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1.
Org Lett ; 26(28): 5888-5892, 2024 Jul 19.
Artigo em Inglês | MEDLINE | ID: mdl-38976793

RESUMO

New diterpenoids are accessible from non-natural FPP derivatives as substrates for an enzymatic elongation cyclization cascade using the geranylgeranyl pyrophosphate synthase (GGPPS) from Streptomyces cyaneofuscatus and the spata-13,17-diene synthase (SpS) from Streptomyces xinghaiensis. This approach led to four new biotransformation products including three new cyclododecane cores and a macrocyclic ether. For the first time, a 1,12-terpene cyclization was observed when shifting the central olefinic double bond toward the geminial methyl groups creating a nonconjugated 1,4-diene.


Assuntos
Alquil e Aril Transferases , Dimetilaliltranstransferase , Diterpenos , Streptomyces , Diterpenos/química , Diterpenos/metabolismo , Dimetilaliltranstransferase/metabolismo , Dimetilaliltranstransferase/química , Streptomyces/enzimologia , Streptomyces/química , Alquil e Aril Transferases/metabolismo , Alquil e Aril Transferases/química , Estrutura Molecular , Ciclização , Fosfatos de Poli-Isoprenil/química , Fosfatos de Poli-Isoprenil/metabolismo , Biotransformação
2.
J Nat Prod ; 87(7): 1704-1713, 2024 Jul 26.
Artigo em Inglês | MEDLINE | ID: mdl-38990199

RESUMO

Fungal secondary metabolite (SM) biosynthetic gene clusters (BGCs) containing dimethylallyltryptophan synthases (DMATSs) produce structurally diverse prenylated indole alkaloids with wide-ranging activities that have vast potential as human therapeutics. To discover new natural products produced by DMATSs, we mined the Department of Energy Joint Genome Institute's MycoCosm database for DMATS-containing BGCs. We found a DMATS BGC in Aspergillus homomorphus CBS 101889, which also contains a nonribosomal peptide synthetase (NRPS). This BGC appeared to have a previously unreported combination of genes, which suggested the cluster might make novel SMs. We refactored this BGC with highly inducible promoters into the model fungus Aspergillus nidulans. The expression of this refactored BGC in A. nidulans resulted in the production of eight tryptophan-containing diketopiperazines, six of which are new to science. We have named them homomorphins A-F (2, 4-8). Perhaps even more intriguingly, to our knowledge, this is the first discovery of C4-prenylated tryptophan-containing diketopiperazines and their derivatives. In addition, the NRPS from this BGC is the first described that has the ability to promiscuously combine tryptophan with either of two different amino acids, in this case, l-valine or l-allo-isoleucine.


Assuntos
Aspergillus nidulans , Aspergillus , Dicetopiperazinas , Peptídeo Sintases , Triptofano , Triptofano/metabolismo , Triptofano/química , Dicetopiperazinas/química , Aspergillus nidulans/genética , Aspergillus nidulans/metabolismo , Aspergillus/química , Peptídeo Sintases/metabolismo , Peptídeo Sintases/genética , Estrutura Molecular , Família Multigênica , Alcaloides Indólicos/química , Alcaloides Indólicos/metabolismo , Alquil e Aril Transferases/metabolismo , Alquil e Aril Transferases/genética
3.
Nat Commun ; 15(1): 5940, 2024 Jul 15.
Artigo em Inglês | MEDLINE | ID: mdl-39009563

RESUMO

Eunicellane diterpenoids, containing a typical 6,10-bicycle, are bioactive compounds widely present in marine corals, but rarely found in bacteria and plants. The intrinsic macrocycle exhibits innate structural flexibility resulting in dynamic conformational changes. However, the mechanisms controlling flexibility remain unknown. The discovery of a terpene synthase, MicA, that is responsible for the biosynthesis of a nearly non-flexible eunicellane skeleton, enable us to propose a feasible theory about the flexibility in eunicellane structures. Parallel studies of all eunicellane synthases in nature discovered to date, including 2Z-geranylgeranyl diphosphate incubations and density functional theory-based Boltzmann population computations, reveale that a trans-fused bicycle with a 2Z-configuration alkene restricts conformational flexibility resulting in a nearly non-flexible eunicellane skeleton. The catalytic route and the enzymatic mechanism of MicA are also elucidated by labeling experiments, density functional theory calculations, structural analysis of the artificial intelligence-based MicA model, and mutational studies.


