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1.
Methods Enzymol ; 699: 1-23, 2024.
Article in English | MEDLINE | ID: mdl-38942500

ABSTRACT

Terpenes comprise the largest class of natural products and are used in applications spanning the areas of medicine, cosmetics, fuels, flavorings, and more. Copalyl diphosphate synthase from the Penicillium genus is the first bifunctional terpene synthase identified to have both prenyltransferase and class II cyclase activities within the same polypeptide chain. Prior studies of bifunctional terpene synthases reveal that these systems achieve greater catalytic efficiency by channeling geranylgeranyl diphosphate between the prenyltransferase and cyclase domains. A molecular-level understanding of substrate transit phenomena in these systems is highly desirable, but a long disordered polypeptide segment connecting the prenyltranferase and cyclase domains thwarts the crystallization of full-length enzymes. Accordingly, these systems are excellent candidates for structural analysis using cryo-electron microscopy (cryo-EM). Notably, these systems form hexameric or octameric oligomers, so the quaternary structure of the full-length enzyme may influence substrate transit between catalytic domains. Here, we describe methods for the preparation of bifunctional hexameric copalyl diphosphate synthase from Penicillium fellutanum (PfCPS). We also outline approaches for the preparation of cryo-EM grids, data collection, and data processing to yield two-dimensional and three-dimensional reconstructions.


Subject(s)
Alkyl and Aryl Transferases , Cryoelectron Microscopy , Penicillium , Penicillium/enzymology , Alkyl and Aryl Transferases/chemistry , Alkyl and Aryl Transferases/metabolism , Alkyl and Aryl Transferases/isolation & purification , Cryoelectron Microscopy/methods , Diterpenes/metabolism , Diterpenes/chemistry , Fungal Proteins/chemistry , Fungal Proteins/isolation & purification , Fungal Proteins/metabolism , Dimethylallyltranstransferase/metabolism , Dimethylallyltranstransferase/chemistry , Dimethylallyltranstransferase/genetics , Dimethylallyltranstransferase/isolation & purification
2.
Methods Enzymol ; 699: 89-119, 2024.
Article in English | MEDLINE | ID: mdl-38942517

ABSTRACT

Prenyltransferases are terpene synthases that combine 5-carbon precursor molecules into linear isoprenoids of varying length that serve as substrates for terpene cyclases, enzymes that catalyze fascinating cyclization reactions to form diverse terpene natural products. Terpenes and their derivatives comprise the largest class of natural products and have myriad functions in nature and diverse commercial uses. An emerging class of bifunctional terpene synthases contains both prenyltransferase and cyclase domains connected by a disordered linker in a single polypeptide chain. Fusicoccadiene synthase from Phomopsis amygdali (PaFS) is one of the most well-characterized members of this subclass and serves as a model system for the exploration of structure-function relationships. PaFS has been structurally characterized using a variety of biophysical techniques. The enzyme oligomerizes to form a stable core of six or eight prenyltransferase domains that produce a 20-carbon linear isoprenoid, geranylgeranyl diphosphate (GGPP), which then transits to the cyclase domains for the generation of fusicoccadiene. Cyclase domains are in dynamic equilibrium between randomly splayed-out and prenyltransferase-associated positions; cluster channeling is implicated for GGPP transit from the prenyltransferase core to the cyclase domains. In this chapter, we outline the methods we are developing to interrogate the nature of cluster channeling in PaFS, including enzyme activity and product analysis assays, approaches for engineering the linker segment connecting the prenyltransferase and cyclase domains, and structural analysis by cryo-EM.


Subject(s)
Alkyl and Aryl Transferases , Alkyl and Aryl Transferases/metabolism , Alkyl and Aryl Transferases/chemistry , Alkyl and Aryl Transferases/genetics , Dimethylallyltranstransferase/metabolism , Dimethylallyltranstransferase/chemistry , Dimethylallyltranstransferase/genetics , Diterpenes/metabolism , Diterpenes/chemistry , Enzyme Assays/methods , Polyisoprenyl Phosphates/metabolism , Polyisoprenyl Phosphates/chemistry , Cyclization
3.
Phytochemistry ; 224: 114149, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38763314

