Method for producing trans polyisoprenoids, vectors, transformed organisms, methods for producing pneumatic tires, and methods for producing rubber products

By isolating and genetically engineering trans-type prenyltransferases from sapodilla plants to produce trans-type polyisoprenoids with lipid membrane binding, the challenges of molecular weight limitations and environmental impact in existing production methods are overcome, allowing for high-quality rubber products and tires.

JP7829849B2Active Publication Date: 2026-03-16SUMITOMO RUBBER INDUSTRIES LTD +1
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-09-10
Publication Date
2026-03-16

AI Technical Summary

Technical Problem

Existing methods for producing trans-type polyisoprenoids with molecular weights exceeding 10 are limited, and chemical synthesis is environmentally unfriendly and difficult to achieve ultra-high molecular weights, while natural extraction methods are not scalable.

Method used

Isolation of trans-type prenyltransferases from sapodilla plants and genetic engineering to introduce these enzymes into organisms, enabling enzymatic production of trans-type polyisoprenoids with molecular weights exceeding 10 by binding the enzymes to lipid membranes.

Benefits of technology

Enables the production of trans-type polyisoprenoids with molecular weights exceeding 10, facilitating the manufacturing of high-quality rubber products and pneumatic tires.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a method for producing trans-polyisoprenoid (trans-1,4-polyisoprene) having a molecular weight of more than 105 in an enzymatically reactive manner.SOLUTION: The present invention provides a method for producing trans-polyisoprenoid, the method comprising a binding step for binding a trans-prenyltransferase (tPT) family protein capable of producing a product having a molecular weight of 104 or more under the condition where the protein is not bound to a lipid membrane to a lipid membrane in vitro.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] This disclosure relates to a method for producing trans polyisoprenoids, vectors, transformed organisms, a method for producing pneumatic tires, and a method for producing rubber products. [Background technology]

[0002] Currently, natural rubber (a type of polyisoprenoid) used in industrial rubber products is obtained by cultivating rubber-producing plants such as the Para rubber tree (Hevea brasiliensis) of the Euphorbiaceae family and the Indian rubber tree (Ficus elastica) of the Moraceae family. Such natural rubber is a polyisoprenoid (cis-type natural rubber) in which isoprene units are bonded in the cis configuration. On the other hand, trans-type polyisoprenoids (trans rubber), in which isoprene units are bonded in the trans configuration, also exist in nature.

[0003] Trans polyisoprenoids (trans rubber) are known to be produced naturally by a few plants, such as Eucommia ulmoides, a deciduous tree native to China belonging to the Eucommiae family. They can be obtained by extraction from the seeds or pericarp tissue of Eucommia ulmoides. They can also be obtained through chemical synthesis. Such trans rubber has different properties from cis-type natural rubber and is used in applications such as crack-resistant golf balls and as a filling material for dental treatments.

[0004] Chemically synthesized trans polyisoprenoids do not contain 100% trans, but rather about 1.2-4% cis-type bonds. Furthermore, their molecular weight is around 250,000, making the synthesis of ultra-high molecular weight polyisoprenoids (over 1 million) extremely difficult. Additionally, chemical synthesis requires the supply of raw materials, specifically petroleum-derived materials, making it an environmentally unfriendly procurement method.

[0005] On the other hand, trans polyisoprenoids extracted and purified from the plant Eucommia ulmoides have a weight-average molecular weight of approximately 1.8 × 10⁶, with more than 99% of the linear chain linked in the trans configuration. 6 It is a polyisoprenoid and is used as an elastomer of Eucommia ulmoides.

[0006] Trans-type polyisoprenoids (trans-gum) are compounds with a trans-1,4-polyisoprene structure that are biosynthesized in plants through the addition polymerization of isopentenyl diphosphate (IPP) to initiating substrates such as farnesyl diphosphate (FPP) or geranylgeranyl diphosphate (GGPP). Based on its structure, it is believed that trans-type prenyltransferase (tPT) is involved in the biosynthesis of trans-gum.

[0007] To date, patent documents 1, 2, and 3 have reported long-chain trans-prenyl diphosphate synthase genes, which are trans-prenyltransferases derived from Eucommia ulmoides, and methods for cultivating plants transformed using these genes and recovering trans-1,4-polyisoprene have been reported.

[0008] However, in the reported examples of transformed tobacco, 10 4 ~10 5 Only the following has been reported, 10 5 We have not yet reached the stage of producing polymers exceeding that level. [Prior art documents] [Patent Documents]

[0009] [Patent Document 1] Patent No. 6090700 [Patent Document 2] Patent No. 5870464 [Patent Document 3] Patent No. 5645366 [Overview of the Initiative] [Problems that the invention aims to solve]

[0010] The present disclosure aims to solve the above problems and provide a method for enzymatically producing a trans-type polyisoprenoid (trans-1,4-polyisoprene) having a molecular weight exceeding 10. 5 Specifically, the present disclosure aims to provide a method for enzymatically producing a trans-type polyisoprenoid having a molecular weight exceeding 10 by enzymatic reaction.

[0011] The present disclosure also aims to solve the above problems and provide a vector capable of enzymatically producing a trans-type polyisoprenoid having a molecular weight exceeding 10 by introducing it into an organism by genetic recombination technology. Further, the present disclosure aims to provide a transformed organism into which the vector has been introduced, and a method for enzymatically producing a trans-type polyisoprenoid having a molecular weight exceeding 10 using the transformed organism. 5 Specifically, the present disclosure aims to provide a vector capable of enzymatically producing a trans-type polyisoprenoid having a molecular weight exceeding 10 by introducing it into an organism by genetic recombination technology. Further, the present disclosure aims to provide a transformed organism into which the vector has been introduced, and a method for enzymatically producing a trans-type polyisoprenoid having a molecular weight exceeding 10 using the transformed organism. 5 Specifically, the present disclosure aims to provide a method for enzymatically producing a trans-type polyisoprenoid having a molecular weight exceeding 10 using the transformed organism into which the vector has been introduced.

Means for Solving the Problems

[0012] In order to solve the above problems, the present inventors isolated two types of genes having conserved motifs of two types of trans-type prenyltransferases from sapodilla, which is a plant that biosynthesizes trans-1,4-polyisoprene.

[0013] Among the two types of isolated trans-type prenyltransferases, one type of trans-type prenyltransferase (tPT1 derived from sapodilla, the nucleotide sequence and amino acid sequence are represented by SEQ ID NO: 1 and 2, respectively) has activity even under non-lipid membrane binding, and it was found that it has the ability to synthesize a product having a molecular weight of about 10. 3 With respect to the other trans-type prenyltransferase (tPT2 derived from sapodilla, the nucleotide sequence and amino acid sequence are represented by SEQ ID NO: 3 and 4, respectively), although it did not show activity under non-lipid membrane binding in the full-length sequence, by deleting the membrane-binding peptide region (the nucleotide sequence of MztPT2ΔN, which is tPT2 derived from sapodilla with the membrane-binding peptide region deleted, is represented by SEQ ID NO: 6), it was discovered that it shows the ability to synthesize a product having a molecular weight of about 10 even under non-lipid membrane binding. 4 Specifically, it was discovered that by deleting the membrane-binding peptide region, it shows the ability to synthesize a product having a molecular weight of about 10 even under non-lipid membrane binding.