Assuntos
Alquil e Aril Transferases , Diterpenos , Alquil e Aril Transferases/metabolismo , Alquil e Aril Transferases/genética , Alquil e Aril Transferases/química , Diterpenos/metabolismo , Diterpenos/química , Fosfatos de Poli-Isoprenil/metabolismo , Fosfatos de Poli-Isoprenil/química , Modelos Moleculares
4.
Methods Enzymol ; 699: 1-23, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38942500

RESUMO

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.


Assuntos
Alquil e Aril Transferases , Microscopia Crioeletrônica , Penicillium , Penicillium/enzimologia , Alquil e Aril Transferases/química , Alquil e Aril Transferases/metabolismo , Alquil e Aril Transferases/isolamento & purificação , Microscopia Crioeletrônica/métodos , Diterpenos/metabolismo , Diterpenos/química , Proteínas Fúngicas/química , Proteínas Fúngicas/isolamento & purificação , Proteínas Fúngicas/metabolismo , Dimetilaliltranstransferase/metabolismo , Dimetilaliltranstransferase/química , Dimetilaliltranstransferase/genética , Dimetilaliltranstransferase/isolamento & purificação
5.
Methods Enzymol ; 699: 89-119, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38942517

RESUMO

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.


Assuntos
Alquil e Aril Transferases , Alquil e Aril Transferases/metabolismo , Alquil e Aril Transferases/química , Alquil e Aril Transferases/genética , Dimetilaliltranstransferase/metabolismo , Dimetilaliltranstransferase/química , Dimetilaliltranstransferase/genética , Diterpenos/metabolismo , Diterpenos/química , Ensaios Enzimáticos/métodos , Fosfatos de Poli-Isoprenil/metabolismo , Fosfatos de Poli-Isoprenil/química , Ciclização
6.
Methods Enzymol ; 699: 265-292, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38942507

RESUMO

Terpene Synthases (TPS) catalyze the formation of multicyclic, complex terpenes and terpenoids from linear substrates. Molecular docking is an important research tool that can further our understanding of TPS multistep mechanisms and guide enzyme design. Standard docking programs are not well suited to tackle the unique challenges of TPS, like the many chemical steps which form multiple stereo-centers, the weak dispersion interactions between the isoprenoid chain and the hydrophobic region of the active site, description of carbocation intermediates, and finding mechanistically meaningful sets of docked poses. To address these and other unique challenges, we developed the multistate, multiscale docking program EnzyDock and used it to study many TPS and other enzymes. In this review we discuss the unique challenges of TPS, the special features of EnzyDock developed to address these challenges and demonstrate its successful use in ongoing research on the bacterial TPS CotB2.


Assuntos
Alquil e Aril Transferases , Domínio Catalítico , Simulação de Acoplamento Molecular , Alquil e Aril Transferases/metabolismo , Alquil e Aril Transferases/química , Alquil e Aril Transferases/genética , Terpenos/metabolismo , Terpenos/química , Software , Proteínas de Bactérias/metabolismo , Proteínas de Bactérias/química , Proteínas de Bactérias/genética
7.
Methods Enzymol ; 699: 395-417, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38942512

RESUMO

Expression and purification of membrane-bound proteins remains a challenge and limits enzymology efforts, contributing to a substantial knowledge gap in the biochemical functions of many proteins found in nature. Accordingly, the study of bacterial UbiA terpene synthases (TSs) has been limited due to the experimental hurdles required to purify active enzymes for characterization in vitro. Previous work employed the use of microsomes or crude membrane fractions to test enzyme activity; however, these methods can be labor intensive, require access to an ultracentrifuge, or may not be suitable for all membrane-bound TSs. We detail here an alternative strategy for the in vivo expression and biochemical characterization of the membrane associated UbiA TSs by employing a precursor overproduction system in Escherichia coli.