ABSTRACT

Farnesylated chalcones were favored by researchers due to their different biological activities. However, only five naturally occurring farnesylated chalcones were described in the literature until now. Here, the farnesylation of six chalcones by the Aspergillus terreus aromatic prenyltransferase AtaPT was reported. Fourteen monofarnesylated chalcones (1F1-1F5, 2F1-2F3, 3F1, 3F2, 4F1, 4F2, 5F1, 6F1, and 6F2) and a difarnesylated product (2F3) were obtained, enriching the diversity of natural farnesylated chalcones significantly. Ten of them are C-farnesylated products, which complement O-farnesylated chalcones by chemical synthesis. Fourteen products have not been reported prior to this study. Nine of the produced compounds (1F2-1F5, 2F1-2F3, 5F1, and 6F1) exhibited inhibitory effect on α-glucosidase with IC50 values ranging from 24.08 ± 1.44 to 190.0 ± 0.28 µM. Among them, compounds 2F3 with IC50 value at 24.08 ± 1.44 µM and 1F4 with IC50 value at 30.09 ± 0.59 µM showed about 20 times stronger than the positive control acarbose with an IC50 at 536.87 ± 24.25 µM in α-glucosidase inhibitory assays.


Subject(s)
Aspergillus , Chalcones , Dimethylallyltranstransferase , Dimethylallyltranstransferase/metabolism , Dimethylallyltranstransferase/chemistry , Dimethylallyltranstransferase/antagonists & inhibitors , Chalcones/chemistry , Chalcones/pharmacology , Chalcones/metabolism , Aspergillus/enzymology , Aspergillus/chemistry , Molecular Structure , Prenylation , Structure-Activity Relationship , Glycoside Hydrolase Inhibitors/chemistry , Glycoside Hydrolase Inhibitors/pharmacology , alpha-Glucosidases/metabolism , alpha-Glucosidases/chemistry , Dose-Response Relationship, Drug
4.
Org Lett ; 26(16): 3349-3354, 2024 Apr 26.
Article in English | MEDLINE | ID: mdl-38607994

ABSTRACT

UbiA-type prenyltransferases (PTases) are significant enzymes that lead to structurally diverse meroterpenoids. Herein, we report the identification and characterization of an undescribed UbiA-type PTase, FtaB, that is responsible for the farnesylation of indole-containing diketopiperazines (DKPs) through genome mining. Heterologous expression of the fta gene cluster and non-native pathways result in the production of a series of new C2-farnesylated DKPs. This study broadens the reaction scope of UbiA-type PTases and expands the chemical diversity of meroterpenoids.


Subject(s)
Diketopiperazines , Dimethylallyltranstransferase , Prenylation , Dimethylallyltranstransferase/metabolism , Dimethylallyltranstransferase/chemistry , Dimethylallyltranstransferase/genetics , Diketopiperazines/chemistry , Diketopiperazines/metabolism , Molecular Structure , Multigene Family
5.
Biol Pharm Bull ; 47(2): 449-453, 2024.
Article in English | MEDLINE | ID: mdl-38369346

ABSTRACT

CsPT4 is an aromatic prenyltransferase that synthesizes cannabigerolic acid (CBGA), the key intermediate of cannabinoid biosynthesis in Cannabis sativa, from olivetolic acid (OA) and geranyl diphosphate (GPP). CsPT4 has a catalytic potential to produce a variety of CBGA analogs via regioselective C-prenylation of aromatic substrates having resorcylic acid skeletons including bibenzyl 2,4-dihydroxy-6-phenylethylbenzoic acid (DPA). In this study, we further investigated the substrate specificity of CsPT4 using phlorocaprophenone (PCP) and 2',4',6'-trihydroxydihydrochalcone (THDC), the isomers of OA and DPA, respectively, and demonstrated that CsPT4 catalyzed both C-prenylation and O-prenylation reactions on PCP and THDC that share acylphloroglucinol substructures. Interestingly, the kinetic parameters of CsPT4 for these substrates differed depending on whether they underwent C-prenylation or O-prenylation, suggesting that this enzyme utilized different substrate-binding modes suitable for the respective reactions. Aromatic prenyltransferases that catalyze O-prenylation are rare in the plant kingdom, and CsPT4 was notable for altering the reaction specificity between C- and O-prenylations depending on the skeletons of aromatic substrates. We also demonstrated that enzymatically synthesized geranylated acylphloroglucinols had potent antiausterity activity against PANC-1 human pancreatic cancer cells, with 4'-O-geranyl THDC being the most effective. We suggest that CsPT4 is a valuable catalyst to generate biologically active C- and O-prenylated molecules that could be anticancer lead compounds.


