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CYTOKININ-RESPONSIVE GATA FACTOR 1 negatively regulates ascorbic acid biosynthesis in non-heading Chinese cabbage

数量性状位点 生物 转录因子 基因 遗传学 抑制因子 转录调控 调节器 抗坏血酸 基因沉默 转录组 发起人 基因座(遗传学) 基因表达调控 候选基因 心理压抑 调节基因 等位基因 表型 GATA转录因子 多叶的 基因调控网络 表达数量性状基因座 生物化学 MYB公司 生物途径 抄写(语言学) 遗传连锁
作者
Aimei Bai,Xinya Wang,Huanhuan Xu,Zhile Liang,Boda Chen,Yan Li,Feixue Zhang,Haibin Wang,Dong Xiao,Changwei Zhang,T. K. Liu,Xilin Hou,Ying Li
出处
期刊:Plant Physiology [Oxford University Press]
卷期号:201 (1)
标识
DOI:10.1093/plphys/kiag158
摘要

Ascorbic acid (AsA), an essential nutrient for human health predominantly obtained from fresh vegetables and fruits, demonstrates considerable genetic complexity in its accumulation mechanisms. This study investigates the genetic regulation of AsA biosynthesis in non-heading Chinese cabbage (NHCC), a crucial leafy vegetable in China. Through comprehensive quantitative trait locus (QTL) analysis across multiple environments, we identified 19 AsA-associated QTLs distributed over 10 linkage groups, explaining 3.15% to 18.04% of phenotypic variance. An environmentally stable QTL (qAsA.A01.1) was prioritized for further investigation. Integrated QTL mapping and comparative transcriptome analysis revealed 297 candidate genes, among which the GATA transcription factor CYTOKININ-RESPONSIVE GATA FACTOR 1 (BcCGA1) emerged as a candidate regulator through allelic variation analysis, gene description analysis, and association analysis. Functional validation via gene silencing and overexpression confirmed the suppressive role of BcCGA1 in AsA biosynthesis. Mechanistic studies established that BcCGA1 plays a direct transcriptional repressor of AsA biosynthesis by binding to the promoters of GDP-L-GALACTOSE PHOSPHORYLASE c (BcGGP.c), GDP-MANNOSE PYROPHOSPHORYLASE b (BcGMP.b), and KONJAC c (BcKJC.c). Furthermore, we identified an interaction between BcCGA1 and the chloroplast-localized protein PS II OXYGEN-EVOLVING COMPLEX 1 (BcPSBO1), which exhibits dual regulatory effects. While BcPSBO1 attenuated BcCGA1's DNA-binding capacity in vitro, it paradoxically enhanced transcriptional repression of target genes in vivo. Our findings elucidate a sophisticated regulatory framework involving transcriptional and protein interaction mechanisms that substantially advances our understanding of AsA accumulation genetics and provides a theoretical basis for nutrient-enhanced NHCC cultivars.
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