Yihong Hou, He Zhou, Chunhui Wang, Chengyang Xie, Tian Tian, Yingying Li, Wenzhao Wang, Youben Yu and Tianshan Zhou*,
{"title":"山茶黄酮c -糖苷生物合成中一种黄酮2-羟化酶的鉴定","authors":"Yihong Hou, He Zhou, Chunhui Wang, Chengyang Xie, Tian Tian, Yingying Li, Wenzhao Wang, Youben Yu and Tianshan Zhou*, ","doi":"10.1021/acs.jafc.4c0745610.1021/acs.jafc.4c07456","DOIUrl":null,"url":null,"abstract":"<p >Tea contains a variety of flavone <i>C</i>-glycosides, which are important compounds that distinguish tea cultivars and tea categories. However, the biosynthesis pathway of flavone <i>C</i>-glycosides in tea plant remains unknown, and the key enzymes involved have not been characterized. In this study, a liquid chromatography–mass spectrometry method to determine 9 flavone <i>C</i>-glycosides was developed, and the accumulation patterns of 9 flavone <i>C</i>-glycosides in tea plants were examined first. Then, an entry enzyme <i>Cs</i>F2H for flavone <i>C</i>-glycoside biosynthesis was identified, which had four cytochrome P450-specific conserved motifs and was targeted to the endoplasmic reticulum. Correlation analysis indicated that the expression level of <i>CsF2H</i> was positively correlated with all contents of 9 flavone <i>C</i>-glycosides. The recombinant <i>Cs</i>F2H could convert flavanone (naringenin) into the corresponding 2-hydroxyflavonone (2-hydroxynaringenin), rather than into flavone (apigenin). Heterologous coexpression of <i>Cs</i>F2H and <i>Cs</i>CGT1 in yeast revealed that the substrate naringenin could be enzymatically converted to flavone mono-<i>C</i>-glycosides vitexin and isovitexin under the catalytic control of <i>Cs</i>F2H and <i>Cs</i>CGT1 following dehydration. Gene-specific antisense oligonucleotide analysis suggested that suppressing <i>CsF2H</i> significantly reduced the levels of 9 flavone <i>C</i>-glycosides. Together, <i>Cs</i>F2H is the first key enzyme that generates flavone <i>C</i>-glycosides through the 2-hydroxyflavanone biosynthesis pathway in tea plants.</p>","PeriodicalId":41,"journal":{"name":"Journal of Agricultural and Food Chemistry","volume":"72 49","pages":"27417–27428 27417–27428"},"PeriodicalIF":6.2000,"publicationDate":"2024-12-02","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Identification of a Flavanone 2-Hydroxylase Involved in Flavone C-Glycoside Biosynthesis from Camellia sinensis\",\"authors\":\"Yihong Hou, He Zhou, Chunhui Wang, Chengyang Xie, Tian Tian, Yingying Li, Wenzhao Wang, Youben Yu and Tianshan Zhou*, \",\"doi\":\"10.1021/acs.jafc.4c0745610.1021/acs.jafc.4c07456\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Tea contains a variety of flavone <i>C</i>-glycosides, which are important compounds that distinguish tea cultivars and tea categories. However, the biosynthesis pathway of flavone <i>C</i>-glycosides in tea plant remains unknown, and the key enzymes involved have not been characterized. In this study, a liquid chromatography–mass spectrometry method to determine 9 flavone <i>C</i>-glycosides was developed, and the accumulation patterns of 9 flavone <i>C</i>-glycosides in tea plants were examined first. Then, an entry enzyme <i>Cs</i>F2H for flavone <i>C</i>-glycoside biosynthesis was identified, which had four cytochrome P450-specific conserved motifs and was targeted to the endoplasmic reticulum. Correlation analysis indicated that the expression level of <i>CsF2H</i> was positively correlated with all contents of 9 flavone <i>C</i>-glycosides. The recombinant <i>Cs</i>F2H could convert flavanone (naringenin) into the corresponding 2-hydroxyflavonone (2-hydroxynaringenin), rather than into flavone (apigenin). Heterologous coexpression of <i>Cs</i>F2H and <i>Cs</i>CGT1 in yeast revealed that the substrate naringenin could be enzymatically converted to flavone mono-<i>C</i>-glycosides vitexin and isovitexin under the catalytic control of <i>Cs</i>F2H and <i>Cs</i>CGT1 following dehydration. Gene-specific antisense oligonucleotide analysis suggested that suppressing <i>CsF2H</i> significantly reduced the levels of 9 flavone <i>C</i>-glycosides. 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Identification of a Flavanone 2-Hydroxylase Involved in Flavone C-Glycoside Biosynthesis from Camellia sinensis
Tea contains a variety of flavone C-glycosides, which are important compounds that distinguish tea cultivars and tea categories. However, the biosynthesis pathway of flavone C-glycosides in tea plant remains unknown, and the key enzymes involved have not been characterized. In this study, a liquid chromatography–mass spectrometry method to determine 9 flavone C-glycosides was developed, and the accumulation patterns of 9 flavone C-glycosides in tea plants were examined first. Then, an entry enzyme CsF2H for flavone C-glycoside biosynthesis was identified, which had four cytochrome P450-specific conserved motifs and was targeted to the endoplasmic reticulum. Correlation analysis indicated that the expression level of CsF2H was positively correlated with all contents of 9 flavone C-glycosides. The recombinant CsF2H could convert flavanone (naringenin) into the corresponding 2-hydroxyflavonone (2-hydroxynaringenin), rather than into flavone (apigenin). Heterologous coexpression of CsF2H and CsCGT1 in yeast revealed that the substrate naringenin could be enzymatically converted to flavone mono-C-glycosides vitexin and isovitexin under the catalytic control of CsF2H and CsCGT1 following dehydration. Gene-specific antisense oligonucleotide analysis suggested that suppressing CsF2H significantly reduced the levels of 9 flavone C-glycosides. Together, CsF2H is the first key enzyme that generates flavone C-glycosides through the 2-hydroxyflavanone biosynthesis pathway in tea plants.
期刊介绍:
The Journal of Agricultural and Food Chemistry publishes high-quality, cutting edge original research representing complete studies and research advances dealing with the chemistry and biochemistry of agriculture and food. The Journal also encourages papers with chemistry and/or biochemistry as a major component combined with biological/sensory/nutritional/toxicological evaluation related to agriculture and/or food.