Subject(s)
Cannabis , Dimethylallyltranstransferase , Humans , Dimethylallyltranstransferase/chemistry , Dimethylallyltranstransferase/metabolism , Prenylation , Catalysis , Substrate Specificity
6.
Adv Sci (Weinh) ; 11(6): e2307372, 2024 Feb.
Article in English | MEDLINE | ID: mdl-38059776

ABSTRACT

Post-translational prenylations, found in eukaryotic primary metabolites and bacterial secondary metabolites, play crucial roles in biomolecular interactions. Employing genome mining methods combined with AlphaFold2-based predictions of protein interactions, PalQ , a prenyltransferase responsible for the tryptophan prenylation of RiPPs produced by Paenibacillus alvei, is identified. PalQ differs from cyanobactin prenyltransferases because of its evolutionary relationship to isoprene synthases, which enables PalQ to transfer extended prenyl chains to the indole C3 position. This prenylation introduces structural diversity to the tryptophan side chain and also leads to conformational dynamics in the peptide backbone, attributed to the cis/trans isomerization that arises from the formation of a pyrrolidine ring. Additionally, PalQ exhibited pronounced positional selectivity for the C-terminal tryptophan. Such enzymatic characteristics offer a toolkit for peptide therapeutic lipidation.


Subject(s)
Dimethylallyltranstransferase , Dimethylallyltranstransferase/genetics , Dimethylallyltranstransferase/chemistry , Dimethylallyltranstransferase/metabolism , Tryptophan/chemistry , Tryptophan/genetics , Tryptophan/metabolism , Prenylation , Protein Processing, Post-Translational , Peptides/metabolism
7.
Nat Prod Rep ; 41(1): 113-147, 2024 Jan 24.
Article in English | MEDLINE | ID: mdl-37929638

ABSTRACT

Covering: 2009 up to August 2023Prenyltransferases (PTs) are involved in the primary and the secondary metabolism of plants, bacteria, and fungi, and they are key enzymes in the biosynthesis of many clinically relevant natural products (NPs). The continued biochemical and structural characterization of the soluble dimethylallyl tryptophan synthase (DMATS) PTs over the past two decades have revealed the significant promise that these enzymes hold as biocatalysts for the chemoenzymatic synthesis of novel drug leads. This is a comprehensive review of DMATSs describing the structure-function relationships that have shaped the mechanistic underpinnings of these enzymes, as well as the application of this knowledge to the engineering of DMATSs. We summarize the key findings and lessons learned from these studies over the past 14 years (2009-2023). In addition, we identify current gaps in our understanding of these fascinating enzymes.


Subject(s)
Dimethylallyltranstransferase , Dimethylallyltranstransferase/chemistry , Prenylation , Fungi/metabolism
8.
J Am Chem Soc ; 145(44): 23893-23898, 2023 11 08.
Article in English | MEDLINE | ID: mdl-37877712

ABSTRACT

Prenyltransferases in cyanobactin biosynthesis are of growing interest as peptide alkylation biocatalysts, but their prenylation modes characterized so far have been limited to dimethylallylation (C5) or geranylation (C10). Here we engaged in structure-guided engineering of the prenyl-binding pocket of a His-C2-geranyltransferase LimF to modulate its prenylation mode. Contraction of the pocket by a single mutation led to a His-C2-dimethylallyltransferase. More importantly, pocket expansion by a double mutation successfully repurposed LimF for farnesylation (C15), which is an unprecedented mode in this family. Furthermore, the obtained knowledge of the essential residues to construct the farnesyl-binding pocket has allowed for rational design of a Tyr-O-farnesyltransferase by a triple mutation of a Tyr-O-dimethylallyltransferase PagF. These results provide an approach to manipulate the prenyl specificity of cyanobactin prenyltransferases, broadening the chemical space covered by this class of enzymes and expanding the toolbox of peptide alkylation biocatalysts.