[0014] Further research has shown that molecular weight 10 4 A trans-type prenyltransferase capable of synthesizing a product of a certain degree, when expressed in the presence of a lipid membrane with a membrane-bound peptide domain, yields a molecular weight of 10. 5 We discovered that it exhibits the ability to synthesize products exceeding [a certain value].

[0015] On the other hand, it exhibits activity even without lipid membrane binding, and has a molecular weight of 10 3 Even when a membrane-bound peptide is fused to a trans-type prenyltransferase capable of synthesizing products of a certain molecular weight, the molecular weight remains 10 even in the presence of a lipid membrane. 3 We also discovered that the synthesis of products was limited to a certain extent.

[0016] These results suggest that under non-lipid membrane conditions, molecular weight 10 4 We have completed this disclosure by discovering that a trans-type prenyltransferase capable of synthesizing the above products can be bound to a lipid membrane and the products accumulated within the membrane, thereby increasing the molecular weight of the products.

[0017] In other words, this disclosure relates to a molecular weight of 10 under non-binding conditions of a lipid membrane. 4 This invention relates to a method for producing trans polyisoprenoids, which includes a binding step of binding a trans prenyltransferase (tPT) family protein capable of producing the above-mentioned products to a lipid membrane in vitro. [Effects of the Invention]

[0018] According to this disclosure, under non-lipid membrane conditions, molecular weight 10 4 This method for producing trans polyisoprenoids includes a binding step in which a trans prenyltransferase (tPT) family protein capable of producing the above products is bound to a lipid membrane in vitro. By binding the tPT family protein to the lipid membrane, 10 5 It is possible to synthesize trans polyisoprenoids having a molecular weight exceeding 10 5 This makes it possible to provide a method for enzymatically producing trans polyisoprenoids having a molecular weight exceeding [a certain value].

[0019] The method for manufacturing a pneumatic tire according to this disclosure includes a kneading step of kneading the trans-type polyisoprenoid obtained by the method for manufacturing the trans-type polyisoprenoid with an additive to obtain a kneaded product, a green tire molding step of forming a green tire from the kneaded product, and a vulcanization step of vulcanizing the green tire. 5 To manufacture pneumatic tires from trans polyisoprenoids having a molecular weight exceeding 10 5 It is possible to manufacture pneumatic tires using trans-type polyisoprenoids having a molecular weight exceeding [a certain value].

[0020] The method for manufacturing rubber products according to this disclosure includes a kneading step of kneading the trans-type polyisoprenoid obtained by the method for manufacturing trans-type polyisoprenoids with an additive to obtain a kneaded product, a raw rubber product molding step of molding a raw rubber product from the kneaded product, and a vulcanization step of vulcanizing the raw rubber product. 5 To manufacture rubber products from trans polyisoprenoids having a molecular weight exceeding 10 5 Rubber products can be manufactured using trans-type polyisoprenoids having a molecular weight exceeding [a certain value].

[0021] The vector disclosed herein has a molecular weight of 10 under non-binding conditions of a lipid membrane. 4 Because this vector contains a gene encoding a trans-prenyltransferase (tPT) family protein capable of producing the above products, by introducing it into an organism using genetic engineering technology, the organism will produce 10 5 Trans polyisoprenoids having a molecular weight exceeding 10 can be produced enzymatically. Therefore, transformed organisms into which this vector has been introduced have a molecular weight exceeding 10 5 Trans-type polyisoprenoids having a molecular weight exceeding a certain value can be produced enzymatically.

[0022] The method for manufacturing a pneumatic tire according to this disclosure includes a kneading step of kneading a trans-type polyisoprenoid obtained from the transformed organism with an additive to obtain a kneaded product, a green tire molding step of forming a green tire from the kneaded product, and a vulcanization step of vulcanizing the green tire. 5 To manufacture pneumatic tires from trans polyisoprenoids having a molecular weight exceeding 10 5 It is possible to manufacture pneumatic tires using trans-type polyisoprenoids having a molecular weight exceeding [a certain value].

[0023] The method for manufacturing rubber products according to this disclosure includes a kneading step of kneading a trans polyisoprenoid obtained from the transformed organism with an additive to obtain a kneaded product, a raw rubber product molding step of molding a raw rubber product from the kneaded product, and a vulcanization step of vulcanizing the raw rubber product. 5 To manufacture rubber products from trans polyisoprenoids having a molecular weight exceeding 10 5 Rubber products can be manufactured using trans-type polyisoprenoids having a molecular weight exceeding [a certain value]. [Brief explanation of the drawing]

[0024] [Figure 1] This diagram schematically shows the structure of rubber particles and oil droplets. [Figure 2] This is a schematic diagram showing a part of the biosynthetic pathway of trans polyisoprenoids. [Figure 3] This figure shows an example of TLC results. [Figure 4] This figure shows an example of GPC results. [Figure 5] This figure shows an example of activity measurement results. [Figure 6] This figure shows an example of GPC results. [Figure 7] This figure shows an example of activity measurement results. [Figure 8] This figure shows an example of activity measurement results. [Figure 9]This figure shows an example of GPC results. [Modes for carrying out the invention]

[0025] The present disclosure provides a method for producing trans polyisoprenoids with a molecular weight of 10 under non-lipid membrane conditions. 4 The process includes a binding step in which a trans-type prenyltransferase (tPT) family protein capable of producing the above products is bound to a lipid membrane in vitro. Molecular weight 10 under non-lipid membrane conditions 4 By binding tPT family proteins capable of producing the above products to a lipid membrane in vitro (for example, in a reaction vessel (test tube, plant, etc.)), 10 5 Trans-type polyisoprenoids having a molecular weight exceeding [a certain value] can be synthesized (produced enzymatically). Furthermore, the manufacturing method disclosed herein may include other steps insofar as it includes the bonding step, and each step may be performed once or repeatedly. Furthermore, the amount of tPT family proteins that bind to the lipid membrane is not particularly limited in this disclosure.

[0026] In this disclosure, for example, tPT family proteins are expressed using a cell-free protein expression system in the presence of a lipid membrane, and the tPT family proteins are bound to the lipid membrane, thereby enabling enzymatic analysis in vitro. 5 It is possible to produce trans-type polyisoprenoids having a molecular weight exceeding [a certain value].

[0027] Furthermore, the vector disclosed herein has a molecular weight of 10 under non-binding conditions to a lipid membrane. 4 Because this vector contains a gene encoding a trans-prenyltransferase (tPT) family protein capable of producing the above products, by introducing it into an organism using genetic engineering technology, the organism will produce 10 5 Trans-type polyisoprenoids having a molecular weight exceeding a certain value can be produced enzymatically.

[0028] Since all organisms possess lipid membranes, organisms were transformed using the genes encoding the aforementioned tPT family proteins, and enzymatically analyzed in vivo. 5 It is possible to produce trans-type polyisoprenoids having a molecular weight exceeding [a certain value].

[0029] Thus, in this disclosure, in vitro or in vivo, 10 5 Trans-type polyisoprenoids (trans-1,4-polyisoprene) having a molecular weight exceeding can be produced enzymatically.

