Method for producing dorimanyl acetate compounds

Acetyltransferases catalyze the acetylation of drimanyl alcohols to produce drimanyl acetates, addressing the complexity and cost issues of existing methods, enabling efficient biosynthesis suitable for various applications.

JP7832266B2Active Publication Date: 2026-03-17FIRMENICH SA
View PDF 4 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-08-23
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

Existing methods for producing drimanyl acetate compounds, such as albicanyl acetate and drimenol acetate, are complex and not cost-effective, particularly when conducted in aqueous environments, and enzymes like lipase are ineffective for acetylation under physiological conditions.

Method used

Utilizing acetyltransferases to catalyze the acetylation of drimanyl alcohols, such as albikanol and drimenol, with acetyl-CoA as the acetyl group donor, to produce drimanyl acetates like albicanyl acetate and drimenyl acetate, which are more suitable for handling and processing due to their liquid state at ambient temperature.

Benefits of technology

The method provides a novel, efficient, and cost-effective biosynthesis of drimanyl acetates in aqueous environments, simplifying processing and maintaining stereochemical configuration, suitable for use as odorants, flavors, or insect/pest control components.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007832266000090
    Figure 0007832266000090
  • Figure 0007832266000091
    Figure 0007832266000091
  • Figure 0007832266000092
    Figure 0007832266000092
Patent Text Reader

Abstract

To provide novel methods for producing drimanyl acetate compounds, in particular methods for achieving the fully biochemical synthesis of drimanyl acetates in an aqueous environment.SOLUTION: The above-mentioned problem can be solved by providing a new class of enzymes which show acetyl transferase activity and produce a drimanyl acetate, like albicanyl acetate or drimenyl acetate, from respective drimane alcohol precursors, like albicanol or drimenol via acetylation and using acetyl-CoA as acetyl group donor. Due to their physicochemical properties, in particular as they are liquid at an ambient temperature, acetylated derivatives of drimanyl alcohols can serve as more appropriate materials.SELECTED DRAWING: None
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention provides a novel method for producing drimanyl acetate compounds using an acetyltransferase catalyst by acetylation of each drimanyl alcohol source, carried out in vitro or in vivo. The present invention also relates to the identification of enzymes having corresponding acetyltransferase activity from different microbial and plant sources. The present invention also relates to the provision of enzyme variants derived from the newly identified enzymes. Further aspects of the present invention relate to the provision of such enzymes and variants, recombinant vectors, and corresponding coding sequences of recombinant host cells suitable for the production of such acetyltransferases and variants and for carrying out the novel method for producing drimanyl acetate compounds. Another aspect of the present invention relates to the use of such drimanyl acetates obtained according to the present invention as intermediates for the production of odorants, flavors or fragrances or insect / pest control components.

[0002] Background technology Terpenes are found in most living organisms (microorganisms, animals, and plants). These compounds are composed of five-carbon units called isoprene units, and are classified by the number of isoprene units present in their structure, which may include cyclic structural elements. Thus, monoterpenes, sesquiterpenes, and diterpenes are terpenes containing 10, 15, and 20 carbon atoms, respectively. For example, sesquiterpenes are widely found in the plant kingdom. Many sesquiterpene molecules are known for their flavor and fragrance properties, as well as their cosmetic, medicinal, and antibacterial effects. Numerous sesquiterpene hydrocarbons and sesquiterpenoids have been identified. While chemical synthesis approaches have been developed, they remain complex and not always cost-effective.

[0003] The biosynthesis of terpenes involves enzymes called terpene synthases. Numerous sesquiterpene synthases exist in the plant kingdom, all using the same substrate (farnesyl diphosphate, FPP), but with different product profiles. Genes and cDNAs encoding sesquiterpene synthases have been cloned, and the characteristics of the corresponding recombinant enzymes have been elucidated.

[0004] Many of the main sources of sesquiterpenes, such as drimanyl alcohols, particularly compounds with a driman structure like albikanor or drimenol, are plants or microorganisms that naturally contain sesquiterpenes. However, the sesquiterpene content in these natural sources can be low. Even when available, such drimanyl alcohols are difficult to handle during their further processing, mainly due to the fact that they are solid at ambient temperature. Providing easily handled derivatives would be an improved approach and would simplify the further processing of drimanyl alcohols.

[0005] Akita, H. et al. described the asymmetric synthesis of (+) albicanyl acetate using lipase catalyst in Tetrahedron: Asymmetry 11 (2000). 1375-1388. This prior art approach requires at least eight chemical synthesis steps and two sequential reactions catalyzed by lipase to obtain enantiomerically pure albicanyl acetate. Furthermore, the acetylation reaction was carried out at 33°C in the presence of diisopropyl ether and isopropenyl acetate, conditions incompatible with the physiological conditions required for the biosynthetic pathway. Moreover, to our knowledge, lipase cannot catalyze the required transesterification reaction under physiological conditions. Esterification by lipase is possible, but its activity is highly dependent on the water content present. Therefore, in aqueous environments such as the in vivo setting of the present invention, lipase catalyzes hydrolysis of ester bonds rather than acetylation (Jaeger K. et al; FEMS Microbiology Reviews, 1994, 15:1 pp29-63).

[0006] There remains a need to provide novel methods for generating drimanyl acetate compounds, particularly methods that can be implemented in the complete biochemical synthesis of drimanyl acetate in an aqueous environment, such as host cell-based processes that provide drimanyl alcohol precursors through the metabolism of sugar substrates.

[0007] overview The above problems can be solved by providing a novel class of enzymes that exhibit acetyltransferase activity and produce drimanyl acetates, such as albicanyl acetate or drimenol acetate, from their respective drimanyl alcohol precursors, such as albikannol or drimenol, using acetyl-CoA as the acetyl group donor via acetylation. Due to their physicochemical properties, and especially because they are liquid at ambient temperature, acetylated derivatives of drimanyl alcohols may serve as more suitable materials. [Brief explanation of the drawing]

[0008] [Figure 1a] The structures of (+)-albikanol, (-)-drimenol, and bicyclofarnesol, as well as the structure of the driman moiety, which is more specific than the driman structure in Figure 1c, are shown. [Figure 1b] This diagram illustrates a reaction scheme describing the cell biological production of albicanyl acetate via acyclic sesquiterpene precursor FPP and albikannol. [Figure 1c] This shows a more general "Driman structure," which illustrates the potential positions of the C=C- double bond. [Figure 2] (A / B) GC-FID analysis of albicanyl acetate produced using a modified S. cerevisiae strain YST069 co-expressing either acetyltransferase CrDAT (A) or acetyltransferase FgaAT (B) with albicanol synthase XP_007369631.1 is shown, and the MS spectrum of albicanyl acetate produced by acetyltransferase CrDAT from (A) is shown in (C), and this MS spectrum is shown to be identical to the MS spectrum from the albicanol acetate standard. [Figure 3] This shows the relative amounts of albicanyl acetate produced by nine acetyltransferases (CrDAT, FgaAT, OAH94415.1, TcTAT, CrMAT, LiAAT-4, GAO81666.1, CfACT1-6, and CfACT1-8) that have been found to be active against albikanol (as described in Example 2). [Figure 4] The relative amounts of dorimenyl acetate produced by nine acetyltransferases (CrDAT, FgaAT, OAH94415.1, TcTAT, CrMAT, LiAAT-4, GAO81666.1, CfACT1-6, and CfACT1-8) that were found to be active against albikanol (as described in Example 2) are shown. [Figure 5]This shows the relative amounts of albicanyl acetate produced by S. cerevisiae cells expressing the following acetyltransferases: CrDAT, FgaAT, OAH94415.1, TcTAT, CrMAT, LiAAT-4, GAO81666.1, CfACT1-6, CfACT1-8, ERR364415-1_contig_8546, and DfATC13. [Figure 6] This shows the relative amounts of dorimenyl acetate produced by S. cerevisiae cells expressing the following acetyltransferases: CrDAT, FgaAT, OAH94415.1, TcTAT, GAO81666.1, CfACT1-6, CfACT1-8, XP_001258079.1, ERR364415-1_contig_8546, and DfATC13. [Figure 7] Figure 7A shows the MS spectrum of dorimenyl acetate produced by the acetyltransferase CrDAT, and Figure 7B shows that this MS spectrum is identical to the MS spectrum from the dorimenyl acetate standard. [Figure 8] Figure 8A shows the MS spectrum of bicyclofarnesyl acetate produced by the acetyltransferase CrDAT, and Figure 8B shows that this MS spectrum is identical to the MS spectrum from the bicyclofarnesyl acetate standard. [Figure 9] This shows the relative amounts of bicyclofarnesyl acetate produced by S. cerevisiae cells expressing the following acetyltransferases: CrDAT, FgaAT, TcTAT, CrMAT, GAO81666.1, CfACT1-6, CfACT1-8, BAU61551.1, PsSalAT, XP_001217250.1, ERR364415-1_contig_8546, PYI04555.1, and DfACT13.

[0009] Abbreviations used bp (base pair) kb (kilobase) Coenzyme A (CoA) DNA Deoxyribonucleic acid cDNA Complementary DNA DTT Dithiothreitol FPP Farnesyl diphosphate GC Gas chromatograph MS Mass spectrometer / mass spectrometry MVA Mevalonic acid PCR Polymerase chain reaction RNA Ribonucleic acid mRNA Messenger ribonucleic acid miRNA MicroRNA siRNA Small interfering RNA rRNA Ribosomal RNA​​​​​​​​​For the purposes of this invention, “acetyltransferase,” “polypeptide having acetyltransferase activity,” or “polypeptide capable of transferring an acetyl group” refers more generally to enzymes of the class acyltransferase EC2.3.1, and more particularly to acetyl-CoA:alcohol O-acetyltransferase EC2.3.1.84. It exhibits the ability to acetylate at least one drimanyl alcohol selected from albicanol, drimenol, and bicyclofarnesol using acetyl-CoA as the acetyl group donor. The drimanyl acetate can be produced in any form of its stereoisomer or as a mixture thereof. Albicanyl acetate, drimenyl acetate, or bicyclofarnesyl acetate may be the sole product when the corresponding alcohol precursor is present as a single acetyl group acceptor, or it may be part of a mixture of two or more drimenyl alcohols and the acetyltransferase is not substrate-specific. When selectivity is increased, the acetyltransferase may predominantly form a single drimanyl acetate. Acetyltransferases as described herein may exhibit the same or different preferences or specificities for different drimanyl alcohols as substrates. For example, a first type of acetyltransferase may predominantly acetylate albikanol, a second type of acetyltransferase may predominantly acetylate dorimenol, and a third type of acetyltransferase may predominantly acetylate bicyclofarnesol. In such cases, when a mixture of such drimanyl alcohols is used as a substrate, albikanol acetate, dorimenol acetate, or bicyclofarnesyl acetate will be formed as the main products, respectively. In the case of substrate specificity, the acetyltransferase may selectively form a single drimanyl acetate, even when a mixture of such drimanyl alcohols is used as a substrate. In particular, acetylation is carried out while preserving the stereochemical configuration of each drimanyl alcohol substrate.

[0011] An "acetyl group donor" refers to a chemical entity or molecule that acts as a source for enzymatically transferring an acetyl group from a donor to an acceptor molecule, such as a molecule having a functional hydroxyl group, and which may also react with the acetyl group to form a corresponding acetate ester. A specific acetyl group donor is acetyl-coenzyme A (acetyl-CoA).

[0012] The terms "drimansesquiterpene" or "driman" refer to cyclic terpenes having a driman-like carbon skeleton structure as depicted in Figure 1a, or more specifically, the more general structure in Figure 1c, where the potential positions of any present C=C double bonds are indicated by dotted lines.

[0013] The term "drimanyl alcohol" refers to hydroxylated derivatives of "drimansesquiterpenes" or "driman." Examples include albikanor, drimenol, and bicyclofarnesol in any stereoisomer form.

[0014] The term "drimanyl acetate" refers to acetyl ester derivatives of such drimanyl alcohols, such as albicanyl acetate, drimenyl acetate, and bicyclofarnesyl acetate.

[0015] For the purposes of this application, "albicanol" refers in particular to (+)-albicanol (CAS: 54632-04-1).

[0016] For the purposes of this application, "drimenol" refers in particular to (-)-drimenol (CAS: 468-68-8).

[0017] For the purposes of this application, "bicyclofarnesol" refers particularly to (+)-bicyclofarnesol or [(4aS,8aS)-2,5,5,8a-tetramethyl-3,4,4a,5,6,7,8,8a-octahydro-1-naphthalenyl]methanol (IUPAC name).

[0018] "Farnesyl diphosphate" refers to (2E,6E)-3,7,11-trimethyldodeca-2,6,10-triene-1-pyrophosphate (FPP).

[0019] For the purposes of this application, "Ambrox" refers to the IUPAC name: (-)-(3aR,5aS,9aS,9bR)-3a,6,6,9a-tetramethyldodecahydronaphtho[2,1-b]furan (CAS: 6790-58-5).

[0020] "Terpene synthase," "sesquiterpene synthase," or "drimansesquiterpene synthase" are used interchangeably in this specification.

[0021] The terms “bifunctional terpene synthase” or “polypeptide having bifunctional terpene synthase activity” are further defined in the international application PCT / EP2018 / 064344, filed on 31 May 2018, relating to polypeptides.

[0022] The terms “albicanyl diphosphate synthase,” “polypeptide having albicanyl diphosphate synthase activity,” “albicanyl diphosphate synthase protein,” or “having the ability to produce albicanyl diphosphate” relate to polypeptides that can catalyze the synthesis of albicanyl diphosphate, either in the form of its stereoisomers or mixtures thereof, starting from acyclic terpene pyrophosphates, particularly farnesyl diphosphate (FPP). Albicanyl diphosphate may be the sole product or part of a mixture of sesquiterpenes. The mixture may contain albicanyl monophosphate and / or albicanol. Such polypeptides are described, for example, in international application PCT / CN2018 / 088902, filed on 29 May 2018.

[0023] "Albicanyl diphosphate synthase activity" is determined under "standard conditions" as described in the international application PCT / CN2018 / 088902.

[0024] The terms “albikanol synthase,” “polypeptide having albikanol synthase activity,” or “albikanol synthase protein” relate to polypeptides that can catalyze the synthesis of albikanol, either in the form of its stereoisomers or mixtures thereof, starting from acyclic terpene pyrophosphates, particularly farnesyl diphosphate (FPP). Albikanol may be the sole product or part of a mixture of two or more sesquiterpenes.

[0025] The terms “drimenol synthase,” “polypeptide having drimenol synthase activity,” or “drimenol synthase protein” relate to polypeptides that can catalyze the synthesis of drimenol, either in the form of its stereoisomers or mixtures thereof, starting from acyclic terpene pyrophosphates, particularly farnesyl diphosphate (FPP). Drimenol may be the sole product or part of a mixture of two or more sesquiterpenes.

[0026] The "albicanol synthase activity" and "drimenol synthase activity" are determined, for example, as described in the specification of international application PCT / EP2018 / 0643444, international publication 2015 / 169871, or international publication 2015 / 176959.

[0027] The "phosphatase" enzymes used in this invention have the ability to convert orthophosphate esters to their respective alcohols and orthophosphates under the use of water. This includes acidic phosphatases (EC3.1.3.2, optimal for acidic reactions) and alkaline phosphatases (EC3.1.3.1, optimal for alkaline reactions).

[0028] The terms “biological function,” “function,” “biological activity,” or “activity” refer to the ability of a terpene synthase as described herein to catalyze the formation of a mixture of compounds containing albicanyl diphosphate and / or albicanol, hereafter: albicanyl diphosphate, and / or albicanyl monophosphate and / or albicanol and / or one or more other terpenes, in particular albicanyl diphosphate, or b) catalyze the formation of a mixture of drimanyl alcohol or two or more drimanyl alcohols and optionally one or more other terpenes.

[0029] The terms “biological function,” “function,” “biological activity,” or “activity” refer to the ability of an acetyltransferase as described herein to catalyze the formation of a drimanyl acetate or a mixture of two or more drimanyl acetates and optionally one or more other acetylated compounds.

[0030] The terms "mixture of terpenes" or "mixture of sesquiterpenes" refer to a mixture of terpenes or sesquiterpenes that comprises at least one of albikanol, dorimenol, and bicyclofarnesol, and may also comprise one or more additional terpenes and / or one or more additional sesquiterpenes.

[0031] The mevalonate pathway, also known as the "isoprenoid pathway" or "HMG-CoA reductase pathway," is an essential metabolic pathway present in eukaryotes, archaea, and some bacteria. The mevalonate pathway begins with acetyl-CoA and produces two five-carbon building blocks called isopentenyl pyrophosphate (IPP) and dimethylallyl pyrophosphate (DMAPP). Key enzymes include acetoacetyl-CoA thiolase, HMG-CoA synthase, HMG-CoA reductase, mevalonate kinase, phosphomevalonate kinase, mevalonate diphosphate decarboxylase, and isopentenyl diphosphate isomerase. Combining the mevalonate pathway with enzymatic activity enables recombinant cell production of terpenes, particularly by producing terpene precursors such as GPP, FPP, or GGPP, as exemplified by FPP synthase.

[0032] As used herein, the terms “host cell” or “transformed cell” mean a cell (or organism) modified to contain at least one nucleic acid molecule, e.g., a recombinant gene encoding a desired protein or nucleic acid sequence, which, upon transcription, produces at least one functional polypeptide of the present invention required to carry out a biocatalytic or other recombination method as described herein. In particular, such host cells or transformed cells provide acetyltransferases useful for preparing at least one drimanyl acetate from corresponding drimanyl alcohols. They may also provide other enzymes, such as albicanyl diphosphate synthase proteins, useful for producing albicanyl diphosphate and / or albicanyl monophosphate and / or albicanol, or corresponding mixtures of terpenes containing albicanyl diphosphate and / or albicanyl monophosphate and / or albicanol. They may also provide terpene synthases useful for preparing at least one drimanyl alcohol. Host cells are, in particular, bacterial cells, fungal cells, or plant cells or plants. The host cell may contain recombinant genes integrated into the host cell's nuclear genome or organelle genome. Alternatively, the host may contain recombinant genes outside of chromosomes.

[0033] The term "living organism" refers to non-human multicellular or unicellular organisms, such as plants or microorganisms. Microorganisms, in particular, include bacteria, yeasts, algae, or fungi.

[0034] The term "plant" is used interchangeably to include plant cells, including plant protoplasm, plant tissue, regenerated plants, or plant cell tissue cultures that give rise to parts of plants, or plant organs such as roots, stems, leaves, flowers, pollen, ovaries, embryos, and fruits. Any plant can be used to carry out the method of one embodiment of this specification.

[0035] Certain organisms or cells are "capable of producing FPP" if they naturally produce FPP, or if they do not naturally produce FPP but are transformed to produce FPP with nucleic acids as described herein. Organisms or cells transformed to produce greater amounts of FPP than naturally occurring organisms or cells are also included in "organisms or cells capable of producing FPP."

[0036] Certain organisms or cells are "capable of producing drimanyl acetate" if they naturally produce drimanyl acetate, or if they do not naturally produce drimanyl acetate but are transformed to produce drimanyl acetate with nucleic acids as described herein. Organisms or cells transformed to produce greater amounts of drimanyl acetate than naturally occurring organisms or cells are also included in "organisms or cells capable of producing drimanyl acetate."

[0037] Certain organisms or cells are "capable of producing drimanyl alcohol" if they naturally produce drimanyl alcohol, or if they do not naturally produce drimanyl alcohol but have been transformed to produce drimanyl diphosphate and optionally further transformed with nucleic acids to produce enzymatic activity that converts drimanyl diphosphate to drimanyl alcohol. Organisms or cells transformed to produce greater amounts of drimanyl alcohol than naturally occurring organisms or cells are also included in "organisms or cells capable of producing drimanyl alcohol."

[0038] In this description and the appended claims, the use of “or” means “and / or” unless otherwise specified. Similarly, “comprise,” “comprises,” “comprising,” “include,” “includes,” and “including” are interchangeable and not intended to be limiting.