Subject(s)
Dimethylallyltranstransferase , Dimethylallyltranstransferase/chemistry , Peptides, Cyclic , Prenylation , Peptides/chemistry , Substrate Specificity
9.
Chembiochem ; 24(22): e202300441, 2023 11 16.
Article in English | MEDLINE | ID: mdl-37690998

ABSTRACT

NphB is an aromatic prenyltransferase with high promiscuity for phenolics including flavonoids, isoflavonoids, and plant polyketides. It has been demonstrated that cannabigerolic acid is successfully formed by the reaction catalysed by NphB using geranyl diphosphate and olivetolic acid as substrates. In this study, the substrate specificity of NphB was further determined by using olivetolic acid derivatives as potential substrates for the formation of new synthetic cannabinoids. The derivatives differ in the hydrocarbon chain attached to C6 of the core structure. We performed in silico experiments, including docking of olivetolic acid derivatives, to identify differences in their binding modes. Substrate acceptance was predicted. Based on these results, a library of olivetolic acid derivatives was constructed and synthesized by using different organic synthetic routes. Conversion was monitored in in vitro assays with purified NphB versions. For the substrates leading to a high conversion olivetolic acid-C8, olivetolic acid-C2 and 2-benzyl-4,6-dihydroxybenzoic acid, the products were further elucidated and identified as cannbigerolic acid derivatives. Therefore, these substrates show potential to be adapted in cannabinoid biosynthesis.


Subject(s)
Cannabinoids , Dimethylallyltranstransferase , Dimethylallyltranstransferase/chemistry , Cannabinoids/metabolism , Salicylates/metabolism , Substrate Specificity
10.
FEBS J ; 290(9): 2232-2245, 2023 05.
Article in English | MEDLINE | ID: mdl-35073609

ABSTRACT

The UbiX/UbiD system is widespread in microbes and responsible for the reversible decarboxylation of unsaturated carboxylic acids. The UbiD enzyme catalyzes this unusual reaction using a prenylated flavin (prFMN) as cofactor, the latter formed by the flavin prenyltransferase UbiX. A detailed picture of the biochemistry of flavin prenylation, oxidative maturation, and covalent catalysis underpinning reversible decarboxylation is emerging. This reveals the prFMN cofactor can undergo a wide range of transformations, complemented by considerable UbiD-variability. These provide a blueprint for biotechnological applications aimed at producing hydrocarbons or aromatic C-H activation through carboxylation.


Subject(s)
Carboxy-Lyases , Dimethylallyltranstransferase , Flavins/metabolism , Carboxy-Lyases/genetics , Carboxy-Lyases/metabolism , Flavin Mononucleotide/chemistry , Oxidation-Reduction , Dimethylallyltranstransferase/genetics , Dimethylallyltranstransferase/chemistry , Dimethylallyltranstransferase/metabolism
11.
Trends Biochem Sci ; 48(4): 360-374, 2023 04.
Article in English | MEDLINE | ID: mdl-36564250

ABSTRACT

Prenylation is a post-translational modification (PTM) widely found in primary and secondary metabolism. This modification can enhance the lipophilicity of molecules, enabling them to interact with lipid membranes more effectively. The prenylation of peptides is often carried out by cyanobactin prenyltransferases (PTases) from cyanobacteria. These enzymes are of interest due to their ability to add prenyl groups to unmodified peptides, thus making them more effective therapeutics through the subsequent acquisition of increased membrane permeability and bioavailability. Herein we review the current knowledge of cyanobactin PTases, focusing on their discovery, biochemistry, and bioengineering, and highlight the potential application of them as peptide alkylation biocatalysts to generate peptide therapeutics.