[0030] In this disclosure, under non-binding conditions of lipid membranes, molecular weight 10 4 By binding the tPT family proteins capable of producing the above products to a lipid membrane, the products can be accumulated within the lipid membrane, thereby increasing the molecular weight of the products to 10, which is larger than that without the lipid membrane binding. 5 Trans-type polyisoprenoids having a molecular weight exceeding [a certain value] can be synthesized (produced enzymatically). On the other hand, as mentioned above, under non-lipid membrane conditions, molecular weight 10 3 Even if tPT family proteins, which can only produce a small amount of product, are bound to a lipid membrane, the molecular weight is 10 3 It only synthesizes a limited amount of products. The difference between these two is not clear, but it can be inferred as follows: molecular weight 10 4In prenyltransferases that synthesize products smaller than 50°C, the product chain length is controlled by the spatial size of the product elongation site. For example, in undecaprenyl diphosphate synthase (UPPS), the reaction stops at undecaprenyl diphosphate (molecular weight approximately 926) with a product chain length of 55 carbon atoms because it encounters an amino acid at the bottom of the product chain space (cleft). However, this mechanism of controlling the molecular weight of the product is limited to cases where the product chain length is smaller than the size of the enzyme. Therefore, in enzymes that produce products with a molecular weight larger than the enzyme, such as trans isoprene rubber, it is thought that there is no bottom that determines the product chain length, and products larger than the enzyme size can be synthesized by spatial penetration. Furthermore, the chain length of products whose chain length is not controlled by the enzyme structure is thought to be controlled by the reaction environment. When the product chain length is controlled by the reaction environment, the solubility of the product is considered one of the factors that determine the product chain length. In other words, when the reaction is carried out in aqueous solution without lipid membrane binding, as the product chain extension reaction progresses, the product becomes exposed to the aqueous solution outside the enzyme. On the other hand, as the product chain length increases, its hydrophilicity decreases, and its stability in aqueous solution decreases. Therefore, it is thought that product chain extension stops once a certain chain length is reached. In the case of trans polyisoprenoids, experimental results show that the molecular weight of the product at which product elongation stops in this aqueous solution is 10 4 It was thought to be around that level. Therefore, in aqueous solution, the molecular weight is 10 4 Enzymes capable of synthesizing a certain amount of product are considered to be enzymes that control the reaction environment. On the other hand, 10 4 Enzymes that can only synthesize products of a certain length or less are thought to be enzymes that structurally control the product chain length. In the case of enzymes controlled by the reaction environment, it is expected that changing the reaction environment will alter the chain length of the product. In this case, by binding to a lipid membrane and changing the reaction environment, the molecular weight of the product increased. In the case of enzymes controlled by the enzyme structure, it is thought that the product was synthesized with the same molecular weight regardless of the reaction environment, due to the enzyme structure.

[0031] In this specification, molecular weight refers to the molecular weight measured by gel permeation chromatography (GPC), specifically by the method described in the examples.

[0032] In this specification, "non-lipid membrane bound" means a situation in which there is no lipid membrane in the system, and in particular a situation in which the protein in question is not bound to a lipid membrane. Furthermore, in this specification, under conditions of non-binding of lipid membranes, molecular weight 10 4 The tPT family proteins capable of producing the above products are, for example, those produced by expressing tPT family proteins in E. coli without lipid membrane binding and carrying out the enzymatic reaction of the tPT family proteins, more specifically, by carrying out the enzymatic reaction of the tPT family proteins under conditions in which the tPT family proteins are not bound to a lipid membrane, a molecular weight of 10 4 This refers to proteins capable of producing the above-mentioned products.

[0033] In this specification, the binding of tPT family proteins to a lipid membrane means that all or part of the tPT family protein is incorporated into the lipid membrane or inserted into the membrane structure of the lipid membrane, but is not limited to this, and also includes cases where the protein is localized on the surface or inside the lipid membrane. Furthermore, the concept of being bound to a lipid membrane also includes cases where a protein bound to the lipid membrane and a tPT family protein form a complex and exist as a complex on the lipid membrane.

[0034] In this specification, the membrane-binding region (also referred to as the membrane-binding peptide region or membrane-binding peptide) refers to a membrane transport signal sequence or a hydrophobic amino acid sequence necessary for binding to a membrane, and is a concept that also includes the transmembrane region (also referred to as the transmembrane peptide region or transmembrane peptide). Here, in this specification, the transmembrane region refers to a region that contains many highly hydrophobic amino acids for transmembrane penetration, such as a region that forms an α-helix structure in which hydrophobic amino acids for transmembrane penetration are located on the outside. Furthermore, in this specification, "solubilizing" means bringing a substance into a state where it is stably present in an aqueous solution and does not precipitate by centrifugation or the like. For example, if a membrane protein is not solubilizable in water, it can be solubilized by removing the membrane-binding region from the membrane protein.

[0035] Furthermore, in this specification, trans prenyltransferase (tPT) family proteins are enzymes that catalyze the reaction that extends the chain length of isoprenoid compounds to the trans form. Specifically, for example, in plants, trans polyisoprenoids are biosynthesized by the trans polyisoprenoid biosynthesis pathway shown in Figure 2, and tPT family proteins are thought to be enzymes that catalyze the reaction in the part of this pathway enclosed by the dotted line in Figure 2. A characteristic of tPT family proteins is that they have the amino acid sequence contained in the trans IPPS HT domain (NCBI Accession No. cd00685).

[0036] In this specification, trans polyisoprenoids are a general term for polymers composed of isoprene units (C5H8) bonded in a trans configuration (particularly, the proportion of trans-bonded units in the total bond is preferably 90% or more, more preferably 95% or more, and even more preferably 97% or more). Examples of trans polyisoprenoids include trans cestaterpenes (C5H8). 25 ), trans triterpene (C 30 ), trans tetraterpene (C 40 Examples include polymers such as trans-1,4-polyisoprene and other trans rubbers. In this specification, isoprenoid means a compound having an isoprene unit (C5H8), and is a concept that also includes polyisoprenoids.

[0037] (Method for producing trans-type polyisoprenoids) This disclosure relates to a molecular weight of 10 under non-bonding conditions to a lipid membrane. 4This invention relates to a method for producing trans polyisoprenoids, which includes a binding step of binding a trans prenyltransferase (tPT) family protein capable of producing the above-mentioned products to a lipid membrane in vitro.

[0038] ((lipid membrane)) The lipid membrane is not particularly limited and includes, for example, oil droplets (oil bodies), rubber particles, liposomes, nanodiscs, organelles, and endoplasmic reticulum (microsomes). The lipid membrane may be a lipid monolayer or a lipid bilayer, but a lipid monolayer is preferred. These may be used individually or in combination of two or more types. They may also be of natural origin or artificially synthesized. Among these, oil droplets, rubber particles, nanodiscs, and endoplasmic reticulum (microsomes) are preferred, with oil droplets and endoplasmic reticulum (microsomes) being more preferred.

[0039] In this specification, an oil droplet is an inclusion body or organelle having a membrane structure composed of phospholipids and membrane proteins (e.g., oleosin or proteins belonging to the lipid-droplet associated protein (LDAP) / small rubber particle protein (SRPP) family), as shown in Figure 1, and storing triacylglycerol internally. It is present in both prokaryotes and eukaryotes and in all plants. Oil droplets are also called lipid droplets, fat droplets, oil bodies, or LDs.

