Zhejiang University Tea Research Institute, Hangzhou, 310058, P.R. China.
The World Vegetable Centre, Guwahati, Assam, India.
Sci Rep. 2019 Dec 27;9(1):20239. doi: 10.1038/s41598-019-56686-3.
Elucidation of the molecular mechanism related to the dedifferentiation and redifferentiation during tissue culture will be useful for optimizing regeneration system of tea plant. In this study, an integrated sRNAome and transcriptome analyses were carried out during phase changes of the stem explant culture. Among 198 miRNAs and 8001 predicted target genes, 178 differentially expressed miRNAs and 4264 potential targets were screened out from explants, primary calli, as well as regenerated roots and shoots. According to KEGG analysis of the potential targets, pathway of "aminoacyl-tRNA biosynthesis", "proteasome" and "glutathione metabolism" was of great significance during the dedifferentiation, and pathway of "porphyrin and chlorophyll metabolism", "mRNA surveillance pathway", "nucleotide excision repair" was indispensable for redifferentiation of the calli. Expression pattern of 12 miRNAs, including csn-micR390e, csn-miR156b-5p, csn-miR157d-5p, csn-miR156, csn-miR166a-3p, csn-miR166e, csn-miR167d, csn-miR393c-3p, csn-miR394, csn-miR396a-3p, csn-miR396 and csn-miR396e-3p, was validated by qRT-PCR among 57 differentially expressed phase-specific miRNAs. Validation also confirmed that regulatory module of csn-miR167d/ERF3, csn-miR156/SPB1, csn-miR166a-3p/ATHB15, csn-miR396/AIP15A, csn-miR157d-5p/GST and csn-miR393c-3p/ATG18b might play important roles in regulating the phase changes during tissue culture of stem explants.
阐明组织培养过程中去分化和再分化相关的分子机制,将有助于优化茶树再生系统。本研究对茎外植体培养过程中的相变进行了小 RNA 组和转录组的综合分析。在 198 个 miRNA 和 8001 个预测靶基因中,从外植体、原愈伤组织以及再生根和芽中筛选出 178 个差异表达的 miRNA 和 4264 个潜在靶基因。根据潜在靶基因的 KEGG 分析,在去分化过程中,"氨酰-tRNA 生物合成"、"蛋白酶体"和"谷胱甘肽代谢"途径非常重要,而"卟啉和叶绿素代谢"、"mRNA 监测途径"、"核苷酸切除修复"途径对于愈伤组织的再分化是必不可少的。通过 qRT-PCR 对 57 个差异表达的相变特异性 miRNA 中的 12 个 miRNA(包括 csn-micR390e、csn-miR156b-5p、csn-miR157d-5p、csn-miR156、csn-miR166a-3p、csn-miR166e、csn-miR167d、csn-miR393c-3p、csn-miR394、csn-miR396a-3p、csn-miR396 和 csn-miR396e-3p)的表达模式进行了验证。验证还证实,csn-miR167d/ERF3、csn-miR156/SPB1、csn-miR166a-3p/ATHB15、csn-miR396/AIP15A、csn-miR157d-5p/GST 和 csn-miR393c-3p/ATG18b 的调控模块可能在调控茎外植体组织培养过程中的相变中发挥重要作用。