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1.
Food Res Int ; 190: 114636, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38945625

ABSTRACT

There has been growing interest in the use of mixed cultures comprised of Oenococcus oeni and Saccharomyces cerevisiae to produce wine with local style and typicality. This study has investigated the influence of the inoculation protocol of O. oeni on the fermentation kinetics and aromatic profile of Chardonnay wine. The one selected autochthonous O. oeni strain (ZX-1) inoculated at different stages of the alcoholic fermentation process successfully completed malolactic fermentation (MLF). Co-inoculum of S. cerevisiae and O. oeni enabled simultaneous alcoholic fermentation and MLF, leading to at least a 30 % reduction in the total fermentation time when compared to the sequential inoculation process, which was attributed to the lower ethanol stress. Meanwhile, co-inoculum stimulated the accumulation of volatile aroma compounds in Chardonnay wine. In particular, the mixed modality where the O. oeni strain ZX-1 was inoculated 48 h after S. cerevisiae allowed higher levels of terpenes, acetates, short-chain, and medium-chain fatty acid ethyl esters to be produced, which may result in the enhanced floral and fruity attributes of wine. Aroma reconstitution and omission models analysis revealed that the accumulation of linalool, geraniol, isoamyl acetate, ethyl hexanoate, and ethyl caprylate during the mixed fermentation process enhanced the stone fruit, tropical fruit, and citrus aromas in Chardonnay wine. Therefore, the simultaneous fermentation of S. cerevisiae and autochthonous O. oeni ZX-1 has a positive effect on MLF and contributes to producing wines with distinctive style.


Subject(s)
Fermentation , Odorants , Oenococcus , Saccharomyces cerevisiae , Wine , Wine/microbiology , Wine/analysis , Saccharomyces cerevisiae/metabolism , Oenococcus/metabolism , Odorants/analysis , Volatile Organic Compounds/analysis , Volatile Organic Compounds/metabolism , Ethanol/metabolism , Acetates/metabolism , Terpenes/metabolism , Food Microbiology
2.
Science ; 384(6703): 1453-1460, 2024 Jun 28.
Article in English | MEDLINE | ID: mdl-38870272

ABSTRACT

Insects detect and discriminate a diverse array of chemicals using odorant receptors (ORs), which are ligand-gated ion channels comprising a divergent odorant-sensing OR and a conserved odorant receptor co-receptor (Orco). In this work, we report structures of the ApOR5-Orco heterocomplex from the pea aphid Acyrthosiphon pisum alone and bound to its known activating ligand, geranyl acetate. In these structures, three ApOrco subunits serve as scaffold components that cannot bind the ligand and remain relatively unchanged. Upon ligand binding, the pore-forming helix S7b of ApOR5 shifts outward from the central pore axis, causing an asymmetrical pore opening for ion influx. Our study provides insights into odorant recognition and channel gating of the OR-Orco heterocomplex and offers structural resources to support development of innovative insecticides and repellents for pest control.


Subject(s)
Acetates , Aphids , Insect Proteins , Receptors, Odorant , Receptors, Odorant/chemistry , Receptors, Odorant/metabolism , Receptors, Odorant/genetics , Animals , Insect Proteins/chemistry , Insect Proteins/metabolism , Insect Proteins/genetics , Aphids/chemistry , Acetates/chemistry , Acetates/metabolism , Ligands , Terpenes/chemistry , Terpenes/metabolism , Odorants/analysis , Protein Subunits/chemistry , Protein Subunits/metabolism , Ion Channel Gating , Cryoelectron Microscopy , Acyclic Monoterpenes
3.
ACS Synth Biol ; 13(6): 1647-1662, 2024 Jun 21.
Article in English | MEDLINE | ID: mdl-38860708