[0039] Where the description of various embodiments uses the term "comprising," it should be further understood that those skilled in the art will understand that in some specific examples the embodiments may be described alternatively using the language "essentially consisting of" or "consisting of."

[0040] As used herein, the terms “purified,” “substantially purified,” and “isolated” refer to a state in which the compounds of the present invention are free from other heterogeneous compounds that normally accompany them in their natural state. Therefore, “purified,” “substantially purified,” and “isolated” subjects include at least 0.5% by weight, 1% by weight, 5% by weight, 10% by weight, or 20% by weight, or at least 50% by weight or 75% by weight of a given sample. In one embodiment, these terms refer to the compounds of the present invention including at least 95% by weight, 96% by weight, 97% by weight, 98% by weight, 99% by weight, or 100% by weight of a given sample. As used herein, when referring to nucleic acids or proteins, the terms “purified,” “substantially purified,” and “isolated” of nucleic acids or proteins also refer to a state of purification or concentration different from that which naturally occurs in environments such as prokaryotes or eukaryotes, for example, in bacterial or fungal cells, or in mammalian organisms, particularly the human body. Any degree of purification or concentration higher than that found in nature, including (1) purification from other related structures or compounds, or (2) association with structures or compounds not normally associated with the environment of the prokaryotes or eukaryotes, falls within the meaning of “isolated.” The nucleic acids or proteins or classes of nucleic acids or proteins described herein may be isolated, or otherwise associated with structures or compounds not normally associated with nature, according to various methods and processes known to those skilled in the art.

[0041] The term "approximately" indicates a potential variation of ±25% of the stated value, particularly ±15%, ±10%, or more specifically ±5%, ±2%, or ±1%.

[0042] The term "effectively" refers to values ​​in the range of approximately 80-100%, for example, 85-99.9%, especially 90-99.9%, more specifically 95-99.9%, or 98-99.9%, especially 99-99.9%.

[0043] "Predominantly" refers to a percentage exceeding 50%, such as in the range of 51-100%, especially 75-99.99%, or more specifically, 85-99.5%, or even the range of 95-99%.

[0044] In the context of the present invention, “main product” refers to a single compound or a group of at least two compounds, for example, two, three, four, five or more, particularly two or three compounds, which are “preferably” prepared by a reaction as described herein and are present in the reaction in a predominant proportion based on the total amount of components of the product formed by the reaction. The proportion may be a molar ratio, a weight ratio, or preferably an area ratio calculated from the corresponding chromatogram of the reaction product based on chromatographic analysis.

[0045] In the context of the present invention, “by-product” refers to a single compound or at least two compounds, for example, two, three, four, five or more compounds, and in particular two or three compounds, which are not “preferably” prepared by reactions as described herein.

[0046] Since enzymatic reactions are reversible, unless otherwise specified, the present invention relates to reactions in both directions: enzymatic reactions and biocatalytic reactions as described herein.

[0047] The “functional variants” of polypeptides described herein include the “functional equivalents” of polypeptides as defined below.

[0048] The term "stereoisomer" specifically includes conformational isomers.

[0049] In general, the present invention includes all "stereoisomeric forms" of the compounds described herein, such as structural isomers, particularly stereoisomers and mixtures thereof, such as optical isomers, or geometric isomers such as E-isomers and Z-isomers, as well as combinations thereof. When multiple chiral centers are present in a single molecule, the present invention includes all combinations of different conformations of these chiral centers, such as enantiomer pairs.

[0050] "Stereoselectivity" describes the ability to produce a specific stereoisomer of a compound in a stereoisomerically pure form, or the ability to specifically convert a particular stereoisomer from multiple stereoisomers by an enzymatic catalyst as described herein. More specifically, this means that the product of the present invention is concentrated with respect to a particular stereoisomer, or that the extract is diluted with respect to a particular stereoisomer. This can be quantified via a purity parameter %ee calculated according to the following formula: %ee=[X A -X B ] / [X A +X B ] * 100 In the formula, X A and X B This represents the molar ratio (mole fraction) of stereoisomers A and B.

[0051] The terms “selectively converting” or “enhancing selectivity” generally mean that a particular stereoisomer form of an unsaturated hydrocarbon, such as the E form, is converted (on a molar basis) at a higher rate or amount than the corresponding other stereoisomer form, such as the Z form, either throughout the entire process of the reaction (i.e., between the start and end of the reaction), at a specific point in time of the reaction, or during the “interval” of the reaction. In particular, the selectivity may be observed during the “interval” corresponding to conversion rates of 1–99%, 2–95%, 3–90%, 5–85%, 10–80%, 15–75%, 20–70%, 25–65%, 30–60%, or 40–50% of the initial amount of substrate. The higher rates or amounts may be expressed, for example, in terms of: - Higher maximum yield of isomers observed throughout the entire reaction process or during the aforementioned interval; - Higher relative amounts of isomers at a defined percentage of the substrate conversion value; and / or - The same relative amount of isomers at a higher percentage of conversion value Preferably, each is observed in comparison with a reference method, the reference method being carried out under conditions otherwise identical to known chemical or biochemical means.

[0052] In general, according to the present invention, all "isomeric forms" of the compounds described herein, such as structural isomers, in particular stereoisomers and mixtures thereof, such as optical isomers, or geometric isomers such as E-isomers and Z-isomers, as well as combinations thereof. Where multiple chiral centers are present in the molecule, the present invention includes all combinations of different conformations of these chiral centers, such as enantiomer pairs, or any mixture of stereoisomeric forms.

[0053] The “yield” and / or “conversion rate” of the reaction according to the present invention is determined, for example, over a defined period of 4, 6, 8, 10, 12, 16, 20, 24, 36, or 48 hours during which the reaction takes place. In particular, the reaction is carried out under precisely defined conditions, for example, “standard conditions” as defined herein.

[0054] Different yield parameters (the "yield" or Y P / S ; "specific productivity yield"; or "space-time yield (STY)") are well known in the art and are determined as described in the literature.

[0055] "Yield" and "Y P / S " (each expressed as the mass of the product produced / mass of the material consumed) are used as synonyms herein.

[0056] Specific productivity yield describes the amount of product produced per hour per 1 g of biomass and per 1 L of fermentation broth. The amount of wet cell weight described as WCW describes the amount of biologically active microorganisms in the biochemical reaction. This value is given as the number of grams of product per gram of WCW per hour (i.e., g / gWCW -1 h -1 ). Alternatively, the amount of biomass can be expressed as the amount of dry cell weight described as DCW. Further, the biomass concentration can be more easily determined by measuring the optical density at 600 nm (OD 600 ) and using the experimentally determined correlation coefficient to estimate the corresponding wet cell weight or dry cell weight, respectively.

[0057] The term "fermentation production" or "fermentation" refers to the ability of a microorganism to produce a compound in cell culture using at least one carbon source added to the incubation (assisted by the enzyme activity contained in or caused by the microorganism).

[0058] The term "fermentation broth" is understood to mean a liquid, particularly an aqueous or aqueous / organic solution, which is based on the fermentation process and has not been treated or has been treated as described herein, for example.

[0059] The “enzymatically catalyzed” or “biocatalytic” methods mean that the method is carried out under the catalysis of an enzyme, including an enzyme variant, as defined herein. Thus, the method may be carried out in the presence of the enzyme in an isolated (purified, concentrated) or crude form, or in the presence of a cell system, in particular, a natural or recombinant microbial cell containing the enzyme in an active form and capable of catalyzing a transformation reaction as disclosed herein.

[0060] Where this disclosure refers to features, parameters, and their scopes of varying degrees of priority (including general, expressly undesirable features, parameters, and scopes), unless otherwise stated, two or more combinations of such features, parameters, and scopes are included in the disclosure herein, regardless of their respective degrees of priority.

[0061] Detailed explanation a. Specific embodiments of the present invention 1. A method for biocatalyzing at least one, particularly one, two, or three, particularly one or two, dorimanyl acetate compounds, (1) A step of contacting at least one, particularly one, drimanyl alcohol in the presence of an acetyl group donor, in a stereoisomerically pure form or in the form of a mixture of stereoisomers, with at least one, particularly one, polypeptide having acetyltransferase activity capable of transferring an acetyl group from the acetyl group donor to at least one, particularly one, drimanyl alcohol, to obtain at least one drimanyl acetate as a main product, particularly one drimanyl acetate as a main product, (2) Optionally, a step of isolating at least one, in particular one, dorimanyl acetate compound from the reaction product of step (1) Methods that include... If multiple dorimanyl acetates are formed, the mixture may be further separated and the individual acetates purified.

[0062] 2. The method of Embodiment 1, wherein the drimanyl acetate compound is selected from the group consisting of albicanyl acetate, drimenyl acetate, and bicyclofarnesyl acetate, each existing in a stereoisomerically pure form, as a mixture of at least two of its stereoisomers, or as a combination thereof including at least two members from the group of acetates. In a particular embodiment, simply one drimanyl alcohol is used as the substrate, and simply one drimanyl acetate is obtained as the product, either in a stereoisomerically pure form or as a mixture of at least two of its stereoisomers, particularly in a stereoisomerically pure form.

[0063] 3. The method of Embodiment 1 or 2, wherein the drimanyl alcohol is selected from the group consisting of albikanol, particularly (+)-albikanol, drimenol, particularly (-)-drimenol, and bicyclofarnesol, particularly (+)-bicyclofarnesol, each existing in a stereoisomerically pure form, a mixture of at least two stereoisomers thereof, or a combination thereof containing at least two members from the group of alcohols. In certain embodiments, simply one type of drimanyl alcohol, particularly in a stereoisomerically pure form, is used as the substrate.

[0064] 4. Any one of the preceding embodiments, wherein the acetyl group donor is acetyl-coenzyme A (acetyl-CoA). The donor may be added exogenously to the reaction mixture, for example, in an in vitro process in which an isolated, concentrated, or purified enzyme is applied, or more specifically, in an in vivo process in which a host cell system is applied that expresses a polypeptide or polypeptides required to carry out the intended acetylation or a more complex multi-step process that includes the acetylation as a single step.

[0065] 5. The acetyltransferase described above a) polypeptides comprising amino acid sequences selected from SEQ ID NOs: 9, 11, 13, 15, 17, 19, 21, 23, 25, 118, 121, 124, 127, 130, 133, 136, 143 and 144, and b) Polypeptides having acetyltransferase activity and comprising at least one of the amino acid sequences of SEQ ID NOs: 9, 11, 13, 15, 17, 19, 21, 23, 25, 118, 121, 124, 127, 130, 133, 136, 143, and 144, and an amino acid sequence exhibiting a degree of sequence identity of at least 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99%. A method selected from any one of the prior embodiments.

[0066] The ability of the specific acetyltransferase of the present invention to produce one or more dolimenyl acetate compounds selected from the group consisting of albicanyl acetate, dolimenyl acetate, and bicyclofarnesyl acetate is shown by the following list: [Table 1]

[0067] 6. Any one of the preceding embodiments, further comprising biocatalyzing the formation of at least one, in particular one, drimanyl alcohol compound prior to step 1).

[0068] 7. The method of Embodiment 6, wherein the drimanyl alcohol compound may be endogenously present in the reaction mixture, for example, in an in vivo process applying a host cell system that expresses a polypeptide or polypeptides required to carry out the intended drimanyl alcohol synthesis or a more complex multi-step process that includes the drimanyl alcohol synthesis as a single step, thereby synthesizing the drimanyl alcohol enzymatically from an acyclic sesquiterpene precursor.

[0069] Alternatively, the dorimanyl alcohol compound may be chemically or enzymatically produced and exogenously added to the reaction mixture, for example, in an in vitro process that applies isolated, concentrated, or purified synthase enzymes required for its formation, as defined below.

[0070] 8. The method of Embodiment 7, wherein the acyclic sesquiterpene precursor is farnesyl pyrophosphate (FPP).

[0071] 9. The method of Embodiment 7 or 8, wherein the enzymatic synthesis of the drimanyl alcohol is catalyzed by one or more polypeptides having the ability to convert the acyclic sesquiterpene precursor into at least one drimanyl alcohol, particularly one drimanyl alcohol, in one or more enzymatic steps, in particular as a major product.

[0072] 10. Any one of embodiments 6 to 9, wherein the at least one drimanyl alcohol is produced from FPP in one or more, particularly two, enzymatic steps.

[0073] 11. The at least one of the dorimanyl alcohols is a) A polypeptide having drimansesquiterpenesynthase activity to form the drimanyl alcohol (one-step biosynthesis); or b) A combination of a polypeptide having drimanyl phosphate synthase activity that forms at least one drimanyl phosphate intermediate and a polypeptide having phosphatase activity that converts the at least one drimanyl phosphate (monophosphate and / or diphosphate) intermediate to at least one drimanyl alcohol (two-step biosynthesis). The method of Embodiment 10, which is produced by the enzymatic conversion of FPP catalyzed by [a specific agent].

[0074] 12. a) The polypeptide having drimansesquiterpene synthase activity is selected from albikanol synthase activity, drimenol synthase activity, bicyclofarnesol synthase activity, or any combination of such activities, in particular preferentially exhibiting one of the activities, more specifically, specifically exhibiting one of the activities, and b) The polypeptide combination includes dorimanyl diphosphate synthase activity, particularly albicanyl diphosphate synthase activity, and a phosphatase enzyme, such as bacterial alkaline phosphatase. The method of Embodiment 11.

[0075] 13. a) The polypeptide having drimansesquiterpene synthase activity is selected from drimansynthase as described in international application PCT / EP2018 / 064344 (filed May 31, 2018) and drimenol synthase as described in international publications 2015 / 169871 and 2015 / 176959. b) The polypeptide having dolimanyl phosphate synthase activity is an albicanyl diphosphate synthase as described in international application PCT / CN2018 / 088902 filed on 29 May 2018, which has the ability to produce an albicanyl diphosphate derivative from an albicanyl phosphate derivative such as monophosphate, more specifically from farnesyl diphosphate (FPP) as a substrate. The method of Embodiment 12.

[0076] Albicanyl diphosphate synthase, as described in international application PCT / CN2018 / 088902 (filed May 29, 2018), Dryopteris fragrans DfHAD, DfHAD-9(V274A), DfHAD-His_GST, and DfHAD-8(K532R) Furthermore, polypeptides derived therefrom that have at least 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity with them. That is the case.

[0077] Drimenol synthase (i.e., albicanol synthase or drimenol synthase) as described in international application PCT / EP2018 / 064344 (filed May 31, 2018) is [Table 2] and polypeptides derived therefrom that have at least 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity with them. That is the case.

[0078] Dorimenol synthase, as described in International Publication No. 2015 / 169871, [Table 3] and polypeptides derived therefrom that have at least 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity with them. That is the case.

[0079] Dorimenol synthase, as described in International Publication No. 2015 / 176959, Valeriana amurensis's VaTPS3 and polypeptides derived therefrom that have at least 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity. That is the case.

[0080] The sequence numbers for each of the amino acid and nucleotide sequences of the above synthase enzymes are listed at the end of this specification. Polypeptides and nucleic acids derived therefrom that have at least 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity with at least one of these sequences are also part of this disclosure.

[0081] 14. The aforementioned drimansesquiterpene synthase, a) Polypeptides having (bifunctional) albikanol synthase activity and comprising the amino acid sequence of SEQ ID NO: 5, as described in international application PCT / EP2018 / 064344, or mutant or variant polypeptides having albikanol synthase activity and comprising an amino acid sequence having at least 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity with SEQ ID NO: 5; b) Polypeptides having (bifunctional) dorimenol synthase activity and containing the amino acid sequence of SEQ ID NO: 7, as described in international application PCT / EP2018 / 064344, or mutant or variant polypeptides having dorimenol synthase activity and containing an amino acid sequence having at least 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% sequence identity with SEQ ID NO: 7. A method of embodiment 13, selected from among them.

[0082] 15. Any one of the preceding embodiments, carried out in vivo in a host cell culture, or in vitro in a liquid reaction medium containing a host cell lysate or concentrated or isolated polypeptide required to produce at least one drimanyl acetate, under conditions that promote the production of at least one drimanyl acetate.

[0083] In particular, the reaction proceeds in the presence of acetyl-CoA, which is either endogenously formed or exogenously added as an acetyl group donor. In particular, the reaction proceeds in the presence of FPP, which is either endogenously formed or exogenously added. In particular, endogenously formed FPP is the result of the metabolism of at least one carbon source that can be bioconverted to FPP, such as a sugar substrate. In vivo intracellular methods in which FPP and acetyl-CoA are endogenously formed are of particular interest.

[0084] Some of these host cells or organisms do not naturally produce FPP. Organisms or cells that do not naturally produce acyclic terpene pyrophosphate precursors, such as FPP, are preferably genetically modified to produce such precursors for carrying out the methods of the embodiments described herein. Organisms or cells may be transformed in this manner, for example, before or simultaneously with the modification by nucleic acids described according to any of the embodiments described above. Methods for transforming organisms to produce acyclic terpene pyrophosphate precursors, such as FPP, are already known in the art. For example, introducing enzymatic activity of the mevalonate pathway is a suitable strategy for causing organisms to produce FPP.

[0085] 16. a) At least one acetyltransferase as defined in Embodiment 5; optionally b) At least one polypeptide having the ability to convert an acyclic sesquiterpene precursor FPP into at least one drimanyl alcohol as defined in any one of embodiments 9 to 14; and optionally c) At least one enzyme selected from the enzymes involved in the mevalonate pathway as defined above. The method of Embodiment 15, which is carried out in recombinant non-human host cells or recombinant non-human host organisms capable of functionally expressing the function.

[0086] In certain embodiments, enzymes a) and b), or enzymes a), b) and c), are functionally expressed by a cell line such as that used in the in vivo method of the present invention.

[0087] 17. The method of Embodiment 16, wherein the non-human host cell or host organism is selected from a prokaryotic or eukaryotic microorganism or cells derived therefrom.

[0088] 18. The method of Embodiment 17, wherein the non-human host cell or host organism is selected from bacterial, fungal, and plant cells or plants.

[0089] 19. The method of Embodiment 18, wherein the fungal cells are yeast cells, and in particular are selected from the genera Saccharomyces, Pichia, or Yarrowia, and especially from the species Saccharomyces cerevisiae (budding yeast), Pichia pastori (Pichia yeast), or Yarrowia lipolytica (alkane-assimilating yeast).

[0090] 20. The method of Embodiment 18, wherein the bacterial cells are selected from the genera Rhodococcus, Pseudomonas, Bacillus, or Escherichia, particularly Escherichia coli.

[0091] 21. A method from any one of the prior embodiments, further comprising, as step (3), processing at least one of the dorimanyl acetates from step (1) or step (2) to obtain a derivative using chemical synthesis, biocatalytic synthesis, or a combination of both.

[0092] 22. The method of Embodiment 21, wherein the derivative is a hydrocarbon, alcohol, diol, triol, acetal, ketal, aldehyde, acid, ether, amide, ketone, lactone, epoxide, acetate, glycoside, ester, and / or polycyclic compound.

[0093] 23. Any one of the preceding embodiments, wherein the drimanyl acetate comprises albicanyl acetate, drimenyl acetate, or bicyclofarnesyl acetate, particularly albicanyl acetate or drimenyl acetate, as the principal drimanyl alcohol product, or particularly as a single drimanyl alcohol product.

[0094] 24. The above method particularly affects non-human host organisms or host cells. a) At least one nucleic acid, expression construct or vector comprising a nucleic acid sequence encoding at least one polypeptide having acetyltransferase activity capable of transferring an acetyl group from an acetyl group donor to a dorimanyl alcohol, which is optionally stably integrated into a genome, and optionally b) At least one nucleic acid, expression construct or vector comprising a nucleic acid sequence encoding at least one polypeptide having drimanyl alcohol synthase activity capable of producing drimanyl alcohol from an acyclic sesquiterpene precursor, which is optionally stably integrated into a genome, and optionally c) At least one nucleic acid, expression construct or vector comprising a nucleic acid sequence encoding at least one polypeptide involved in the biosynthetic pathway for generating the acyclic sesquiterpene precursor, which is optionally stably integrated into the genome. A method from any one of the prior embodiments, including transformation by

[0095] In certain embodiments, a non-human host organism or host cell is transformed with a) and b), or a), b), and c), and more specifically, contains the nucleic acids stably integrated into its genome. The nucleic acids a), b), and / or c) may be located on the same or two or more different vectors.