[0040] The origin of the oil droplets is not particularly limited; they may be of microorganismal origin (including algae and microalgae), animal origin, or plant origin.

[0041] The aforementioned plants are not particularly limited and include, for example, the Hevea genus such as Hevea brasiliensis; the Sonchus genus such as Sonchus oleraceus, Sonchus asper, and Sonchus brachyotus; Solidago altissima, Solidago virgaurea subsp. asiatica, Solidago virgaurea subsp. leipcarpa, Solidago virgaurea subsp. leipcarpa f. paludosa, Solidago virgaurea subsp. gigantea, and Solidago gigantea Ait. var. leiophylla. Solidago species such as Fernald; Helianthus species such as sunflower (Helianthus annuus), dusty sunflower (Helianthus argophyllus), Helianthus atrorubens, dwarf sunflower (Helianthus debilis), small sunflower (Helianthus decapetalus), and giant sunflower (Helianthus giganteus); dandelion (Taraxacum), Hokkaido dandelion (Taraxacum venustum H. Koidz), Shinano dandelion (Taraxacum hondoense Nakai), Kanto dandelion (Taraxacum platycarpum Dahlst), Kansai dandelion (Taraxacum japonicum), and European dandelion (Taraxacum officinale *Taraxacum* species such as *Taraxacum koksaghyz*, *Taraxacum brevicorniculatum*, etc.; fig (Ficus carica), Indian rubber tree (Ficus elastica), giant fig (Ficus pumila L.), and wild fig (Ficus erecta Thumb.)Examples of rubber-producing plants include the Ficus genus, such as Ficus ampelas Burm.f., Ficus benguetensis Merr., Ficus irisana Elm., Ficus microcarpa Lf., Ficus septica Burm.f., and Ficus benghalensis; the Parthenium genus, such as guayule (Parthenium argentatum), American ragweed (Parthenium hysterophorus), and ragweed (Parthenium hysterophorus); and lettuce (Lactuca sativa) and Ficus benghalensis. Examples of plants other than rubber-producing plants include those belonging to the genus Persea, such as Arabidopsis thaliana and avocado (Persea americana); those belonging to the genus Sesamum, such as sesame (Sesamum indicum); those belonging to the genus Brassica, such as rapeseed (Brassica napus); and those belonging to the genus Camellia, such as camellia (Camellia japonica).

[0042] The aforementioned microorganisms may be either prokaryotes or eukaryotes, including prokaryotes such as microorganisms of the genus Bacillus, Synechocystis, and Synechococcus, or eukaryotic microorganisms such as yeasts and filamentous fungi.

[0043] From the standpoint of established genetic modification methods, the aforementioned algae and microalgae are preferably those of the genus Chlamydomonas, Chlorella, Phaeodactylum, or Nannochloropsis, with Chlamydomonas being more preferred.

[0044] The oil droplets are preferably of plant origin, more preferably of plant origin belonging to at least one genus selected from the group consisting of the genera Persea, Sesammum, Brassica, and Camellia, even more preferably of plant origin belonging to the genus Persea, and particularly preferably of avocado origin.

[0045] Furthermore, the oil droplets are preferably derived from microorganisms, more preferably from algae, more preferably from microalgae, even more preferably from algae of the genus Chlamydomonas, Chlorella, Phaeodactylum, or Nannochloropsis, and particularly preferably from algae of the genus Chlamydomonas.

[0046] The method for preparing the oil droplets is not particularly limited, and known methods can be used. For example, plant fragments can be crushed in a buffer solution, filtered, and centrifuged to recover the fat pad. The fat pad may also be washed if necessary. Then, the oil droplets can be separated from the fat pad by centrifugation. For centrifugal separation, for example, a process of 15,000 to 20,000 × g for 15 to 60 minutes would suffice. Furthermore, the processing temperature for the centrifugal separation process is preferably 0 to 10°C, more preferably 2 to 8°C, and particularly preferably 4°C. Avocado-derived oil droplets can be prepared, for example, by the method described in publication WO2021 / 010101.

[0047] In this specification, the endoplasmic reticulum (microsome) is a reticular membrane system with filamentous or reticular structures present within a cell, and also includes membrane vesicles that are formed when the endoplasmic reticulum is broken off during cell lysis.

[0048] The origin of the endoplasmic reticulum (microsome) is not particularly limited; it may be of microbial origin, animal origin, or plant origin.

[0049] The method for preparing the endoplasmic reticulum (microsomes) is not particularly limited, and known methods can be used. For example, one method involves disrupting cells by sonication or French press, then recovering and preparing the microsomes by centrifugation such as density gradient centrifugation.

[0050] The origin of the rubber particles is not particularly limited; for example, they may be derived from the latex of rubber-producing plants such as rubber tree, Russian dandelion, guayure, sow thistle, or Indian rubber tree.

[0051] Furthermore, the particle size of the rubber particles is not particularly limited. Particles of a predetermined size may be separated and used, or a mixture containing particles of various sizes may be used. Even when separating and using particles of a predetermined size, the rubber particles used may be small rubber particles (SRP) or large rubber particles (LRP).

[0052] As a method for separating rubber particles of the predetermined particle size, a commonly used method can be employed, such as a centrifugal separation process, more preferably a multi-stage centrifugal separation process. Specifically, a method can be used in the following order: centrifugal separation at 500-1500 × g, centrifugal separation at 1700-2500 × g, centrifugal separation at 7000-9000 × g, centrifugal separation at 15000-25000 × g, and centrifugal separation at 40000-60000 × g. The processing time for each centrifugal separation process is preferably 20 minutes or more, more preferably 30 minutes or more, and even more preferably 40 minutes or more. On the other hand, it is preferably 120 minutes or less, and more preferably 90 minutes or less. The processing temperature for each centrifugal separation process is preferably 0-10°C, more preferably 2-8°C, and particularly preferably 4°C.

[0053] ((Molecular weight 10 under non-lipid membrane binding) 4 Trans-type prenyltransferase (tPT) family proteins capable of producing the above products. Next, under non-lipid membrane conditions, molecular weight 10 4This section describes the trans-prenyltransferase (tPT) family proteins capable of producing the above products. Molecular weight 10 under non-lipid membrane conditions 4 Trans-prenyltransferase (tPT) family proteins capable of producing the above products include those with a molecular weight of 10 under non-lipid membrane conditions. 4 The tPT family protein capable of producing the above products is not particularly limited.

[0054] Molecular weight 10 under non-lipid membrane conditions 4 One embodiment of a tPT family protein capable of producing the above products is a protein having a membrane-binding domain, which, when solubilized, can be dissolved in an aqueous layer unbound to a lipid membrane with a molecular weight of 10 4 This is a protein capable of producing the above-mentioned products. Proteins with membrane-binding domains (membrane proteins) are not normally solubilized in aqueous layers, but they can be solubilized, for example, by deleting the membrane-binding domain from the membrane protein. The solubilized protein then has a molecular weight of 10 in an aqueous layer unbound to a lipid membrane. 4 Any protein capable of producing the above products will suffice.