Subject(s)
Dimethylallyltranstransferase , Dimethylallyltranstransferase/chemistry , Dimethylallyltranstransferase/metabolism , Peptides, Cyclic/chemistry , Peptides , Bioengineering
12.
J Am Chem Soc ; 144(42): 19326-19336, 2022 10 26.
Article in English | MEDLINE | ID: mdl-36223664

ABSTRACT

Prenyltransfer is an early-stage carbon-hydrogen bond (C-H) functionalization prevalent in the biosynthesis of a diverse array of biologically active bacterial, fungal, plant, and metazoan diketopiperazine (DKP) alkaloids. Toward the development of a unified strategy for biocatalytic construction of prenylated DKP indole alkaloids, we sought to identify and characterize a substrate-permissive C2 reverse prenyltransferase (PT). As the first tailoring event within the biosynthesis of cytotoxic notoamide metabolites, PT NotF catalyzes C2 reverse prenyltransfer of brevianamide F. Solving a crystal structure of NotF (in complex with native substrate and prenyl donor mimic dimethylallyl S-thiolodiphosphate (DMSPP)) revealed a large, solvent-exposed active site, intimating NotF may possess a significantly broad substrate scope. To assess the substrate selectivity of NotF, we synthesized a panel of 30 sterically and electronically differentiated tryptophanyl DKPs, the majority of which were selectively prenylated by NotF in synthetically useful conversions (2 to >99%). Quantitative representation of this substrate library and development of a descriptive statistical model provided insight into the molecular origins of NotF's substrate promiscuity. This approach enabled the identification of key substrate descriptors (electrophilicity, size, and flexibility) that govern the rate of NotF-catalyzed prenyltransfer, and the development of an "induced fit docking (IFD)-guided" engineering strategy for improved turnover of our largest substrates. We further demonstrated the utility of NotF in tandem with oxidative cyclization using flavin monooxygenase, BvnB. This one-pot, in vitro biocatalytic cascade enabled the first chemoenzymatic synthesis of the marine fungal natural product, (-)-eurotiumin A, in three steps and 60% overall yield.


Subject(s)
Biological Products , Dimethylallyltranstransferase , Animals , Dimethylallyltranstransferase/chemistry , Diketopiperazines , Data Science , Indole Alkaloids/chemistry , Protein Engineering , Flavins/metabolism , Mixed Function Oxygenases/metabolism , Solvents , Carbon , Substrate Specificity
13.
Chem Commun (Camb) ; 58(86): 12054-12057, 2022 Oct 27.
Article in English | MEDLINE | ID: mdl-36193595

ABSTRACT

Cyanobactins are linear and cyclic post-translationally modified peptides. Here we show that the prenyl-D-Arg-containing autumnalamide A is a member of the cyanobactin family. Biochemical assays demonstrate that the AutF prenyltransferase targets the guanidinium moiety in arginine and homoarginine and is a useful tool for biotechnological applications.


Subject(s)
Biosynthetic Pathways , Dimethylallyltranstransferase , Dimethylallyltranstransferase/chemistry , Dimethylallyltranstransferase/metabolism , Arginine/metabolism , Homoarginine/metabolism , Guanidine , Peptides, Cyclic/chemistry
14.
Biochemistry ; 61(18): 2025-2035, 2022 09 20.
Article in English | MEDLINE | ID: mdl-36084241

ABSTRACT

The regiospecific prenylation of an aromatic amino acid catalyzed by a dimethylallyl-l-tryptophan synthase (DMATS) is a key step in the biosynthesis of many fungal and bacterial natural products. DMATS enzymes share a common "ABBA" fold with divergent active site contours that direct alternative C-C, C-N, and C-O bond-forming trajectories. DMATS1 from Fusarium fujikuroi catalyzes the reverse N-prenylation of l-Trp by generating an allylic carbocation from dimethylallyl diphosphate (DMAPP) that then alkylates the indole nitrogen of l-Trp. DMATS1 stands out among the greater DMATS family because it exhibits unusually broad substrate specificity: it can utilize geranyl diphosphate (GPP) or l-Tyr as an alternative prenyl donor or acceptor, respectively; it can catalyze both forward and reverse prenylation, i.e., at C1 or C3 of DMAPP; and it can catalyze C-N and C-O bond-forming reactions. Here, we report the crystal structures of DMATS1 and its complexes with l-Trp or l-Tyr and unreactive thiolodiphosphate analogues of the prenyl donors DMAPP and GPP. Structures of ternary complexes mimic Michaelis complexes with actual substrates and illuminate active site features that govern prenylation regiochemistry. Comparison with CymD, a bacterial enzyme that catalyzes the reverse N-prenylation of l-Trp with DMAPP, indicates that bacterial and fungal DMATS enzymes share a conserved reaction mechanism. However, the narrower active site contour of CymD enforces narrower substrate specificity. Structure-function relationships established for DMATS enzymes will ultimately inform protein engineering experiments that will broaden the utility of these enzymes as useful tools for synthetic biology.