ABSTRACT

Monoterpenoids are an important subclass of terpenoids that play important roles in the energy, cosmetics, pharmaceuticals, and fragrances fields. With the development of biotechnology, microbial synthesis of monoterpenoids has received great attention. Yeasts such Saccharomyces cerevisiae and Yarrowia lipolytica are emerging as potential hosts for monoterpenoids production because of unique advantages including rapid growth cycles, mature gene editing tools, and clear genetic background. Recently, advancements in metabolic engineering and fermentation engineering have significantly enhanced the accumulation of monoterpenoids in cell factories. First, this review introduces the biosynthetic pathway of monoterpenoids and comprehensively summarizes the latest production strategies, which encompass enhancing precursor flux, modulating the expression of rate-limited enzymes, suppressing competitive pathway flux, mitigating cytotoxicity, optimizing substrate utilization, and refining the fermentation process. Subsequently, this review introduces four representative monoterpenoids. Finally, we outline the future prospects for efficient construction cell factories tailored for the production of monoterpenoids and other terpenoids.


Subject(s)
Metabolic Engineering , Monoterpenes , Saccharomyces cerevisiae , Yarrowia , Yarrowia/metabolism , Yarrowia/genetics , Metabolic Engineering/methods , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/genetics , Monoterpenes/metabolism , Fermentation , Biosynthetic Pathways/genetics , Terpenes/metabolism , Gene Editing/methods
4.
J Agric Food Chem ; 72(25): 14255-14263, 2024 Jun 26.
Article in English | MEDLINE | ID: mdl-38867497

ABSTRACT

The addition of the O-linked N-acetylglucosamine (O-GlcNAc) is a significant modification for active molecules, such as proteins, carbohydrates, and natural products. However, the synthesis of terpenoid glycoside derivatives decorated with GlcNAc remains a challenging task due to the absence of glycosyltransferases, key enzymes for catalyzing the transfer of GlcNAc to terpenoids. In this study, we demonstrated that the enzyme mutant UGT74AC1T79Y/L48M/R28H/L109I/S15A/M76L/H47R efficiently transferred GlcNAc from uridine diphosphate (UDP)-GlcNAc to a variety of terpenoids. This powerful enzyme was employed to synthesize GlcNAc-decorated derivatives of terpenoids, including mogrol, steviol, andrographolide, protopanaxadiol, glycyrrhetinic acid, ursolic acid, and betulinic acid for the first time. To unravel the mechanism of UDP-GlcNAc recognition, we determined the X-ray crystal structure of the inactivated mutant UGT74AC1His18A/Asp111A in complex with UDP-GlcNAc at a resolution of 1.66 Å. Through molecular dynamic simulation and activity analysis, we revealed the molecular mechanism and catalytically important amino acids directly involved in the recognition of UDP-GlcNAc. Overall, this study not only provided a potent biocatalyst capable of glycodiversifying natural products but also elucidated the structural basis for UDP-GlcNAc recognition by glycosyltransferases.


Subject(s)
Acetylglucosamine , Glycosides , Glycosyltransferases , Terpenes , Acetylglucosamine/chemistry , Acetylglucosamine/metabolism , Glycosides/chemistry , Glycosides/metabolism , Glycosyltransferases/metabolism , Glycosyltransferases/chemistry , Glycosyltransferases/genetics , Terpenes/chemistry , Terpenes/metabolism , Plant Proteins/chemistry , Plant Proteins/metabolism , Plant Proteins/genetics , Biocatalysis
5.
Sheng Wu Gong Cheng Xue Bao ; 40(6): 1661-1693, 2024 Jun 25.
Article in Chinese | MEDLINE | ID: mdl-38914485

