State Key Laboratory of Rice Biology and Breeding, Key Laboratory for Zhejiang Super Rice Research, China National Center for Rice Improvement, China National Rice Research Institute, Hangzhou, 311401, China.
Rice Research Institute, Key Laboratory of Application and Safety Control of Genetically Modified Crops, Academy of Agricultural Sciences, Southwest University, Chongqing, 400715, China.
Theor Appl Genet. 2023 Jun 22;136(7):160. doi: 10.1007/s00122-023-04404-z.
TAC1 is involved in photoperiodic and gravitropic responses to modulate rice dynamic plant architecture likely by affecting endogenous auxin distribution, which could explain TAC1 widespread distribution in indica rice. Plants experience a changing environment throughout their growth, which requires dynamic adjustments of plant architecture in response to these environmental cues. Our previous study demonstrated that Tiller Angle Control 1 (TAC1) modulates dynamic changes in plant architecture in rice; however, the underlying regulatory mechanisms remain largely unknown. In this study, we show that TAC1 regulates plant architecture in an expression dose-dependent manner, is highly expressed in stems, and exhibits dynamic expression in tiller bases during the growth period. Photoperiodic treatments revealed that TAC1 expression shows circadian rhythm and is more abundant during the dark period than during the light period and under short-day conditions than under long-day conditions. Therefore, it contributes to dynamic plant architecture under long-day conditions and loose plant architecture under short-day conditions. Gravity treatments showed that TAC1 is induced by gravistimulation and negatively regulates shoot gravitropism, likely by affecting auxin distribution. Notably, the tested indica rice containing TAC1 displayed dynamic plant architecture under natural long-day conditions, likely explaining the widespread distribution of TAC1 in indica rice. Our results provide new insights into TAC1-mediated regulatory mechanisms for dynamic changes in rice plant architecture.
TAC1 参与光周期和向重性反应,可能通过影响内源生长素分布来调节水稻动态植物结构,这可以解释 TAC1 在籼稻中的广泛分布。植物在其生长过程中经历不断变化的环境,这需要植物结构对这些环境线索进行动态调整。我们之前的研究表明,Tiller Angle Control 1 (TAC1) 调节水稻中植物结构的动态变化;然而,其潜在的调控机制在很大程度上仍不清楚。在这项研究中,我们表明 TAC1 以表达剂量依赖的方式调节植物结构,在茎中高度表达,并在生长期间在分蘖基部表现出动态表达。光周期处理表明,TAC1 的表达表现出昼夜节律,在黑暗期比在光照期更丰富,在短日条件下比在长日条件下更丰富。因此,它有助于在长日条件下形成动态植物结构,在短日条件下形成疏松的植物结构。向重性处理表明,TAC1 被向重性刺激诱导,并负调控地上部向重性,可能通过影响生长素分布。值得注意的是,测试的含有 TAC1 的籼稻在自然长日条件下表现出动态植物结构,这可能解释了 TAC1 在籼稻中的广泛分布。我们的研究结果为 TAC1 介导的水稻植物结构动态变化的调控机制提供了新的见解。