Subject(s)
Biological Products , Dimethylallyltranstransferase , Tryptophan Synthase , Catalysis , Dimethylallyltranstransferase/chemistry , Fusarium , Hemiterpenes , Indoles , Neoprene , Nitrogen , Organophosphorus Compounds , Prenylation , Substrate Specificity , Tryptophan/chemistry , Tryptophan Synthase/metabolism
15.
J Biosci Bioeng ; 134(4): 311-317, 2022 Oct.
Article in English | MEDLINE | ID: mdl-35931602

ABSTRACT

The prenylation of compounds has attracted much attention, since it often adds bioactivity to non-prenylated compounds. We employed an enzyme assay with CdpNPT, an indole prenyltransferase from Aspergillus fumigatus with two naturally occurring ß-carbolines, harmine (3) and harman (4) as prenyl acceptors, in the presence of dimethylallyl diphosphate (DMAPP) as the prenyl donor. The enzyme accepted these two prenyl acceptor substrates to produce 6-(3',3'-dimethylallyl)harmine (5) from 3 and 9-(3',3'-dimethylallyl)harman (6) and 6-(3',3'-dimethylallyl)harman (7) from 4. The X-ray crystal structure analysis of the CdpNPT (38-440) truncated mutant complexed with 4, and docking simulation studies of DMAPP to the crystal structure of the CdpNPT (38-440) mutant, suggested that CdpNPT could employ the two-step prenylation mechanism to produce 7, while the enzyme produced 6 with either one- or two-step prenylation mechanisms. Furthermore, the antibacterial assays revealed that the 3',3'-dimethylallylation of 3 and 4, as well as harmol (1), at C-6 enhanced the activities against Staphylococcus aureus and Bacillus subtilis.


Subject(s)
Dimethylallyltranstransferase , Anti-Bacterial Agents/pharmacology , Carbolines , Dimethylallyltranstransferase/chemistry , Dimethylallyltranstransferase/genetics , Dimethylallyltranstransferase/metabolism , Harmine , Hemiterpenes , Indoles , Organophosphorus Compounds , Prenylation , Substrate Specificity
16.
Acc Chem Res ; 55(9): 1313-1323, 2022 05 03.
Article in English | MEDLINE | ID: mdl-35442036

ABSTRACT

Biologically active peptides are a major growing class of drugs, but their therapeutic potential is constrained by several limitations including bioavailability and poor pharmacokinetics. The attachment of functional groups like lipids has proven to be a robust and effective strategy for improving their therapeutic potential. Biochemical and bioactivity-guided screening efforts have identified the cyanobactins as a large class of ribosomally synthesized and post-translationally modified peptides (RiPPs) that are modified with lipids. These lipids are attached by the F superfamily of peptide prenyltransferase enzymes that utilize 5-carbon (prenylation) or 10-carbon (geranylation) donors. The chemical structures of various cyanobactins initially showed isoprenoid attachments on Ser, Thr, or Tyr. Biochemical characterization of the F prenyltransferases from the corresponding clusters shows that the different enzymes have different acceptor residue specificities but are otherwise remarkably sequence tolerant. Hence, these enzymes are well suited for biotechnological applications. The crystal structure of the Tyr O-prenyltransferase PagF reveals that the F enzyme shares a domain architecture reminiscent of a canonical ABBA prenyltransferase fold but lacks secondary structural elements necessary to form an enclosed active site. Binding of either cyclic or linear peptides is sufficient to close the active site to allow for productive catalysis, explaining why these enzymes cannot use isolated amino acids as substrates.Almost all characterized isoprenylated cyanobactins are modified with 5-carbon isoprenoids. However, chemical characterization demonstrates that the piricyclamides are modified with a 10-carbon geranyl moiety, and in vitro reconstitution of the corresponding PirF shows that the enzyme is a geranyltransferase. Structural analysis of PirF shows an active site nearly identical with that of the PagF prenyltransferase but with a single amino acid substitution. Of note, mutation at this residue in PagF or PirF can completely switch the isoprenoid donor specificity of these enzymes. Recent efforts have resulted in significant expansion of the F family with enzymes identified that can carry out C-prenylations of Trp, N-prenylations of Trp, and bis-N-prenylations of Arg. Additional genome-guided efforts based on the sequence of F enzymes identify linear cyanobactins that are α-N-prenylated and α-C-methylated by a bifunctional prenyltransferase/methyltransferase fusion and a bis-α-N- and α-C-prenylated linear peptide. The discovery of these different classes of prenyltransferases with diverse acceptor residue specificities expands the biosynthetic toolkit for enzymatic prenylation of peptide substrates.In this Account, we review the current knowledge scope of the F family of peptide prenyltransferases, focusing on the biochemical, structure-function, and chemical characterization studies that have been carried out in our laboratories. These enzymes are easily amenable for diversity-oriented synthetic efforts as they can accommodate substrate peptides of diverse sequences and are thus attractive catalysts for use in synthetic biology approaches to generate high-value peptidic therapeutics.


