1.A comprehensive overview of type III polyketide synthases from plants: molecular mechanism and application perspective--a review.
Chinese Journal of Biotechnology 2009;25(11):1601-1607
Type III polyketide synthases (PKSs) from plants produce a variety of plant secondary metabolites with notable structural diversity and biological activity. These metabolites not only afford plants the ability to defend against pathogen attack and other external stresses, but also exhibit a wide range of biological effects on human health. Several plant PKSs have been identified and studied in recent years. This paper summarized what was known about plant PKSs and some of their aspects such as molecular structure, reaction mechanisms, gene expression and regulation, and transgenic engineering. The review provides information for manipulating polyketide formation and further increasing the scope of polyketide biosynthetic diversity, as well as new avenues for developing transgenic engineering of type III PKSs.
Catalysis
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Plants
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enzymology
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Polyketide Synthases
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chemistry
;
classification
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metabolism
;
Protein Engineering
2.Advances in metabolic engineering of macrolide antibiotics.
Chinese Journal of Biotechnology 2021;37(5):1737-1747
14- to 16-membered macrolide antibiotics (MA) are clinically important anti-infective drugs. With the rapid emergence of bacterial resistance, there is an urgent need to develop novel MA to counter drug-resistant bacteria. The targeted optimization of MA can be guided by analyzing the interaction between the MA and its ribosomal targets, and the desired MA derivatives can be obtained efficiently when combining with the rapidly developed metabolic engineering approaches. In the past 30 years, metabolic engineering approaches have shown great advantages in engineering the biosynthesis of MA to create new derivatives and to improve their production. These metabolic engineering approaches include modification of the structural domains of the polyketide synthase (PKS) and post-PKS modification enzymes as well as combinatorial biosynthesis. In addition, the R&D (including the evaluation of its antimicrobial activities and the optimization through metabolic engineering) of carrimycin, a new 16-membered macrolide drug, are described in details in this review.
Anti-Bacterial Agents
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Bacteria/genetics*
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Macrolides
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Metabolic Engineering
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Polyketide Synthases
3.Overexpression of a fusion protein of 4-coumaroyl-CoA ligase and polyketide synthase for raspberry ketone production in Chlamydomonas reinhardtii.
Wenqing NIU ; Hangtao WEI ; Feiyan XUE ; Mingfeng YANG
Chinese Journal of Biotechnology 2021;37(7):2495-2502
Raspberry ketones have important therapeutic properties such as anti-influenza and prevention of diabetes. In order to obtain raspberry ketone from Chlamydomonas reinhardtii, two enzymes catalyzing the last two steps of raspberry ketone synthesis, i.e. 4-coumaryl-CoA ligase (4CL) and polyketide synthase (PKS1), were fused using a glycine-serine-glycine (GSG) tripeptide linker to construct an expression vector pChla-4CL-PKS1. The fusion gene 4CL-PKS1 driven by a PSAD promoter was transformed into a wild-type (CC125) and a cell wall-deficient C. reinhardtii (CC425) by electroporation. The results showed the recombinant C. reinhardtii strain CC125 and CC425 with 4CL-PKS1 produced raspberry ketone at a level of 6.7 μg/g (fresh weight) and 5.9 μg/g (fresh weight), respectively, both were higher than that of the native raspberry ketone producing plants (2-4 μg/g).
Acyl Coenzyme A
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Butanones
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Chlamydomonas reinhardtii/genetics*
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Ligases
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Polyketide Synthases
4.Preparation and crystallization of Polygonum cuspidatum benzalacetone synthase.
Wenrui MA ; Chunmei LIU ; Mingfeng YANG ; Feiyan XUE ; Qing CHEN ; Lanqing MA ; Heshu LÜ
Chinese Journal of Biotechnology 2016;32(2):250-258
The chalcone synthase (CHS) superfamily of the type III polyketide synthases (PKSs) generates backbones of a variety of plant secondary metabolites. Benzalacetone synthase (BAS) catalyzes a condensation reaction of decarboxylation between the substrates of 4-coumaric coenzyme A and malonyl coenzyme A to generate benzylidene acetone, whose derivatives are series of compounds with various biological activities. A BAS gene Pcpks2 and a bifunctional CHS/BAS PcPKSI were isolated from medicinal plant P. cuspidatum. Crystallographic and structure-based mutagenesis studies indicate that the functional diversity of the CHS-superfamily enzymes is principally derived from small modifications of the active site architecture. In order to obtain an understanding of the biosynthesis of polyketides in P. cuspidatum, which has been poorly described, as well as of its activation mechanism, PcPKS2 was overexpressed in Escherichia coli as a C-terminally poly-His-tagged fusion protein, purified to homogeneity and crystallized, which is helpful for the clarification of the catalytic mechanism of the enzyme and lays the foundation for its genetic engineering manipulation.