Assuntos
Alquil e Aril Transferases , Escherichia coli , Escherichia coli/genética , Escherichia coli/metabolismo , Alquil e Aril Transferases/metabolismo , Alquil e Aril Transferases/genética , Proteínas de Bactérias/metabolismo , Proteínas de Bactérias/genética , Proteínas Recombinantes/metabolismo , Proteínas Recombinantes/genética , Proteínas Recombinantes/isolamento & purificação
8.
Chem Commun (Camb) ; 60(55): 7041-7044, 2024 Jul 04.
Artigo em Inglês | MEDLINE | ID: mdl-38904208

RESUMO

Two terpene synthases from the pleuromutilin producing fungus Clitopilus passeckerianus were functionally characterised. The first enzyme CpTS1 produces the new diterpene clitopilene with a novel 6-6-5-5 tetracyclic skeleton, while the second enzyme CpTS2 makes the new sesquiterpene isopentalenene. The CpTS1 reaction mechanism was studied in depth using experimental and theoretical approaches.


Assuntos
Alquil e Aril Transferases , Diterpenos , Alquil e Aril Transferases/metabolismo , Diterpenos/química , Diterpenos/metabolismo , Sesquiterpenos/química , Sesquiterpenos/metabolismo , Pleuromutilinas
9.
Biochem J ; 481(12): 779-791, 2024 Jun 19.
Artigo em Inglês | MEDLINE | ID: mdl-38829839

RESUMO

ent-Kaurene is a biosynthetic intermediate diterpene of phytohormone gibberellins, and is biosynthesized from geranylgeranyl diphosphate via ent-copalyl diphosphate (ent-CDP). The successive cyclization is catalyzed by two distinct diterpene synthases, ent-CDP synthase (ent-CPS) and ent-kaurene synthase (KS). Homologs of these diterpene synthase genes have been reported to be involved in the biosynthesis of specialized-metabolic diterpenoids for defense in several plant species, including rice (Oryza sativa). These diterpene synthases consist of three domains, αßγ domains. Active sites of ent-CPS exist at the interface of ß and γ domain, while those of KS are located within the α domain. We herein carried out domain-deletion experiments using several KSs and KS like enzymes (KSLs) to obtain insights into the roles of domains other than active-site domains. As previously reported in taxadiene synthase, deletion of γ or ßγ domains drastically decreased activities of specialized-metabolic OsKSL5, OsKSL8, OsKSL7 and OsKSL10 in O. sativa. However, unexpectedly, only α domains of several gibberellin-biosynthetic KSs, including OsKS1 in O. sativa, AtKS in Arabidopsis thaliana, TaKS in wheat (Triticum aestivum) and BdKS1 in Brachypodium distachyon, retained their original functions. Additionally, the specialized-metabolic OsKSL4, which is closely related to OsKS1, also functioned without its ßγ domains. Domain-swapping experiments showed that replacing ßγ domains in OsKSL7 with those from other KS/KSLs retained the OsKSL7 activity. Moreover, deletion of ßγ domains of bifunctional PpCPS/KS in moss (Physcomitrella patens) drastically impaired its KS-related activity. Thus, we demonstrate that monofunctional gibberellin-biosynthetic KSs are the unique diterpene synthases that retain their functions without ßγ domains.


Assuntos
Alquil e Aril Transferases , Giberelinas , Oryza , Proteínas de Plantas , Giberelinas/metabolismo , Alquil e Aril Transferases/metabolismo , Alquil e Aril Transferases/genética , Alquil e Aril Transferases/química , Oryza/enzimologia , Oryza/genética , Oryza/metabolismo , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , Proteínas de Plantas/química , Domínio Catalítico , Diterpenos do Tipo Caurano/metabolismo , Diterpenos do Tipo Caurano/química , Arabidopsis/genética , Arabidopsis/enzimologia , Arabidopsis/metabolismo , Diterpenos/metabolismo , Diterpenos/química , Domínios Proteicos , Catálise
10.
Methods Enzymol ; 699: 121-161, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38942501

RESUMO

The step catalyzed by terpene synthases is a well-recognized and significant bottleneck in engineered terpenoid bioproduction. Consequently, substantial efforts have been devoted towards increasing metabolic flux catalyzed by terpene synthases, employing strategies such as gene overexpression and protein engineering. Notably, numerous studies have demonstrated remarkable titer improvements by applying translational fusion, typically by fusing the terpene synthase with a prenyl diphosphate synthase that catalyzes the preceding step in the pathway. The main appeal of the translational fusion approach lies in its simplicity and orthogonality to other metabolic engineering tools. However, there is currently limited understanding of the underlying mechanism of flux enhancement, owing to the unpredictable and often protein-specific effects of translational fusion. In this chapter, we discuss practical considerations when engineering translationally fused terpene synthases, drawing insights from our experience and existing literature. We also provide detailed experimental workflows and protocols based on our previous work in budding yeast (Saccharomyces cerevisiae). Our intention is to encourage further research into the translational fusion of terpene synthases, anticipating that this will contribute mechanistic insights not only into the activity, behavior, and regulation of terpene synthases, but also of other enzymes.