Subject(s)
Dimethylallyltranstransferase , Carbon , Catalysis , Dimethylallyltranstransferase/chemistry , Dimethylallyltranstransferase/genetics , Dimethylallyltranstransferase/metabolism , Lipids , Peptides/chemistry , Terpenes
17.
Nat Commun ; 12(1): 3487, 2021 06 09.
Article in English | MEDLINE | ID: mdl-34108468

ABSTRACT

Fusicoccadiene synthase from Phomopsis amygdali (PaFS) is a unique bifunctional terpenoid synthase that catalyzes the first two steps in the biosynthesis of the diterpene glycoside Fusicoccin A, a mediator of 14-3-3 protein interactions. The prenyltransferase domain of PaFS generates geranylgeranyl diphosphate, which the cyclase domain then utilizes to generate fusicoccadiene, the tricyclic hydrocarbon skeleton of Fusicoccin A. Here, we use cryo-electron microscopy to show that the structure of full-length PaFS consists of a central octameric core of prenyltransferase domains, with the eight cyclase domains radiating outward via flexible linker segments in variable splayed-out positions. Cryo-electron microscopy and chemical crosslinking experiments additionally show that compact conformations can be achieved in which cyclase domains are more closely associated with the prenyltransferase core. This structural analysis provides a framework for understanding substrate channeling, since most of the geranylgeranyl diphosphate generated by the prenyltransferase domains remains on the enzyme for cyclization to form fusicoccadiene.


Subject(s)
Alkyl and Aryl Transferases/chemistry , Diterpenes/metabolism , Fungal Proteins/chemistry , Alkyl and Aryl Transferases/metabolism , Ascomycota/chemistry , Ascomycota/enzymology , Catalysis , Catalytic Domain , Cryoelectron Microscopy , Cyclization , Dimethylallyltranstransferase/chemistry , Dimethylallyltranstransferase/metabolism , Fungal Proteins/metabolism , Glycosides/biosynthesis , Lyases/chemistry , Lyases/metabolism , Multifunctional Enzymes , Polyisoprenyl Phosphates/metabolism , Protein Conformation
18.
Angew Chem Int Ed Engl ; 60(15): 8460-8465, 2021 04 06.
Article in English | MEDLINE | ID: mdl-33586286

ABSTRACT

Cyanobactins comprise a widespread group of peptide metabolites produced by cyanobacteria that are often diversified by post-translational prenylation. Several enzymes have been identified in cyanobactin biosynthetic pathways that carry out chemically diverse prenylation reactions, representing a resource for the discovery of post-translational alkylating agents. Here, genome mining was used to identify orphan cyanobactin prenyltransferases, leading to the isolation of tolypamide from the freshwater cyanobacterium Tolypothrix sp. The structure of tolypamide was confirmed by spectroscopic methods, degradation, and enzymatic total synthesis. Tolypamide is forward-prenylated on a threonine residue, representing an unprecedented post-translational modification. Biochemical characterization of the cognate enzyme TolF revealed a prenyltransferase with strict selectivity for forward O-prenylation of serine or threonine but with relaxed substrate selectivity for flanking peptide sequences. Since cyanobactin pathways often exhibit exceptionally broad substrate tolerance, these enzymes represent robust tools for synthetic biology.