Butanones
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Catalytic Domain
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Crystallization
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Fallopia japonica
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enzymology
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Polyketide Synthases
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genetics
;
metabolism
5.Biosynthesis-based production improvement and structure modification of erythromycin A.
Dandan CHEN ; Jiequn WU ; Wen LIU
Chinese Journal of Biotechnology 2015;31(6):939-954
Erythromycin A is a clinically important macrolide antibiotic with broad-spectrum activity. Its biosynthesis involves the formation of the 14-membered skeleton catalyzed by polyketide synthases, and the modification steps such as hydroxylation, glycosylation and methylation. Based on the understanding of the biosynthetic mechanism, it is reliable to genetically manipulate the erythromycin A-producing strain for production improvement and structure modification. In this paper, we reviewed the progress regarding erythromycin A in high-producing strain construction and chemical structure derivation, to provide insights for further development.
Anti-Bacterial Agents
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biosynthesis
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chemistry
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Erythromycin
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biosynthesis
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chemistry
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Glycosylation
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Hydroxylation
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Methylation
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Multigene Family
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Polyketide Synthases
;
metabolism
6.Three New Non-reducing Polyketide Synthase Genes from the Lichen-Forming Fungus Usnea longissima.
Yi WANG ; Juan WANG ; Yong Hwa CHEONG ; Jae Seoun HUR
Mycobiology 2014;42(1):34-40
Usnea longissima has a long history of use as a traditional medicine. Several bioactive compounds, primarily belonging to the polyketide family, have been isolated from U. longissima. However, the genes for the biosynthesis of these compounds are yet to be identified. In the present study, three different types of non-reducing polyketide synthases (UlPKS2, UlPKS4, and UlPKS6) were identified from a cultured lichen-forming fungus of U. longissima. Phylogenetic analysis of product template domains showed that UlPKS2 and UlPKS4 belong to group IV, which includes the non-reducing polyketide synthases with an methyltransferase (MeT) domain that are involved in methylorcinol-based compound synthesis; UlPKS6 was found to belong to group I, which includes the non-reducing polyketide synthases that synthesize single aromatic ring polyketides, such as orsellinic acid. Reverse transcriptase-PCR analysis demonstrated that UlPKS2 and UlPKS4 were upregulated by sucrose; UlPKS6 was downregulated by asparagine, glycine, and alanine.
Alanine
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Asparagine
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Fungi*
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Glycine
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Humans
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Medicine, Traditional
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Polyketide Synthases
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Polyketides
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Sucrose
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Usnea*
7.Engineering the precursor supply pathway in Streptomyces gilvosporeus for overproduction of natamycin.
Dezhen KONG ; Hao LI ; Xiaojie LI ; Zhoujie XIE ; Hao LIU
Chinese Journal of Biotechnology 2022;38(12):4630-4643
Natamycin is a safe and efficient antimycotics which is widely used in food and medicine industry. The polyene macrolide compound, produced by several bacterial species of the genus Streptomyces, is synthesized by type Ⅰ polyketide synthases using acetyl-CoA, malonyl-CoA, and methylmalonyl-CoA as substrates. In this study, four pathways potentially responsible for the supply of the three precursors were evaluated to identify the effective precursor supply pathway which can support the overproduction of natamycin in Streptomyces gilvosporeus, a natamycin-producing wild-type strain. The results showed that over-expressing acetyl-CoA synthetase and methylmalonyl-CoA mutase increased the yield of natamycin by 44.19% and 20.51%, respectively, compared with the wild type strain under shake flask fermentation. Moreover, the yield of natamycin was increased by 66.29% compared with the wild-type strain by co-overexpression of acetyl-CoA synthetase and methylmalonyl-CoA mutase. The above findings will facilitate natamycin strain improvement as well as development of strains for producing other polyketide compounds.
Natamycin/metabolism*
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Methylmalonyl-CoA Mutase/metabolism*
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Acetyl Coenzyme A/metabolism*
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Streptomyces/genetics*
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Polyketide Synthases/metabolism*
8.Lysohexaenetides A and B, linear lipopeptides from Lysobacter sp. DSM 3655 identified by heterologous expression in Streptomyces.