[0096] 25. A polypeptide having acetyltransferase activity and capable of transferring acetyl groups from an acetyl group donor to a drimanyl alcohol to produce a drimanyl acetate, wherein the polypeptide comprises at least one amino acid sequence selected from SEQ ID NOs: 9, 11, 13, 15, 17, 19, 21, 23, 25, 118, 121, 124, 127, 130, 133, 136, 143, and 144 and an amino acid sequence having sequence identity of 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% or more but less than 100%.

[0097] 26. Isolated nucleic acid molecules, a) comprising a nucleotide sequence encoding the polypeptide of Embodiment 5, or b) A nucleotide sequence having sequence identity of at least 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, 96%, 97%, 98%, or 99% or more but less than 100% with a nucleotide sequence selected from SEQ ID NOs: 8, 10, 12, 14, 16, 122, 123, 125, 126, 128, 129, 131, 132, 134, and 135, or c) Contains a nucleotide sequence that is complementary to one of the sequences in a) or b), or d) A nucleotide sequence that hybridizes with the nucleotide sequence of a), b), or c) under stringent conditions, Isolated nucleic acid molecules.

[0098] 27. An expression construct comprising at least one nucleic acid molecule of Embodiment 26.

[0099] 28. A vector comprising at least one nucleic acid molecule of Embodiment 25 or at least one expression construct of Embodiment 26.

[0100] 29. The vector of Embodiment 28, wherein the vector is a prokaryotic, viral, or eukaryotic vector.

[0101] 30. The vector of Embodiment 28 or 29, wherein the vector is an expression vector.

[0102] 31. A vector from any one of embodiments 28 to 30, wherein the vector is a plasmid vector.

[0103] 32. Recombinant host cells or recombinant non-human host organisms, a) At least one isolated nucleic acid molecule of Embodiment 26, which is optionally stably incorporated into a genome, or b) At least one expression construct of Embodiment 27, which is optionally stably integrated into the genome, or c) At least one vector from any one of embodiments 28 to 31 Recombinant host cells or recombinant non-human host organisms, including those containing such cells.

[0104] In certain embodiments, a non-human host organism or host cell is transformed according to a) and b), or a), b) and c), and more specifically, comprises the nucleic acid stably incorporated into its genome.

[0105] 33. A host cell or host organism of Embodiment 32, selected from prokaryotic or eukaryotic microorganisms, or cells derived therefrom.

[0106] 34. A host cell or host organism of Embodiment 33, selected from bacterial, fungal, and plant cells or plants.

[0107] 35. The host cell or host organism of Embodiment 34, wherein the fungal cell is a yeast cell.

[0108] 36. The host cell or host organism of Embodiment 35, wherein the bacterial cell is selected from the genus Escherichia, particularly from the species Escherichia coli, and the yeast cell is selected from the genus Saccharomyces, Pichia, or Yarrowia, particularly from the species Saccharomyces cerevisiae, Pichia pastris, or Yarrowia liporitica.

[0109] 37. A method for producing at least one catalytically active polypeptide as described in Embodiment 25, a) A step of culturing any one of the non-human host organisms or host cells from Embodiments 32 to 34 to express or overexpress at least one polypeptide described in Embodiment 25, b) Optionally, a step of isolating polypeptides from non-human host cells or organisms cultured in step a) Methods that include...

[0110] 38. The method of Embodiment 37, further comprising the step of providing, prior to step a), transforming a non-human host organism or cell with at least one nucleic acid according to claim 26, or at least one construct according to claim 27, or at least one vector from any one of claims 28 to 31, so that it expresses or overexpresses the polypeptide according to claim 25.

[0111] 39. A method for preparing a mutant polypeptide comprising acetyltransferase activity and capable of transferring an acetyl group from an acetyl group donor to at least one, particularly one, drimanyl alcohol in order to produce at least one, particularly one, drimanyl acetate, wherein the method is a) A step of selecting a nucleic acid molecule encoding a polypeptide selected from SEQ ID NOs: 9, 11, 13, 15, 17, 19, 21, 23, 25, 118, 121, 124, 127, 130, 133, 133, 136, 143, and 144, b) A step of modifying a selected nucleic acid molecule to obtain at least one mutant nucleic acid molecule, c) A step of transforming a host cell or a single-celled host organism with a mutant nucleic acid sequence to express a polypeptide encoded by the mutant nucleic acid sequence, d) A step of screening the expression product for at least one variant containing acetyltransferase activity, e) Optionally, if the polypeptide does not have the desired mutant activity, repeat process steps a) to d) until a polypeptide with the desired mutant activity is obtained. f) Optionally, if a polypeptide having the desired mutant activity is identified in step d), the step of isolating the corresponding mutant nucleic acid obtained in step c) Methods that include...

[0112] 40. Use of an acetyltransferase as defined in any one of the preceding embodiments for use in the preparation of compositions selected from, for example, body care, home care, or fragrance compositions, for preparing odor substances, flavor or fragrance components or insect / pest control components.

[0113] b. Polypeptides applicable according to the present invention In this context, the following definitions apply: The general terms "polypeptide" and "peptide" are interchangeable and refer to a natural or synthetic linear or synthetic sequence of linked amino acid residues, ranging from approximately 10 to over 1,000 residues. Short-chain polypeptides with up to 30 residues are also called "oligopeptides."

[0114] The term "protein" refers to a macromolecular structure containing one or more polypeptides. The amino acid sequence of the polypeptide(es) represents the protein's "primary structure." The amino acid sequence also determines the protein's "secondary structure" through the formation of special structural elements, such as α-helical and β-sheet structures, within the polypeptide chain. The arrangement of multiple such secondary structural elements defines the protein's "tertiary structure" or spatial arrangement. If a protein contains multiple polypeptide chains, these chains are spatially arranged to form the protein's "quaternary structure." The correct spatial arrangement, or "folding," of a protein is essential for its function. Denaturation or unfolding disrupts the protein's function. If such disruption is reversible, the protein's function can be restored by refolding.

[0115] A typical protein function referred to herein is "enzymatic function," that is, the protein acts as a biocatalyst on a substrate, such as a compound, catalyzing the conversion of the substrate into a product. Enzymes may exhibit high or low substrate specificity and / or product specificity.

[0116] Therefore, the term "polypeptide" as used herein to describe a substance having a specific "activity" implicitly refers to a correctly folded protein that exhibits indicator activity, such as the activity of a particular enzyme.

[0117] Therefore, unless otherwise indicated, the term “polypeptide” also encompasses the terms “protein” and “enzyme.”

[0118] Similarly, the term "polypeptide fragment" encompasses the terms "protein fragment" and "enzyme fragment."

[0119] The term "isolated polypeptide" refers to an amino acid sequence removed from the natural environment by any method or combination of methods known in the art, including recombinant, biochemical, and synthetic methods.

[0120] A "target peptide" refers to an amino acid sequence that targets a protein or polypeptide to an intracellular organelle, namely mitochondria or plastids, or to the extracellular space (secretionary signaling peptides). The nucleic acid sequence encoding the target peptide can be fused to the amino terminus, e.g., the N terminus, of the protein or polypeptide, or it can be used as a substitute for a naturally occurring targeted polypeptide.

[0121] The present invention also relates to “functional equivalents” (also referred to as “analogs” or “functional variants”) of polypeptides specifically described herein.

[0122] For example, “functional equivalent” means a polypeptide that, in tests used to determine enzyme activity, exhibits enzyme activity that is at least 1–10%, at least 20%, at least 50%, at least 75%, or at least 90% higher or lower than the enzyme activity of the polypeptides specifically described herein, and that serves as a basis for such comparison.

[0123] A “functional equivalent” also refers to a specific variant that, according to the present invention, has an amino acid different from the specifically described amino acid at at least one sequence position of the amino acid sequence described herein, but nevertheless possesses one of the above-mentioned biological activities, such as enzyme activity. Thus, a “functional equivalent” includes variants obtained by the addition, substitution, especially conservative substitution (i.e., resulting in the replacement of the amino acid with an amino acid of the same charge, size, polarity, and / or solubility), deletion, and / or reversal of one or more amino acids, e.g., 1 to 20, particularly 1 to 15 or 5 to 10, in which case the described change can occur at any sequence position, provided that it results in a variant having the profile of properties according to the present invention. Functional equivalent is defined as a qualitative match in activity patterns between the variant and the unchanged polypeptide, i.e., for example, when the same agonist or antagonist or substrate interaction is observed, but at different rates (i.e., EC50 or IC 50 Also provided are values ​​or any other parameters appropriate in the art. Examples of appropriate (conservative) amino acid substitutions are shown in the table below.

[0124] [Table 4]

[0125] In the sense described above, “functional equivalents” also refer to the “precursors” of polypeptides, as well as the “functional derivatives” and “salts” of polypeptides described herein.

[0126] A "precursor" in this case is a natural or synthetic precursor of a polypeptide, regardless of whether it has the desired biological activity.

[0127] The term "salt" in this invention refers to a salt of a carboxyl group, as well as an acid addition salt of an amino group of a protein molecule according to the present invention. Salts of carboxyl groups can be produced by known methods and include inorganic salts, such as salts of sodium, calcium, ammonium, iron, and zinc, as well as salts with organic bases, such as amines such as triethanolamine, arginine, lysine, and piperidine. Acid addition salts, such as salts with inorganic acids such as hydrochloric acid and sulfuric acid, as well as salts with organic acids such as acetic acid and oxalic acid, are also covered by this invention.

[0128] The "functional derivatives" of polypeptides according to the present invention can also be generated on or at the N-terminus or C-terminus of a functional amino acid side group using known techniques. Such derivatives include, for example, aliphatic esters of carboxylic acid groups obtained by reaction with ammonia or with primary or secondary amines; amides of carboxylic acid groups; N-acyl derivatives of free amino groups produced by reaction with acyl groups; or O-acyl derivatives of free hydroxyl groups produced by reaction with acyl groups.

[0129] "Functional equivalents" also naturally include polypeptides that can be obtained from other organisms, as well as naturally occurring manifolds. For example, the range of homologous sequence regions can be established by sequence comparison, and equivalent polypeptides can be determined based on the specific parameters of the present invention.

[0130] A “functional equivalent” also includes “fragments” such as individual domains or sequence motifs of the polypeptide according to the present invention, or forms cleaved at the N-terminus and / or C-terminus, which may or may not exhibit the desired biological function. Preferably, such “fragments” retain at least the desired biological function qualitatively.

[0131] A “functional equivalent” is further a fusion protein having at least one further, functionally distinct heterologous sequence functionally associated at its N-terminus or C-terminus with one of the polypeptide sequences or functional equivalents derived herein (i.e., without substantial mutual dysfunction of the fusion protein portion). Non-limiting examples of these heterologous sequences are, for example, signal peptides, histidine anchors, or enzymes.

[0132] The “functional equivalents” also included in the present invention are homologs to the specifically disclosed polypeptides. These have homology (or identity) to one of the specifically disclosed amino acid sequences, calculated by the algorithm of Pearson and Lipman, Proc. Natl. Acad, Sci. (USA) 85(8), 1988, 2444-2448, of at least 60%, preferably at least 75%, particularly at least 80 or 85%, for example, 90, 91, 92, 93, 94, 95, 96, 97, 98, or 99%. The homology or identity (expressed as a percentage) of homologous polypeptides according to the present invention means, in particular, the identity (expressed as a percentage) of amino acid residues based on the full length of one of the amino acid sequences specifically described herein.

[0133] Identity data expressed as a percentage may also be determined using BLAST alignment, the algorithm blastp (protein-protein BLAST), or by applying the Clustal settings described below.

[0134] In the case of possible protein glycosylation, the “functional equivalents” according to the present invention include not only polypeptides described herein in deglycosylated or glycosylated forms, but also modified forms that can be obtained by altering the glycosylation pattern.

[0135] Functional equivalents or homologs of polypeptides according to the present invention can be generated by mutagenesis, for example, by point mutation, protein elongation or shortening, or as described in more detail below.

[0136] Functional equivalents or homologs of polypeptides according to the present invention can be identified by screening a combinatorial database of variants, such as truncated variants. For example, a diverse database of protein variants can be created by combinatorial mutagenesis at the nucleic acid level, for example, by enzymatic ligation of a mixture of synthetic oligonucleotides. A great many methods can be used to create a database of potential homologs from degenerate oligonucleotide sequences. The chemical synthesis of degenerate gene sequences can be performed in an automated DNA synthesizer, and the synthetic gene can then be ligated with a suitable expression vector. The use of a degenerate genome makes it possible to supply all sequences in a mixture, which encode a desired set of potential protein sequences. Methods for synthesizing degenerate oligonucleotides are known to those skilled in the art.

[0137] Prior art has provided several techniques for screening gene products from combinatorial databases created by point mutations or truncations, and for screening cDNA libraries of gene products with selected characteristics. These techniques can be adapted for rapid screening of gene banks produced by combinatorial mutagenesis of homologs according to the present invention. The most frequently used techniques for screening large gene banks based on high-throughput analysis include cloning the gene bank in a replicable expression vector, transforming appropriate cells using the resulting vector database, and expressing combinatorial genes under conditions that facilitate isolation of the vector encoding the gene whose product was detected, thereby enabling detection of desired activity. Recurrent ensemble mutagenesis (REM) is a technique that increases the frequency of functional variants in a database and can be used in combination with screening tests to identify homologs.

[0138] The embodiments provided herein provide orthologs and paralogs of the polypeptides disclosed herein, as well as methods for identifying and isolating such orthologs and paralogs. The definitions of the terms “ortholog” and “paralog” are given below and apply to amino acid sequences and nucleic acid sequences.

[0139] c. Coding nucleic acid sequences applicable according to the present invention In this context, the following definitions apply: The terms “nucleic acid sequence,” “nucleic acid,” “nucleic acid molecule,” and “polynucleotide” are used interchangeably and refer to a sequence of nucleotides. A nucleic acid sequence can be a single- or double-stranded deoxyribonucleotide or ribonucleotide of any length and includes gene coding and non-coding sequences, exons, introns, sense and antisense complementary sequences, genomic DNA, cDNA, miRNA, siRNA, mRNA, rRNA, tRNA, recombinant nucleic acid sequences, isolated and purified naturally occurring DNA and / or RNA sequences, synthetic DNA and RNA sequences, fragments, primers, and nucleic acid probes. Those skilled in the art will know that RNA nucleic acid sequences are identical to DNA sequences, differing only in that uracil (U) is used instead of thymine (T). The term “nucleic acid sequence” should also be understood as containing polynucleotide molecules or oligonucleotide molecules in the form of distinct fragments, or as components of a larger nucleic acid.

[0140] "Isolated nucleic acids" or "isolated nucleic acid sequences" may substantially include nucleic acids or nucleic acid sequences that are in an environment different from the environment in which they naturally occur, and that are not contaminated with endogenous substances.

[0141] In this specification, the term “naturally occurring” as applied to nucleic acids refers to nucleic acids found in the cells of organisms in nature and not intentionally modified by humans in the laboratory.

[0142] A “fragment” of a polynucleotide or nucleic acid sequence means a sequence of nucleotides in which the length of the polynucleotide in the embodiments herein is at least 15 bp, at least 30 bp, at least 40 bp, at least 50 bp and / or at least 60 bp. In particular, a fragment of a polynucleotide contains at least 25, more specifically at least 50, more specifically at least 75, more specifically at least 100, more specifically at least 150, more specifically at least 200, more specifically at least 300, more specifically at least 400, more specifically at least 500, more specifically at least 600, more specifically at least 700, more specifically at least 800, more specifically at least 900, and more specifically at least 1000 of the sequence of nucleotides in the embodiments herein. Without limiting, the fragments of polynucleotides herein may be used as PCR primers and / or probes, or for antisense gene silencing or RNAi.

[0143] As used herein, the terms “hybridization” or “hybridizing under specific conditions” are intended to describe hybridization and washing conditions in which nucleotide sequences that are significantly identical or homologous to each other remain bound to one another. Conditions may be such that sequences with at least about 70%, e.g., at least about 80%, e.g., at least about 85%, 90%, or 95% identity remain bound to each other. Definitions of low-stringency, medium-stringency, and high-stringency hybridization conditions are provided below herein. Appropriate hybridization conditions can also be selected by those skilled in the art with minimal experimentation, as exemplified in Ausubel et al. (1995, Current Protocols in Molecular Biology, John Wiley & Sons, sections 2, 4, and 6). Furthermore, stringency requirements are described in Sambrook et al. (1989, Molecular Cloning: A Laboratory Manual, 2nd ed., Cold Spring Harbor Press, chapters 7, 9, and 11).

[0144] A "recombinant nucleic acid sequence" is a nucleic acid sequence produced or modified by combining genetic material from a source using laboratory methods (e.g., molecular cloning) to create a nucleic acid sequence that does not exist in nature and is not found in living organisms by other means.

[0145] "Recombinant DNA technology" refers to molecular biological procedures for preparing recombinant nucleic acid sequences, such as those described in Laboratory Manuals edited by Weigel and Glazebrook, 2002, Cold Spring Harbor Lab Press; and Sambrook et al., 1989, Cold Spring Harbor, NY, Cold Spring Harbor Laboratory Press.

[0146] The term "gene" refers to a DNA sequence that includes an appropriate regulatory region, such as an RNA molecule operably ligated to a promoter, such as a region transcribed into intracellular mRNA. Thus, a gene may include multiple operably ligated sequences, such as a promoter, such as a sequence involved in translation initiation, a coding region of cDNA or genomic DNA, a 5' leader sequence containing introns and exons, and / or a 3' untranslated sequence containing, for example, a transcription termination site.

[0147] "Polycistronic" refers to nucleic acid molecules, particularly mRNA, that can code for two or more polypeptides separately within the same nucleic acid molecule.

[0148] A “chimeric gene” refers to any gene in a given species that is not normally found in nature, particularly a gene that contains one or more parts of nucleic acid sequences that are not naturally related to each other. For example, a promoter may not be naturally related to part or all of a transcription region or to another regulatory region. The term “chimeric gene” is understood to include expression constructs in which a promoter or transcriptional regulatory sequence is manipulably ligated to one or more coding sequences or antisense sequences, i.e., the reverse complement of the sense strand, or reverse repeat sequences (sense and antisense, so that the RNA transcript forms double-stranded RNA at transcription). The term “chimeric gene” also includes genes obtained by combining parts of one or more coding sequences to produce a new gene.

[0149] The “3'UTR” or “3' untranslated sequence” (also called the “3' untranslated region” or “3' end”) refers to a nucleic acid sequence found downstream of the coding sequence of a gene, which includes, for example, a transcription termination site and (in most, though not all, eukaryotic mRNAs) a polyadenylation signal, e.g., AAUAAA or its variants. After transcription termination, the mRNA transcript may be cleaved downstream of the polyadenylation signal, and a translation site, e.g., a poly(A) tail involved in the transport of mRNA into the cytoplasm, may be added.

[0150] The term "primer" refers to a short nucleic acid sequence hybridized to a template nucleic acid sequence, used to polymerize a nucleic acid sequence complementary to the template.

[0151] The term "selectable marker" refers to any gene that, at the time of expression, can be used to select cells containing a selectable marker or to select cells containing such a marker. Examples of selectable markers are listed below. Those skilled in the art will know that selectable markers for different antibiotics, fungicides, trophicing strains, or herbicides can be applied to different target species.

[0152] The present invention also relates to nucleic acid sequences encoding polypeptides as defined herein.

[0153] In particular, the present invention also relates to nucleic acid sequences (single-stranded and double-stranded DNA and RNA sequences, e.g., cDNA, genomic DNA and mRNA) encoding one of the above polypeptides and their functional equivalents (these can be obtained, for example, using artificial nucleotide analogs).

[0154] The present invention relates to both isolated nucleic acid molecules encoding polypeptides or biologically active segments thereof according to the present invention, and nucleic acid fragments that can be used, for example, as hybridization probes or primers for identifying or amplifying coding nucleic acids according to the present invention.

