It is demonstrated that OsCGT is essential for C-glycosyl flavone biosynthesis in yel-sdj seeds, particularly for isoorientin accumulation in the embryo, and indicate that embryo lethality is a fundamental consequence of the OsDET1 mutation rather than OsCGT-dependent flavone accumulation.
Abstract
Background
C-glycosyl flavones rarely accumulate at high levels in rice seeds, and the genetic basis underlying their biosynthesis and regulation remains poorly understood. The rice yel-sdj mutant, carrying a mutation in DE-ETIOLATED 1 (OsDET1), shows elevated accumulation of C-glycosyl flavones in the embryo and pericarp, providing a useful system for dissecting the molecular mechanisms controlling these metabolites. Here, we performed comparative transcriptomic and metabolomic analyses, together with genome-editing-based functional validation, to identify key genes involved in C-glycosyl flavone biosynthesis in rice seeds.
Results
Transcriptomic profiling of developing seeds revealed that differentially expressed genes (DEGs) between wild-type and yel-sdj were significantly enriched in secondary metabolite and flavonoid biosynthetic pathways. Several genes associated with C-glycosyl flavone biosynthesis, including the rice C-glycosyltransferase (OsCGT), were upregulated in developing yel-sdj grains. To validate its function, we generated OsCGT knockout lines in the yel-sdj background. Loss of OsCGT markedly reduced the accumulation of C-glycosyl flavones, particularly isoorientin, in the embryo and restored embryo coloration to a wild-type-like phenotype. In contrast, despite the significant reduction in C-glycosyl flavone accumulation, pericarp pigmentation was not obviously altered, and embryo lethality was not rescued.
Conclusions
These findings demonstrate that OsCGT is essential for C-glycosyl flavone biosynthesis in yel-sdj seeds, particularly for isoorientin accumulation in the embryo, and indicate that embryo lethality is a fundamental consequence of the OsDET1 mutation rather than OsCGT-dependent flavone accumulation. This study expands current understanding of flavonoid regulation in rice seeds and identifies OsCGT as a potential target for metabolic engineering to improve the nutraceutical and functional value of rice grains.
Results provide a genetic entry point for metabolic engineering and breeding efforts aimed at modulating grain phenolic profiles and indicate that SbmiR397-5p negatively regulates the expression of SbLAC14 in relation to CT biosynthesis, identifying it as a potential target for manipulating CT metabolism in sorghum.
Yannan Shi, Yongchao Guo, Jinping Wang et al.· Plants· 0 citations
Leaf color mutations in plants serve as valuable resources for investigating metabolic pathways related to biosynthesis of chlorophyll, flavonoid, and carotenoid. In this study, a comprehensive analysis of the physiological characteristics, transcriptomes, and metabolomic profiles of a mutant of Malus hupehensis var. pingyiensis with red leaves (RM) and normal plant (CK) with green leaves was performed. A total of 283 differentially abundant metabolites (DAMs) and 9,822 differentially expressed genes (DEGs) were identified between RM and CK. Compared with the CK, RM presented a reduced chlorophyll content and elevated levels of carotenoids, flavonoids, and anthocyanins. KEGG pathway enrichment analysis revealed that the DAMs and DEGs were associated mainly with the metabolism of chlorophyll, carotenoids, and flavonoids, with the anthocyanidin biosynthesis pathway showing the greatest enrichment. Several key anthocyanin biosynthetic genes, including chalcone isomerase (CHI), dihydroflavonol 4-reductase (DFR), UDP-Glucose:Flavonoid 3-O-Glucosyltransferase (UFGT), and UDP-glycosyltransferases (UGT), were upregulated in the red leaves, in line with a significant increase in cyanidin 3-O-glucoside (C3G) and pelargonidin 3-O-glucoside (pg3G). Furthermore, RNA sequencing (RNA-seq) analysis revealed upregulation of MdMYB10 and MdUFGT. Yeast one-hybrid (Y1H), chromatin immunoprecipitation (ChIP), and dual-luciferase reporter (LUC) assays demonstrated that MdMYB10 bound to the MdUFGT promoter fragment and subsequently upregulated its expression, leading to the accumulation of C3G and pg3G in RM. Our findings provide new insights into the regulatory mechanisms of leaf coloration and offer a foundation for the development of new cultivars with alteration of leaf color.
Tingting Sun, Junke Zhang, Xingliang Li et al.· Horticulture Advances· 0 citations
Findings reveal the molecular mechanism underlying sowing date-mediated seed quality formation and provide a theoretical basis for high-quality sorghum production.
: Mint is notably rich in phenolic acids, flavonoids, antioxidants and other bioactive components, and is widely used as food, medicine, spices, and flavoring agents. Thus, metabolite composition serves as a critical indicator for assessing mint quality. In this study, two mint genotypes of Mentha canadensis L., were sampled, namely purple mint and green mint. The two genotypes are distinguished by stem color: the purple mint exhibits purple stems, whereas the green mint has green stems. The purple mint exhibited significantly higher anthocyanin and total flavone contents than green mint. Integrated transcriptomic and metabolomic analyses were performed to elucidate the regulatory mechanisms underlying pigment and flavonoid accumulation in mint stems. High-throughput RNA-Seq yielded 167,901 unigenes, of which 34,608 genes were differentially expressed. These differentially expressed genes (DEGs) were mainly involved in the lignin metabolic process and flavonoid biosynthetic process. A total of 143 differentially expressed metabolites (DEMs) were enriched in isoflavonoid, flavonoid biosynthesis, flavone and flavonol biosynthesis, and anthocyanin biosynthesis pathways. Co-analysis of DEGs and DEMs revealed that the flavone and flavonol biosynthesis pathway (ko00944) contained the most DEMs, followed by the flavonoid biosynthesis pathway (ko00941) and the anthocyanin biosynthesis pathway (ko00942). Furthermore, nine key genes and metabolites were identified using the O2PLS model. These findings provide a theoretical basis for understanding the key pathways and genes involved in pigment and flavonoid regulation in mint stems.
Xiang-Dong Wang, Hai-Long An, Yan-Zhi Ma et al.· Phyton· 0 citations
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