Liu Qian, Zhou Xin, Tan Xiao, Wen Qingli, Liu Guibi, Li Shuangle, Zhang Bo, Zhang Zhanyi, Wu Bi, Wang Lei, Liu Haiyang, Xing Yongzhong
National Key Laboratory of Crop Genetic Improvement, Hubei Hongshan Laboratory, Huazhong Agricultural University, Wuhan, 430070, China.
College of Agriculture, Yangtze University, Jingzhou, 434023, China.
Plant J. 2025 Jul;123(2):e70301. doi: 10.1111/tpj.70301.
Hd1 alone constantly promotes heading both under LD and SD conditions in rice. But it suppresses heading in the presence of Ghd7 under LD conditions. It is not clear how Ghd7 makes Hd1 function conversion. To address this question, both Hd1 and Ghd7 were truncated for protein interaction analysis. Ghd7-TS (the terminal amino acids 243-257 of Ghd7) and Hd1-ZN (the zinc finger domain of Hd1) were verified as the interaction domains between Hd1 and Ghd7. Moreover, Hd1(243-337) was demonstrated as the primary transcriptional activation domain of Hd1. The interaction domain edited alleles Hd1 and Ghd7 kept a partial function in regulating heading date but lost the interaction ability. The mutants Hd1Ghd7 or Hd1Ghd7 showed a much earlier heading date than the wildtype Hd1Ghd7 mainly due to the elimination of interaction effect. The length of non-specific amino acids appended near the Ghd7-TS region is highly correlated with Hd1 transcriptional repression, suggesting that Ghd7 inhibits Hd1 transcriptional activity probably through a steric hindrance effect by targeting its activation domain, in turn reducing the expression of Ehd1, Hd3a, and RFT1, and ultimately delaying heading. These findings provide new insights into the photoperiodic flowering mechanism and the flexibility to breed varieties with fine differences in heading date by utilizing the edited Hd1 or Ghd7 alleles.
单独的Hd1在长日照和短日照条件下均持续促进水稻抽穗。但在长日照条件下,它在Ghd7存在时会抑制抽穗。目前尚不清楚Ghd7如何使Hd1发生功能转换。为解决这个问题,对Hd1和Ghd7都进行了截短以进行蛋白质相互作用分析。Ghd7-TS(Ghd7的末端氨基酸243-257)和Hd1-ZN(Hd1的锌指结构域)被证实为Hd1和Ghd7之间的相互作用结构域。此外,Hd1(243-337)被证明是Hd1的主要转录激活结构域。相互作用结构域编辑的等位基因Hd1和Ghd7在调节抽穗期方面保留了部分功能,但失去了相互作用能力。突变体Hd1Ghd7或Hd1Ghd7的抽穗期比野生型Hd1Ghd7早得多,这主要是由于相互作用效应的消除。附加在Ghd7-TS区域附近的非特异性氨基酸长度与Hd1转录抑制高度相关,这表明Ghd7可能通过靶向其激活结构域的空间位阻效应抑制Hd1转录活性,进而降低Ehd1、Hd3a和RFT1的表达,最终延迟抽穗。这些发现为光周期开花机制以及通过利用编辑后的Hd1或Ghd7等位基因培育抽穗期有细微差异的品种提供了新的见解。