Pi Kai, Huang Ying, Luo Wen, Zeng Shuaibo, Mo Zejun, Duan Lili, Liu Renxiang
College of Tobacco, Guizhou University, Guiyang, China.
Key Laboratory of Tobacco Quality in Guizhou Province, Guiyang, China.
Front Plant Sci. 2023 Jan 31;14:1107550. doi: 10.3389/fpls.2023.1107550. eCollection 2023.
Heterosis has greatly improved the yield and quality of crops. However, previous studies often focused on improving the yield and quality of the shoot system, while research on the root system was neglected. We determined the root numbers of 12 F hybrids, all of which showed strong heterosis, indicating that tobacco F hybrids have general heterosis. To understand its molecular mechanism, we selected two hybrids with strong heterosis, GJ (G70 × Jiucaiping No.2) and KJ (K326 × Jiucaiping No.2), and their parents for transcriptome analysis. There were 84.22% and 90.25% of the differentially expressed genes were overdominantly expressed. The enrichment analysis of these overdominantly expressed genes showed that "Plant hormone signal transduction", "Phenylpropanoid biosynthesis", "MAPK signaling pathway - plant", and "Starch and sucrose metabolism" pathways were associated with root development. We focused on the analysis of the biosynthetic pathways of auxin(AUX), cytokinins(CTK), abscisic acid(ABA), ethylene(ET), and salicylic acid(SA), suggesting that overdominant expression of these hormone signaling pathway genes may enhance root development in hybrids. In addition, may be the genes involved in root growth. Genome-wide comparative transcriptome analysis enhanced our understanding of the regulatory network of tobacco root development and provided new ideas for studying the molecular mechanisms of tobacco root development.
杂种优势极大地提高了作物的产量和品质。然而,以往的研究往往侧重于提高地上部系统的产量和品质,而对根系的研究则被忽视。我们测定了12个F1杂种的根数,所有这些杂种均表现出较强的杂种优势,表明烟草F1杂种具有普遍的杂种优势。为了解其分子机制,我们选择了两个具有较强杂种优势的杂种GJ(G70×久彩坪2号)和KJ(K326×久彩坪2号)及其亲本进行转录组分析。差异表达基因中有84.22%和90.25%呈超显性表达。对这些超显性表达基因的富集分析表明,“植物激素信号转导”、“苯丙烷类生物合成”、“MAPK信号通路-植物”和“淀粉和蔗糖代谢”途径与根系发育有关。我们重点分析了生长素(AUX)、细胞分裂素(CTK)、脱落酸(ABA)、乙烯(ET)和水杨酸(SA)的生物合成途径,表明这些激素信号通路基因的超显性表达可能增强杂种的根系发育。此外, 可能是参与根系生长的基因。全基因组比较转录组分析增强了我们对烟草根系发育调控网络的理解,并为研究烟草根系发育的分子机制提供了新思路。