Assuntos
Alquil e Aril Transferases , Engenharia Metabólica , Saccharomyces cerevisiae , Alquil e Aril Transferases/genética , Alquil e Aril Transferases/metabolismo , Engenharia Metabólica/métodos , Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/metabolismo , Proteínas Recombinantes de Fusão/genética , Proteínas Recombinantes de Fusão/metabolismo , Terpenos/metabolismo , Biossíntese de Proteínas , Engenharia de Proteínas/métodos
11.
Methods Enzymol ; 699: 187-205, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38942503

RESUMO

Terpene synthases (TS) transform achiral prenyl substrates into elaborate hydrocarbon scaffolds with multiple stereocenters through a series of cyclization reactions and carbon skeleton rearrangements. The reactions involve high-energy carbocation intermediates that must be stabilized by the enzyme along the pathway to the desired products. A variety of substrate analogs have been used to investigate TS mechanism. This article will focus on a class of analogs which strategically replace hydrogen atoms with fluorine to inhibit the generation of specific carbocation intermediates. We will explore the synthesis and use of the analogs to study TS mechanism.


Assuntos
Alquil e Aril Transferases , Alquil e Aril Transferases/metabolismo , Alquil e Aril Transferases/química , Alquil e Aril Transferases/genética , Especificidade por Substrato , Ciclização , Terpenos/metabolismo , Terpenos/química
12.
Methods Enzymol ; 699: 207-230, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38942504

RESUMO

Chemoenzymatic synthesis of non-natural terpenes using the promiscuous activity of terpene synthases allows for the expansion of the chemical space of terpenoids with potentially new bioactivities. In this report, we describe protocols for the preparation of a novel aphid attractant, (S)-14,15-dimethylgermacrene D, by exploiting the promiscuity of (S)-germacrene D synthase from Solidago canadensis and using an engineered biocatalytic route to convert prenols to terpenoids. The method uses a combination of five enzymes to carry out the preparation of terpenoid semiochemicals in two steps: (1) diphosphorylation of five or six carbon precursors (prenol, isoprenol and methyl-isoprenol) catalyzed by Plasmodium falciparum choline kinase and Methanocaldococcus jannaschii isopentenyl phosphate kinase to form DMADP, IDP and methyl-IDP, and (2) chain elongation and cyclization catalyzed by Geobacillus stearothermophilus (2E,6E)-farnesyl diphosphate synthase and S. canadensis (S)-germacrene D synthase to produce (S)-germacrene D and (S)-14,15-dimethylgermacrene D. Using this method, new non-natural terpenoids are readily accessible and the approach can be adopted to produce different terpene analogs and terpenoid derivatives with potential novel applications.


Assuntos
Alquil e Aril Transferases , Terpenos , Terpenos/metabolismo , Terpenos/química , Alquil e Aril Transferases/metabolismo , Alquil e Aril Transferases/química , Alquil e Aril Transferases/genética , Plasmodium falciparum/enzimologia , Animais , Biocatálise , Especificidade por Substrato , Afídeos/enzimologia
13.
Methods Enzymol ; 699: 231-263, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38942505

RESUMO

Terpenes are a diverse class of natural products which have long been sought after for their chemical properties as medicine, perfumes, and for food flavoring. Computational docking studies of terpene mechanisms have been a challenge due to the lack of strong directing groups which many docking programs rely on. In this chapter, we dive into our computational method Terdockin (Terpene-Docking) as a successful methodology in modeling terpene synthase mechanisms. This method could also be used as inspiration for any multi-ligand docking project.