[0055] Molecular weight 10 under non-lipid membrane conditions 4 Another embodiment of the tPT family protein capable of producing the above products is one that lacks a membrane-binding domain and has a molecular weight of 10 in an aqueous layer unbound to a lipid membrane. 4 This protein is a protein that has been given the ability to bind to lipid membranes by fusing a membrane-binding peptide to a protein capable of producing the above-mentioned products. Proteins without membrane-binding domains have a molecular weight of 10 in an aqueous layer under non-lipid membrane binding. 4 If the above products can be produced, proteins that do not have a membrane-binding domain lack the ability to bind to lipid membranes, and therefore, "proteins that do not have a membrane-binding domain and have a molecular weight of 10 in an aqueous layer under non-lipid membrane conditions" 4 By fusing a membrane-binding peptide to a protein capable of producing the above-mentioned products, the ability to bind to lipid membranes can be conferred.

[0056] As described above, this disclosure relates to a molecular weight of 10 under non-lipid membrane conditions. 4The present invention is characterized by the use of a trans prenyltransferase (tPT) family protein capable of producing the above products. While it is preferable that the tPT family protein originally possesses a membrane-binding peptide, a protein that does not originally possess a membrane-binding peptide but has been genetically engineered to fuse with one may also be used. That is, the tPT family protein has a molecular weight of 10 under non-lipid membrane conditions. 4 The above products can be produced, and the device is not particularly limited as long as it has the ability to bind to lipid membranes, either innately or acquiredly.

[0057] Molecular weight 10 under non-lipid membrane conditions 4 The tPT family protein capable of producing the above products lacks a membrane-binding domain and has a molecular weight of 10 in an aqueous layer unbound to a lipid membrane. 4 The origin of the protein capable of producing the above products is not particularly limited, but it is preferably derived from a plant that produces trans rubber. While there are no particular limitations on the plants that produce trans gum, examples include plants belonging to the genus Manilkara, such as sapodilla (Manilkara zapota), and plants belonging to the genus Eucommia, such as Eucommia ulmoides. Among these, plants belonging to the genus Manilkara are preferred, and Manilkara zapota (sapodilla) is more preferred.

[0058] Molecular weight 10 under non-lipid membrane conditions 4 Specific examples of trans prenyltransferase (tPT) family proteins capable of producing the above products are listed below [1]. [1] A protein consisting of the amino acid sequence represented by Sequence ID No. 4 (the amino acid sequence of tPT2 derived from Sapodilla).

[0059] Furthermore, it is known that proteins may retain their original function even if they contain one or more amino acid substitutions, deletions, insertions, or additions in their original amino acid sequence. Therefore, the following [2] is also a specific example of the tPT family protein. [2] The amino acid sequence represented by Sequence ID No. 4 consists of a sequence containing one or more amino acid substitutions, deletions, insertions, and / or additions, and catalyzes a reaction that extends the chain length of the isoprenoid compound to the trans type, and has a molecular weight of 10 under non-lipid membrane conditions. 4 Proteins capable of producing the above products

[0060] Furthermore, in order to maintain the function of the tPT family protein, it is preferable that the amino acid sequence represented by Sequence ID No. 4 contains substitutions, deletions, insertions, and / or additions of one or more amino acids, more preferably 1 to 95 amino acids, even more preferably 1 to 71 amino acids, even more preferably 1 to 47 amino acids, particularly preferably 1 to 24 amino acids, most preferably 1 to 9 amino acids, and most most preferably 1 to 5 amino acids.

[0061] Examples of amino acid substitutions include conservative substitutions, specifically those within the groups indicated in parentheses below. For example, (glycine, alanine)(valine, isoleucine, leucine)(aspartic acid, glutamic acid)(asparagine, glutamine)(serine, threonine)(lysine, arginine)(phenylalanine, tyrosine).

[0062] Furthermore, it is known that proteins with amino acid sequences highly identical to the original amino acid sequence may also have similar functions. Therefore, the following [3] can also be cited as a specific example of the tPT family protein. [3] Consists of an amino acid sequence having 80% or more sequence identity with the amino acid sequence represented by Sequence ID No. 4, and catalyzes a reaction that extends the chain length of the isoprenoid compound to the trans type, with a molecular weight of 10 under non-lipid membrane conditions. 4 Proteins capable of producing the above products

[0063] Furthermore, in order to maintain the function of the tPT family protein, the sequence identity with the amino acid sequence represented by SEQ ID NO: 4 is preferably 85% or more, more preferably 90% or more, even more preferably 95% or more, particularly preferably 98% or more, and most preferably 99% or more.

[0064] In this specification, sequence identity of amino acid sequences and nucleotide sequences can be determined using the algorithms BLAST [Pro. Natl. Acad. Sci. USA, 90, 5873 (1993)] and FASTA [Methods Enzymol., 183, 63 (1990)] by Karlin and Altschul.

[0065] As a method to confirm that the protein has the aforementioned enzyme activity, for example, a conventionally known method can be used, for example, by using E. coli or the like to introduce the gene encoding the target protein into a transformed organism, expressing the target protein, catalyzing a reaction that extends the chain length of the isoprenoid compound to the trans type, and determining the molecular weight 10 under non-lipid membrane conditions. 4 A method for determining whether or not the above products can be produced is given.

[0066] The genes encoding the aforementioned tPT family proteins are found not only in rubber-producing plants but also in other plants, animals, microorganisms, etc., and naturally, tPT family proteins derived from these sources are not involved in rubber synthesis in their natural state. Nevertheless, in this disclosure, any tPT family protein, regardless of its origin or type, can be bound to a lipid membrane to synthesize trans rubber in the lipid membrane. In other words, regardless of whether the gene encoding the tPT family protein originates from a rubber-producing plant, another organism, or is involved in rubber synthesis in its natural state, in this disclosure, as long as it is a tPT family protein, trans rubber can be synthesized in a lipid membrane. This is strongly suggested by the mechanism already proposed by the disclosers in PCT / JP2016 / 069172 (a mechanism showing that the host in which the cis-prenyltransferase (CPT) family protein is introduced, i.e., the environment under which the CPT family protein is expressed, is more important for rubber synthesis activity than the origin or type of the cis-prenyltransferase (CPT) family protein).

[0067] The tPT family proteins used in this disclosure preferably have a transmembrane domain at the N-terminus to increase their affinity for lipid membranes. If the wild type does not have a transmembrane domain, an artificial transmembrane domain may be fused to the N-terminus of the tPT family protein. The amino acid sequence of the fused transmembrane domain is not particularly limited, but it is preferable that it be the amino acid sequence of a transmembrane domain of a protein that naturally binds to lipid membranes in nature.

[0068] The gene encoding the aforementioned tPT family protein encodes and expresses a tPT family protein with a molecular weight of 10 under non-lipid membrane conditions. 4 The gene is not particularly limited as long as it can produce a tPT family protein capable of generating the above products, but specific examples of such genes include the following [1] or [2]. [1] DNA consisting of the base sequence represented by Sequence ID No. 3 [2] Under stringent conditions, it hybridizes with DNA consisting of a base sequence complementary to the base sequence represented by Sequence ID No. 3, and catalyzes a reaction that extends the chain length of the isoprenoid compound to the trans type, with a molecular weight of 10 under non-lipid membrane conditions. 4 DNA encoding a protein capable of producing the above products

[0069] In this context, "hybridizing" refers to the process of one DNA hybridizing to another DNA having a specific base sequence or a portion of said DNA. Therefore, the base sequence of the DNA having the specific base sequence or a portion of said DNA may be of a length that is useful as a probe for Northern or Southern blot analysis, or as an oligonucleotide primer for PCR (Polymerase Chain Reaction) analysis. Examples of DNA used as a probe include DNA with at least 100 bases, preferably 200 bases, and more preferably 500 bases, but DNA with at least 10 bases, preferably 15 bases, may also be used.