ABSTRACT

Terpenoids are the one of most abundant natural products. With diverse varieties and biological activities, they are widely used in the food, medicine, chemical industry, and novel fuels. However, the conventional methods such as plant extraction and chemical synthesis cannot meet the current market demand for terpenoids. Efficient microbial cell factories, especially engineered Saccharomyces cerevisiae strains, have been constructed for the industrial production of terpenoids. In recent years, researchers have constructed multiple S. cerevisiae strains with increased yield and productivity via approaches of synthetic biology and metabolic engineering. This paper reviews the recent progress in the biosynthesis of terpenoids in S. cerevisiae cells and summarizes a variety of metabolic engineering strategies for the production of terpenoids in S. cerevisiae. These strategies include the construction and optimization of metabolic pathways, the mining and modification of key enzymes, the regeneration of cofactors, the engineering of cell localization and cell efflux, and the improvement of cell tolerance. Our review will provide information and strategies for the effective biosynthesis of terpenoids in S. cerevisiae.


Subject(s)
Metabolic Engineering , Saccharomyces cerevisiae , Terpenes , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/genetics , Terpenes/metabolism , Metabolic Engineering/methods , Synthetic Biology , Metabolic Networks and Pathways
6.
Int J Mol Sci ; 25(11)2024 May 29.
Article in English | MEDLINE | ID: mdl-38892106

ABSTRACT

This research focuses on the target deconvolution of the natural compound myrianthic acid, a triterpenoid characterized by an ursane skeleton isolated from the roots of Myrianthus arboreus and from Oenothera maritima Nutt. (Onagraceae), using MS-based chemical proteomic techniques. Application of drug affinity responsive target stability (DARTS) and targeted-limited proteolysis coupled to mass spectrometry (t-LiP-MS) led to the identification of the enzyme fatty acid synthase (FAS) as an interesting macromolecular counterpart of myrianthic acid. This result, confirmed by comparison with the natural ursolic acid, was thoroughly investigated and validated in silico by molecular docking, which gave a precise picture of the interactions in the MA/FAS complex. Moreover, biological assays showcased the inhibitory activity of myrianthic acid against the FAS enzyme, most likely related to its antiproliferative activity towards tumor cells. Given the significance of FAS in specific pathologies, especially cancer, the myrianthic acid structural moieties could serve as a promising reference point to start the potential development of innovative approaches in therapy.


Subject(s)
Molecular Docking Simulation , Proteomics , Humans , Proteomics/methods , Fatty Acid Synthases/metabolism , Fatty Acid Synthases/chemistry , Fatty Acid Synthases/antagonists & inhibitors , Triterpenes/pharmacology , Triterpenes/chemistry , Triterpenes/metabolism , Antineoplastic Agents/pharmacology , Antineoplastic Agents/chemistry , Mass Spectrometry , Cell Line, Tumor , Cell Proliferation/drug effects , Terpenes/chemistry , Terpenes/pharmacology , Terpenes/metabolism
7.
BMC Genomics ; 25(1): 593, 2024 Jun 12.
Article in English | MEDLINE | ID: mdl-38867153

ABSTRACT

BACKGROUND: Terpenes are important components of plant aromas, and terpene synthases (TPSs) are the key enzymes driving terpene diversification. In this study, we characterized the volatile terpenes in five different Chrysanthemum nankingense tissues. In addition, genome-wide identification and expression analysis of TPS genes was conducted utilizing an improved chromosome-scale genome assembly and tissue-specific transcriptomes. The biochemical functions of three representative TPSs were also investigated. RESULTS: We identified tissue-specific volatile organic compound (VOC) and volatile terpene profiles. The improved Chrysanthemum nankingense genome assembly was high-quality, including a larger assembled size (3.26 Gb) and a better contig N50 length (3.18 Mb) compared to the old version. A total of 140 CnTPS genes were identified, with the majority representing the TPS-a and TPS-b subfamilies. The chromosomal distribution of these TPS genes was uneven, and 26 genes were included in biosynthetic gene clusters. Closely-related Chrysanthemum taxa were also found to contain diverse TPS genes, and the expression profiles of most CnTPSs were tissue-specific. The three investigated CnTPS enzymes exhibited versatile activities, suggesting multifunctionality. CONCLUSIONS: We systematically characterized the structure and diversity of TPS genes across the Chrysanthemum nankingense genome, as well as the potential biochemical functions of representative genes. Our results provide a basis for future studies of terpene biosynthesis in chrysanthemums, as well as for the breeding of improved chrysanthemum varieties.