[0155] The present invention also relates to nucleic acids having a certain degree of “identity” with the sequences specifically disclosed herein. “Identity” between two nucleic acids means, in either case, the identity of nucleotides throughout the entire length of the nucleic acid.

[0156] The "identity" between two nucleotide sequences (and similarly for peptide or amino acid sequences) is a function of the number of identical nucleotide residues (or amino acid residues) in the two sequences when an alignment of those two sequences is generated. Identical residues are defined as residues that are identical in the two sequences at a given position in the alignment. The sequence identity percentage used herein is calculated from the optimal alignment by taking the number of identical residues between the two sequences, dividing it by the total number of residues in the shortest sequence, and multiplying by 100. The optimal alignment is the alignment with the highest possible identity percentage. To obtain the optimal alignment, gaps may be introduced in one or both sequences at one or more positions in the alignment. These gaps are then considered non-identical residues for calculating the sequence identity percentage. Alignments for the purpose of determining the sequence identity percentage of amino acids or nucleic acids can be achieved in various ways using computer programs, for example, publicly available computer programs available on the World Wide Web.

[0157] In particular, the BLAST program with default parameters, available from the National Center for Biotechnology Information (NCBI) website (ncbi.nlm.nih.gov / BLAST / bl2seq / wblast2.cgi) (Tatiana et al, FEMS Microbiol Lett., 1999, 174:247-250, 1999), can be used to obtain optimal alignment of protein or nucleic acid sequences and calculate the percentage of sequence identity.

[0158] In another example, identity can be calculated using the Clustal Method (Higgins DG, Sharp PM. (1989)) with the following settings, using Informax (USA)'s Vector NTI Suite 7.1: Multiple alignment parameters Gap opening penalty 10 Gap extension penalty: 10 Gap isolation penalty range: 8 Gap isolation penalty off % Identity against Alignment Delay 40 Residue specificity gap off Hydrophilic residue gap off Transition weighting: 0 Pairwise alignment parameters: FAST algorithm ON K Tuple Size 1 Gap penalty 3 Window size 5 Best number of diagonals: 5

[0159] Alternatively, identity may be determined according to Chenna, et al. (2003), webpage: http: / / www.ebi.ac.uk / Tools / clustalw / index.html#, and the following settings: DNA gap open penalty 15.0 DNA gap elongation penalty 6.66 DNA Matrix Identity Protein gap open penalty: 10.0 Protein elongation penalty 0.2 Protein matrix Gonnet Protein / DNA ENDGAP -1 Protein / DNA GAPDIST 4

[0160] All nucleic acid sequences described herein (single-stranded and double-stranded DNA and RNA sequences, e.g., cDNA and mRNA) can be produced by known methods, such as chemical synthesis from nucleotide building blocks, e.g., by condensation of individual overlapping complementary nucleic acid building block fragments of a double helix. Chemical synthesis of oligonucleotides can be carried out by known methods, such as the phosphoamidite method (Voet, Voet, 2nd edition, Wiley Press, New York, pages 896-897). The accumulation and gap filling of synthetic oligonucleotides by ligation reactions of DNA polymerases with Klenow fragments, as well as general cloning techniques, are described in Sambrook et al. (1989), see below.

[0161] The nucleic acid molecule according to the present invention may further include untranslated sequences from the 3' and / or 5' ends of the coding gene region.

[0162] The present invention further relates to nucleic acid molecules complementary to a nucleotide sequence or segment specifically described.

[0163] The nucleotide sequences according to the present invention enable the generation of probes and primers that can be used for the identification and / or cloning of homologous sequences in other cell types and organisms. Such probes or primers generally include a nucleotide sequence region that hybridizes on at least about 12, preferably at least about 25, e.g., about 40, 50, or 75 consecutive nucleotides of the sense strand or corresponding antisense strand of the nucleic acid sequence according to the present invention under "stringent" conditions (as defined elsewhere herein).

[0164] "Homologous" sequences include ortholog or paralog sequences. Methods for identifying orthologs or paralogs, including phylogenetic analysis, sequence similarity, and hybridization methods, are known in the art and are described herein.

[0165] A "paralog" arises from gene duplication that produces two or more genes with similar sequences and similar functions. Paralogs typically cluster together and are formed by gene duplication within related plant species. Paralogs can be found within groups of similar genes using pairwise Blast analysis, or during phylogenetic analysis of gene families using programs such as CLUSTAL. In paralogs, a consensus sequence can be identified that is characteristic of the sequences within related genes and has a similar function to the genes.

[0166] Orthologs, or ortholog sequences, are sequences that are similar to each other because they are found in species that are descendants of a common ancestor. For example, plant species that share a common ancestor are known to contain many enzymes with similar sequences and functions. Those skilled in the art can identify ortholog sequences and predict their functions by constructing polygene genealogies of certain gene families, for example, using CLUSTAL or BLAST programs. One method for identifying or confirming similar functions between homologous sequences is to compare the transcript profiles of the relevant polypeptide when it is overexpressed and when it is deleted (knockout / knockdown) in host cells or organisms, such as plants or microorganisms. Those skilled in the art will understand that genes with similar transcript profiles, genes that commonly have more than 50% regulated transcripts, genes that commonly have more than 70% regulated transcripts, or genes that commonly have more than 90% regulated transcripts have similar functions. Homologs, paralogs, orthologues, and any other variants of the sequences described herein are expected to function in a similar manner by creating host cells, organisms, such as plants or microorganisms, that produce terpene synthase proteins.

[0167] The term "selectable marker" refers to any gene that, at the time of expression, can be used to select cells containing a selectable marker or to select cells containing such a marker. Examples of selectable markers are listed below. Those skilled in the art will know that selectable markers for different antibiotics, fungicides, trophicing strains, or herbicides can be applied to different target species.

[0168] "Isolated" nucleic acid molecules are separated from other nucleic acid molecules present in the natural source of the nucleic acid, and furthermore, if they are produced by recombinant technology, they may substantially contain other cellular material or culture medium, and if they are chemically synthesized, they may not contain chemical precursors or other chemical substances.

[0169] Nucleic acid molecules according to the present invention can be isolated by standard molecular biology techniques and sequence information provided according to the present invention. For example, one of the specifically disclosed complete sequences or a segment thereof can be isolated from a suitable cDNA library using a hybridization probe and standard hybridization techniques (e.g., as described in Sambrook, (1989)).

[0170] Furthermore, nucleic acid molecules containing one of the disclosed sequences or a segment thereof can be isolated by polymerase chain reaction using oligonucleotide primers constructed based on this sequence. The nucleic acids thus amplified can be cloned into a suitable vector and characterized by DNA sequencing. Oligonucleotides according to the present invention can also be produced using standard synthesis methods, such as automated DNA synthesizers.

[0171] Nucleic acid sequences or derivatives thereof according to the present invention, homologs or parts thereof, can be isolated from other bacteria, for example, via a genomic library or cDNA library, by conventional hybridization techniques or PCR techniques. These DNA sequences hybridize with the sequences according to the present invention under standard conditions.

[0172] "Hybridization" refers to the ability of polynucleotides or oligonucleotides to bind to nearly complementary sequences under standard conditions, where nonspecific binding does not occur between non-complementary partners. For this reason, sequences can be 90-100% complementary. The complementary sequence property—the ability to bind specifically to each other—is utilized, for example, in Northern blotting or Southern blotting, or in primer binding in PCR or RT-PCR.

[0173] Oligonucleotides with short conserved regions are advantageous for hybridization. However, longer fragments or complete sequences of nucleic acids according to the present invention can also be used for hybridization. These "standard conditions" vary depending on the nucleic acid used (oligonucleotide, longer fragment, or complete sequence) or the type of nucleic acid used for hybridization (DNA or RNA). For example, the melting temperature of a DNA:DNA hybrid is about 10°C lower than that of a DNA:RNA hybrid of the same length.

[0174] For example, depending on the specific nucleic acid, standard conditions are 42-58°C in a buffered aqueous solution of 0.1-5×SSC (1×SSC = 0.15M NaCl, 15mM sodium citrate, pH 7.2) or further in the presence of 50% formamide, for example, 5×SSC at 42°C in 50% formamide. Advantageously, for DNA:DNA hybrids, the hybridization conditions are 0.1×SSC and the temperature is approximately 20°C-45°C, preferably approximately 30°C-45°C. For DNA:RNA hybrids, the hybridization conditions are advantageously 0.1×SSC and the temperature is approximately 30°C-55°C, preferably approximately 45°C-55°C. These described temperatures for hybridization are examples of melting temperature values ​​calculated for nucleic acids having a length of approximately 100 nucleotides and a 50% G+C content in the absence of formamide. The experimental conditions for DNA hybridization are described in relevant genetics textbooks, e.g., Sambrook et al., 1989, and can be calculated using formulas known to those skilled in the art, depending on the nucleic acid length, hybrid type, or G+C content. Those skilled in the art can obtain further information on hybridization from the following textbooks: Ausubel et al. (eds), (1985), Brown (ed) (1991).

[0175] Hybridization can be performed under stringent conditions, in particular. Such hybridization conditions are described, for example, in Sambrook (1989) or in Current Protocols in Molecular Biology, John Wiley & Sons, NY (1989), 6.3.1–6.3.6.

[0176] As used herein, the terms hybridization or hybridizing under specific conditions are intended to describe hybridization and washing conditions in which nucleotide sequences that are significantly identical or homologous to each other remain bound to one another. The conditions may be such that sequences with at least about 70%, e.g., at least about 80%, e.g., at least about 85%, 90%, or 95% identity remain bound to each other. Definitions of low-stringency, medium-stringency, and high-stringency hybridization conditions are provided herein.

[0177] Appropriate hybridization conditions can also be selected by those skilled in the art with minimal experimentation, as exemplified in Ausubel et al. (1995, Current Protocols in Molecular Biology, John Wiley & Sons, sections 2, 4, and 6). Furthermore, stringency conditions are described in Sambrook et al. (1989, Molecular Cloning: A Laboratory Manual, 2nd ed., Cold Spring Harbor Press, chapters 7, 9, and 11).

[0178] As used herein, the defined conditions for low stringency are as follows: A filter containing DNA is pretreated at 40°C for 6 hours in a solution containing 35% formamide, 5×SSC, 50 mM Tris-HCl (pH 7.5), 5 mM EDTA, 0.1% PVP, 0.1% Ficoll, 1% BSA, and 500 μg / ml denatured salmon sperm DNA. Hybridization is performed in the same solution with the following modifications: 0.02% PVP, 0.02% Ficoll, 0.2% BSA, 100 μg / ml salmon sperm DNA, 10% (w / v) dextran sulfate, and 5-20 × 10⁻¹⁶ 6Use a 32P-labeled probe. Incubate the filter in the hybridization mixture at 40°C for 18-20 hours, then wash at 55°C for 1.5 hours in a solution containing 2×SSC, 25 mM Tris-HCl (pH 7.4), 5 mM EDTA, and 0.1% SDS. Replace the washing solution with fresh solution and incubate at 60°C for a further 1.5 hours. Absorb and dry the filter and expose it for autoradiography.

[0179] As used herein, the defined conditions for intermediate stringency are as follows: A filter containing DNA is pretreated at 50°C for 7 hours in a solution containing 35% formamide, 5×SSC, 50 mM Tris-HCl (pH 7.5), 5 mM EDTA, 0.1% PVP, 0.1% Ficoll, 1% BSA, and 500 μg / ml denatured salmon sperm DNA. Hybridization is performed in the same solution with the following modifications: 0.02% PVP, 0.02% Ficoll, 0.2% BSA, 100 μg / ml salmon sperm DNA, 10% (w / v) dextran sulfate, and 5-20 × 10⁻¹⁶ 6 Use a 32P-labeled probe. Incubate the filter in the hybridization mixture at 50°C for 30 hours, then wash at 55°C for 1.5 hours in a solution containing 2×SSC, 25 mM Tris-HCl (pH 7.4), 5 mM EDTA, and 0.1% SDS. Replace the washing solution with fresh solution and incubate at 60°C for a further 1.5 hours. Absorb and dry the filter and expose it for autoradiography.

[0180] As used herein, the defined conditions for high stringency are as follows: Pre-hybridization of DNA-containing filters is performed at 65°C for 8 hours to overnight in a buffer consisting of 6×SSC, 50 mM Tris-HCl (pH 7.5), 1 mM EDTA, 0.02% PVP, 0.02% Ficoll, 0.02% BSA, and 500 μg / ml denatured salmon sperm DNA. 100 μg / ml denatured salmon sperm DNA and 5-20 × 10 6The filter was hybridized at 65°C for 48 hours in a pre-hybridization mixture containing a cpm 32P-labeled probe. The filter was washed at 37°C for 1 hour in a solution containing 2×SSC, 0.01% PVP, 0.01% Ficoll, and 0.01% BSA. Then, it was washed with 0.1×SSC at 50°C for 45 minutes.

[0181] Other low, medium, and high stringency conditions known in the art (e.g., conditions used for interspecies hybridization) may be used if the above conditions are unsuitable (e.g., conditions used for interspecies hybridization).

[0182] The nucleic acid sequence detection kit for polypeptides according to the present invention may include primers and / or probes specific to the polypeptide-encoding nucleic acid sequence, as well as associated protocols for detecting the polypeptide-encoding nucleic acid sequence in a sample using said primers and / or probes. Such detection kits can be used to determine whether a plant, organism, microorganism, or cell has been modified, i.e., transformed with a polypeptide-encoding sequence.

[0183] To test the function of a variant DNA sequence according to the embodiments herein, the sequence of interest is operably ligated to a selectable or screenable marker gene, and the expression of the reporter gene is tested in a transient expression assay, for example, using microorganisms, or protoplasts, or using stably transformed plants.

[0184] The present invention also relates to derivatives of specifically disclosed or derivable nucleic acid sequences.

[0185] Accordingly, further nucleic acid sequences according to the present invention may be derived from sequences specifically disclosed herein, differing therefrom by only the addition, substitution, insertion, or deletion of one or more nucleotides (e.g., 1 to 10), for example, 1 to 20, particularly 1 to 15 or 5 to 10 amino acids, and may further encode polypeptides having a desired characteristic profile.

[0186] The present invention also includes so-called silent mutations or modified nucleic acid sequences compared to the specifically described sequences, depending on their specific origin or the codon usage frequency of the host organism.

[0187] According to certain embodiments of the present invention, variant nucleic acids can be prepared to adapt their nucleotide sequences to a particular expression system. For example, bacterial expression systems are known to express polypeptides more efficiently when amino acids are encoded by specific codons. Due to the degenerate nature of the genetic code, two or more codons may encode the same amino acid sequence, and multiple nucleic acid sequences may encode the same protein or polypeptide; all of these DNA sequences are encompassed by the embodiments herein. Where appropriate, the nucleic acid sequences encoding polypeptides described herein may be optimized for increased expression in host cells. For example, the nucleic acids of the embodiments herein may be synthesized with host-specific codons to improve expression.

[0188] The present invention also includes naturally occurring variants of the sequences described herein, such as splicing variants or allelic variants.

[0189] Allele variants may have at least 60% homology at the induced amino acid level, preferably at least 80% homology, and particularly preferably at least 90% homology across the entire sequence range (see the details above for polypeptides regarding homology at the amino acid level). Advantageously, homology may be higher across subregions of the sequence.

[0190] The present invention also relates to sequences obtained by conservative nucleotide substitutions (i.e., as a result, the amino acid in question is replaced by an amino acid with the same charge, size, polarity, and / or solubility).

[0191] The present invention also relates to molecules derived from nucleic acids specifically disclosed by sequence polymorphisms. Such genetic polymorphisms may exist in cells from different populations or within populations due to natural allele mutations. Allele variants may include functional equivalents. These natural mutations typically result in 1–5% variability in the nucleotide sequence of a gene. The polymorphisms may result in changes in the amino acid sequence of the polypeptides disclosed herein. Allele variants may also include functional equivalents.

[0192] Furthermore, derivatives should also be understood as homologs of nucleic acid sequences according to the present invention, for example, homologs of animals, plants, fungi, or bacteria, truncated sequences, coding and non-coding DNA sequences, and single-stranded DNA or RNA. For example, homologs have at least 40%, preferably at least 60%, particularly preferably at least 70%, and very preferably at least 80% homology at the DNA level across the entire DNA region given by the sequences specifically disclosed herein.

[0193] Furthermore, derivatives should be understood as fusions with, for example, promoters. Promoters attached to the described nucleotide sequences can be modified by at least one nucleotide exchange, at least one insertion, inversion, and / or deletion, without impairing the functionality or effectiveness of the promoter. Moreover, the effectiveness of promoters can be enhanced by altering their sequences, or even completely replaced with more effective promoters, even in organisms of different genera.

[0194] d. Generation of functional polypeptide variants Furthermore, those skilled in the art are familiar with methods for generating functional variants, i.e., methods for generating nucleotide sequences encoding polypeptides encoded by nucleic acid molecules comprising polypeptides having at least 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% sequence identity with any of the amino acid-related sequence numbers disclosed herein, and / or nucleotide sequences having at least 70% sequence identity with any of the nucleotide-related sequence numbers disclosed herein.

[0195] Depending on the technique used, those skilled in the art can introduce completely random or more targeted mutations into genes or non-coding nucleic acid regions (which are important, for example, for regulating expression) and subsequently generate a gene library. The molecular biological methods required for this purpose are known to those skilled in the art and are described, for example, in Sambrook and Russell, Molecular Cloning. 3rd Edition, Cold Spring Harbor Laboratory Press 2001.

[0196] Methods for modifying genes, and by extension, the polypeptides encoded by genes, have long been known to those skilled in the art, and include, for example, the following: - Site-directed mutagenesis in which individual or multiple nucleotides of a gene are replaced in a specified manner (Trower MK (Ed.) 1996; In vitro mutagenesis protocols. Humana Press, New Jersey). - Saturated mutagenesis allows for the exchange or addition of any amino acid codon at any point in a gene (Kegler-Ebo DM, Docktor CM, DiMaio D (1994) Nucleic Acids Res 22:1593; Barettino D, Feigenbutz M, Valcarel R, Stunnenberg HG (1994) Nucleic Acids Res 22:541; Barik S (1995) Mol Biotechnol 3:1), - Mutagenic polymerase chain reaction (Eckert KA, Kunkel TA (1990) Nucleic Acids Res 18:3739), in which the nucleotide sequence is mutated by mutagenic DNA polymerase. - Favorable exchange is inhibited by polymerase, SeSaM method (sequence saturation method) Schenk et al., Biospektrum, Vol. 3, 2006, 277-279. - For example, an increase in the nucleotide sequence mutation rate occurs due to defects in the DNA repair mechanism, or in the passage of genes in mutagenic strains (Greener A, Callahan M, Jerpseth B (1996) An efficient random mutagenesis technique using an E. coli mutator strain. In: Trower MK (Ed.) In vitro mutagenesis protocols. Humana Press, New Jersey), or DNA shuffling (Stemmer WPC (1994) Nature 370:389; Stemmer WPC (1994) Proc Natl Acad Sci USA 91:10747) is a process in which a pool of closely related genes is formed, digested, and fragments of these genes are used as templates for polymerase chain reactions, ultimately generating full-length mosaic genes through repeated strand separation and re-annealing.

[0197] Using so-called directional evolution (particularly described in Reetz MT and Jaeger KE (1999), Topics Curr Chem 200:31; Zhao H, Moore JC, Volkov AA, Arnold FH (1999), Methods for optimizing industrial polypeptides by directed evolution, In: Demain AL, Davies JE (Ed.) Manual of industrial microbiology and biotechnology. American Society for Microbiology), those skilled in the art can generate functional variants on a large scale in a directed manner. For this purpose, in the first step, a gene library of each polypeptide is initially created, for example, using the method described above. This gene library is then expressed in an appropriate manner, for example, by bacteria or a phage display system.