[0070] The methods for DNA hybridization experiments are well known, and can be used to determine hybridization conditions and perform experiments according to numerous other standard textbooks, such as Molecular Cloning, 2nd and 3rd editions (2001), Methods for General and Molecular Bacteriology, ASM Press (1994), and Immunology Methods Manual, Academic Press (Molecular).

[0071] The stringent conditions mentioned above include, for example, incubating a DNA-immobilized filter and probe DNA overnight at 42°C in a solution containing 50% formamide, 5×SSC (750 mM sodium chloride, 75 mM sodium citrate), 50 mM sodium phosphate (pH 7.6), 5× Denhardt's solution, 10% dextran sulfate, and 20 μg / l denatured salmon sperm DNA, followed by washing the filter in a 0.2×SSC solution at approximately 65°C. However, lower stringent conditions can also be used. The stringent conditions can be modified by adjusting the formamide concentration (lower formamide concentration results in lower stringiness), salt concentration, and temperature conditions. Low stringing conditions include, for example, incubation overnight at 37°C in a solution containing 6×SSCE (20×SSCE is 3 mol / l sodium chloride, 0.2 mol / l sodium dihydrogen phosphate, 0.02 mol / l EDTA, pH 7.4), 0.5% SDS, 30% formamide, and 100 μg / l denatured salmon sperm DNA, followed by washing with a 1×SSC, 0.1% SDS solution at 50°C. Even lower stringing conditions include performing hybridization with a high-salt solution (e.g., 5×SSC) under the aforementioned low stringing conditions, followed by washing.

[0072] The various conditions described above can also be set by adding or changing blocking reagents used to suppress the background of the hybridization experiment. Adding the blocking reagents may involve changing the hybridization conditions to suit the desired conditions.

[0073] Examples of DNA that can hybridize under the stringent conditions described above include DNA consisting of a base sequence that, when calculated using programs such as BLAST and FASTA based on the parameters, has at least 80%, preferably 90%, more preferably 95%, even more preferably 98%, and particularly preferably 99% or more sequence identity with the base sequence represented by Sequence ID No. 3.

[0074] As a method for confirming that the DNA that hybridizes with the aforementioned DNA under stringent conditions is DNA that encodes a protein having a predetermined enzyme activity, conventionally known methods can be used. For example, one method involves using E. coli or the like to introduce a gene encoding the target protein into a transformant, expressing the target protein, and then measuring the activity of the target protein using various activity measurement methods to determine whether or not it has function.

[0075] Furthermore, conventionally known methods can be used to identify the amino acid sequence and base sequence of the aforementioned protein. For example, total RNA can be extracted from a growing plant, mRNA can be purified as needed, and cDNA can be synthesized by reverse transcription. Next, degenerate primers can be designed based on the amino acid sequence of a known protein corresponding to the target protein, and RT-PCR can be performed to partially amplify the DNA fragment and partially identify the sequence. Subsequently, methods such as RACE can be used to identify the full-length base sequence and amino acid sequence. RACE (Rapid Amplification of cDNA Ends) is a method in which, when the base sequence of cDNA is partially known, PCR is performed based on the base sequence information of the known region to clone the unknown region up to the end of the cDNA. This method allows for the cloning of the full-length cDNA by PCR without the need to create a cDNA library. Furthermore, it is preferable to prepare the degenerate primer from a plant-derived sequence that has a sequence region with high commonality with the target protein. Furthermore, if the base sequence encoding the protein is known, primers containing a start codon and a stop codon can be designed from the known base sequence, and the full-length base sequence and amino acid sequence can be identified by performing RT-PCR using the synthesized cDNA as a template.

[0076] (((Membrane-bound peptides))) As mentioned above, a protein that does not have a membrane-binding domain has a molecular weight of 10 in an aqueous layer under non-lipid membrane binding. 4 If the above products can be produced, proteins that do not have a membrane-binding domain lack the ability to bind to lipid membranes, and therefore, "proteins that do not have a membrane-binding domain and have a molecular weight of 10 in an aqueous layer under non-lipid membrane conditions" 4 By fusing a membrane-binding peptide to a protein capable of producing the above-mentioned products, the ability to bind to lipid membranes can be conferred.

[0077] The origin of the membrane-bound peptide is the same as the origin of the lipid membrane, including in preferred embodiments. The membrane-bound peptide is preferably of plant origin, more preferably of plant origin belonging to at least one genus selected from the group consisting of the genera Persea, Sesammum, Brassica, and Camellia, even more preferably of plant origin belonging to the genus Persea, and particularly preferably of avocado origin.

[0078] Furthermore, the membrane-bound peptide is preferably derived from microorganisms, more preferably from algae or microalgae, even more preferably from algae of the genus Chlamydomonas, Chlorella, Phaeodactylum, or Nannochloropsis, and particularly preferably from algae of the genus Chlamydomonas. Furthermore, it is preferable that the origin of the lipid membrane used and the origin of the membrane-binding peptide are the same. This ensures that the protein to which the membrane-binding peptide is fused has a suitable ability to bind to the lipid membrane.

[0079] The membrane-binding peptide is not particularly limited as long as it can confer the ability to bind to lipid membranes, but it is preferably a peptide derived from a protein that can bind to lipid membranes, and more preferably a peptide derived from a protein that can bind to lipid membranes and belongs to Class II. Here, the peptide derived from a protein that can bind to lipid membranes only needs to have the ability to bind to lipid membranes, so it may be all or part of the peptide of a protein that can bind to lipid membranes. In addition, the peptide that can bind to lipid membranes is not particularly limited, but it is desirable that it be a peptide of the transmembrane region of a protein that naturally binds to lipid membranes in nature.

[0080] Here, proteins belonging to Class II refer to lipid droplet-binding proteins that possess the ability to bind lipid droplets but also have the characteristic of localizing to the cytosol when lipid droplets are not present in the cell (see Gidda et al., Plant Physiology, April 2016, Vol. 170, pp. 2052-2071). While proteins belonging to Class I are proteins that localize to the ER fraction when lipid droplets are not present, proteins belonging to Class II are capable of moving between the cytosol and lipid droplets.

[0081] Proteins capable of binding to oil droplets and belonging to Class II are not particularly limited, but examples include proteins belonging to the lipid-droplet associated protein (LDAP) / small rubber particle protein (SRPP) family. Among these, proteins belonging to the lipid-droplet associated protein (LDAP) / small rubber particle protein (SRPP) family are preferred.

[0082] Other examples of membrane-bound peptides include, for instance, membrane-binding domains derived from major lipid droplet protein (MLDP).

