Nakatsuka Takashi, Haruta Katia Sanae, Pitaksutheepong Chetsadaporn, Abe Yoshiko, Kakizaki Yuko, Yamamoto Kazuo, Shimada Norimoto, Yamamura Saburo, Nishihara Masahiro
Iwate Biotechnology Research Center, 22-174-4, Narita, Kitakami, Iwate, 024-0003 Japan.
Plant Cell Physiol. 2008 Dec;49(12):1818-29. doi: 10.1093/pcp/pcn163. Epub 2008 Oct 30.
Gentian plants have vivid blue-colored flowers, caused by accumulation of a polyacylated anthocyanin 'gentiodelphin'. We previously performed expression analysis of gentiodelphin biosynthetic genes, and hypothesized that the white-flowered gentian cultivar 'Polarno White' might have resulted from the mutation of certain regulatory factors responsible for anthocyanin biosynthesis in flower petals. In this study, we isolated 26 R2R3-MYB gene fragments including four full-length cDNAs (GtMYB2a, GtMYB2b, GtMYB3 and GtMYB4) and one basic helix-loop-helix (bHLH) gene (GtbHLH1) from blue-flowered gentian by degenerate PCR and rapid amplification of cDNA ends (RACE). Phylogenetic tree analysis showed that GtMYB3 was categorized into a clade involved in anthocyanin biosynthesis including petunia AN2 and Arabidopsis PAP1. On the other hand, GtbHLH1 exhibited high identity with petunia AN1 based on both phylogenetic and genomic structural analyses. Temporal profiles of GtMYB3 and GtbHLH1 transcript levels corresponded well with those of gentiodelphin accumulation and their biosynthetic genes in petals. Yeast two-hybrid analysis showed that GtbHLH1 interacted with GtMYB3. Moreover, transient expression analysis indicated that the co-expression of GtMYB3 and GtbHLH1 could enhance the promoter activities of late anthocyanin biosynthetic genes in tobacco BY2 cells. We also revealed that in cv. 'Polarno White' the GtMYB3 genes were mutated by insertions of transposable elements or uncharacterized sequences, indicating that the white coloration was caused by GtMYB3 mutation. These results strongly suggested that GtMYB3 and GtbHLH1 are involved in the regulation of gentiodelphin biosynthesis in gentian flowers.
龙胆属植物有着鲜艳的蓝色花朵,这是由一种多酰化花青素“龙胆花翠素”的积累所致。我们之前对龙胆花翠素生物合成基因进行了表达分析,并推测白花龙胆品种“Polarno White”可能是由花瓣中负责花青素生物合成的某些调控因子发生突变导致的。在本研究中,我们通过简并PCR和cDNA末端快速扩增(RACE)从蓝色龙胆中分离出26个R2R3-MYB基因片段,包括四个全长cDNA(GtMYB2a、GtMYB2b、GtMYB3和GtMYB4)以及一个基本螺旋-环-螺旋(bHLH)基因(GtbHLH1)。系统发育树分析表明,GtMYB3被归类到一个参与花青素生物合成的分支中,该分支包括矮牵牛AN2和拟南芥PAP1。另一方面,基于系统发育和基因组结构分析,GtbHLH1与矮牵牛AN1表现出高度同源性。GtMYB3和GtbHLH1转录水平的时间变化模式与花瓣中龙胆花翠素积累及其生物合成基因的变化模式高度吻合。酵母双杂交分析表明,GtbHLH1与GtMYB3相互作用。此外,瞬时表达分析表明,GtMYB3和GtbHLH1的共表达能够增强烟草BY2细胞中晚期花青素生物合成基因的启动子活性。我们还发现,在“Polarno White”品种中,GtMYB3基因因转座元件或未鉴定序列的插入而发生突变,这表明白色花色是由GtMYB3突变引起的。这些结果有力地表明,GtMYB3和GtbHLH1参与了龙胆花中龙胆花翠素生物合成的调控。