Graphene enhances artemisinin production in traditional medicinal plant Artemisia annua via dynamic physiological progress and miRNA regulation

青蒿 青蒿素 活性氧 过氧化氢酶 化学 细胞生物学 生物 生物化学 氧化应激 恶性疟原虫 疟疾 免疫学
作者
Junhong Cao,Zhiwen Chen,Luyao Wang,Yan Ning,Jialing Lin,Li-Pan Hou,Yongyan Zhao,Chao-Chen Huang,Tingting Wen,Chenyi Li,Saeed Ur Rahman,Zehui Liu,Jun Qiao,Jianguo Zhao,Jie Wang,Yannan Shi,Wei Qin,Ting Si,Yuliang Wang,Kexuan Tang
出处
期刊:Plant communications [Elsevier]
卷期号:: 100742-100742
标识
DOI:10.1016/j.xplc.2023.100742
摘要

We investigated the effects of graphene on the model herb Artemisia annua, which is renowned for producing artemisinin, a widely used pharmacological compound. Seedling growth and biomass were promoted when A. annua was cultivated with low concentrations of graphene, an effect which was attributed to a 1.4-fold increase in nitrogen uptake, a 15%-22% increase in chlorophyll fluorescence, and greater abundance of carbon cycling-related bacteria. Exposure to 10 or 20 mg/L graphene resulted in a ∼60% increase in H2O2, and graphene could act as a catalyst accelerator, leading to a 9-fold increase in catalase (CAT) activity in vitro and thereby maintaining reactive oxygen species (ROS) homeostasis. Importantly, graphene exposure led to an 80% increase in the density of glandular secreting trichomes (GSTs), in which artemisinin is biosynthesized and stored. This contributed to a 5% increase in artemisinin content in mature leaves. Interestingly, expression of miR828 was reduced by both graphene and H2O2 treatments, resulting in induction of its target gene AaMYB17, a positive regulator of GST initiation. Subsequent molecular and genetic assays showed that graphene-induced H2O2 inhibits micro-RNA (miRNA) biogenesis through Dicers and regulates the miR828-AaMYB17 module, thus affecting GST density. Our results suggest that graphene may contribute to yield improvement in A. annua via dynamic physiological processes together with miRNA regulation, and it may thus represent a new cultivation strategy for increasing yield capacity through nanobiotechnology.
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