Subject(s)
Alkyl and Aryl Transferases , Chrysanthemum , Genome, Plant , Multigene Family , Terpenes , Alkyl and Aryl Transferases/genetics , Alkyl and Aryl Transferases/metabolism , Chrysanthemum/genetics , Chrysanthemum/enzymology , Terpenes/metabolism , Phylogeny , Volatile Organic Compounds/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Transcriptome
8.
Nat Commun ; 15(1): 4925, 2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38858373

ABSTRACT

Terpene synthesis stands at the forefront of modern synthetic chemistry and represents the state-of-the-art in the chemist's toolbox. Notwithstanding, these endeavors are inherently tied to the current availability of natural cyclic building blocks. Addressing this limitation, the stereocontrolled cyclization of abundant unbiased linear terpenes emerges as a valuable tool, which is still difficult to achieve with chemical catalysts. In this study, we showcase the remarkable capabilities of squalene-hopene cyclases (SHCs) in the chemoenzymatic synthesis of head-to-tail-fused terpenes. By combining engineered SHCs and a practical reaction setup, we generate ten chiral scaffolds with >99% ee and de, at up to decagram scale. Our mechanistic insights suggest how cyclodextrin encapsulation of terpenes may influence the performance of the membrane-bound enzyme. Moreover, we transform the chiral templates to valuable (mero)-terpenes using interdisciplinary synthetic methods, including a catalytic ring-contraction of enol-ethers facilitated by cooperative iodine/lipase catalysis.


Subject(s)
Biocatalysis , Terpenes , Cyclization , Terpenes/metabolism , Terpenes/chemistry , Stereoisomerism , Intramolecular Transferases/metabolism , Intramolecular Transferases/genetics , Intramolecular Transferases/chemistry , Cyclodextrins/chemistry , Cyclodextrins/metabolism
9.
Int J Mol Sci ; 25(11)2024 May 21.
Article in English | MEDLINE | ID: mdl-38891770

ABSTRACT

Terpene aroma compounds are key quality attributes of postharvest Torreya grandis nuts, contributing to their commercial value. However, terpene biosynthesis and regulatory networks in different T. grandis cvs. are still poorly understood. Here, chief cvs. 'Xi Fei' and 'Xiangya Fei' were investigated for their differences in terpene biosynthesis and gene expression levels during postharvest ripening using headspace solid-phase microextraction (HS-SPME) coupled with gas chromatography-mass spectrometry (GC-MS) and transcriptomic datasets. A total of 28 and 22 aroma compounds were identified in 'Xi Fei' and 'Xiangya Fei', respectively. Interestingly, differences in aroma composition between the two cvs. were mostly attributed to D-limonene and α-pinene levels as key determinants in Torreya nuts' flavor. Further, transcriptome profiling, correlation analysis, and RT-qPCR annotated two novel genes, TgTPS1 in 'Xi Fei' and TgTPS2 in 'Xiangya Fei', involved in terpene biosynthesis. In addition, six transcription factors (TFs) with comparable expression patterns to TgTPS1 and four TFs to TgTPS2 were identified via correlation analysis of a volatile and transcriptome dataset to be involved in terpene biosynthesis. Our study provides novel insight into terpene biosynthesis and its regulation at the molecular level in T. grandis nut and presents a valuable reference for metabolic engineering and aroma improvement in this less explored nut.