Subject(s)
Bacterial Proteins/chemistry , Dimethylallyltranstransferase/chemistry , Peptides, Cyclic/chemistry , Bacterial Proteins/isolation & purification , Bacterial Proteins/metabolism , Cyanobacteria/enzymology , Dimethylallyltranstransferase/isolation & purification , Dimethylallyltranstransferase/metabolism , Molecular Structure , Peptides, Cyclic/metabolism , Threonine/chemistry , Threonine/metabolism
19.
Mol Biotechnol ; 63(4): 316-326, 2021 Apr.
Article in English | MEDLINE | ID: mdl-33565047

ABSTRACT

Prenylation of aromatic natural products by membrane-bound prenyltransferases (PTs) is an important biosynthesis step of many bioactive compounds. At present, only a few plant flavonoid-related PT genes have been functionally characterized, mainly due to the difficulties of expressing these membrane proteins. Rapid and effective methods to produce functional plant membrane proteins are thus indispensable. Here, we evaluated expression systems through cell-based and cell-free approaches to express Boesenbergia rotunda BrPT2 encoding a membrane-bound prenyltransferase. We attempted to express BrPT2 in Escherichia coli and tobacco plants but failed to detect this protein using the Western-blot technique, whereas an intact single band of 43 kDa was detected when BrPT2 was expressed using a cell-free protein synthesis system (PURE). Under in vitro enzymatic condition, the synthesized BrPT2 successfully catalyzed pinostrobin chalcone to pinostrobin. Molecular docking analysis showed that pinostrobin chalcone interacts with BrPT2 at two cavities: (1) the main binding site at the central cavity and (2) the allosteric binding site located away from the central cavity. Our findings suggest that cell-free protein synthesis could be an alternative for rapid production of valuable difficult-to-express membrane proteins.


Subject(s)
Dimethylallyltranstransferase/genetics , Dimethylallyltranstransferase/metabolism , Flavanones/metabolism , Zingiberaceae/enzymology , Binding Sites , Cell-Free System , Dimethylallyltranstransferase/chemistry , Gene Expression , Membrane Proteins/chemistry , Membrane Proteins/genetics , Membrane Proteins/metabolism , Models, Molecular , Molecular Docking Simulation , Molecular Weight , Plant Proteins/chemistry , Plant Proteins/genetics , Plant Proteins/metabolism , Protein Conformation , Zingiberaceae/genetics
20.
Commun Biol ; 4(1): 215, 2021 02 16.
Article in English | MEDLINE | ID: mdl-33594248

ABSTRACT

Some plant trans-1,4-prenyltransferases (TPTs) produce ultrahigh molecular weight trans-1,4-polyisoprene (TPI) with a molecular weight of over 1.0 million. Although plant-derived TPI has been utilized in various industries, its biosynthesis and physiological function(s) are unclear. Here, we identified three novel Eucommia ulmoides TPT isoforms-EuTPT1, 3, and 5, which synthesized TPI in vitro without other components. Crystal structure analysis of EuTPT3 revealed a dimeric architecture with a central hydrophobic tunnel. Mutation of Cys94 and Ala95 on the central hydrophobic tunnel no longer synthesizd TPI, indicating that Cys94 and Ala95 were essential for forming the dimeric architecture of ultralong-chain TPTs and TPI biosynthesis. A spatiotemporal analysis of the physiological function of TPI in E. ulmoides suggested that it is involved in seed development and maturation. Thus, our analysis provides functional and mechanistic insights into TPI biosynthesis and uncovers biological roles of TPI in plants.


Subject(s)
Dimethylallyltranstransferase/metabolism , Eucommiaceae/enzymology , Hemiterpenes/biosynthesis , Latex/biosynthesis , Plant Proteins/metabolism , Plants, Genetically Modified/enzymology , Dimethylallyltranstransferase/chemistry , Dimethylallyltranstransferase/genetics , Eucommiaceae/genetics , Hemiterpenes/chemistry , Latex/chemistry , Models, Molecular , Molecular Weight , Mutation , Plant Proteins/genetics , Plants, Genetically Modified/genetics , Protein Conformation , Structure-Activity Relationship
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