[0198] The relevant genes of a host organism expressing a functional mutant with characteristics generally corresponding to the desired traits can be subjected to another mutation cycle. The steps of mutation and selection or screening can be repeated until the existing functional mutants possess the desired traits to a sufficient degree. Using this iterative procedure, a limited number of mutations, e.g., 1, 2, 3, 4, or 5 mutations, can be performed stepwise, their effects on the target activity evaluated, and selected. The selected mutants can then be subjected to further mutation steps in a similar manner. In this way, the number of individual mutants investigated can be significantly reduced.

[0199] The results according to the present invention also provide important information regarding the structure and sequence of the relevant polypeptides required to generate further polypeptides having the desired modified properties in a targeted manner. In particular, it is possible to define so-called "hot spots," i.e., sequence segments that may be suitable for modifying properties by introducing targeted mutations.

[0200] Furthermore, it is possible to derive information about the locations of amino acid sequences where mutations that are expected to have little effect on activity may be occurring nearby; such mutations can be referred to as potential "silent mutations."

[0201] e. Constructs for expressing the polypeptide of the present invention In this context, the following definitions apply: "Gene expression" encompasses "heterogenetic expression" and "overexpression," and includes gene transcription and translation of mRNA into protein. Overexpression means that the production of a gene product, as measured by levels of mRNA, polypeptide, and / or enzyme activity in a transgenic cell or organism, exceeds the production levels in non-transformed cells or organisms with a similar genetic background.

[0202] As used herein, “expression vector” means a nucleic acid molecule manipulated using molecular biological methods and recombinant DNA techniques for the delivery of foreign or exogenous DNA to host cells. An expression vector typically contains a sequence required for the proper transcription of a nucleotide sequence. The coding region usually encodes the protein of interest, but may also encode RNA, such as antisense RNA or siRNA.

[0203] As used herein, “expression vectors” include, but are not limited to, any linear or circular recombinant vectors, including viral vectors, bacteriophages, and plasmids. Those skilled in the art can select an appropriate vector depending on the expression system. In one embodiment, the expression vector comprises the nucleic acid of the embodiment herein, operably ligated to at least one “regulatory sequence” that controls transcription, translation, initiation, and termination, such as a transcription promoter, operator, or enhancer, or an mRNA-ribosome binding site, and optionally comprises at least one selection marker. The nucleotide sequence is “operably ligated” if the regulatory sequence is functionally relevant to the nucleic acid of the embodiment herein.

[0204] As used herein, “expression system” encompasses any combination of nucleic acid molecules required for the expression of one polypeptide or the co-expression of two or more polypeptides in a given expression host, either in vivo or in vitro. Each coding sequence may be located on a single nucleic acid molecule or vector, such as a vector containing multiple cloning sites, or on a polycistronic nucleic acid, or dispersed on two or more physically distinct vectors.

[0205] As used herein, the terms “amplify” and “reinforce” refer to the use of any suitable amplification method for producing or detecting recombinants of naturally expressed nucleic acids, as described in detail below. For example, the present invention provides methods and reagents (e.g., specific denaturing oligonucleotide primer pairs, oligo-dT primers) for amplifying naturally expressed nucleic acids of the present invention (e.g., genomic DNA or mRNA) or recombinant (e.g., cDNA) in vivo, ex vivo, or in vitro (e.g., by polymerase chain reaction, PCR).

[0206] A “regulatory sequence” refers to a nucleic acid sequence that determines the expression level of the nucleic acid sequence of the embodiments herein and can regulate the transcription rate of a nucleic acid sequence operably linked to the regulatory sequence. Regulatory sequences include promoters, enhancers, transcription factors, promoter elements, and the like.

[0207] The terms “promoter,” “promoter-active nucleic acid,” or “promoter sequence” are understood, in accordance with the present invention, to mean a nucleic acid that, when functionally linked to the nucleic acid being transcribed, regulates the transcription of said nucleic acid. “Promoter” specifically refers to a nucleic acid sequence that controls the expression of a coding sequence by providing binding sites for RNA polymerase and other factors necessary for proper transcription, including but not limited to transcription factor binding sites, repressor and activator protein binding sites. The term promoter also includes the term “promoter-regulating sequence.” Promoter-regulating sequences may include upstream and downstream elements that can affect transcription, RNA processing, or the stability of the associated coding nucleic acid sequence. Promoters include both naturally occurring and synthetic sequences. The coding nucleic acid sequence is typically located downstream of the promoter with respect to the direction of transcription, starting from the transcription start site.

[0208] In this context, “functional” or “operable” linkage is understood to mean, for example, a continuous sequence of one nucleic acid and a regulatory sequence. For example, a sequence with promoter activity, a sequence of the nucleic acid sequence to be transcribed, and optionally further regulatory elements, such as a nucleic acid sequence that ensures the transcription of the nucleic acid, and a terminator, are linked so that each of the regulatory elements can perform its function during the transcription of the nucleic acid sequence. This does not necessarily require direct linkage in a chemical sense. Genetic regulatory sequences, such as enhancer sequences, can also exert their functions on target sequences from more distant locations or target sequences from other DNA molecules. A preferred sequence is one in which the nucleic acid sequence to be transcribed is located behind (i.e., at the 3' end) the promoter sequence so that the two sequences are covalently linked. The distance between the promoter sequence and the recombinantly expressed nucleic acid sequence may be less than 200 base pairs, less than 100 base pairs, or less than 50 base pairs.

[0209] In addition to promoters and terminators, examples of other regulatory elements include targeting sequences, enhancers, polyadenylation signals, selectable markers, amplification signals, and origins of replication. Appropriate regulatory sequences are described, for example, in Goeddel, Gene Expression Technology: Methods in Enzymology 185, Academic Press, San Diego, CA (1990).

[0210] The term "constitutive promoter" refers to an unregulated promoter that enables the continuous transcription of a manipulably linked nucleic acid sequence.

[0211] As used herein, the term “operable linkage” refers to a linkage in which polynucleotide elements are functionally related. A nucleic acid is “operable linkage” when it is placed in a functional relationship with another nucleic acid sequence. For example, a promoter, or rather a transcriptional regulatory sequence, is operable linkage to a coding sequence if it affects the transcription of that coding sequence. Operaable linkage means that the linked DNA sequences are typically contiguous. The nucleotide sequence associated with the promoter sequence may be homologous or heterologous with respect to the transformed plant. This sequence may also be entirely or partially synthesized. Regardless of origin, the nucleic acid sequence associated with the promoter sequence, after being bound to the polypeptide of one embodiment herein, is expressed or silenced according to the characteristics of the promoter to which it is linked. The associated nucleic acid may encode a protein that is desirable to be expressed or repressed contemporaneously or at specific times throughout the organism, or in specific tissues, cells, or cellular compartments. Such nucleotide sequences, in particular, encode a protein that gives a desired phenotypic trait to the host cell or organism thereby modified or transformed. More specifically, the associated nucleotide sequence results in the production of a product or more of the desired product, as defined herein, in a cell or organism. In particular, the nucleotide sequence encodes a polypeptide having enzymatic activity as defined herein.

[0212] Nucleotide sequences described herein may be part of an “expression cassette.” The terms “expression cassette” and “expression construct” are used synonymously. An expression construct (preferably recombinant) comprises a nucleotide sequence encoding a polypeptide according to the present invention, the nucleotide sequence being under the genetic control of a regulatory nucleic acid sequence.

[0213] In the process applied according to the present invention, the expression cassette may be part of an "expression vector," particularly a recombinant expression vector.

[0214] In accordance with the present invention, "expression unit" is understood to mean a nucleic acid having expression activity that includes a promoter as defined herein and, after functional ligation with the nucleic acid or gene to be expressed, regulates expression, i.e., regulates the transcription and translation of the nucleic acid or gene. Accordingly, in this context, "expression unit" is also called a "regulatory nucleic acid sequence." In addition to the promoter, other regulatory elements, such as enhancers, may also be present.

[0215] In accordance with the present invention, "expression cassette" or "expression construct" is understood to mean an expression unit functionally linked to an expressed nucleic acid or expressed gene. Thus, an expression cassette includes not only nucleic acid sequences that regulate transcription and translation, as well as nucleic acid sequences that are expressed as proteins as a result of transcription and translation, in contrast to expression units.

[0216] In the context of this invention, the terms “expression” or “overexpression” describe the production or increase of the intracellular activity of one or more polypeptides encoded by the corresponding DNA in a microorganism. To this end, for example, it is possible to introduce a gene into an organism, replace an existing gene with another gene, increase the copy number of a gene, use a strong promoter, or use a gene encoding a corresponding polypeptide with high activity, and these means may be combined as desired.

[0217] Preferably, such a construct according to the present invention includes a promoter sequence 5' upstream and a terminator sequence 3' downstream of each code sequence, and optionally other conventional regulatory elements, which are operably connected to the code sequences in either case.

[0218] Nucleic acid constructs according to the present invention particularly include sequences encoding polypeptides derived from amino acid-related sequence numbers or their reverse complements, such as those described herein, or derivatives and homologs thereof, which are advantageously operable or functionally linked to one or more regulatory signals for controlling gene expression, for example, to increase gene expression.

[0219] In addition to these regulatory sequences, the innate regulation of these sequences may still be present before the actual structural gene, and optionally, the innate regulation may be genetically modified so that it is switched off and gene expression is enhanced. However, the nucleic acid construct may also be a simpler construct, i.e., one in which no additional regulatory signal is inserted before the coding sequence and the innate promoter having its regulation is not removed. Instead, the innate regulatory sequence is mutated so that regulation no longer occurs and gene expression is increased.

[0220] A preferred nucleic acid construct also advantageously includes one or more of the aforementioned “enhancer” sequences functionally linked to a promoter, thereby enabling enhanced expression of the nucleic acid sequence. Additional advantageous sequences may also be inserted into the 3' end of the DNA sequence, such as further regulatory elements or terminators. One or more copies of the nucleic acid according to the present invention may be present in the construct. In the construct, other markers, such as genes complementing nutritional requirements or antibiotic resistance, may also be optionally present to select the construct.

[0221] Examples of suitable regulatory sequences include promoters such as cos, tac, trp, tet, trp-tet, lpp, lac, lpp-lac, and lacI. q , T7, T5, T3, gal, trc, ara, rhaP(rhaP BAD )SP6, lambda-P R , or lambda-P LThese are present in promoters and are favorably used in Gram-negative bacteria. Further favorable regulatory sequences are found, for example, in Gram-positive promoters amy and SpO2, and in yeast or fungal promoters ADC1, MFalpha, AC, P-60, CYC1, GAPDH, TEF, rp28, and ADH. Artificial promoters can also be used for regulation.

[0222] For expression in a host organism, nucleic acid constructs are advantageously inserted into vectors such as plasmids or phages that enable optimal gene expression in the host. Vectors are also understood to mean, in addition to plasmids and phages, all other vectors known to those skilled in the art, namely viruses such as SV40, CMV, baculoviruses and adenoviruses, transposons, IS elements, phasmids, cosmids, and linear or circular DNA or artificial chromosomes. These vectors can replicate autonomously or chromosomally in a host organism. These vectors are further developments of the present invention. Binary vectors or cpo-integrated vectors are also applicable.

[0223] Suitable plasmids include, for example, pLG338, pACYC184, pBR322, pUC18, pUC19, pKC30, pRep4, pHS1, pKK223-3, pDHE19.2, pHS2, pPLc236, pMBL24, pLG200, pUR290, and pIN-III in E. coli. 113 -B1, λgt11 or pBdCI, pIJ101, pIJ364, pIJ702 or pIJ361 in Streptomyces, pUB110, pC194 or pBD214 in Bacillus, pSA77 or pAJ667 in Corynebacterium, pALS1, pIL2 or pBB116 in fungi, 2alphaM, pAG-1, YEp6, YEp13 or pEMBLYe23 in yeast, or pLGV23 or pGHlac in plants +These are pBIN19, pAK2004, or pDH51. The plasmids mentioned above are only a few of the possible plasmids. Further plasmids are well known to those skilled in the art and can be found, for example, in the book *Cloning Vectors* (Eds. Pouwels PH et al. Elsevier, Amsterdam-New York-Oxford, 1985, ISBN 0 444 904018).

[0224] In further development of vectors, nucleic acid constructs or vectors containing nucleic acids according to the present invention may also be advantageously introduced into microorganisms in the form of linear DNA and incorporated into the genome of the host organism via heterologous or homologous recombination. This linear DNA may consist of a linearized vector such as a plasmid, or of nucleic acid constructs or nucleic acids alone according to the present invention.

[0225] For optimal expression of heterologous genes in an organism, it is advantageous to modify the nucleic acid sequence to match the specific "codon usage frequency" used in that organism. This "codon usage frequency" can be easily determined by computer evaluation of other known genes in the organism in question.

[0226] The expression cassette according to the present invention is generated by fusing a suitable promoter to a suitable coding nucleotide sequence and a terminator or polyadenylation signal. Conventional recombination and cloning techniques for this purpose are described, for example, in T. Maniatis, EF Fritsch and J. Sambrook, Molecular Cloning: A Laboratory Manual, Cold Spring Harbor Laboratory, Cold Spring Harbor, NY (1989) and in TJ Silhavy, ML Berman and LW Enquist, Experiments with Gene Fusions, Cold Spring Harbor Laboratory, Cold Spring Harbor, NY (1984) and Ausubel, FM et al., Current Protocols in Molecular Biology, Greene Publishing Assoc. and Wiley Interscience (1987).

[0227] For expression in a suitable host organism, recombinant nucleic acid constructs or gene constructs are favorably inserted into host-specific vectors that enable optimal gene expression in the host. Vectors are well known to those skilled in the art and can be found, for example, in "cloning vectors" (Pouwels PH et al., Ed., Elsevier, Amsterdam-New York-Oxford, 1985).

[0228] Alternative embodiments of the embodiments herein provide methods for “modifying gene expression” in host cells. For example, the polynucleotides of the embodiments herein may be enhanced, overexpressed, or induced in host cells or host organisms under specific circumstances (e.g., exposure to specific temperatures or culture conditions).

[0229] Modifications of polynucleotide expression provided herein may also result in ectopic expression, which is a different expression pattern between the modified organism and the control or wild-type organism. Modifications of expression arise from the interaction of the polypeptide in the embodiments herein with exogenous or endogenous modulators, or as a result of chemical modification of the polypeptide. The term also refers to a modified expression pattern of the polynucleotide in the embodiments herein where the activity is modified to below detection levels or completely suppressed.

[0230] In one embodiment, isolated, recombinant, or synthetic polynucleotides encoding polypeptides or variant polypeptides provided herein are also provided herein.

[0231] In one embodiment, several polypeptides encoding nucleic acid sequences are co-expressed in a single host, particularly under the control of different promoters. In another embodiment, several polypeptides encoding nucleic acid sequences may reside on a single transformation vector, or separate vectors may be used to select and simultaneously co-transform transformants containing both chimeric genes. Similarly, one gene-encoding polypeptide or polypeptide may be expressed together with other chimeric genes in a single plant, cell, microorganism, or organism.

[0232] f. Host applicable to the present invention Depending on the context, the term "host" can refer to a wild-type host, a genetically modified, recombinant host, or both.

[0233] In principle, all prokaryotes or eukaryotes can be considered hosts or recombinant host organisms for nucleic acids or nucleic acid constructs according to the present invention.

[0234] A recombinant host can be produced using the vectors according to the present invention, which can be transformed, for example, with at least one vector according to the present invention and used to produce polypeptides according to the present invention. Advantageously, the recombinant constructs according to the present invention described above are introduced into a suitable host system and expressed. Preferably, to express the described nucleic acids in their respective expression systems, common cloning and transfection methods known to those skilled in the art, such as coprecipitation, protoplast fusion, electroporation, and retroviral transfection, are used. Suitable systems are described, for example, in Current Protocols in Molecular Biology, F. Ausubel et al., Ed., Wiley Interscience, New York 1997, or Sambrook et al. Molecular Cloning: A Laboratory Manual. 2nd edition, Cold Spring Harbor Laboratory, Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 1989.

[0235] Advantageously, microorganisms such as bacteria, fungi, or yeasts are used as host organisms. Advantageously, Gram-positive or Gram-negative bacteria are used, preferably bacteria from the families Enterobacteriaceae, Pseudomonadaceae, Rhizobiaceae, Streptomycetaceae, Streptococcus, or Nocardiaceae, particularly preferably bacteria from the genera Escherichia, Pseudomonas, Streptomyces, Lactococcus, Nocardia, Burkholderia, Salmonella, Agrobacterium, Clostridium, or Rhodococcus. The genera and species of Escherichia coli are highly preferred. Furthermore, other advantageous bacteria may be found in the group consisting of α-proteobacteria, β-proteobacteria, or γ-proteobacteria. Yeasts of families such as Saccharomyces or Pichia are also advantageous hosts.

[0236] Alternatively, plants or entire plant cells can function as natural or recombinant hosts. Non-limiting examples include the following plants or cells derived from them: the genus Nicotiana, particularly Nicotiana benthamiana and Nicotiana tabacum (tobacco); and the genus Arabidopsis, particularly Arabidopsis thaliana.

[0237] Depending on the host organism, the organisms used in the method according to the present invention are propagated or cultured in a manner known to those skilled in the art. The culture can be batch, semi-batch, or continuous. Nutrients may be present at the start of fermentation or supplied semi-continuously or continuously thereafter. This will also be discussed in detail below.

[0238] g. Recombinant production of the polypeptide according to the invention The invention further relates to a method for the recombinant production of a polypeptide according to the invention or a functionally, biologically active fragment thereof, comprising culturing a polypeptide-producing microorganism and optionally inducing the expression of the polypeptide by applying at least one inducer having gene expression, and isolating the expressed polypeptide from the culture. The polypeptide can also be produced in this way on an industrial scale if desired.

[0239] The microorganism produced according to the invention may be cultured continuously or discontinuously in a batch process, or may be cultured in a fed-batch process, or may be cultured by repeating the fed-batch process. An overview of known culture methods can be found in the following textbooks: Chmiel (Bioprozesstechnik 1. Einfuehrung in die Bioverfahrenstechnik [Bioprocess technology 1. Introduction to bioprocess technology] (Gustav Fischer Verlag, Stuttgart, 1991)) or Storhas (Bioreaktoren und periphere Einrichtungen [Bioreactors and peripheral equipment] (Vieweg Verlag, Braunschweig / Wiesbaden, 1994)).

[0240] The culture medium used must appropriately meet the requirements of each strain. Descriptions of various microbial media are described in the manual "Manual of Methods for General Bacteriology" of the American Society for Microbiology (Washington D.C., USA, 1981).

[0241] These culture media usable in accordance with the present invention typically contain one or more carbon sources, nitrogen sources, inorganic salts, vitamins, and / or trace elements.

[0242] Preferred carbon sources are sugars such as monosaccharides, disaccharides, or polysaccharides. Very good carbon sources include, for example, glucose, fructose, mannose, galactose, ribose, sorbose, ribulose, lactose, maltose, sucrose, raffinose, starch, or cellulose. Sugars may also be added to the medium via complex compounds, such as molasses, or other by-products of sugar refining. It may also be advantageous to add mixtures of different carbon sources. Other possible carbon sources include oils and fats, such as soybean oil, sunflower oil, peanut oil, and coconut oil; fatty acids, such as palmitic acid, stearic acid, or linoleic acid; alcohols, such as glycerol, methanol, or ethanol; and organic acids, such as acetic acid or lactic acid.

[0243] Nitrogen sources are typically organic or inorganic nitrogen compounds or materials containing these compounds. Examples of nitrogen sources include ammonia gas or ammonium salts, such as ammonium sulfate, ammonium chloride, ammonium phosphate, ammonium carbonate, or ammonium nitrate, nitrates, urea, amino acids, or complex nitrogen sources, such as corn steep liquor, soy flour, soy protein, yeast extract, or meat extract. Nitrogen sources may be used individually or in mixtures.

[0244] Inorganic salt compounds that may be present in the medium include chlorides, phosphates, or sulfates of calcium, magnesium, sodium, cobalt, molybdenum, potassium, manganese, zinc, copper, and iron.

[0245] As sulfur sources, inorganic sulfur-containing compounds such as sulfates, sulfites, dithionites, tetrathionites, thiosulfates, and sulfides can be used, as well as organic sulfur-containing compounds such as mercaptans and thiols.