Subject(s)
Gas Chromatography-Mass Spectrometry , Gene Expression Profiling , Gene Expression Regulation, Plant , Terpenes , Terpenes/metabolism , Gas Chromatography-Mass Spectrometry/methods , Gene Expression Profiling/methods , Transcriptome , Plant Proteins/genetics , Plant Proteins/metabolism , Odorants/analysis
10.
Ecotoxicol Environ Saf ; 280: 116545, 2024 Jul 15.
Article in English | MEDLINE | ID: mdl-38850709

ABSTRACT

Isoprenoid metabolism and its derivatives took part in photosynthesis, growth regulation, signal transduction, and plant defense to biotic and abiotic stresses. However, how aluminum (Al) stress affects the isoprenoid metabolism and whether isoprenoid metabolism plays a vital role in the Citrus plants in coping with Al stress remain unclear. In this study, we reported that Al-treatment-induced alternation in the volatilization rate of monoterpenes (α-pinene, ß-pinene, limonene, α-terpinene, γ-terpinene and 3-carene) and isoprene were different between Citrus sinensis (Al-tolerant) and C. grandis (Al-sensitive) leaves. The Al-induced decrease of CO2 assimilation, maximum quantum yield of primary PSII photochemistry (Fv/Fm), the lower contents of glucose and starch, and the lowered activities of enzymes involved in the mevalonic acid (MVA) pathway and 2-C-methyl-D-erythritol 4-phosphate (MEP) pathway might account for the different volatilization rate of isoprenoids. Furthermore, the altered transcript levels of genes related to isoprenoid precursors and/or derivatives metabolism, such as geranyl diphosphate (GPP) synthase (GPPS) in GPP biosynthesis, geranylgeranyl diphosphate synthase (GGPPS), chlorophyll synthase (CHS) and GGPP reductase (GGPPR) in chlorophyll biosynthesis, limonene synthase (LS) and α-pinene synthase (APS) in limonene and α-pinene synthesis, respectively, might be responsible for the different contents of corresponding products in C. grandis and C. sinensis. Our data suggested that isoprenoid metabolism was involved in Al tolerance response in Citrus, and the alternation of some branches of isoprenoid metabolism could confer different Al-tolerance to Citrus species.


Subject(s)
Aluminum , Bicyclic Monoterpenes , Citrus , Limonene , Photosynthesis , Plant Leaves , Terpenes , Aluminum/toxicity , Terpenes/metabolism , Citrus/metabolism , Citrus/drug effects , Limonene/metabolism , Photosynthesis/drug effects , Bicyclic Monoterpenes/metabolism , Plant Leaves/metabolism , Plant Leaves/drug effects , Stress, Physiological/drug effects , Monoterpenes/metabolism , Hemiterpenes/metabolism , Cyclohexenes/metabolism , Sugar Phosphates/metabolism , Butadienes/metabolism , Erythritol/analogs & derivatives , Erythritol/metabolism , Mevalonic Acid/metabolism , Cyclohexane Monoterpenes , Citrus sinensis/metabolism , Citrus sinensis/drug effects , Citrus sinensis/genetics , Chlorophyll/metabolism , Alkyl and Aryl Transferases/metabolism , Alkyl and Aryl Transferases/genetics , Volatilization
11.
Nat Commun ; 15(1): 5303, 2024 Jun 21.
Article in English | MEDLINE | ID: mdl-38906898

ABSTRACT

The methylerythritol phosphate (MEP) pathway is responsible for biosynthesis of the precursors of isoprenoid compounds in eubacteria and plastids. It is a metabolic alternative to the well-known mevalonate pathway for isoprenoid production found in archaea and eukaryotes. Recently, a role for the MEP pathway in oxidative stress detection, signalling, and response has been identified. This role is executed in part through the unusual cyclic intermediate, methylerythritol cyclodiphosphate (MEcDP). We postulate that this response is triggered through the oxygen sensitivity of the MEP pathway's terminal iron-sulfur (Fe-S) cluster enzymes. MEcDP is the substrate of IspG, the first Fe-S cluster enzyme in the pathway; it accumulates under oxidative stress conditions and acts as a signalling molecule. It may also act as an antioxidant. Furthermore, evidence is emerging for a broader and highly nuanced role of the MEP pathway in oxidative stress responses, implemented through a complex system of differential regulation and sensitivity at numerous nodes in the pathway. Here, we explore the evidence for such a role (including the contribution of the Fe-S cluster enzymes and different pathway metabolites, especially MEcDP), the evolutionary implications, and the many questions remaining about the behaviour of the MEP pathway in the presence of oxidative stress.


