Jang Su, Lee Dongryung, Kim Backki, Lee Yoon Kyung, Shim Sangrae, Kwon Soon-Wook, Koh Hee-Jong
Department of Agriculture, Forestry and Bioresources, Plant Genomics and Breeding Institute, Research Institute for Agriculture and Life Sciences, Seoul National University, Seoul, 08826, Republic of Korea.
Seedling LLC., Dangjin, Republic of Korea.
Rice (N Y). 2025 May 28;18(1):44. doi: 10.1186/s12284-025-00794-4.
Tiller angle is a major component of rice plant architecture and affects planting density, photosynthetic efficiency, and ventilation. An extremely narrow or wide tiller angle adversely affects rice yield. Thus, a suitable tiller angle is considered a major factor to achieve ideal plant architecture in rice. In this study, we identified a major quantitative trait locus (QTL) that controls tiller angle and cloned the gene, TILLER ANGLE CONTROL 5 (TAC5), which encodes a NAC domain-containing transcription factor. Epigenetic variants at the CG site in the TAC5 promoter were stably inherited and associated with TAC5 mRNA expression. The TAC5 epiallele with a hypermethylated cytosine in the promoter exhibited an immediate response to gravistimulation with a simultaneous elevation of HO levels at the early stage of gravistimulation. Furthermore, TAC5 affected the expression patterns of transcripts involved in reactive oxygen species (ROS) generation and the response to excessive ROS. Population genetics and evolutionary analyses revealed that TAC5 alleles for the narrow tiller angle originated from a wild progenitor and were selected independently in temperate japonica and indica subspecies during domestication. Our results provide insight into the genetic mechanism of tiller angle control in rice and suggest potential applications of TAC5 in developing rice varieties with an ideal plant architecture.
分蘖角度是水稻植株形态的一个主要组成部分,影响种植密度、光合效率和通风。极窄或极宽的分蘖角度都会对水稻产量产生不利影响。因此,合适的分蘖角度被认为是实现水稻理想植株形态的一个主要因素。在本研究中,我们鉴定了一个控制分蘖角度的主要数量性状位点(QTL),并克隆了基因TILLER ANGLE CONTROL 5(TAC5),该基因编码一个含NAC结构域的转录因子。TAC5启动子中CG位点的表观遗传变异是稳定遗传的,并与TAC5 mRNA表达相关。启动子中胞嘧啶高度甲基化的TAC5表观等位基因对重力刺激表现出即时反应,在重力刺激早期HO水平同时升高。此外,TAC5影响参与活性氧(ROS)产生和对过量ROS反应的转录本的表达模式。群体遗传学和进化分析表明,窄分蘖角度的TAC5等位基因起源于野生祖先,在驯化过程中在温带粳稻和籼稻亚种中独立选择。我们的结果为水稻分蘖角度控制的遗传机制提供了见解,并暗示了TAC5在培育具有理想植株形态的水稻品种中的潜在应用。