[0246] As a phosphorus source, phosphoric acid, potassium dihydrogen phosphate, or dipotassium hydrogen phosphate, or the corresponding sodium-containing salt can be used.

[0247] To retain metal ions in solution, chelating agents may be added to the medium. Particularly suitable chelating agents include dihydroxyphenols, such as catechol or protocatechinic acid, or organic acids, such as citric acid.

[0248] The fermentation media used in accordance with the present invention typically contain other growth factors, such as vitamins or growth promoters, including, for example, biotin, riboflavin, thiamine, folic acid, nicotinic acid, pantothenic acid, and pyridoxine. The growth factors and salts are often derived from components of complex media, such as yeast extract, molasses, and corn steep liquor. Furthermore, appropriate precursors may be added to the culture medium. The exact composition of compounds in the medium is highly dependent on each experiment and is determined individually for each specific case. Information on optimizing the medium can be found in the textbook "Applied Microbiol. Physiology, A Practical Approach" (Ed. PM Rhodes, PF Stanbury, IRL Press (1997) pp. 53-73, ISBN 0 19 963577 3). Growth media can also be obtained from commercial suppliers such as Standard 1 (Merck) or BHI (Brain-Cardiac Infusion, DIFCO).

[0249] All culture medium components are sterilized by heating (1.5 bar and 121°C for 20 minutes) or by sterile filtration. These components may be sterilized together or separately as needed. All culture medium components may be present at the start of the culture or added continuously or in batches.

[0250] The culture temperature is typically 15°C to 45°C, preferably 25°C to 40°C, and may be varied or kept constant during the experiment. The pH of the medium is preferably in the range of 5 to 8.5, preferably around 7.0. The pH for growth can be controlled during growth by adding basic compounds, such as sodium hydroxide, potassium hydroxide, ammonia, or aqueous ammonia, or acidic compounds, such as phosphoric acid or sulfuric acid. To control foaming, an antifoaming agent, such as a fatty acid polyglycol ester, may be used. To maintain plasmid stability, a suitable selectively acting substance, such as an antibiotic, may be added to the medium. To maintain aerobic conditions, oxygen or a mixture of oxygen-containing gases, such as ambient air, is passed through the culture. The culture temperature is typically in the range of 20°C to 45°C. Cultivation continues until the maximum desired product is formed. This goal is usually achieved within 10 to 160 hours.

[0251] Next, the fermentation broth is further processed. If necessary, the biomass can be completely or partially removed from the fermentation broth by separation techniques, such as centrifugation, filtration, decantation, or a combination of these methods, or it can be left completely in the fermentation broth.

[0252] If polypeptides are not secreted in the culture medium, the cells can be lysed and the product obtained from the lysate by known protein isolation methods. The cells can optionally be disrupted by high-frequency ultrasound, high pressure, e.g., French press, osmotic lysis, surfactant, lytic enzyme or organic solvent, homogenizer, or a combination of some of the aforementioned methods.

[0253] Polypeptides can be purified using known chromatographic techniques such as molecular sieve chromatography (gel filtration) including Q-Sepharose chromatography, ion exchange chromatography, and hydrophobic chromatography, as well as other common techniques such as ultrafiltration, crystallization, salting out, dialysis, and native gel electrophoresis. Suitable methods are described, for example, in Cooper, TG, Biochemische Arbeitsmethoden [Biochemical processes], Verlag Walter de Gruyter, Berlin, New York or in Scopes, R., Protein Purification, Springer Verlag, New York, Heidelberg, Berlin.

[0254] To isolate recombinant proteins, it may be advantageous to use a vector system or oligonucleotide encoding a modified polypeptide or fusion protein that has been extended by a defined nucleotide sequence, thus facilitating purification, for example. Suitable modifications of this type include so-called "tags" that function as anchors, such as modifications known as hexahistidine anchors, or epitopes that can be recognized as antigens by antibodies (e.g., Harlow, E. and Lane, D., 1988, Antibodies: A Laboratory Manual. Cold Spring Harbor (NY) Press). These anchors can help bind proteins to solid supports, such as polymer matrices that can be used as packing in chromatography columns or on microtiter plates or some other supports.

[0255] Simultaneously, these anchors can also be used for protein recognition. For protein recognition, conventional markers such as fluorescent dyes, enzyme markers, or radioactive markers, which form detectable reaction products after reaction with a substrate, can be used alone or in combination with anchors for protein derivatization.

[0256] h. Polypeptide immobilization The enzymes or polypeptides according to the present invention can be used in free or immobilized forms in the methods described herein. An immobilized enzyme is an enzyme immobilized on an inert carrier. Suitable carrier materials and enzymes immobilized thereon are known from European Patent Application Publication No. 1149849, European Patent Application Publication No. 1069183, and German Patent Application DE-OS100193773 and the references cited herein. In this regard, the disclosures of these documents are incorporated herein by reference in their entirety. Suitable carrier materials include, for example, clay, clay minerals such as kaolinite, diatomaceous earth, perlite, silica, aluminum oxide, sodium carbonate, calcium carbonate, cellulose powder, anion exchanger materials, synthetic polymers such as polystyrene, acrylic resins, phenol-formaldehyde resins, polyolefins such as polyurethane, polyethylene, and polypropylene. To prepare the supported enzyme, the carrier material is usually used in a finely divided granular form, and a porous form is preferred. The particle size of the carrier material is typically 5 mm or less, particularly 2 mm or less (particle size distribution curve). Similarly, when using dehydrogenase as a whole-cell catalyst, either a free or immobilized form can be selected. Examples of carrier materials include calcium alginate and carrageenan. Enzymes, like cells, can also be directly crosslinked with glutaraldehyde (crosslinking to CLEA). Corresponding other immobilization techniques are described, for example, in J. Lalonde and A. Margolin, "Immobilization of Enzymes," and K. Drauz and H. Waldmann, Enzyme Catalysis in Organic Synthesis 2002, Vol. III, 991-1032, Wiley-VCH, Weinheim. Further information regarding biotransformation and bioreactors for carrying out the methods according to the present invention is also given, for example, in Rehm et al. (Ed.) Biotechnology, 2nd Edn, Vol 3, Chapter 17, VCH, Weinheim.

[0257] i. Reaction conditions for the production method using the biocatalyst of the present invention The reaction of the present invention can be carried out under in vivo or in vitro conditions.

[0258] At least one polypeptide / enzyme present during the individual steps of the method of the present invention or the multi-step method as defined above may be present in living cells that naturally or recombinantly produce enzymes or enzymes, in harvested cells, i.e., under in vivo conditions, or in dead cells, in permeable cells, in crude cell extracts, in purified extracts, or in essentially pure or completely pure form, i.e., under in vitro conditions. At least one enzyme may be present in solution or as an enzyme immobilized on a carrier. One or more enzymes may be present simultaneously in soluble and / or immobilized forms.

[0259] The method according to the invention can be carried out in common reactors known to those skilled in the art, on scales ranging from different ranges, for example, from laboratory scale (reaction amounts from a few milliliters to several tens of liters) to industrial scale (reaction amounts from several liters to several thousand cubic meters). When the polypeptide is used in the form of a more or less purified cell extract, or in a purified form, or encapsulated by non-viable, optionally permeabilized cells, a chemical reactor can be used. The chemical reactor usually enables control of the amount of at least one enzyme, the amount of at least one substrate, pH, temperature, and circulation of the reaction medium. When at least one polypeptide / enzyme is present in living cells, the process becomes fermentation. In this case, biocatalyst-based production is carried out in a bioreactor (fermenter), where the parameters necessary for suitable survival conditions for living cells (for example, nutrient media with nutrients, temperature, aeration, presence or absence of oxygen or other gases, antibiotics, etc.) can be controlled. A person skilled in the art is familiar with chemical reactors or bioreactors, for example, together with procedures for scaling up chemical or biotechnology techniques from laboratory scale to industrial scale, or procedures for optimizing process parameters, which are also widely described in the literature (for biotechnology techniques, see, for example, Crueger und Crueger, Biotechnologie - Lehrbuch der angewandten Mikrobiologie, 2. Ed., R. Oldenbourg Verlag, Muenchen, Wien, 1984).

[0260] Cells containing at least one enzyme can be permeabilized by physical or mechanical means, such as ultrasound or high-frequency pulses, French press, or by chemical means, such as hypotonic medium, lytic enzymes and surfactants present in the medium, or a combination of such methods. Examples of surfactants include digitonin, n-dodecyl maltoside, octyl glycoside, Triton® X-100, Tween® 20, deoxycholate, CHAPS (3-[(3-coramidopropyl)dimethylammonio]-1-propanesulfonate), Nonidet® P40 (ethylphenol poly(ethylene glycol ether)), etc.

[0261] Instead of living cells, biomass from non-viable cells containing the necessary biocatalysts may be applied to the in vivo conversion reaction of the present invention.

[0262] If at least one enzyme is immobilized, it will be bound to the inert carrier as described above.

[0263] The conversion reaction can be carried out in batch, semi-batch, or continuous manner. Reactants (and optionally nutrients) may be supplied at the start of the reaction, or later semi-continuously or continuously.

[0264] The reactions of the present invention can be carried out in aqueous, aqueous organic, or non-aqueous reaction media, depending on the specific reaction type.

[0265] The aqueous or aqueous organic medium may contain a suitable buffer to adjust the pH to a value in the range of 5 to 11, for example, 6 to 10.

[0266] In aqueous-organic media, organic solvents that are miscible with water, partially miscible, or immiscible can be used. A non-limiting list of suitable organic solvents is provided below. Further examples include monohydric or polyhydric, aromatic, or aliphatic alcohols, particularly polyhydric aliphatic alcohols such as glycerol.

[0267] The non-aqueous medium may not contain substantially any water, i.e., it may contain less than about 1% by weight or less than about 0.5% by weight of water.

[0268] The biocatalytic method may also be carried out in an organic non-aqueous medium. Suitable organic solvents include, for example, aliphatic hydrocarbons having 5 to 8 carbon atoms, such as pentane, cyclopentane, hexane, cyclohexane, heptane, octane, or cyclooctane; aromatic carbohydrates, such as benzene, toluene, xylene, chlorobenzene, or dichlorobenzene; aliphatic acyclic and ethers, such as diethyl ether, methyl tert-butyl ether, ethyl tert-butyl ether, dipropyl ether, diisopropyl ether, dibutyl ether; or mixtures thereof.

[0269] The reactant / substrate concentrations can be adjusted to suit the optimal reaction conditions, which may depend on the specific enzyme being applied. For example, the initial substrate concentration may be in the range of 0.1–0.5 M, e.g., 10–100 mM.

[0270] The reaction temperature can be adjusted to suit the optimal reaction conditions, which may depend on the specific enzyme being applied. For example, the reaction can be carried out at temperatures ranging from 0 to 70°C, for example, 20 to 50°C or 25 to 40°C. Examples of reaction temperatures include approximately 30°C, 35°C, 37°C, 40°C, 45°C, 50°C, 55°C, and 60°C.

[0271] The process may proceed until equilibrium is achieved between the substrate and the subsequent product, but it may also be stopped earlier. Typical process times range from 1 minute to 25 hours, particularly from 10 minutes to 6 hours, and for example, from 1 hour to 4 hours, particularly from 1.5 hours to 3.5 hours. These parameters are non-limiting examples of suitable process conditions.

[0272] If the host plant is a transgenic plant, it can be provided with optimal growth conditions, such as optimal light, water, and nutrient conditions.

[0273] The specific reaction conditions for preparing the dorimanyl acetate compound are as follows: In an aqueous environment incubated at 20–35°C and pH 4–7, the acetyltransferase enzyme may be present as a purified polypeptide or in the whole cell system. The substrate concentration may vary between 10–100 mM.

[0274] k. Isolation of the product The method of the present invention may optionally further include a step of recovering the final product or intermediate product in substantially pure form, either stereoisomerically or enantiomerically. The term “recover” includes extracting, collecting, isolating, or purifying a compound from a culture or reaction medium. The recovery of a compound can be carried out according to any conventional isolation or purification method known in the art, including but not limited to treatment with conventional resins (e.g., anionic or cation exchange resins, nonionic adsorption resins, etc.), treatment with conventional adsorbents (e.g., activated carbon, silicic acid, silica gel, cellulose, alumina, etc.), pH changes, solvent extraction (e.g., with conventional solvents such as alcohol, ethyl acetate, hexane, etc.), distillation, dialysis, filtration, concentration, crystallization, recrystallization, pH adjustment, lyophilization, etc.

[0275] The identification and purity of isolated products can be determined by known techniques, such as high-performance liquid chromatography (HPLC), gas chromatography (GC), spectroscopy (IR, UV, NMR, etc.), colorimetric methods, TLC, NIRS, enzyme or microbial assays (e.g., Patek et al. (1994) Appl. Environ. Microbiol. 60:133-140; Malakhova et al. (1996) Biotekhnologiya 11 27-32; and Schmidt et al. (1998) Bioprocess Engineer. 19:67-70. Ullmann's Encyclopedia of Industrial Chemistry (1996) Bd. A27, VCH: Weinheim, pp. 89-90, pp. 521-540, pp. 540-547, pp. 559-566, 575-581 and pp. See 581-587; Michal, G (1999) Biochemical Pathways: An Atlas of Biochemistry and Molecular Biology, John Wiley and Sons; Fallon, A. et al. (1987) Applications of HPLC in Biochemistry in: Laboratory Techniques in Biochemistry and Molecular Biology, Vol. 17.).

[0276] Cyclic terpene compounds produced by any of the methods described herein can be converted to derivatives such as hydrocarbons, esters, amides, glycosides, ethers, epoxides, aldehydes, ketones, alcohols, diols, acetals, or ketals. Terpene compound derivatives can be obtained by chemical methods such as oxidation, reduction, alkylation, acylation, and / or rearrangement. Alternatively, terpene compound derivatives can be obtained by biochemical methods, such as contacting the terpene compound with enzymes such as oxidoreductase, monooxygenase, dioxygenase, or transferase. Biochemical conversions can be carried out in vitro using isolated enzymes, enzymes from lysed cells, or in vivo using whole cells.

[0277] l. Fermentation production of dorimenyl acetate The present invention also relates to a method for fermentation production of dolimanyl acetate.

[0278] Fermentation as used in the present invention can be carried out, for example, in a stirred fermenter, a bubble tower, and a loop reactor. A comprehensive overview of the types of possible methods, including the type of stirrer and geometric design, can be found in "Chmiel: Bioprozesstechnik: Einfuhrung in die Biooverfahrenstechnik, Band 1". Typical manifolds available in the process of the present invention are, for example, the following variants known to those skilled in the art or described, for example, in "Chmiel, Hammes and Bailey: Biochemical Engineering", cultured by batch, fed-batch, repeated fed-batch, or continuous fermentation, with or without biomass recycling. Depending on the product strain, sparging with air, oxygen, carbon dioxide, hydrogen, nitrogen, or a suitable gas mixture may be performed to obtain a good yield (YP / S).

[0279] The culture medium used must adequately meet the requirements of the specific bacterial strain. Descriptions of various microbial media are found in the "Manual of Methods for General Bacteriology," a manual published by the American Society for Bacteriology (Washington, D.C., USA, 1981).

[0280] These culture media usable in accordance with the present invention typically contain one or more carbon sources, nitrogen sources, inorganic salts, vitamins, and / or trace elements.

[0281] Preferred carbon sources are sugars such as monosaccharides, disaccharides, or polysaccharides. Very good carbon sources include, for example, glucose, fructose, mannose, galactose, ribose, sorbose, ribulose, lactose, maltose, sucrose, raffinose, starch, or cellulose. Sugars may also be added to the medium via complex compounds, such as molasses, or other by-products of sugar refining. It may also be advantageous to add mixtures of various carbon sources. Other possible carbon sources include oils and fats, such as soybean oil, sunflower oil, peanut oil, and coconut oil; fatty acids, such as palmitic acid, stearic acid, or linoleic acid; alcohols, such as glycerol, methanol, or ethanol; and organic acids, such as acetic acid or lactic acid.

[0282] Nitrogen sources are typically organic or inorganic nitrogen compounds or materials containing these compounds. Examples of nitrogen sources include ammonia gas or ammonium salts, such as ammonium sulfate, ammonium chloride, ammonium phosphate, ammonium carbonate, or ammonium nitrate, nitrates, urea, amino acids, or complex nitrogen sources, such as corn steep liquor, soy flour, soy protein, yeast extract, or meat extract. Nitrogen sources may be used individually or in mixtures.

[0283] Inorganic salt compounds that may be present in the medium include chlorides, phosphates, or sulfates of calcium, magnesium, sodium, cobalt, molybdenum, potassium, manganese, zinc, copper, and iron.

[0284] As sulfur sources, not only inorganic sulfur-containing compounds such as sulfates, sulfites, dithionites, tetrathionites, thiosulfates, and sulfides can be used, but also organic sulfur-containing compounds such as mercaptans and thiols.

[0285] As a phosphorus source, phosphoric acid, potassium dihydrogen phosphate, or dipotassium hydrogen phosphate, or the corresponding sodium-containing salt can be used.

[0286] To retain metal ions in solution, chelating agents may be added to the medium. Particularly suitable chelating agents include dihydroxyphenols, such as catechol or protocatechinic acid, or organic acids, such as citric acid.

[0287] The fermentation medium used in accordance with the present invention contains other growth factors, such as vitamins or growth promoters, including, for example, biotin, riboflavin, thiamine, folic acid, nicotinic acid, pantothenic acid, and pyridoxine. The growth factors and salts are often derived from components of complex media, such as yeast extract, molasses, and corn steep liquor. Furthermore, appropriate precursors may be added to the culture medium. The exact composition of compounds in the medium is highly dependent on the specific experiment and must be determined individually for each specific case. Information on optimizing the medium can be found in the textbook "Applied Microbiol. Physiology, A Practical Approach" (1997). Growth media can also be obtained from commercial suppliers such as Standard 1 (Merck) or BHI (Brain-Cardiac Infusion, DIFCO).

[0288] All culture medium components are sterilized by heating (1.5 bar and 121°C for 20 minutes) or by sterile filtration. These components may be sterilized together or separately as needed. All culture medium components may be present at the start of the culture or may be added sequentially or in batches as desired.

[0289] The culture temperature is typically 15°C to 45°C, preferably 25°C to 40°C, and may be varied or kept constant during the experiment. The pH of the medium is preferably in the range of 5 to 8.5, preferably around 7.0. The pH for growth can be controlled during growth by adding basic compounds, such as sodium hydroxide, potassium hydroxide, ammonia, or aqueous ammonia, or acidic compounds, such as phosphoric acid or sulfuric acid. To control foaming, an antifoaming agent, such as a fatty acid polyglycol ester, may be used. To maintain plasmid stability, a suitable selectively acting substance, such as an antibiotic, may be added to the medium. To maintain aerobic conditions, oxygen or a mixture of oxygen-containing gases, such as ambient air, is passed through the culture. The culture temperature is typically in the range of 20°C to 45°C. Cultivation is continued until the maximum desired product is formed. This is usually achieved within 1 to 160 hours.

[0290] The method of the present invention may further include the step of recovering the dorimanyl acetate.

[0291] The term "recover" includes the extraction, collection, isolation, or purification of compounds from culture media. Compound recovery can be carried out according to any conventional isolation or purification method known in the art, including but not limited to treatment with conventional resins (e.g., anionic or cation exchange resins, nonionic adsorption resins, etc.), treatment with conventional adsorbents (e.g., activated carbon, silicic acid, silica gel, cellulose, alumina, etc.), pH changes, solvent extraction (e.g., with conventional solvents such as alcohol, ethyl acetate, hexane, etc.), distillation, dialysis, filtration, concentration, crystallization, recrystallization, pH adjustment, and freeze-drying.

[0292] The biomass in the broth can be removed before the intended separation. Processes for removing biomass, such as filtration, sedimentation, and flotation, are known to those skilled in the art. As a result, the biomass can be removed using, for example, a centrifuge, separator, decanter, filter, or flotation separator. To maximize the recovery of valuable products, washing the biomass is often recommended, for example, in the form of diafiltration. The choice of method also depends on the biomass content and characteristics of the biomass in the fermenter broth, as well as the interaction between the biomass and valuable products.