Subject(s)
Erythritol , Oxidative Stress , Sugar Phosphates , Erythritol/metabolism , Erythritol/analogs & derivatives , Sugar Phosphates/metabolism , Iron-Sulfur Proteins/metabolism , Signal Transduction , Terpenes/metabolism
12.
BMC Genomics ; 25(1): 578, 2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38858635

ABSTRACT

BACKGROUND: Rose myrtle (Rhodomyrtus tomentosa (Ait.) Hassk), is an evergreen shrub species belonging to the family Myrtaceae, which is enriched with bioactive volatiles (α-pinene and ß-caryophyllene) with medicinal and industrial applications. However, the mechanism underlying the volatile accumulation in the rose myrtle is still unclear. RESULTS: Here, we present a chromosome-level genomic assembly of rose myrtle (genome size = 466 Mb, scaffold N50 = 43.7 Mb) with 35,554 protein-coding genes predicted. Through comparative genomic analysis, we found that gene expansion and duplication had a potential contribution to the accumulation of volatile substances. We proposed that the action of positive selection was significantly involved in volatile accumulation. We identified 43 TPS genes in R. tomentosa. Further transcriptomic and TPS gene family analyses demonstrated that the distinct gene subgroups of TPS may contribute greatly to the biosynthesis and accumulation of different volatiles in the Myrtle family of shrubs and trees. The results suggested that the diversity of TPS-a subgroups led to the accumulation of special sesquiterpenes in different plants of the Myrtaceae family. CONCLUSIONS: The high quality chromosome-level rose myrtle genome and the comparative analysis of TPS gene family open new avenues for obtaining a higher commercial value of essential oils in medical plants.


Subject(s)
Chromosomes, Plant , Evolution, Molecular , Genome, Plant , Genomics , Myrtaceae , Terpenes , Terpenes/metabolism , Genomics/methods , Myrtaceae/genetics , Myrtaceae/metabolism , Chromosomes, Plant/genetics , Phylogeny , Multigene Family
13.
Plant Physiol Biochem ; 212: 108754, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38824693

ABSTRACT

Ginkgo biloba L. is a relict plant endemic to China that is commonly considered a "living fossil". It contains unique medicinal compounds that play important roles in its response to various stresses and help maintain human health. Ginkgo terpenoids are known to be important active ingredients but have received less attention than flavonoids. Hence, this review focuses on recent progress in research on the pharmacological effects of ginkgo terpenoid and the bioactivities of different terpenoid monomers. Many key structural genes, enzyme-encoding genes, transcription factors, and noncoding RNAs involved in the ginkgo terpenoid pathway were identified. Finally, many external factors (ecological factors, hormones, etc.) that regulate the biosynthesis and metabolism of terpenoids were proposed. All these findings improve the understanding of the biosynthesis, accumulation, and medicinal functions of terpenoids. Finally, this review includes an in-depth discussion regarding the limitations of terpenoid-related studies and potential future research directions.


Subject(s)
Ginkgo biloba , Terpenes , Ginkgo biloba/metabolism , Ginkgo biloba/genetics , Terpenes/metabolism , Gene Expression Regulation, Plant
14.
Chem Pharm Bull (Tokyo) ; 72(6): 524-528, 2024.
Article in English | MEDLINE | ID: mdl-38825452

ABSTRACT

The biosynthetic pathways of natural products are complicated, and it is difficult to fully elucidate their details using experimental chemistry alone. In recent years, efforts have been made to elucidate the biosynthetic reaction mechanisms by combining computational and experimental methods. In this review, we will discuss the biosynthetic studies using computational chemistry for various terpene compounds such as cyclooctatin, sesterfisherol, quiannulatene, trichobrasilenol, asperterpenol, preasperterpenoid, spiroviolene, and mangicol.


