Thompson Beth E, Basham Christine, Hammond Reza, Ding Queying, Kakrana Atul, Lee Tzuu-Fen, Simon Stacey A, Meeley Robert, Meyers Blake C, Hake Sarah
Department of Biology, East Carolina University, Greenville, North Carolina 27858
Department of Biology, East Carolina University, Greenville, North Carolina 27858.
Plant Cell. 2014 Dec;26(12):4702-17. doi: 10.1105/tpc.114.132670. Epub 2014 Dec 2.
Plant architecture is determined by meristems that initiate leaves during vegetative development and flowers during reproductive development. Maize (Zea mays) inflorescences are patterned by a series of branching events, culminating in floral meristems that produce sexual organs. The maize fuzzy tassel (fzt) mutant has striking inflorescence defects with indeterminate meristems, fasciation, and alterations in sex determination. fzt plants have dramatically reduced plant height and shorter, narrower leaves with leaf polarity and phase change defects. We positionally cloned fzt and discovered that it contains a mutation in a dicer-like1 homolog, a key enzyme required for microRNA (miRNA) biogenesis. miRNAs are small noncoding RNAs that reduce target mRNA levels and are key regulators of plant development and physiology. Small RNA sequencing analysis showed that most miRNAs are moderately reduced in fzt plants and a few miRNAs are dramatically reduced. Some aspects of the fzt phenotype can be explained by reduced levels of known miRNAs, including miRNAs that influence meristem determinacy, phase change, and leaf polarity. miRNAs responsible for other aspects of the fzt phenotype are unknown and likely to be those miRNAs most severely reduced in fzt mutants. The fzt mutation provides a tool to link specific miRNAs and targets to discrete phenotypes and developmental roles.
植物结构由分生组织决定,这些分生组织在营养发育阶段启动叶片生长,在生殖发育阶段启动花朵发育。玉米(Zea mays)的花序通过一系列分支事件形成模式,最终形成产生性器官的花分生组织。玉米模糊雄穗(fzt)突变体具有明显的花序缺陷,包括分生组织不确定、扁化以及性别决定改变。fzt植株的株高显著降低,叶片更短、更窄,且存在叶极性和相变缺陷。我们通过定位克隆得到fzt基因,发现它在一个类Dicer1同源物中发生了突变,该同源物是微小RNA(miRNA)生物合成所需的关键酶。miRNA是小的非编码RNA,可降低靶标mRNA水平,是植物发育和生理的关键调节因子。小RNA测序分析表明,fzt植株中大多数miRNA含量适度降低,少数miRNA含量显著降低。fzt表型的某些方面可以用已知miRNA水平降低来解释,包括影响分生组织确定性、相变和叶极性的miRNA。导致fzt表型其他方面的miRNA尚不清楚,可能是那些在fzt突变体中含量降低最严重的miRNA。fzt突变提供了一个工具,可将特定的miRNA及其靶标与离散的表型和发育作用联系起来。