[0293] In one embodiment, the fermentation broth can be sterilized or pasteurized. In a further embodiment, the fermentation broth is concentrated. Depending on the requirements, this concentration can be carried out in batch or continuously. The pressure and temperature range should preferably be selected to avoid damage to the product, and then to minimize the use of equipment and energy. Energy savings can be achieved through the skilled selection of pressure and temperature levels, especially for multi-stage evaporation.

[0294] The following examples are illustrative and are not intended to limit the scope of the claims and embodiments described herein.

[0295] A number of possible modifications, which will become immediately apparent to those skilled in the art after reviewing the disclosures provided herein, are also included within the scope of the present invention.

[0296] Experiment Department material: Unless otherwise stated, all chemical and biochemical materials, as well as microorganisms or cells, used herein are commercially available.

[0297] Unless otherwise specified, recombinant proteins are cloned and expressed using standard methods, such as those described in Sambrook, J., Fritsch, EF and Maniatis, T., Molecular cloning: A Laboratory Manual, 2nd Edition, Cold Spring Harbor Laboratory, Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY, 1989.

[0298] Gas chromatography-mass spectrometry (GC-MS) An Agilent Intuvo 9000 series GC system equipped with a custom DB-5MS UI column (film thickness 10m x 0.25mm x 0.25μm) (manufactured by Agilent Technologies Inc., Santa Clara, California). The GC was coupled to two detectors by a 1:1 detector splitter tip (G4588-60502, Agilent Technologies Inc., Santa Clara, California). The first detector was an Agilent 5977B series mass spectrometer, and the second detector was a standard Intuvo 9000 flame ionization detector (FID). Helium was used as the carrier gas at a constant flow rate of 2.5 ml / min. Injection was performed in split (1:100) mode with the injector temperature set to 240°C. The oven temperature was programmed to increase from 150°C (held for 0.1 minutes) to 240°C at a rate of 40°C / minute, then to 325°C at a rate of 180°C / minute, and held for 0.5 minutes.

[0299] Example 1 Selection of acetyltransferase candidates for converting drimansesquiterpenes to drimanylacetylated sesquiterpenes Acetyltransferases constitute a genetically diverse class of enzymes with over 8,000 known representative examples (PFAM database: PF02458 transferase family). While acetyltransferases accept a vast repertoire of molecules as substrates, no acetyltransferases have been reported to accept sesquiterpene alcohols as substrates. To identify acetyltransferases capable of acetylating Drimane-type sesquiterpene alcohols, 54 species (Table 1) were selected from thousands of known acetyltransferases from plants, fungi, and bacteria based on the following criteria.

[0300] Two of the five known clades from the BAHD family of plant acetyltransferases, clades 3 and 5, have members identified for acetylation of alkaloids and terpenoids using acetyl-CoA as an acyl donor (Curr Opin Plant Biol. 2006, 9(3):331-40). Furthermore, some of the substrates used by acetyltransferases from clades 3 and 5 are bulky, polycyclic, and have a sterically hindered alcohol group as an acyl acceptor (BMC Genomics 2011, 12:236; Curr Opin Plant Biol. 2006, 9:331-40; Elife. 2017 Mar 14;6: e23001; Planta. 2015, 242:709-19). Based on this, 21 candidates were selected from plant BAHD family clades 3 and 5, including an identified acetyltransferase (Proc Natl Acad Sci US A.2000, 18; 97(2): 583-587) involved in the biosynthesis of the polycyclic diterpene paclitaxel (Taxol) and two acetyltransferases from Coleus forskolin (Plectranthus barbatus) involved in the biosynthesis of the bicyclic labdane diterpene forskolin (Elife 2017, 14; 6: e23001).

[0301] Similar to the plant candidates, seven fungal acetyltransferases were selected based on their ability to accept acetyl-CoA as an acyl donor and the structural characteristics of their substrates: bulky polycyclic compounds with sterically hindered alcohol groups (FEMS Microbiol Lett. 2005, 251:193-201; Chembiochem. 2009, 10:2325-8; Biotechnol Equip. 2014, 28(5):818-826; Nat Chem. 2010, 2:858-64). From these, the protein AstG (derived from Aspergillus oryzae, NCBI accession number XP_023091083.1) and asteride (Sci Rep. 2016, 6:32865), which are involved in the biosynthesis of arylate-esterified drimane-type sesquiterpene lactones, were selected.

[0302] Furthermore, using PSI Blast search (Trends Biochem Sci. 2002, 27:161-4), 21 fungal acetyltransferases were searched from the NCBI protein database based on sequence similarity with AstG (standard parameters, 2 replicates). The results were visualized on a phylogenetic tree using the NCBI Blast Tree View function to show homology between AstG and sequences derived from 500PSI-Blast. Candidates were selected based on homology with query sequences derived from a single branch of the phylogenetic tree.

[0303] Finally, chloramphenicol acetyltransferase is known to be an indiscriminate enzyme and can accommodate bulkier substrates than chloramphenicol (Protein Sci. 2012, 21(4): 520-530). Thus, five bacterial chloramphenicol acetyltransferases from Class 1 to Class 3 were selected as putative chloramphenicol acetyltransferases from the NCBI protein database or from the literature (Biochem J. 1990, 272:505-10). [Table 5-1] [Table 5-2]

[0304] Example 2 In vivo generation of albicanyl acetate in Saccharomyces cerevisiae co-expressing albicanol synthase and different acetyltransferase candidates. Each enzyme candidate was screened for in vivo bioconversion from albikannol to albikannyl acetate. For screening, each acetyltransferase candidate was co-expressed with the gene encoding the albikannol synthase XP_007369631.1 (NCBI accession number XP_007369631.1) derived from Dichomitus squalens in an engineered Saccharomyces cerevisiae strain with elevated levels of endogenous farnesyl diphosphate (FPP).

[0305] To increase the level of the endogenous FPP pool in S. cerevisiae, extra copies of all yeast endogenous genes involved in the mevalonate pathway, from ERG10 encoding acetyl-CoA C-acetyltransferase to ERG20 encoding FPP synthase, were incorporated into the genome of S. cerevisiae strain CEN.PK2-1C (Euroscarf, Frankfurt, Germany) under the control of a galactose-inducible promoter, as described in Paddon et al., Nature, 2013, 496:528-532. In short, three cassettes were incorporated into the LEU2, TRP1, and URA3 loci, respectively. The first cassette, containing the gene ERG20 and cleaved HMG1 (tHMG1, as described in Proc Natl Acad Sci USA, 1997, 109:E111-8), both under the control of the bidirectional GAL10 / GAL1 promoter, as well as the genes ERG19 and ERG13, also under the control of the GAL10 / GAL1 promoter, was adjacent to two 100-nucleotide regions corresponding to the upstream and downstream sections of LEU2. In the second cassette, where the genes IDI1 and tHMG1 are under the control of the GAL10 / GAL1 promoter and the gene ERG13 is under the control of the GAL7 promoter region, this cassette was adjacent to two 100-nucleotide regions corresponding to the upstream and downstream sections of TRP1. The third cassette, containing the genes ERG10, ERG12, tHMG1, and ERG8, all under the control of the GAL10 / GAL1 promoter, was adjacent to two 100-nucleotide regions corresponding to the upstream and downstream sections of URA3. All three genes in the cassette contained 200 nucleotides of their own terminator region. Additionally, an extra copy of GAL4, under the control of a mutant of its own promoter, was incorporated upstream of the ERG9 promoter region, as described in Proc Natl Acad Sci USA, 1991, 88:8597-8601. Furthermore, ERG9 expression was modified by promoter swapping.The GAL7, GAL10, and GAL1 genes were deleted using a cassette containing the HIS3 gene, which has its own promoter and terminator. The resulting strain was crossed with strain CEN.PK2-1D (Euroscarf, Frankfurt, Germany) to obtain a diploid strain called YST045, which was induced for spore formation according to Solis-Escalante et al, FEMS Yeast Res, 2015, 15:2. Spore isolation was achieved by resuspending the asci in 200 μL of 0.5 M sorbitol containing 2 μL of zymolyase (1000UmL-1, Zymo Research, Irvine, California) and incubating at 37°C for 20 minutes. The spores were then plated on a medium containing 20 g / L peptone, 10 g / L yeast extract, 20 g / L glucose, and 20 g / L agar, and one germinated spore was isolated and named YST069.

[0306] To express XP_007369631.1 and the evaluated acetyltransferase in YST069, plasmids were constructed in vivo using yeast endogenous homologous recombination, as previously described in Kuijpers et al., Microb Cell Fact., 2013, 12:47. These plasmids consisted of four DNA fragments used for co-transformation into S. cerevisiae. The fragments were as follows: a) Plasmid pF167 (SEQ ID NO: 1) linearized by enzymatic restriction using BsmBI. pF167 was previously constructed by in vivo assembly in yeast, and pF167 contains the yeast marker LEU2 with its own promoter and terminator, the E. coli marker AmpR, the 2μ yeast origin of replication, the E. coli pUC origin of replication, and 5'-GCACTTGCTACACTGTCAGGATAGCTTCCGTCACATGGTGGCGATCACCGTACATCTGAG-3' (SEQ ID NO: 2) and 5'-AGGTGCAGTTCGCGTGCAATTATAACGTCGTGGCAACTGTTATCAGTCGTACCGCGCCAT-3' (SEQ ID NO: 3) for homologous recombination; b) A fragment consisting of 5'-GCACTTGCTACACTGTCAGGATAGCTTCCGTCACATGGTGGCGATCACCGTACATCTGAG-3' (SEQ ID NO: 2), the terminator region of the yeast gene PGK1, and the sesquiterpene synthase XP_007369631.1 DNA sequence codon (SEQ ID NO: 4), optimized for its expression in S. cerevisiae, was obtained by DNA synthesis (ATUM, Menlo Park, California 94025). A bidirectional GAL1 / GAL10 promoter region derived from yeast was added to this fragment by PCR overlap extension. (Yolov and Shabarova., Nucleic Acids Res. 1990, 18(13):3983-6); c) A fragment comprising a 60 bp segment corresponding to the first nucleotide of the yeast GAL10 promoter region, which is one of the acetyltransferase DNA coding sequences to be evaluated (codons optimized for its expression in S. cerevisiae), and a 60 bp segment of the yeast CYC1 terminator region, the fragment obtained by DNA synthesis (ATUM, Menlo Park, California 94025); and d) A fragment consisting of the terminator region of the yeast gene CYC1 and the sequence 5'-AGGTGCAGTTCGCGTGCAATTATAACGTCGTGGCAACTGTTATCAGTCGTACCGCGCCAT-3' (SEQ ID NO: 3), which was obtained by DNA synthesis (ATUM, Menlo Park, California 94025).

[0307] YST069 was transformed using fragments required for in vivo plasmid assembly. Yeast transformation was carried out using the lithium acetate protocol as described in Gietz and Woods, Methods Enzymol., 2002, 350:87-96. The transformation mixture was plated on SmLeu medium containing amino acid-free 6.7 g / L yeast culture nitrogen base (BD Difco, New Jersey, USA), leucine-free 1.6 g / L dropout supplement (Sigma Aldrich, Missouri, USA), 20 g / L glucose, and 20 g / L agar. Plates were incubated at 30°C for 3–4 days. Individual colonies were used to produce albikannol and albikanyl acetate in deep-well plates containing 250 μL of culture medium and 50 μL of diisodecyl adipic acid (abcr GmbH, Germany) as an organic overlay, as described in Westfall et al., Proc Natl Acad Sci USA, 2012, 109:E111-118. The deep-well plates were incubated in a plate incubator at 30°C for 3 days. To extract the albikannol and albikanyl acetate produced by the yeast cells, each well of the deep-well plate was extracted with 700 μL of ethyl acetate containing an internal standard. The production of albikannol and albikanyl acetate was identified by GC-MS analysis and quantified by GC-FID using the internal standard.

[0308] Under these experimental conditions, albicanyl acetate was detected in nine combinations of albicanol synthase and acetyltransferase (Table 2). Surprisingly, the two most active acetyltransferases (CrDAT and FgaAT) produced albicanyl acetate titers of 150 mg / L or higher under unoptimized screening conditions. The GC-FID chromatograms are shown in Figure 2. Furthermore, Figure 2 shows that the MS spectrum of yeast-derived albicanyl acetate is identical to that of reference albicanyl acetate.

[0309] Interestingly, CrDAT, the most active acetyltransferase in our screening, is a member of clade 3 of the plant BAHD family and is involved in the biosynthesis of plant alkaloids. However, other acetyltransferases tested from the same family and clade, PsSalAT and RsVISY, which are also involved in plant alkaloid biosynthesis (thebaine and vinolin, respectively), were not active when albicanol was presented as a substrate. Furthermore, FgaAT (active for fumigalacbin B), derived from Aspergillus fumigatus and also involved in alkaloid biosynthesis, produced a significant amount of albicanyl acetate in our screening, while the putative fumigalacbin B O-acetyltransferase GAO81666.1 surprisingly produced an order of magnitude less albicanyl acetate than FgaAT.

[0310] Of particular note is that neither acetyltransferase AstG nor any of the proteins selected based on their similarity to AstG (excluding GAO81666.1, see above) produced drimanylacetylated sesquiterpene albicanyl acetate, despite the fact that AstG is involved in the biosynthesis of modified drimanyl sesquiterpene asterodetes.

[0311] The only acetyltransferase identified in diterpene biosynthesis is involved in the production of paclitaxel (taxol) and forskolin. Of the eight acetyltransferases tested from C. forskohlii, only CfACT1-6 and CfACT1-8 were able to acetylate albikanol. While the TcTAT and TcDBAT genes can acetylate structurally similar intermediates in taxol biosynthesis (taxa-4(20),11(12)-diene-5α-ylacetate and baccatin III, respectively), only TcTAT produced albikanyl acetate.

[0312] To identify acetyltransferases that can use albikanol as an acyl receptor, in addition to the currently documented complexity, of the five tested substrate-versatile chloramphenicol acetyltransferases, only one was able to convert albikanol to albikanyl acetate.

[0313] [Table 6]

[0314] Example 3 In vivo production of dorimenyl acetate in Saccharomyces cerevisiae co-expressing dorimenol synthase and a selected acetyltransferase candidate. To generate drimenyl acetate in Saccharomyces cerevisiae, the conversion from drimenol to drimenyl acetate was evaluated using nine selected acetyltransferases (CrDAT, FgaAT, OAH94415.1, TcTAT, CrMAT, LiAAT-4, GAO81666.1, CfACT1-6, CfACT1-8) capable of converting albikanol to albikanyl acetate, as shown in Example 2.

[0315] Drimenyl acetate was produced in vivo in an engineered S. cerevisiae strain YST069 (see Example 2) with elevated levels of endogenous FPP, by co-expressing each of the selected acetyltransferase enzyme candidates with the gene encoding the Agaricus bisporus-derived rimenol synthase XP_006461126 (NCBI accession number XP_006461126).

[0316] To express XP_006461126 and selected acetyltransferases (CrDAT, FgaAT, OAH94415.1, TcTAT, CrMAT, LiAAT-4, GAO81666.1, CfACT1-6, and CfACT1-8) in YST069, plasmids were constructed in vivo using yeast endogenous homologous recombination, as previously described in Kuijpers et al., Microb Cell Fact., 2013, 12:47. These plasmids consisted of four DNA fragments used for co-transformation into S. cerevisiae. The fragments were as follows: a) Plasmid pF167 (SEQ ID NO: 1) linearized by enzymatic restriction using BsmBI. pF167 was previously constructed by in vivo assembly in yeast, and pF167 contains the yeast marker LEU2 with its own promoter and terminator, the E. coli marker AmpR, the 2μ yeast origin of replication, the E. coli pUC origin of replication, and 5'-GCACTTGCTACACTGTCAGGATAGCTTCCGTCACATGGTGGCGATCACCGTACATCTGAG-3' (SEQ ID NO: 2) and 5'-AGGTGCAGTTCGCGTGCAATTATAACGTCGTGGCAACTGTTATCAGTCGTACCGCGCCAT-3' (SEQ ID NO: 3) for homologous recombination; b) A fragment comprising 5'-GCACTTGCTACACTGTCAGGATAGCTTCCGTCACATGGTGGCGATCACCGTACATCTGAG-3' (SEQ ID NO: 2), the terminator region of the yeast gene PGK1, and the sesquiterpene synthase XP_006461126 DNA sequence codon (SEQ ID NO: 6), optimized for its expression in S. cerevisiae, was obtained by DNA synthesis (ATUM, Menlo Park, California 94025). A bidirectional GAL1 / GAL10 promoter region derived from yeast was added to this fragment by PCR overlap extension. (Yolov and Shabarova., Nucleic Acids Res. 1990, 18(13):3983-6); c) A fragment comprising a 60 bp segment corresponding to the first nucleotide of the yeast GAL10 promoter region, which is one of the acetyltransferase DNA coding sequences to be evaluated (codons optimized for its expression in S. cerevisiae), and a 60 bp segment of the yeast CYC1 terminator region, the fragment obtained by DNA synthesis (ATUM, Menlo Park, California 94025); and d) A fragment consisting of the terminator region of the yeast gene CYC1 and the sequence 5'-AGGTGCAGTTCGCGTGCAATTATAACGTCGTGGCAACTGTTATCAGTCGTACCGCGCCAT-3' (SEQ ID NO: 3), which was obtained by DNA synthesis (ATUM, Menlo Park, California 94025).

[0317] Yeast transformation, screening conditions, and quantification of dorimenol and dorimenyl acetate were carried out as described in Example 2 for the production of albikanol and albikanyl acetate.

[0318] The relative amounts of albicanyl acetate and drimenyl acetate (from Example 2) are shown in Figures 3 and 4, respectively. Of the nine enzyme candidates tested, seven enzymes (CrDAT, FgaAT, OAH94415.1, TcTAT, GAO81666.1, CfACT1-6, and CfACT1-8) produced drimenyl acetate. Due to the high structural similarity between albicanol and drimenol, similar relative conversion rates were expected to be found.

[0319] Unexpectedly, the conversion of dorimenol to its corresponding acetate was found to be remarkably altered. In particular, CrDAT, which was found to produce the highest relative amount of albicanyl acetate, was one of the substances that produced the least amount of dorimenyl acetate. In contrast, FgaAT and CfACT1-8 were found to produce the highest relative amount of ofd acetate, but showed low activity for albicanol. These surprising findings highlight the difficulty in identifying suitable acetyltransferase enzyme candidates that accept non-physiological substrates.

[0320] Example 4 Selection of acetyltransferase candidates for converting drimansesquiterpenes to acetylated drimanylsesquiterpenes based on acetyltransferases active for drimenol and albikanol. a) Experiment 1 To further identify acetyltransferases capable of acetylating drimane-type sesquiterpene alcohols, NCBI Protein Blast searches were performed using the amino acid sequences of acetyltransferases CrDAT and FgaAT (shown in Examples 2 and 3) that are active for albikanol and dorimenol, respectively, to find homologs of similar protein sequences. Protein Blast searches were performed using default parameters (Tatiana et al, FEMS Microbiol Lett., 1999, 174:247-250, 1999).

[0321] We searched for the plant acetyltransferase XP_008340165.2 homolog for CrDAT and four fungal acetyltransferase homologs for FgaAT (KEY80391, PYI04555.1, XP_001276734.1, XP_024709055.1) using Blast search. These are listed in Table 3.

[0322] [Table 7]

[0323] b) Experiment 2 Furthermore, additional acetyltransferase candidates were searched for in the transcriptomes of the lizard Bazzania trilobata and the fern Dryopteris fragrans. The lizard Bazzania is rich in terpenoids, including drimansesquiterpenes, and albicanyl acetate and albicanyl caféte have been reported as natural products from lizards of the genus Bazzania (Asakawa et al, Phytochemistry, Volume 30, Issue 9, 1991, Pages 3037-3040). Similarly, several different natural products containing albicanyl acetate have been reported in the genus Dryopteris (Hideyuki Ito et al. Chem. Pharm. Bull. 48(8) 1190-1195 (2000); Froissard D et al. Nat Prod Commun. 2014 Jan;9(1):137-40.).