[0083] Specific examples of genes encoding membrane-bound regions derived from MLDP include the following [1] or [2]. [1] DNA consisting of the base sequence represented by Sequence ID No. 5 (base sequence of Chlamydomonas-derived MLDP) [2] DNA that hybridizes under stringent conditions with DNA consisting of a base sequence complementary to the base sequence represented by Sequence ID No. 5, and encodes a protein that has the ability to bind to lipid membranes.

[0084] In this context, "hybridizing" refers to the process of one DNA hybridizing to another DNA having a specific base sequence or a portion of said DNA. Therefore, the base sequence of the DNA having the specific base sequence or a portion of said DNA may be of a length that is useful as a probe for Northern or Southern blot analysis, or as an oligonucleotide primer for PCR (Polymerase Chain Reaction) analysis. Examples of DNA used as a probe include DNA with at least 100 bases, preferably 200 bases, and more preferably 500 bases, but DNA with at least 10 bases, preferably 15 bases, may also be used.

[0085] The methods for DNA hybridization experiments are well known, and can be used to determine hybridization conditions and perform experiments according to numerous other standard textbooks, such as Molecular Cloning, 2nd and 3rd editions (2001), Methods for General and Molecular Bacteriology, ASM Press (1994), and Immunology Methods Manual, Academic Press (Molecular).

[0086] The stringent conditions mentioned above include, for example, incubating a DNA-immobilized filter and probe DNA overnight at 42°C in a solution containing 50% formamide, 5×SSC (750 mM sodium chloride, 75 mM sodium citrate), 50 mM sodium phosphate (pH 7.6), 5× Denhardt's solution, 10% dextran sulfate, and 20 μg / l denatured salmon sperm DNA, followed by washing the filter in a 0.2×SSC solution at approximately 65°C. However, lower stringent conditions can also be used. The stringent conditions can be modified by adjusting the formamide concentration (lower formamide concentration results in lower stringiness), salt concentration, and temperature conditions. Low stringing conditions include, for example, incubation overnight at 37°C in a solution containing 6×SSCE (20×SSCE is 3 mol / l sodium chloride, 0.2 mol / l sodium dihydrogen phosphate, 0.02 mol / l EDTA, pH 7.4), 0.5% SDS, 30% formamide, and 100 μg / l denatured salmon sperm DNA, followed by washing with a 1×SSC, 0.1% SDS solution at 50°C. Even lower stringing conditions include performing hybridization with a high-salt solution (e.g., 5×SSC) under the aforementioned low stringing conditions, followed by washing.

[0087] The various conditions described above can also be set by adding or changing blocking reagents used to suppress the background of the hybridization experiment. Adding the blocking reagents may involve changing the hybridization conditions to suit the desired conditions.

[0088] Examples of DNA that can hybridize under the stringent conditions described above include DNA consisting of a base sequence that, when calculated using programs such as BLAST and FASTA based on the parameters, has at least 80%, preferably 90%, more preferably 95%, even more preferably 98%, and particularly preferably 99% or more sequence identity with the base sequence represented by Sequence ID No. 5.

[0089] As a method to confirm that the DNA that hybridizes with the aforementioned DNA under stringent conditions is DNA that codes for a protein having a predetermined function, conventionally known methods can be used. For example, one method involves using E. coli or the like to introduce a gene that codes for the target protein into a transformant, expressing the target protein, and confirming whether or not the target protein has function.

[0090] Furthermore, conventionally known methods can be used to identify the amino acid sequence and base sequence of the protein.

[0091] ((Binding process)) In the aforementioned bonding step, under non-bonding conditions of lipid membrane, molecular weight 10 4 As long as the trans-prenyltransferase (tPT) family protein capable of producing the above products is bound to the lipid membrane in vitro, other proteins may also be bound.

[0092] The origin of the other proteins is not particularly limited, but it is preferably derived from the plants mentioned above, more preferably from rubber-producing plants, and even more preferably from plants belonging to at least one genus selected from the group consisting of Hevea, Sonchus, Taraxacum, and Parthenium. In particular, it is even more preferably derived from at least one plant selected from the group consisting of rubber tree, sow thistle, guayule, and Russian dandelion, and especially preferably from rubber tree.

[0093] The aforementioned other proteins are not limited in any way and may be any protein, but from the viewpoint of the rubber synthesis ability of the lipid membrane, it is preferable that they are proteins that are originally present on the lipid membrane in rubber-producing plants. The proteins present on the lipid membrane may be proteins that bind to the surface of the lipid membrane, proteins that bind in a way that they are inserted into the lipid membrane, or proteins that form a complex with the proteins bound to the membrane and are present on the membrane surface.

[0094] Examples of proteins that are naturally present on the lipid membrane within the rubber-producing plant include Nogo-B receptor (NgBR), Rubber Elongation Factor (REF), Small Rubber Particle Protein (SRPP), β-1,3-glucanase, and Hevein.

[0095] The aforementioned binding step is performed in vitro, under conditions where the lipid membrane is not bound, with a molecular weight of 10 4 The means by which the tPT family proteins capable of producing the above products can be bound to a lipid membrane are not particularly limited. For example, one method involves performing protein synthesis in the presence of a cell-free protein synthesis solution containing mRNA encoding the tPT family proteins and a lipid membrane, thereby binding the tPT family proteins to the lipid membrane.

[0096] The aforementioned binding step is preferably a step in which protein synthesis is performed in the presence of a cell-free protein synthesis solution containing mRNA encoding the tPT family protein and a lipid membrane, thereby binding the tPT family protein to the lipid membrane. In other words, it is preferable to obtain a lipid membrane to which tPT family proteins are bound by performing protein synthesis in a cell-free protein synthesis solution containing mRNA encoding tPT family proteins and a lipid membrane in the same location (more specifically, by mixing the cell-free protein synthesis solution containing mRNA encoding tPT family proteins with the lipid membrane).

[0097] Protein synthesis carried out in the presence of a cell-free protein synthesis solution containing mRNA encoding the aforementioned tPT family proteins and a lipid membrane is what is known as cell-free protein synthesis, which enables the synthesis of tPT family proteins carrying biological functions (in their native state). By performing this cell-free protein synthesis in the presence of a lipid membrane, it becomes possible to bind the synthesized tPT family proteins to the lipid membrane in their native state.

[0098] Here, when protein synthesis is performed in the presence of the cell-free protein synthesis solution and the lipid membrane, the binding of tPT family proteins to the lipid membrane means that all or part of the tPT family proteins synthesized by the protein synthesis are incorporated into the lipid membrane or inserted into the membrane structure of the lipid membrane. However, it is not limited to this and also means cases where the proteins are localized on the surface or inside the lipid membrane. Furthermore, as mentioned above, the concept of being bound to the lipid membrane also includes cases where the proteins form a complex with proteins bound to the lipid membrane and exist as a complex on the lipid membrane.

[0099] Each of the mRNAs encoding the aforementioned tPT family proteins is a translation template that can be translated to synthesize tPT family proteins.

[0100] The aforementioned bonding process can be carried out as appropriate by a person skilled in the art. For example, it can be carried out by the methods described in WO2021 / 010101 and WO2018 / 116726.

