Duan Zhaofei, Tian Shiyu, Yang Guobin, Wei Min, Li Jing, Yang Fengjuan
State Key Laboratory of Crop Biology, College of Horticulture Science and Engineering, Shandong Agricultural University, Shandong, China.
Scientific Observing and Experimental Station of Facility Agricultural Engineering (Huang-Huai-Hai Region), Ministry of Agriculture and Rural Affairs, Shandong, China.
Front Plant Sci. 2021 Nov 12;12:757936. doi: 10.3389/fpls.2021.757936. eCollection 2021.
Many basic helix-loop-helix transcription factors (TFs) have been reported to promote anthocyanin biosynthesis in numerous plant species, but little is known about bHLH TFs that inhibit anthocyanin accumulation. In this study, SmbHLH1 from was identified as a negative regulator of anthocyanin biosynthesis. However, SmbHLH1 showed high identity with SmTT8, which acts as a SmMYB113-dependent positive regulator of anthocyanin-biosynthesis in plants. Overexpression of in eggplant caused a dramatic decrease in anthocyanin accumulation. Only the amino acid sequences at the N and C termini of SmbHLH1 differed from the SmTT8 sequence. Expression analysis revealed that the expression pattern of was opposite to that of anthocyanin accumulation. Yeast two-hybrid (Y2H) and bimolecular fluorescence complementation (BiFC) assays showed that SmbHLH1 could not interact with SmMYB113. Dual-luciferase assay demonstrated that SmbHLH1 directly repressed the expression of and . Our results demonstrate that the biological function of s in anthocyanin biosynthesis may have evolved and provide new insight into the molecular functions of orthologous genes from different plant species.
许多基本的螺旋-环-螺旋转录因子(TFs)已被报道可促进多种植物物种中的花青素生物合成,但对于抑制花青素积累的bHLH TFs却知之甚少。在本研究中,来自[具体来源未给出]的SmbHLH1被鉴定为花青素生物合成的负调控因子。然而,SmbHLH1与SmTT8具有高度同源性,SmTT8在植物中作为依赖SmMYB113的花青素生物合成正调控因子发挥作用。在茄子中过表达[具体基因未明确]导致花青素积累显著减少。仅SmbHLH1的N端和C端氨基酸序列与SmTT8序列不同。表达分析表明,[具体基因未明确]的表达模式与花青素积累的模式相反。酵母双杂交(Y2H)和双分子荧光互补(BiFC)分析表明,SmbHLH1不能与SmMYB113相互作用。双荧光素酶测定表明,SmbHLH1直接抑制[具体基因未明确]和[具体基因未明确]的表达。我们的结果表明,[具体基因未明确]在花青素生物合成中的生物学功能可能已经进化,并为不同植物物种直系同源基因的分子功能提供了新的见解。