Department of Developmental Biology, Biozentrum Klein Flottbek, University of Hamburg, 22609 Hamburg, Germany.
Department of Biology, Brigham Young University, 4102 LSB, Provo, UT 84602, United States.
Semin Cell Dev Biol. 2018 Jul;79:37-47. doi: 10.1016/j.semcdb.2017.10.004. Epub 2017 Oct 14.
The grass inflorescence is striking not only for its beauty and diversity, but also for its developmental complexity. While models of inflorescence architecture have been proposed in both eudicots and grasses, these are inadequate to fully explain the complex branching events that occur during the development of the grass inflorescence. Key to understanding grass inflorescence architecture is the meristem determinacy/indeterminacy decision, which regulates the number of branching events that occur. Here we review what has been learned about meristem determinacy from grass mutants with defects in inflorescence development. A picture is emerging of a complex network of signaling molecules and meristem identity factors that interact to regulate inflorescence meristem activity, many of which have been modified during crop domestication directly affecting yield traits.
草类花序不仅因其美丽和多样性而引人注目,还因其发育的复杂性而引人注目。虽然在真双子叶植物和草类中已经提出了花序结构的模型,但这些模型不足以完全解释草类花序发育过程中发生的复杂分枝事件。理解草类花序结构的关键是分生组织确定性/不定性的决定,它调节了发生分枝的次数。在这里,我们回顾了从花序发育缺陷的草突变体中了解到的关于分生组织确定性的知识。一个由信号分子和分生组织身份因子组成的复杂网络正在浮现,这些分子和因子相互作用以调节花序分生组织的活性,其中许多在作物驯化过程中被直接修饰,直接影响产量性状。