (S5, S9, S15, S20, S25) to get better molecular insights. We identified 13,205 differentially expressed genes, with 7,471 up-regulated and 5,734 down-regulated. Through KEGG enrichment analysis, genes were enriched in ‘starch and sucrose metabolism’, ‘photosynthetic-related’ and ‘hormone signal transduction’ pathways. Gene ontology enrichment analysis showed that genes were enriched in the ‘beta-amylase activity’ term of molecular functions. In addition, top 21 transcription factor families were identified as involved in seed development. The homologous genes of ABSCISIC ACID-INSENSITIVE 3 (ABI3), NUCLEAR FACTOR-YB1 (NF-YB1), STARCH SYNTHASE I (SSI) were identified as candidate genes of seed development in E. sibiricus. Combined with physiological index, transcriptome analyses, weighted gene co-expression network analysis and real-time quantitative PCR, the mechanism of starch and sucrose content of seed development was revealed and ten hub genes were identified. Overall, this study provides the molecular bases to understand seed development and starch and sucrose metabolism at the different seed developmental stages in E. sibiricus.

全长转录组和共表达网络分析揭示了西双版纳杓兰种子发育的分子机制
草籽在牧草育种和生产中起着至关重要的基础作用。Elymus sibiricus L. 是一种广泛分布于欧亚大陆北部的禾本科牧草,可用于生态恢复和饲料生产。蔗糖是种子中淀粉合成所需的主要底物和能量来源,因此蔗糖的水解决定并影响着种子中淀粉的合成和填充,尤其是禾本科植物。然而,西伯利亚苣苔种子发育过程中的碳水化合物代谢过程仍不清楚。本研究首次采用全长转录组测序技术对西伯利亚大戟种子五个发育阶段的碳水化合物代谢过程进行了研究,填补了我们对西伯利亚大戟种子发育过程中碳水化合物代谢过程的认识空白。为了获得更好的分子认识,我们对西伯利亚红豆杉种子的五个发育阶段(S5、S9、S15、S20、S25)进行了全长转录组测序。我们发现了 13,205 个差异表达基因,其中 7,471 个上调,5,734 个下调。通过 KEGG 富集分析,基因富集在 "淀粉和蔗糖代谢"、"光合相关 "和 "激素信号转导 "通路中。基因本体富集分析表明,基因富集于分子功能的 "β-淀粉酶活性 "项。此外,还确定了参与种子发育的前 21 个转录因子家族。其中,ABSCISIC ACID-INSENSITIVE 3 (ABI3)、NUCLEAR FACTOR-YB1 (NF-YB1)、STARCH SYNTHASE I (SSI) 的同源基因被确定为西比瑞草种子发育的候选基因。结合生理指标、转录组分析、加权基因共表达网络分析和实时定量 PCR 等方法,揭示了种子发育过程中淀粉和蔗糖含量的变化机制,并确定了 10 个中枢基因。总之,本研究为了解西伯利亚大豆种子不同发育阶段的种子发育及淀粉和蔗糖代谢提供了分子基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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