生物
遗传建筑学
钥匙(锁)
人类遗传学
人口
魔术(望远镜)
建筑
进化生物学
基因组学
群体遗传学
数量性状位点
遗传学
生物技术
基因组
生态学
基因
人口学
考古
历史
物理
量子力学
社会学
作者
Hongyun Chen,Jiongjiong Chen,Ruifang Zhai,Dean Lavelle,Yue Jia,Qiwei Tang,Ting Zhu,Meng‐Lu Wang,Zedong Geng,Jianzhong Zhu,Hui Feng,Junru An,Jiansheng Liu,Weibo Li,Shoulong Deng,Wandi Wang,Weiyi Zhang,Xiaoyan Zhang,Guangbao Luo,Xin Wang
标识
DOI:10.1186/s13059-025-03541-6
摘要
Lettuce is a globally important leafy vegetable that exhibits diverse horticultural types and strong population structure, which complicates genetic analyses. To address this challenge, we develop the first multi-parent, advanced generation inter-cross (MAGIC) population for lettuce using 16 diverse founder lines. Whole-genome sequencing of the 16 founder lines and 381 inbred progeny reveal minimal population structure, enabling informative genome-wide association studies (GWAS). GWAS of the lettuce MAGIC population identifies numerous loci associated with key agricultural traits, including 51 for flowering time, 11 for leaf color, and 5 for leaf shape. Notably, loss-of-function mutations in the LsphyB and LsphyC genes, encoding phytochromes B and C, dramatically delay flowering in lettuce, which is in striking contrast to many other plant species. This unexpected finding highlights the unique genetic architecture controlling flowering time in lettuce. The wild-type LsTCP4 gene plays critical roles in leaf flatness and its expression level is negatively correlated with leaf curvature. Additionally, a novel zinc finger protein (ZFP) gene is required for the development of lobed leaves; a point mutation leads to its loss of function and consequently converted lobed leaves to non-lobed leaves, as exhibited by most lettuce cultivars. The MAGIC population's lack of structure and high mapping resolution enables the efficient dissection of complex traits. The identified loci and candidate genes provide significant genetic resources for improving agronomic performance and leaf quality in lettuce.
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