Centro de Estudios Fotosintéticos y Bioquímicos, Universidad Nacional de Rosario Rosario, Argentina.
Front Plant Sci. 2012 May 25;3:101. doi: 10.3389/fpls.2012.00101. eCollection 2012.
Flavonoids are specialized compounds widely distributed and with diverse functions throughout the plant kingdom and with several benefits for human health. In particular, flavonols, synthesized by flavonol synthase (FLS), protect plants against UV-B radiation and are essential for male fertility in maize and other plants. We have recently characterized a UV-B inducible ZmFLS1, corresponding to the first to be described in monocot plants. Interestingly, the new assembly of the B73 maize genome revealed the presence of a second putative FLS gene (ZmFLS2), with very high identity with ZmFLS1. ZmFLSs expression was analyzed in different maize tissues, and by combining electrophoretic mobility shift assays and transient expression experiments, we show that both genes are direct targets of anthocyanin (C1/PL1 + R/B) and 3-deoxy flavonoid (P1) transcriptional regulators. ZmFLS expression analyses show higher levels of both transcripts in high altitude landraces than inbred lines, and both genes are regulated by UV-B radiation in all lines analyzed. Moreover, the high sequence conservation of the ZmFLS promoters between maize lines suggests that the differences observed in ZmFLS expression are due to allelic variations in the transcription factors that regulate their activities. Finally, we generated pFLS1::FLS1-RFP transgenic plants and analyzed ZmFLS1 expression in different maize tissues; we found that this enzyme is localized in the ER and the perinuclear region.
类黄酮是一种广泛分布的特殊化合物,在植物界中具有多种功能,对人类健康有多种益处。特别是类黄酮醇,由类黄酮醇合酶(FLS)合成,可保护植物免受 UV-B 辐射的伤害,对玉米和其他植物的雄性育性至关重要。我们最近对一种 UV-B 诱导的 ZmFLS1 进行了特征描述,这是在单子叶植物中首次描述的。有趣的是,B73 玉米基因组的新组装揭示了第二个假定的 FLS 基因(ZmFLS2)的存在,其与 ZmFLS1 具有非常高的同一性。我们分析了不同玉米组织中的 ZmFLSs 表达,并通过结合电泳迁移率变动分析和瞬时表达实验,表明这两个基因都是花青素(C1/PL1 + R/B 和 3-脱氧类黄酮(P1)转录调节剂的直接靶标。ZmFLS 表达分析表明,高海拔地方品种的两个转录物水平均高于自交系,并且所有分析的品系均受 UV-B 辐射调节。此外,玉米品系之间 ZmFLS 启动子的高度序列保守性表明,观察到的 ZmFLS 表达差异是由于调节其活性的转录因子的等位变异所致。最后,我们生成了 pFLS1::FLS1-RFP 转基因植物,并分析了不同玉米组织中的 ZmFLS1 表达;我们发现该酶定位于内质网和核周区域。