作物学报 ›› 2022, Vol. 48 ›› Issue (1): 27-39.doi: 10.3724/SP.J.1006.2022.04281
赵改会1(
), 李书宇2, 詹杰鹏1, 李晏斌3, 师家勤1,*(
), 王新发1, 王汉中1
ZHAO Gai-Hui1(
), LI Shu-Yu2, ZHAN Jie-Peng1, LI Yan-Bin3, SHI Jia-Qin1,*(
), WANG Xin-Fa1, WANG Han-Zhong1
摘要:
角果数是油菜单株产量重要的构成因子之一, 其优异等位基因的发掘和利用对产量的提高至关重要。油菜中已定位到上百个角果数QTL, 但大多数效应不大且不稳定, 难以进行精细定位或克隆。本研究前期发掘到一个油菜突变体(No.7931), 其花序顶端在分化出约十朵花后即停止生长, 因而成熟期角果极少。利用该少角果突变体和多角果品系No.73290构建F2分离群体, 从中挑选角果数极端单株各30株进行BSA-seq, 在C02染色体检测到3个关联区间: 0~1.1 Mb、4.7~6.2 Mb、11.5~12.4 Mb。该候选区间在油菜参考基因组DarmorV8.1中有522个注释基因, 存在SNP或Indel差异且有同源注释的基因235个。在花芽分化初期, 选取两亲本(No.73290和No.7931)的茎尖分生组织进行RNA-seq, 总共鉴定到8958个差异表达基因(DEGs)。这些DEGs显著富集于20个生物学通路, 包括碳代谢、翻译、氨基酸代谢(和花芽分化高度相关)等, 其中99个位于关联区间。结合基因功能注释以及序列和表达差异分析确定了9个候选基因(BnaC02g00490.1D2、BnaC02g01030.1D2、BnaC02g01120.1D2、BnaC02g00270.1D2、BnaC02g02670. 1D2、BnaC02g08680.1D2、BnaC02g08890.1D2、BnaC02g09480.1D2和BnaC02g10490.1D2), 它们主要参与花序分生组织特性的维持和花器官的发育。上述研究结果为后续油菜角果数基因的精细定位和克隆奠定了坚实的基础。
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