Assuntos
Alquil e Aril Transferases , Domínio Catalítico , Simulação de Acoplamento Molecular , Terpenos , Simulação de Acoplamento Molecular/métodos , Alquil e Aril Transferases/química , Alquil e Aril Transferases/metabolismo , Terpenos/química , Terpenos/metabolismo , Ligantes
14.
Methods Enzymol ; 699: 163-186, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38942502

RESUMO

The intricate mechanisms in the biosynthesis of terpenes belong to the most challenging problems in natural product chemistry. Methods to address these problems include the structure-based site-directed mutagenesis of terpene synthases, computational approaches, and isotopic labeling experiments. The latter approach has a long tradition in biosynthesis studies and has recently experienced a revival, after genome sequencing enabled rapid access to biosynthetic genes and enzymes. Today, this allows for a combined approach in which isotopically labeled substrates can be incubated with recombinant terpene synthases. These clearly defined reaction setups can give detailed mechanistic insights into the reactions catalyzed by terpene synthases, and recent developments have substantially deepened our understanding of terpene biosynthesis. This chapter will discuss the state of the art and introduce some of the most important methods that make use of isotopic labelings in mechanistic studies on terpene synthases.


Assuntos
Alquil e Aril Transferases , Marcação por Isótopo , Terpenos , Alquil e Aril Transferases/metabolismo , Alquil e Aril Transferases/genética , Alquil e Aril Transferases/química , Marcação por Isótopo/métodos , Terpenos/metabolismo , Terpenos/química , Mutagênese Sítio-Dirigida/métodos , Proteínas Recombinantes/metabolismo , Proteínas Recombinantes/genética , Proteínas Recombinantes/química
15.
Methods Enzymol ; 699: 311-341, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38942509

RESUMO

Terpenes constitute one of the largest family of natural products with potent applications as renewable platform chemicals and medicines. The low activity, selectivity and stability displayed by terpene biosynthetic machineries can constitute an obstacle towards achieving expedient biosynthesis of terpenoids in processes that adhere to the 12 principles of green chemistry. Accordingly, engineering of terpene synthase enzymes is a prerequisite for industrial biotechnology applications, but obstructed by their complex catalysis that depend on reactive carbocationic intermediates that are prone to undergo bifurcation mechanisms. Rational redesign of terpene synthases can be tedious and requires high-resolution structural information, which is not always available. Furthermore, it has proven difficult to link sequence space of terpene synthase enzymes to specific product profiles. Herein, the author shows how ancestral sequence reconstruction (ASR) can favorably be used as a protein engineering tool in the redesign of terpene synthases without the need of a structure, and without excessive screening. A detailed workflow of ASR is presented along with associated limitations, with a focus on applying this methodology on terpene synthases. From selected examples of both class I and II enzymes, the author advocates that ancestral terpene cyclases constitute valuable assets to shed light on terpene-synthase catalysis and in enabling accelerated biosynthesis.


Assuntos
Alquil e Aril Transferases , Engenharia de Proteínas , Terpenos , Alquil e Aril Transferases/metabolismo , Alquil e Aril Transferases/genética , Alquil e Aril Transferases/química , Terpenos/metabolismo , Terpenos/química , Engenharia de Proteínas/métodos , Evolução Molecular
16.
Methods Enzymol ; 699: 293-310, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38942508

RESUMO

Plants are prolific producers of terpenoids. Terpenoid biosynthesis is initiated by terpene synthases (TPS). In plants, two types of terpenes synthase genes are recognized: typical plant TPS genes and microbial-terpene synthase like-genes (MTPSL). While TPS genes are ubiquitous in land plants, MTPSL genes appear to be restricted to non-seed land plants. Evolutionarily, TPS genes are specific to land plants, whereas MTPSL genes have related counterparts in other organisms, especially fungi and bacteria. The presence of microbial type TPS in plants, fungi and bacteria, with the latter two often being associated with plants, poses a challenge in accurately identifying bona fide MTPSL genes in plants. In this chapter, we present bioinformatic procedures designed to identify MTPSL genes in sequenced plant genomes and/or transcriptomes. Additionally, we outline validation methods for confirming the identified microbial-type TPS genes as genuine plant genes. The method described in this chapter can also be adopted to analyze microbial type TPS in organisms other than plants.


