Guangdong Key Laboratory of Plant Molecular Breeding, South China Agricultural University, Guangzhou, 510642, People's Republic of China.
National Engineering Research Center of Rice (Nanchang), Rice Research Institute, Jiangxi Academy of Agricultural Sciences, Nanchang, 330299, People's Republic of China.
Sci Rep. 2022 Mar 31;12(1):5465. doi: 10.1038/s41598-022-09536-8.
Dynamic regulation of QTLs remains mysterious. Single segment substitution lines (SSSLs) and conditional QTL mapping and functional QTL mappings are ideal materials and methods to explore dynamics of QTLs for complex traits. This paper analyzed the dynamics of QTLs on plant height with SSSLs in rice. Five SSSLs were verified with plant height QTLs first. All five QTLs had significant positive effects at one or more developmental stages except QTL. They interacted each other, with negative effects before 49 d after transplanting and positive effects since then. The five QTLs selectively expressed in specific periods, mainly in the periods from 35 to 42 d and from 49 to 56 d after transplanting. Expressions of epistasis were dispersedly in various periods, negative effects appearing mainly before 35 d. The five QTLs brought the inflexion point ahead of schedule, accelerated growth and degradation, and changed the peak plant height, while their interactions had the opposite effects. The information will be helpful to understand the genetic mechanism for developmental traits.
QTLs 的动态调控仍然神秘。单片段替换系(SSSL)和条件 QTL 作图和功能 QTL 作图是探索复杂性状 QTL 动态的理想材料和方法。本文利用水稻 SSSL 分析了株高 QTL 的动态。首先验证了五个 SSSL 具有株高 QTL。除 QTL 外,所有五个 QTL 在一个或多个发育阶段均有显著的正效应。它们相互作用,在移栽后 49 天之前具有负效应,此后具有正效应。这五个 QTL 选择性地在特定时期表达,主要在移栽后 35 至 42 天和 49 至 56 天期间。上位性表达分散在各个时期,主要出现在 35 天之前。这五个 QTL 使拐点提前,加速生长和降解,并改变了峰值株高,而它们的相互作用则有相反的效果。这些信息将有助于理解发育性状的遗传机制。