1.Identification of a cytochrome P450 from Tripterygium hypoglaucum (Levl.) Hutch that catalyzes polpunonic acid formation in celastrol biosynthesis.
Xiao-Chao CHEN ; Yun LU ; Yuan LIU ; Jia-Wei ZHOU ; Yi-Feng ZHANG ; Hai-Yun GAO ; Dan LI ; Wei GAO
Chinese Journal of Natural Medicines (English Ed.) 2022;20(9):691-700
Tripterygium hypoglaucum (Levl.) Hutch, a traditional Chinese medicinal herb with a long history of use, is widely distributed in China. One of its main active components, celastrol, has great potential to be developed into anti-cancer and anti-obesity drugs. Although it exhibits strong pharmacological activities, there is a lack of sustainable sources of celastrol and its derivatives, making it crucial to develop novel sources of these drugs through synthetic biology. The key step in the biosynthesis of celastrol is considered to be the cyclization of 2,3-oxidosqualene into friedelin under the catalysis of 2,3-oxidosqualene cyclases. Friedelin was speculated to be oxidized into celastrol by cytochrome P450 oxidases (CYP450s). Here, we reported a cytochrome P450 ThCYP712K1 from Tripterygium hypoglaucum (Levl.) Hutch that catalyzed the oxidation of friedelin into polpuonic acid when heterologously expressed in yeast. Through substrate supplementation and in vitro enzyme analysis, ThCYP712K1 was further proven to catalyze the oxidation of friedelin at the C-29 position to produce polpunonic acid, which is considered a vital step in the biosynthesis of celastrol, and will lay a foundation for further analysis of its biosynthetic pathway.
Anti-Obesity Agents
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Cytochrome P-450 Enzyme System/metabolism*
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Pentacyclic Triterpenes
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Squalene/analogs & derivatives*
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Tripterygium/metabolism*
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Triterpenes/metabolism*
2.Construction of Saccharomyces cerevisiae haploid mutant deficient in lanosterol synthase gene.
Li-Li GAO ; Qing-Hua WANG ; Hui-Chao LIANG ; Ting GONG ; Jin-Ling YANG ; Ping ZHU
Acta Pharmaceutica Sinica 2014;49(5):742-746
Lanosterol synthase is encoded by the erg7 gene and catalyzes the cyclization of 2, 3-oxidosqualene, which is a rate-limiting step of the inherent mevalonate (MVA)/ergosterol metabolic pathway in Saccharomyces cerevisiae. The intermediate 2, 3-oxidosqualene is also the precursor of triterpenoids. Therefore, the cyclization of 2, 3-oxidosqualene is the key branch point of ergosterol and triterpenoids biosynthesis. Down-regulation of 2, 3-oxidosqualene metabolic flux to ergosterol in S. cerevisiae may redirect the metabolic flux toward the triterpenoid synthetic pathway reconstructed by the synthetic biology approach. To construct erg7 knockout cassette harboring the loxP-Marker-loxP element, long primers were designed, which were homologous to the sequences of both erg7 ORF and plasmid pUG66. The cassette was transformed into diploid wild strain INVSc1 by LiAc/SS Carrier DNA/PEG method and then erg7 gene haploid deficient mutant was obtained by homologous recombination. The results of semiquantitative PCR and real-time quantitative PCR revealed that erg7 expression level in erg7 gene haploid deficient mutant is one time lower than that in wild strain. The results of TLC and HPLC showed that the ergosterol content in deficient mutant decreased to 42% of that in wild strain.
Chromatography, High Pressure Liquid
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DNA Primers
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Down-Regulation
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Ergosterol
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metabolism
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Haploidy
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Intramolecular Transferases
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genetics
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Polymerase Chain Reaction
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Saccharomyces cerevisiae
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genetics
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Squalene
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analogs & derivatives
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metabolism
3.Downregulation of lanosterol synthase gene expression by antisense RNA technology in Saccharomyces cerevisiae.
Qing-hua WANG ; Li-li GAO ; Hui-chao LIANG ; Guo-hua DU ; Ting GONG ; Jin-ling YANG ; Ping ZHU
Acta Pharmaceutica Sinica 2015;50(1):118-122
The cyclization of 2,3-oxidosqualene is the key branch point of ergosterol and triterpenoid biosynthesis. Downregulation of 2,3-oxidosqualene metabolic flux to ergosterol in Saccharomyces cerevisiae may redirect the metabolic flux toward the triterpenoid synthetic pathway. In our study, primers were designed according to erg7 gene sequence of S. cerevisiae. Three fragments including 5' long fragment, 5' short fragment and erg7 coding region fragment were amplified by PCR. 5' long fragment consists of the promoter and a part of erg7 coding region sequence. 5' short fragment consists of a part of promoter and a part of erg7 coding region sequence. These fragments were inserted reversely into pESC-URA to construct antisense expression plasmids. The recombinant plasmids were transformed into S. cerevisiae INVSc1 and recombinant strains were screened on the nutritional deficient medium SD-URA. The erg7 expression level of recombinant strains, which harbored antisense expression plasmid of erg7 coding region, was similar to that of INVScl by semi-quantitative PCR detection. But erg7 expression level of recombinant strains, which harbored 5' long antisense fragment and 5' short antisense fragment, was significantly lower than that of the control. The results of TLC and HPLC showed that the ergosterol content of recombinant strains, which harbored 5' long antisense fragment, decreased obviously. The ergosterol contents of the others were almost equal to that of INVSc1. Lanosterol synthase gene expression was downregulated by antisense RNA technology in S. cerevisiae, which lays a foundation for reconstructing triterpenoid metabolic pathway in S. cerevisiae by synthetic biology technology.
DNA Primers
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Down-Regulation
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Gene Expression
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Intramolecular Transferases
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genetics
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metabolism
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Plasmids
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Polymerase Chain Reaction
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RNA, Antisense
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Saccharomyces cerevisiae
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enzymology
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genetics
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Squalene
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analogs & derivatives
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metabolism
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Transformation, Genetic