生物
表观遗传学
重编程
DNA甲基化
黄酮醇
组蛋白
次生代谢
基因表达调控
基因表达
细胞生物学
调节器
新陈代谢
遗传学
抄写(语言学)
生物化学
转录调控
DNA甲基转移酶
DNA损伤
银杏
甲基转移酶
转录因子
基因
类黄酮
生物发生
脂质代谢
表观基因组
DNA
代谢途径
转录组
甲基化
长寿
类黄酮生物合成
发起人
白藜芦醇
生物合成
DNA修复
衰老
拟南芥
次生代谢物
增强子
作者
Jinkai Lu,Yanbing Jiang,Bang Chang,Tongfei Wang,任世雄,Xi Zhang,Qingjie Wang,Jiawen Cui,Zhaogeng Lu,Sian Liu,Yadi Chen,Chunxiang Fu,Yingfang Zhu,Biao Jin,Jinxing Lin,Peng Liu,Richard A Dixon,Lı Wang
标识
DOI:10.1093/plcell/koag199
摘要
Ancient trees such as Ginkgo biloba exhibit remarkable longevity and sustained physiological vigor despite millennia of environmental stress, yet how aging reprograms their secondary metabolism and chemical defense remains unclear. Here, we investigated age-related epigenetic and metabolic changes across G. biloba individuals aged 1-1,070 years. We identified DEFICIENS AGAMOUS-LIKE 1 (GbDAL1) as a central age-associated regulator of flavonol metabolism. GbDAL1 expression rises progressively with age but is significantly reduced in juvenilized branches; this shift is driven by reduced expression of the DNA methyltransferase chromomethylase2 (GbCMT2), leading to promoter hypomethylation. Restoring GbCMT2 activity reinstates promoter DNA methylation and suppresses GbDAL1 transcription. Functionally, GbDAL1 negatively regulates flavonol biosynthesis by directly repressing the flavonol synthase (GbFLS) gene and inhibiting the transcriptional activity of GbMYBF1, thereby attenuating expression of flavonol pathway genes. Although total flavonol biosynthesis declines with age, metabolite profiling revealed marked accumulation of methylated and prenylated flavonols in ancient trees, suggesting an adaptive metabolic shift toward more stable defensive metabolites. These metabolites, together with diverse terpenoids, phenols and alkaloids, accumulate in the heartwood to form a persistent chemical barrier that supports long-term defense. Collectively, our findings reveal an epigenetically mediated age-metabolite regulatory axis in G. biloba, uncovering a molecular mechanism that links aging to secondary metabolic reprogramming and may contribute to the exceptional longevity and resilience of perennial plants.
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