Lu Lin, Luo Weirong, Yu Wenjin, Zhou Junguo, Wang Xinfa, Sun Yongdong
School of Horticulture and Landscape Architecture, Henan Institute of Science and Technology, Xinxiang, China.
Henan Province Engineering Research Center of Horticultural Plant Resource Utilization and Germplasm Enhancement, Xinxiang, China.
Front Plant Sci. 2022 Jun 15;13:907364. doi: 10.3389/fpls.2022.907364. eCollection 2022.
The miR395 plays an indispensable role in biochemical processes by regulating their target genes. However, little is known about the roles of miR395 in cucumber fruit expansion and response to abiotic stresses. Here, 4 Csa-miR395s and 8 corresponding target genes were identified in the cucumber genome. Csa-miR395s were all located on the same chromosome (Chr 5). Csa-miR395a/b/c and Csa-miR395d were distributed in different branches without a closer genetic relationship. Massive cis-acting elements, including light, phytohormone, and stress response elements, were detected in the promoter regions of Csa-MIR395s, indicating that Csa-miR395s might be involved in complex regulatory networks to control cucumber growth and development and stress response. In addition, Csa-miR395a/b/c shared the same target genes, and Csa-miR395d had its specific target genes. Tissue-specific expression analysis showed that Csa-miR395a/b/c were all expressed in the leaf, root, ovary, and expanded fruit of cucumber and highly expressed in the expanded fruits compared to the ovary, while Csa2G215520 and Csa1G502860 (target genes of Csa-miR395a/b/c) presented a downregulated trend in the expanded fruit compared to the ovary. Meanwhile, the protein co-expression network revealed that these target genes had interactions in sulfur metabolism. These results suggested that Csa-miR395a/b/c targeting Csa2G215520 and Csa1G502860 might promote cucumber fruit expansion by affecting sulfur metabolism. Additionally, Quantitative Real-time PCR analysis validated that Csa-miR395s could be regulated by NaCl stress, and Csa-miR395a/b/c could respond to PEG stress, which further confirmed the reliability of cis-acting elements data. Taken together, our results could be helpful for further exploration of the functions of miR395s in cucumber fruit expansion and response to abiotic stresses.
miR395 通过调控其靶基因在生化过程中发挥不可或缺的作用。然而,关于 miR395 在黄瓜果实膨大及对非生物胁迫响应中的作用知之甚少。在此,在黄瓜基因组中鉴定出了 4 个 Csa - miR395s 和 8 个相应的靶基因。Csa - miR395s 均位于同一条染色体(第 5 号染色体)上。Csa - miR395a/b/c 和 Csa - miR395d 分布在不同分支,遗传关系并不紧密。在 Csa - MIR395s 的启动子区域检测到大量顺式作用元件,包括光、植物激素和胁迫响应元件,这表明 Csa - miR395s 可能参与复杂的调控网络以控制黄瓜的生长发育和胁迫响应。此外,Csa - miR395a/b/c 共享相同的靶基因,而 Csa - miR395d 有其特定的靶基因。组织特异性表达分析表明,Csa - miR395a/b/c 在黄瓜的叶、根、子房和膨大果实中均有表达,与子房相比,在膨大果实中高表达,而 Csa2G215520 和 Csa1G502860(Csa - miR395a/b/c 的靶基因)在膨大果实中与子房相比呈下调趋势。同时,蛋白质共表达网络显示这些靶基因在硫代谢中存在相互作用。这些结果表明,靶向 Csa2G215520 和 Csa1G502860 的 Csa - miR395a/b/c 可能通过影响硫代谢促进黄瓜果实膨大。此外,实时定量 PCR 分析证实 Csa - miR395s 可受 NaCl 胁迫调控,Csa - miR395a/b/c 可响应 PEG 胁迫,这进一步证实了顺式作用元件数据的可靠性。综上所述,我们的结果有助于进一步探索 miR395s 在黄瓜果实膨大及对非生物胁迫响应中的功能。