[0324] The transcriptome of Bazzania trilobata (NCBI accession number ER364415) was assembled using CLC Genomic Workbench (Qiagen), yielding a total of 22,083 contigs with an average length of 1,225 base pairs. Homologous sequences of the Bazzania trilobata transcriptome were searched using CrDAT amino acid sequences. For this search, the tBlastn algorithm (Altschul et al. 1990, J. Mol. Biol. 215, 403-410) was used with default parameters. Transcripts with an E value greater than 0.001 were considered. Ten transcripts belonging to the plant acetyltransferase BAHD family with a low amino acid sequence homology of 20% to CrDAT were selected.

[0325] Plant material from D. fragrans was collected from northern China. Fresh leaves of D. fragrans (sample ID PNLI20141074) were used for transcriptome analysis. Total RNA of D. fragrans was extracted using QIAGEN's RNeasy Plant Mini Kit (catalog number 74904). The total RNA sample PNLI20141074 was processed using NEBNext® Ultra™ RNA Library Prep Kit for Illumina (NEB, USA) and TruSeq PE Cluster Kit (Illumina, USA), and then sequenced on an Illumina Miseq sequencer. 20.88 million 2×350bp paired-end reads were generated. These reads were assembled using Trinity (http: / / trinityrnaseq.sf.net / ) software to obtain 85,753 contigs with an N50 of 1373bp. The contig was analyzed using EMBOSS software (http: / / emboss.sourceforge.net / ) to obtain the protein sequence. The amino acid sequence (SEQ ID NO: 144) of acetyltransferase ERR364415-1_contig_8546 (obtained from the Bazzania trilobata (NCBI accession number ERR364415) transcriptome, as described above) was used to search for homologous sequences in the D. fragrans transcriptome. For this search, the tBlastn algorithm was used with standard parameters (Altschul et al 1990, J. Mol. Biol. 215, 403-410). This approach provided 20 transcripts belonging to the plant acetyltransferase BAHD family.

[0326] Example 5 In vivo production of drimanyl acetate in Saccharomyces cerevisiae by co-expressing an enzyme for producing either albicanol, drimenol, or bicyclofarnesol together with a selected acetyltransferase candidate. An expanded screening of acetyltransferases for converting albicanol, dorimenol, and bicyclofarnesol to their corresponding acetate derivatives was performed. A total of 89 acetyltransferases, listed in Table 1 of Example 1 and Example 4, were screened in vivo in engineered Saccharomyces cerevisiae cells. Screening data produced for a preliminary number of acetyltransferases, as described in Example 2 and Example 3, were not repeated. Therefore, only novel combinations of acetyltransferases with Saccharomyces cerevisiae cells producing any of albicanol, dorimenol, or bicyclofarnesol, which were not tested in Example 2 and Example 3, were screened.

[0327] The manipulated S. cerevisiae strain YST069 was used for screening for the production of albicanyl acetate and drimenyl acetate, as described in Examples 2 and 3.

[0328] Bicyclofarnesyl acetate was produced in vivo in the engineered S. cerevisiae strain YST069 by co-expressing each of the selected acetyltransferase enzyme candidates together with the enzymes AstC (SEQ ID NO: 138), AstI (SEQ ID NO: 140), and AstK (SEQ ID NO: 142), which are responsible for bicyclofarnesol production from asteride biosynthesis (Yasutomo Shinohara et al. Sci Rep. 2016, 6: 32865).

[0329] To enable the simultaneous expression of AstC and AstI, an expression cassette containing codons optimized for the S. cerevisiae type of the AstC-encoding gene (SEQ ID NO: 138) and the AstI-encoding gene (SEQ ID NO: 140), along with a bidirectional GAL1 / GAL10 promoter, was constructed and incorporated into the YST069 genome, resulting in a new strain called YST216. The codon-optimized DNA sequences for AstC and AstI were obtained by DNA synthesis (ATUM, Menlo Park, California 94025). Bidirectional GAL1 / GAL10 promoter regions derived from yeast were added to these genes by PCR overlap expansion (Yolov and Shabarova, Nucleic Acids Res. 1990, 18(13):3983-6).

[0330] To express AstK and the evaluated acetyltransferase in YST216, plasmids were constructed in vivo using yeast endogenous homologous recombination, as previously described in Kuijpers et al., Microb Cell Fact., 2013, 12:47. The plasmid consisted of four DNA fragments used for co-transformation into S. cerevisiae. The fragments were as follows: a) Plasmid pF167 (SEQ ID NO: 1) linearized by enzymatic restriction using BsmBI; b) A fragment consisting of 5'-GCACTTGCTACACTGTCAGGATAGCTTCCGTCACATGGTGGCGATCACCGTACATCTGAG-3' (SEQ ID NO: 2), the terminator region of the yeast gene PGK1, and an AstK DNA sequence codon (SEQ ID NO: 141) optimized for its expression in S. cerevisiae, was obtained by DNA synthesis (ATUM, Menlo Park, California 94025). A bidirectional GAL1 / GAL10 promoter region derived from yeast was added to this fragment by PCR overlap extension. (Yolov and Shabarova., Nucleic Acids Res. 1990, 18(13):3983-6); c) A fragment comprising a 60 bp segment corresponding to the first nucleotide of the yeast GAL10 promoter region, which is one of the acetyltransferase DNA coding sequences to be evaluated (codons optimized for its expression in S. cerevisiae), and a 60 bp segment of the yeast CYC1 terminator region, the fragment obtained by DNA synthesis (ATUM, Menlo Park, California 94025); and d) A fragment consisting of the terminator region of the yeast gene CYC1 and the sequence 5'-AGGTGCAGTTCGCGTGCAATTATAACGTCGTGGCAACTGTTATCAGTCGTACCGCGCCAT-3' (SEQ ID NO: 3), which was obtained by DNA synthesis (ATUM, Menlo Park, California 94025).

[0331] YST216 was transformed with the fragments required for in vivo plasmid assembly. Yeast transformation was carried out as described in Example 2. The screening conditions and quantification of bicyclofarnesol and bicyclofarnesyl acetate were the same as those described in Example 2, except that 25 μL of mineral oil (2705-01, VWR International, LLC.) was used as an organic overlay in the screening procedure.

[0332] result: In addition to the nine enzymes described above that are active against albicanol (CrDAT, FgaAT, OAH94415.1, TcTAT, CrMAT, LiAAT-4, GAO81666.1, CfACT1-6, CfACT1-8) (see Example 2), albicanyl acetate was detected under these conditions using acetyltransferase ERR364415-1_contig_8546 from Bazzania trilobata (SEQ ID NO: 124 or 144) and DfATC13 from Dryopteris fragrans (SEQ ID NO: 118). However, their activity was lower than that of CrDAT and FgaAT. The relative amounts of albicanyl acetate are shown in Figure 5.

[0333] In addition to seven candidate enzymes capable of converting dorimenol to dorimenyl acetate (CrDAT, FgaAT, OAH94415.1, TcTAT, GAO81666.1, CfACT1-6, and CfACT1-8) (see Example 3), three additional acetyltransferases—XP_001258079.1 (SEQ ID NO: 127) from Aspergillus fischeri, ERR364415-1_contig_8546 (SEQ ID NO: 124 or 144) from Bazzania trilobata, and DfATC13 (SEQ ID NO: 118) from Dryopteris fragrans—were found to produce dorimenyl acetate from dorimenol in expanded screening. The relative amounts of the obtained dorimenyl acetate are shown in Figure 6. As shown in Figure 7, the MS spectrum of yeast-derived dorimenyl acetate is identical to the MS spectrum of reference dorimenyl acetate. Interestingly, under these experimental conditions, ERR364415-1_contig_8546 and DfATC13 showed the highest activity among all the acetyltransferases tested.

[0334] Bicyclofarnesyl acetate was detected for 13 combinations of AstC, AstI, and AstK using 89 acetyltransferases tested. Figure 8 shows that the MS spectrum of yeast-derived bicyclofarnesyl acetate is identical to that of reference bicyclofarnesyl acetate. The relative amounts of bicyclofarnesyl acetate are shown in Figure 9. Acetyltransferase FgaAT from Aspergillus fumigatus and ERR364415-1_contig_8546 from Bazzania trilobata showed the highest acetylation activity using bicyclofarnesol. These 13 discovered acetyltransferases, which are active against bicyclofarnesol, namely CrDAT, FgaAT, TcTAT, CrMAT, GAO81666.1, CfACT1-6, CfACT1-8, and BAU61551.1 (SEQ ID NO: 133), PsSalAT (SEQ ID NO: 136), XP_001217250.1 (SEQ ID NO: 130), ERR364415-1_contig Of the _8546 (SEQ ID NO: 124 or 144), PYI04555.1 (SEQ ID NO: 121 or 143), and DfACT13 (SEQ ID NO: 118), nine—namely CrDAT, FgaAT, TcTAT, CrMAT, GAO81666.1, CfACT1-6, CfACT1-8, ERR364415-1_contig_8546, and DfACT13—were found to be active against albicanol and dorimenol. It is noteworthy that acetyltransferase AstG, which is involved in the biosynthesis of asteride (Sci Rep. 2016, 6:32865), an aryl esterified dorimane-type sesquiterpene lactone, was not active against any of the dorimane-type sesquiterpene alcohols tested. This further highlights the unpredictability and complexity of identifying acetyltransferases that can utilize albicanol, dorimenol, or bicyclofarnesol as acyl receptors.

[0335] The content of cross-referenced documents is incorporated through the references.

[0336] [Table 8-1] [Table 8-2] [Table 8-3]

[0337] Sequence Listing Sequence ID 1 Plasmid pF167 [ka] [ka] [ka]

[0338] Sequence ID 2 homologous recombination sequence [ka]

[0339] Sequence ID 3 homologous recombination sequence [ka]

[0340] Sequence ID 4 XP_007369631.1 DNA sequence codon optimized for expression in S. cerevisiae [ka] [ka]

[0341] Sequence ID 5 Dichomitus squalens albicanol synthase XP_007369631.1 amino acid sequence [ka]

[0342] Sequence ID 6 XP_006461126 Agaricus bisporus dorimenol synthase DNA sequence codon optimized for expression in S. cerevisiae [ka] [ka]

[0343] Sequence ID 7 The XP_006461126 protein sequence of dorimenol synthase from Agaricus bisporus. [ka]

[0344] Sequence ID 8 CrDATDNA sequence codons optimized for expression in S. cerevisiae [ka] [ka]

[0345] Sequence ID 9 CrDAT protein sequence [ka]

[0346] Sequence ID 10 TcTATDNA sequence codons optimized for expression in S. cerevisiae [ka] [ka]

[0347] Sequence ID 11 TcTAT protein sequence [ka]

[0348] Sequence ID 12 CrMATDNA sequence codons optimized for expression in S. cerevisiae [ka]

[0349] Sequence ID 13 CrMAT protein sequence [ka]

[0350] Sequence ID 14 LiAAT-4 DNA sequence codons optimized for expression in S. cerevisiae [ka]

[0351] Sequence ID 15 LiAAT-4 protein sequence [ka] [ka]

[0352] Sequence ID 16 FgaATDNA sequence codons optimized for expression in S. cerevisiae [ka]

[0353] Sequence ID 17 FGAAT protein sequence [ka]

[0354] Sequence ID 18 GAO81666.1 DNA sequence codon optimized for expression in S. cerevisiae [ka]

[0355] Sequence ID 19 GAO81666.1 protein sequence [ka]

[0356] Sequence ID 20 CfACT1-6 DNA sequence codons optimized for expression in S. cerevisiae [ka]

[0357] Sequence ID 21 CfACT1-6 protein sequence [ka]

[0358] Sequence ID 22 CfACT1-8 DNA sequence codons optimized for expression in S. cerevisiae [ka] [ka]

[0359] Sequence ID 23 CfACT1-8 protein sequence [ka] The C-terminus "T" may be omitted as needed.

[0360] Sequence ID 24 OAH94415.1 DNA sequence codon optimized for expression in S. cerevisiae [ka] [ka]

[0361] Sequence ID 25 OAH94415.1 protein sequence [ka]

[0362] Sequence ID 116 DfACT13 natural nucleotide sequence [ka]

[0363] Sequence ID 117 DfACT13 nucleotide sequence codon optimized for expression in S. cerevisiae [ka]

[0364] Sequence ID 118 DfACT13 protein sequence [ka]

[0365] Sequence ID 119 PYI04555.1 Natural nucleotide sequence [ka] [ka]

[0366] Sequence ID 120 The PYI04555.1 nucleotide sequence codon, optimized for expression in S. cerevisiae, encodes the C-terminal extended protein variant of SEQ ID NO: 143. [ka] [ka]

[0367] Sequence ID 121 PYI04555.1 protein sequence C-terminal extended protein variant of SEQ ID NO: 143 [ka]

[0368] Sequence ID 122 ERR364415-1_contig_8546 Natural Nucleotide Sequence [ka] [ka]

[0369] Sequence ID 123 The ERR364415-1_contig_8546 nucleotide sequence codon, optimized for expression in S. cerevisiae, encodes the C-terminal extended protein variant of SEQ ID NO: 144. [ka]

[0370] Sequence ID 124 C-terminal extended protein variant of the ERR364415-1_contig_8546 protein sequence of SEQ ID NO: 144 [ka]

[0371] Sequence ID 125 XP_001258079.1 Natural nucleotide sequence [ka] [ka]

[0372] Sequence ID 126 XP_001258079.1 nucleotide sequence codon optimized for expression in S. cerevisiae [ka]

[0373] Sequence ID 127 XP_001258079.1 Protein Sequence [ka] [ka]

[0374] Sequence ID 128 XP_001217250.1 Natural nucleotide sequence [ka]

[0375] Sequence ID 129 XP_001217250.1 nucleotide sequence codon optimized for expression in S. cerevisiae [ka] [ka]

[0376] Sequence ID 130 XP_001217250.1 Protein Sequence [ka]

[0377] Sequence ID 131 BAU61551.1 Natural nucleotide sequence [ka] [ka]

[0378] Sequence ID 132 BAU61551.1 nucleotide sequence codon optimized for expression in S. cerevisiae [ka] [ka]

[0379] Sequence ID 133 BAU61551.1 protein sequence [ka]

[0380] Sequence ID 134 PsSalAT Natural Nucleotide Sequence [ka] [ka]

[0381] Sequence ID 135 PsSalAT nucleotide sequence codon optimized for expression in S. cerevisiae [ka]

[0382] Sequence ID 136 PsSalAT protein sequence [ka] [ka]

[0383] Sequence ID 137 AstC nucleotide sequence codon optimized for expression in S. cerevisiae [ka]

[0384] Sequence ID 138 AstC protein sequence [ka] [ka]

[0385] Sequence ID 139 AstI nucleotide sequence codon optimized for expression in S. cerevisiae [ka]

[0386] Sequence ID 140 AstI protein sequence [ka]

[0387] Sequence ID 141 AstK nucleotide sequence codon optimized for expression in S. cerevisiae [ka]

[0388] Sequence ID 142 AstK protein sequence [ka]

[0389] Sequence ID 143 PYI04555.1 protein sequence with unextended C-terminus [ka]

[0390] Sequence ID 144 ERR364415-1_contig_8546 protein sequence with unextended C-terminus [ka]

[0391] Further sequences applicable to the present invention are listed below. "Previous" sequence numbers refer to those used in their respective patent documents. [Table 9] [Table 10] [Table 11] [Table 12]

Claims

1. A method for biocatalyzing the production of a dorimanyl acetate compound, The step (1) involves contacting a drimanyl alcohol with a polypeptide having acetyltransferase activity of enzyme class EC2.3.1 capable of transferring acetyl groups from the acetyl group donor to the drimanyl alcohol, thereby obtaining a drimanyl acetate. The acetyl group donor is acetyl-coenzyme A (acetyl-CoA), The polypeptide having acetyltransferase activity is a) Polypeptides comprising an amino acid sequence selected from SEQ ID NOs: 9, 17, 118, 124, 144, 23, 21, 11, 19, 13, 15, or 25, and b) Polypeptides having acetyltransferase activity and comprising an amino acid sequence exhibiting at least 90% sequence identity with at least one of the aforementioned amino acid sequences of SEQ ID NOs: 9, 17, 118, 124, 144, 23, 21, 11, 19, 13, 15, or 25. Selected from, A method wherein the drimanyl alcohol is albikanol.

2. The method according to claim 1, wherein the dorimanyl acetate compound is albicanyl acetate.

3. The method according to claim 1 or 2, further comprising the enzymatic synthesis of the drimanyl alcohol from farnesyl pyrophosphate (FPP) prior to step (1) above.

4. The method according to claim 3, wherein the enzymatic synthesis of the drimanyl alcohol is catalyzed by one or more polypeptides having the ability to convert farnesyl pyrophosphate (FPP) into at least one drimanyl alcohol in one or more enzymatic steps.

5. The method according to claim 4, wherein the dorimanyl alcohol is produced from FPP in a single step or two or more enzymatic steps.

6. The aforementioned dorimanyl alcohol a) A polypeptide having drimansesquiterpene synthase activity that forms the drimanyl alcohol; or b) A combination of a polypeptide having drimanyl phosphate synthase activity that forms at least one drimanyl phosphate intermediate and a polypeptide having phosphatase activity that converts the at least one drimanyl phosphate intermediate into at least one drimanyl alcohol. The method according to claim 5, which is produced by the enzymatic conversion of FPP catalyzed by .

7. a) The polypeptide having drimansesquiterpene synthase activity is a polypeptide having albikanol synthase activity, and b) The above combination is a combination of a polypeptide having dorimanyl diphosphate synthase activity and a polypeptide having phosphatase activity. The method according to claim 6.

8. The aforementioned dorimancesquiterpene synthase, a) Polypeptides having albikanol synthase activity and containing the amino acid sequence of SEQ ID NO: 5, or mutant polypeptides having albikanol synthase activity and containing an amino acid sequence having at least 90% sequence identity with SEQ ID NO:

5. The method according to claim 7, selected from the following.

9. The method according to any one of claims 1 to 8, which is carried out in vivo in cell culture or in vitro in a liquid reaction medium under conditions that promote the production of the drimanyl acetate.

10. a) At least one acetyltransferase as defined in claim 1, b) At least one polypeptide having the ability to convert the FPP into at least one drimanyl alcohol as defined in any one of claims 4 to 8, and / or c) At least one enzyme selected from the enzymes involved in the mevalonate pathway The method according to claim 9, which is carried out in recombinant non-human host cells or recombinant non-human host organisms capable of functionally expressing the function.

11. The method according to claim 10, wherein the recombinant non-human host cell or recombinant non-human host organism is selected from bacterial, fungal, and plant cells or plants.

12. The method according to any one of claims 1 to 11, further comprising, as step (2), isolating the dorimanyl acetate from the reaction product of step (1).

13. The method according to any one of claims 1 to 12, further comprising, as step (3), processing the dorimanyl acetate from step (1) or step (2) to obtain a derivative using chemical synthesis, biocatalytic synthesis, or a combination of both.

14. Prepare a recombinant non-human host organism or recombinant non-human host cell, a) at least one nucleic acid comprising a nucleic acid sequence encoding at least one polypeptide having acetyltransferase activity capable of transferring an acetyl group from an acetyl group donor to a dolimanyl alcohol, and / or b) at least one nucleic acid comprising a nucleic acid sequence encoding at least one polypeptide having drimanyl alcohol synthase activity capable of producing drimanyl alcohol from FPP, and / or c) at least one nucleic acid comprising a nucleic acid sequence encoding at least one polypeptide involved in the biosynthetic pathway for generating the FPP, The method according to any one of claims 1 to 13, comprising transforming with

Citation Information

Patent Citations

  • Dorimenol synthase and method for producing dorimenol

    JP2017517251A

  • Method for producing drimenol synthase and drimenol

    JP2017518741A

  • Methods and compositions for producing drimenol

    US20150059018A1

  • Drimenol synthases iii

    WO2017077125A1