Qiushuang XU ; Haochen ZOU ; Chen PAN ; Haoxin WANG ; Yuemao SHEN ; Yaoyao LI
Chinese Journal of Natural Medicines (English Ed.) 2023;21(6):454-458
Lysobacter harbors a plethora of cryptic biosynthetic gene clusters (BGCs), albeit only a limited number have been analyzed to date. In this study, we described the activation of a cryptic polyketide synthase (PKS)/nonribosomal peptide synthetase (NRPS) gene cluster (lsh) in Lysobacter sp. DSM 3655 through promoter engineering and heterologous expression in Streptomyces sp. S001. As a result of this methodology, we were able to isolate two novel linear lipopeptides, lysohexaenetides A (1) and B (2), from the recombinant strain S001-lsh. Furthermore, we proposed the biosynthetic pathway for lysohexaenetides and identified LshA as another example of entirely iterative bacterial PKSs. This study highlights the potential of heterologous expression systems in uncovering cryptic biosynthetic pathways in Lysobacter genomes, particularly in the absence of genetic manipulation tools.
Lysobacter/metabolism*
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Streptomyces/metabolism*
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Lipopeptides/metabolism*
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Polyketide Synthases/genetics*
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Multigene Family
9.Roles of geldanamycin biosynthetic genes in Streptomyces hygroscopicus 17997.
Weiqing HE ; Yuying LIU ; Guizhi SUN ; Yiguang WANG
Chinese Journal of Biotechnology 2008;24(7):1133-1139
Geldanamycin (Gdm), an inhibitor of heat shock protein 90 (Hsp90), shows antitumor and antivirus bioactivity. Most Geldanamycin biosynthetic genes have been cloned from the genome library of Streptomyces hygroscopicus 17997. In this report, polyketide synthase (pks) gene, mono-oxygenase (gdmM) gene and carbamoyltransferase gene (gdmN) were subjected to inactivation. Three gene disrupted mutants (deltapks, deltagdmM and deltagdmN) were obtained by double crossover. No Geldanamycin production was detected in three mutant strains cultured in fermentation broth. Gene complementation experiments excluded the possible polar effect of gene disruption on other genes. These results confirmed that pks, gdmM and gdmN genes were essential for Geldanamycin biosynthesis.
Benzoquinones
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metabolism
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Carboxyl and Carbamoyl Transferases
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genetics
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Lactams, Macrocyclic
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metabolism
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Mixed Function Oxygenases
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genetics
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Polyketide Synthases
;
genetics
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Streptomyces
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genetics
;
metabolism
10.Site-directed mutagenesis enhances the activity of benzylidene acetone synthase of polyketide synthase from Polygonum cuspidatum.
Zhimin HE ; Wenrui MA ; Liping YU ; Heshu LÜ ; Mingfeng YANG
Chinese Journal of Biotechnology 2023;39(7):2806-2817
Polygonum cuspidatum polyketide synthase 1 (PcPKS1) has the catalytic activity of chalcone synthase (CHS) and benzylidene acetone synthase (BAS), which can catalyze the production of polyketides naringenin chalcone and benzylidene acetone, and then catalyze the synthesis of flavonoids or benzylidene acetone. In this study, three amino acid sites (Thr133, Ser134, Ser33) that may affect the function of PcPKS1 were identified by analyzing the sequences of PcPKS1, the BAS from Rheum palmatum and the CHS from Arabidopsis thaliana, as well as the conformation of the catalytic site of the enzyme. Molecular modification of PcPKS1 was carried out by site-directed mutagenesis, and two mutants were successfully obtained. The in vitro enzymatic reactions were carried out, and the differences in activity were detected by high performance liquid chromatography (HPLC). Finally, mutants T133LS134A and S339V with bifunctional activity were obtained. In addition to bifunctional activities of BAS and CHS, the modified PcPKS1 had much higher BAS activity than that of the wild type PcPKS1 under the conditions of pH 7.0 and pH 9.0, respectively. It provides a theoretical basis for future use of PcPKS1 in genetic engineering to regulate the biosynthesis of flavonoids and raspberry ketones.
Amino Acid Sequence
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Fallopia japonica/metabolism*
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Polyketide Synthases/chemistry*
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Acetone
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Mutagenesis, Site-Directed
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Flavonoids/metabolism*
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Acyltransferases/metabolism*