bioRxiv · 10.1101/2022.05.12.491608
RNA Methylome Reveals the m6A-Mediated Regulation of Flavor Metabolites in Tea Leaves under Solar-Withering
Abstract
Epitranscriptomic mark N6-methyladenosine (m6A) is the most predominant internal modification in RNAs, which plays pivotal roles in response to diverse stresses. Multiple environmental stresses caused by withering process can greatly influence the accumulation of specialized metabolites and the formation of tea flavor. However, little is known about the effects of m6A-mediated regulatory mechanism on flavor-related metabolisms in tea leaves. Here, we explored m6A-mediated regulatory mechanism and its impacts on flavonoid and terpenoid metabolisms under solar-withering using integrated RNA methylome and transcriptome. Dynamic changes in global m6A levels of tea leaves are mainly controlled by two m6A erasers (CsALKBH4A and CsALKBH4B) under solar-withering. Differentially methylated peak (DMP)-associated genes under different shading rates of solar-withering were identified and found to be enriched in terpenoid biosynthesis and spliceosome pathways. Further analyses indicated that CsALKBH4-driven RNA demethylation can not only directly affect the accumulation of volatile terpenoids by mediating the stability and abundance of terpenoid biosynthesis-related genes, but also indirectly influence the contents of flavonoids, catechins, and theaflavins via triggering the alternative splicing (AS)-mediated regulation. Our findings underscored a novel layer of epitranscriptomic gene regulation in tea flavor-related metabolic pathways and established a compelling link between m6A-mediated regulatory mechanism and the formation of high-quality flavor in tea leaves under solar-withering.
Source connections
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Zhu, C., Zhang, S., Zhou, C., Tian, C., Shi, B., Xu, K., Huang, L., Sun, Y., Lin, Y., Lai, Z., Guo, Y.. 2022-05-12. RNA Methylome Reveals the m6A-Mediated Regulation of Flavor Metabolites in Tea Leaves under Solar-Withering. https://doi.org/10.1101/2022.05.12.491608
Cite the original work for its findings. Save a collection to share your selection of sources.