Tao Yang, Xiaoqian Ma, Quan Zhang, Lin Li, Rui Zhu, An Zeng, Wanying Liu, Haixia Liu, Yulong Wang, Shichen Han, Najeeb Ullah Khan, Jinjie Li, Zichao Li, Zhanying Zhang, Hongliang Zhang
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引用次数: 0
摘要
水稻分蘖是一个重要的农艺性状,会影响植株结构并最终影响产量。通过挖掘与分蘖相关的基因中的有利变异,可以从基因上改善这一性状。基于之前对动态分蘖数的研究,我们克隆了分蘖数 1a(Tn1a)基因,该基因编码一种含有 C2 结构域的膜定位蛋白,对水稻的分蘖具有负调控作用。在 Tn1a 启动子起始密码子上游 387 bp 处插入/缺失 272 bp 可产生不同的转录反应,并导致分蘖数的变化。此外,TCP 家族转录因子 Tb2 和 TCP21 通过与 272 bp 缺口内的 TCP 识别位点结合,抑制了 Tn1a 启动子的活性。此外,我们还发现 Tn1a 可能通过与阳离子-氯化物共转运体(OsCCC1)相互作用来影响细胞内 K+ 的含量,从而影响下游分蘖相关基因的表达。与高分蘖相关的 Tn1a+272 bp 等位基因可能在驯化过程中优先保留在贫钾地区的水稻品种中。Tn1a 的发现对进一步阐明水稻分蘖特性的遗传基础具有重要意义,并为促进水稻对土壤钾的地理适应提供了一个新的有利等位基因。
Natural variation in the Tn1a promoter regulates tillering in rice.
Rice tillering is an important agronomic trait that influences plant architecture and ultimately affects yield. This can be genetically improved by mining favourable variations in genes associated with tillering. Based on a previous study on dynamic tiller number, we cloned the gene Tiller number 1a (Tn1a), which encodes a membrane-localised protein containing the C2 domain that negatively regulates tillering in rice. A 272 bp insertion/deletion at 387 bp upstream of the start codon in the Tn1a promoter confers a differential transcriptional response and results in a change in tiller number. Moreover, the TCP family transcription factors Tb2 and TCP21 repress the Tn1a promoter activity by binding to the TCP recognition site within the 272 bp indel. In addition, we identified that Tn1a may affect the intracellular K+ content by interacting with a cation-chloride cotransporter (OsCCC1), thereby affecting the expression of downstream tillering-related genes. The Tn1a+272 bp allele, associated with high tillering, might have been preferably preserved in rice varieties in potassium-poor regions during domestication. The discovery of Tn1a is of great significance for further elucidating the genetic basis of tillering characteristics in rice and provides a new and favourable allele for promoting the geographic adaptation of rice to soil potassium.
期刊介绍:
Plant Biotechnology Journal aspires to publish original research and insightful reviews of high impact, authored by prominent researchers in applied plant science. The journal places a special emphasis on molecular plant sciences and their practical applications through plant biotechnology. Our goal is to establish a platform for showcasing significant advances in the field, encompassing curiosity-driven studies with potential applications, strategic research in plant biotechnology, scientific analysis of crucial issues for the beneficial utilization of plant sciences, and assessments of the performance of plant biotechnology products in practical applications.