Assuntos
Alquil e Aril Transferases , Biologia Computacional , Plantas , Alquil e Aril Transferases/genética , Alquil e Aril Transferases/metabolismo , Biologia Computacional/métodos , Plantas/genética , Plantas/microbiologia , Terpenos/metabolismo , Filogenia , Genes de Plantas , Proteínas de Plantas/genética , Proteínas de Plantas/metabolismo , Bactérias/genética , Bactérias/enzimologia
17.
Methods Enzymol ; 699: 419-445, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38942513

RESUMO

Pyr4-family terpene cyclases are noncanonical transmembrane class II terpene cyclases that catalyze a variety of cyclization reactions in the biosynthesis of microbial terpenoids, such as meroterpenoids. However, although these cyclases are widely distributed in microorganisms, their three-dimensional structures have not been determined, possibly due to the transmembrane locations of these enzymes. In this chapter, we describe procedures for the functional analysis of transmembrane terpene cyclases based on their model structures generated using AlphaFold2. We used AdrI, the Pyr4-family terpene cyclase required for the biosynthesis of andrastin A and its homologs, as an example.


Assuntos
Terpenos , Terpenos/metabolismo , Terpenos/química , Proteínas Fúngicas/metabolismo , Ciclização , Modelos Moleculares , Fungos/enzimologia , Fungos/metabolismo , Alquil e Aril Transferases
18.
Methods Enzymol ; 699: 343-371, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38942510

RESUMO

Octocorals are the most prolific source of terpenoids in the marine environment, with more than 4000 different compounds known from the phylum to date. However, the biochemical and genetic origin of their production remained elusive until recent studies showed that octocorals encode genes responsible for the biosynthesis of terpenoids in their own chromosomal DNA rather than from microbial symbionts as originally proposed. The identified coral genes include those encoding a new group of class I terpene cyclases (TCs) clustered among other candidate classes of tailoring enzymes. Phylogenetic analyses established octocoral TCs as a monophyletic clade, distinct from TCs of plants, bacteria, and other organisms. The newly discovered group of TCs appears to be ubiquitous in octocorals and is evolutionarily ancient. Given the recent discovery of octocoral terpenoid biochemistry and only limited genomic data presently available, there is substantial potential for discovering new biosynthetic pathways from octocorals for terpene production. The following chapter outlines practical experimental procedures for octocoral DNA and RNA extraction, genome and transcriptome assembly and mining, TC cloning and gene expression, protein purification, and in vitro analyses.


Assuntos
Antozoários , Terpenos , Antozoários/enzimologia , Antozoários/genética , Antozoários/metabolismo , Terpenos/metabolismo , Animais , Filogenia , Clonagem Molecular/métodos , Alquil e Aril Transferases/genética , Alquil e Aril Transferases/metabolismo
19.
Methods Enzymol ; 699: 373-394, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38942511

RESUMO

Coral terpenes are important molecules with numerous applications. Here, we describe a robust and simple method to produce coral terpene scaffolds at scale. As an example of the approach, here we discover, express, and characterize further klysimplexin R synthases, expanding the known enzymology of soft coral terpene cyclases. We hope that the underlying method described will enable widespread basic research into the functions of coral terpenes and their biosynthetic genes, as well as the commercial development of biomedically and technologically important molecules.


Assuntos
Antozoários , Terpenos , Antozoários/enzimologia , Antozoários/metabolismo , Antozoários/genética , Terpenos/metabolismo , Terpenos/química , Animais , Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/metabolismo , Escherichia coli/genética , Escherichia coli/metabolismo , Alquil e Aril Transferases/metabolismo , Alquil e Aril Transferases/genética
20.
Methods Enzymol ; 699: 477-512, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38942515

RESUMO

Large terpene synthases (large-TSs) are a new family of TSs. The first large-TS discovered was from Bacillus subtilis (BsuTS), which is involved in the biosynthesis of a C35 sesquarterpene. Large-TSs are the only enzymes that enable the biosynthesis of sesquarterpenes and do not share any sequence homology with canonical Class I and II TSs. Thus, the investigation of large-TSs is promising for expanding the chemical space in the terpene field. In this chapter, we describe the experimental methods used for identifying large-TSs, as well as their functional and structural analyses. Additionally, several enzymes related to the biosynthesis of large-TS substrates have been described.


Assuntos
Alquil e Aril Transferases , Bacillus subtilis , Alquil e Aril Transferases/metabolismo , Alquil e Aril Transferases/química , Alquil e Aril Transferases/genética , Bacillus subtilis/enzimologia , Proteínas de Bactérias/química , Proteínas de Bactérias/metabolismo , Proteínas de Bactérias/genética , Terpenos/metabolismo , Terpenos/química , Especificidade por Substrato
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