Subject(s)
Biological Products , Terpenes , Biological Products/chemistry , Biological Products/metabolism , Terpenes/chemistry , Terpenes/metabolism , Computational Chemistry , Molecular Structure
15.
Methods Enzymol ; 699: 121-161, 2024.
Article in English | MEDLINE | ID: mdl-38942501

ABSTRACT

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.


Subject(s)
Alkyl and Aryl Transferases , Metabolic Engineering , Saccharomyces cerevisiae , Alkyl and Aryl Transferases/genetics , Alkyl and Aryl Transferases/metabolism , Metabolic Engineering/methods , Saccharomyces cerevisiae/genetics , Saccharomyces cerevisiae/metabolism , Recombinant Fusion Proteins/genetics , Recombinant Fusion Proteins/metabolism , Terpenes/metabolism , Protein Biosynthesis , Protein Engineering/methods
16.
Methods Enzymol ; 699: 187-205, 2024.
Article in English | MEDLINE | ID: mdl-38942503

ABSTRACT

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.


Subject(s)
Alkyl and Aryl Transferases , Alkyl and Aryl Transferases/metabolism , Alkyl and Aryl Transferases/chemistry , Alkyl and Aryl Transferases/genetics , Substrate Specificity , Cyclization , Terpenes/metabolism , Terpenes/chemistry
17.
Methods Enzymol ; 699: 207-230, 2024.
Article in English | MEDLINE | ID: mdl-38942504

ABSTRACT

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.


Subject(s)
Alkyl and Aryl Transferases , Terpenes , Terpenes/metabolism , Terpenes/chemistry , Alkyl and Aryl Transferases/metabolism , Alkyl and Aryl Transferases/chemistry , Alkyl and Aryl Transferases/genetics , Plasmodium falciparum/enzymology , Animals , Biocatalysis , Substrate Specificity , Aphids/enzymology
18.
Methods Enzymol ; 699: 231-263, 2024.
Article in English | MEDLINE | ID: mdl-38942505

ABSTRACT

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.


Subject(s)
Alkyl and Aryl Transferases , Catalytic Domain , Molecular Docking Simulation , Terpenes , Molecular Docking Simulation/methods , Alkyl and Aryl Transferases/chemistry , Alkyl and Aryl Transferases/metabolism , Terpenes/chemistry , Terpenes/metabolism , Ligands
19.
Methods Enzymol ; 699: 163-186, 2024.
Article in English | MEDLINE | ID: mdl-38942502

ABSTRACT

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.


Subject(s)
Alkyl and Aryl Transferases , Isotope Labeling , Terpenes , Alkyl and Aryl Transferases/metabolism , Alkyl and Aryl Transferases/genetics , Alkyl and Aryl Transferases/chemistry , Isotope Labeling/methods , Terpenes/metabolism , Terpenes/chemistry , Mutagenesis, Site-Directed/methods , Recombinant Proteins/metabolism , Recombinant Proteins/genetics , Recombinant Proteins/chemistry
20.
Methods Enzymol ; 699: 311-341, 2024.
Article in English | MEDLINE | ID: mdl-38942509

ABSTRACT

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.


Subject(s)
Alkyl and Aryl Transferases , Protein Engineering , Terpenes , Alkyl and Aryl Transferases/metabolism , Alkyl and Aryl Transferases/genetics , Alkyl and Aryl Transferases/chemistry , Terpenes/metabolism , Terpenes/chemistry , Protein Engineering/methods , Evolution, Molecular
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