[0101] The aforementioned binding step is preferably carried out by performing protein synthesis in the presence of a cell-free protein synthesis solution containing mRNA encoding a tPT family protein and a lipid membrane. Specifically, it can be performed by adding the lipid membrane to the cell-free protein synthesis solution at an appropriate time before or after protein synthesis, preferably before protein synthesis. Furthermore, the concentration of the lipid membrane coexisting with the cell-free protein synthesis solution is preferably 5 to 50 g / L. That is, it is preferable to coexist 5 to 50 g of lipid membrane with 1 L of cell-free protein synthesis solution. If the concentration of the lipid membrane coexisting with the cell-free protein synthesis solution is less than 5 g / L, when separation treatment such as ultracentrifugation is performed to recover the lipid membrane to which the synthesized tPT family proteins are bound, a rubber layer may not be formed, making it difficult to recover the lipid membrane to which the synthesized tPT family proteins are bound. On the other hand, if the concentration of the lipid membrane coexisting with the cell-free protein synthesis solution exceeds 50 g / L, the lipid membranes may aggregate with each other, and the synthesized tPT family proteins may not be able to bind to the lipid membrane properly. The concentration of the lipid membrane is more preferably 10 to 40 g / L, even more preferably 15 to 35 g / L, and particularly preferably 15 to 30 g / L.

[0102] Furthermore, during protein synthesis in the presence of the cell-free protein synthesis solution and the lipid membrane, the lipid membrane may be added as appropriate as the reaction progresses. It is preferable to keep the cell-free protein synthesis solution and the lipid membrane together for a period of time while the cell-free protein synthesis system is active, such as 3 to 48 hours (preferably 3 to 30 hours, more preferably 3 to 24 hours) after adding the lipid membrane to the cell-free protein synthesis solution.

[0103] The reaction systems or apparatus for protein synthesis in the aforementioned cell-free protein synthesis include batch methods (Pratt, J. Met al., Transcription and Tranlation, Hames, 179-209, BD & Higgins, S.J., eds, IRL Press, Oxford (1984)), continuous cell-free protein synthesis systems that continuously supply amino acids, energy sources, etc. to the reaction system (Spirin, A. Set al., Science, 242, 1162-1164 (1988)), dialysis methods (Kikawa et al., 21st Annual Meeting of the Molecular Biology Society of Japan, WID6), and multilayer methods (PROTEIOS). TMExamples include the instruction manual for the Wheat germ cell-free protein synthesis core kit (manufactured by TOYOBO). In addition, methods can be used in which template RNA, amino acids, energy sources, etc., are supplied to the protein synthesis reaction system as needed, and synthesized products and degradation products are discharged as needed.

[0104] In particular, while the stratification method has the advantage of being easy to operate, the lipid membrane disperses in the reaction solution, making it difficult to efficiently bind the synthesized tPT family proteins to the lipid membrane. In contrast, with the dialysis method, the amino acids that serve as raw materials for the synthesized tPT family proteins can permeate the dialysis membrane, but not the lipid membrane. Therefore, the dispersion of the lipid membrane can be prevented, and the synthesized tPT family proteins can be efficiently bound to the lipid membrane. For this reason, the dialysis method is preferred.

[0105] The dialysis method described above is a method of performing protein synthesis using a device in which the reaction solution for protein synthesis in the cell-free protein synthesis is used as the dialysis solution and is separated from the extradialysis solution by a dialysis membrane that allows for mass transfer. Specifically, for example, the reaction solution, excluding the translation template, is pre-incubated for an appropriate time as needed, then the translation template is added, and the mixture is placed in a suitable dialysis vessel to become the reaction solution. Examples of dialysis vessels include containers with a dialysis membrane attached to the bottom (such as the Dialysis Cup 12,000 manufactured by Daiichi Chemical Co., Ltd.) and dialysis tubes (such as the 12,000 manufactured by Sanko Pure Chemical Industries, Ltd.). The dialysis membrane used has a molecular weight limit of 10,000 daltons or more, but one with a molecular weight limit of about 12,000 daltons is preferred.

[0106] A buffer solution containing amino acids is used as the extradialysis solution. The dialysis efficiency can be increased by replacing the extradialysis solution with fresh solution when the reaction rate decreases. The reaction temperature and time are appropriately selected depending on the protein synthesis system used, but for example, in a system using wheat germ extract, the reaction can usually be carried out at 10 to 40°C, preferably 18 to 30°C, more preferably 20 to 26°C, for 10 minutes to 48 hours (preferably 10 minutes to 30 hours, more preferably 10 minutes to 24 hours).

[0107] Furthermore, since the mRNA encoding tPT family proteins contained in the cell-free protein synthesis solution is easily degraded, protein synthesis can be made more efficient by adding the mRNA as appropriate during the protein synthesis reaction. In other words, adding the mRNA encoding tPT family proteins during the protein synthesis reaction is also one of the preferred embodiments of this disclosure. Furthermore, there are no particular restrictions on the timing, number of additions, or amount of mRNA added, and these can be set as appropriate.

[0108] In the manufacturing method disclosed herein, after the bonding step, a step to recover the lipid membrane may be performed as needed.

[0109] The lipid membrane recovery step is not particularly limited in its method as long as it can recover the lipid membrane, and can be carried out by a commonly used method for recovering lipid membranes. Specifically, for example, it can be carried out by centrifugation. When recovering the lipid membrane by centrifugation, the centrifugal force, centrifugation processing time, and centrifugation processing temperature can be appropriately set to recover the lipid membrane. For example, the centrifugal force for centrifugation processing is preferably 15,000 × g or more, more preferably 20,000 × g or more, and even more preferably 25,000 × g or more. On the other hand, if the centrifugal force is too large, a corresponding separation effect cannot be expected, so the upper limit of the centrifugal force is preferably 50,000 × g or less, and more preferably 45,000 × g or less. The centrifugation processing time is preferably 20 minutes or more, more preferably 30 minutes or more, and even more preferably 40 minutes or more. On the other hand, if the centrifugation processing time is too long, a corresponding separation effect cannot be expected, so the upper limit of the centrifugation processing time is preferably 120 minutes or less, and more preferably 90 minutes or less. Furthermore, from the viewpoint of maintaining the protein activity of tPT family proteins bound to the lipid membrane, the centrifugation temperature is preferably 0 to 10°C, more preferably 2 to 8°C, and particularly preferably 4°C.

[0110] For example, when cell-free protein synthesis is performed, the centrifugation process separates the lipid membrane into an upper layer and the cell-free protein synthesis solution into a lower layer. Subsequently, by removing the lower layer of cell-free protein synthesis solution, the lipid membrane to which the tPT family proteins are bound can be recovered. The recovered lipid membrane can be stored by resuspending it in a suitable buffer solution with a neutral pH.

[0111] Furthermore, the lipid membrane recovered after the lipid membrane recovery process can be used in the production of trans-type polyisoprenoids without further special processing.

[0112] Furthermore, the trans-type polyisoprenoid obtained by the method for producing the trans-type polyisoprenoid can be recovered by subjecting the lipid membrane to the following solidification step.

[0113] In the solidification step, the method of solidification is not particularly limited, and examples include adding a lipid membrane to a solvent that does not dissolve trans-type polyisoprenoids (trans rubber), such as ethanol, methanol, or acetone, or adding an acid to the lipid membrane. By performing the solidification step, the rubber can be recovered from the lipid membrane as a solid component. The obtained rubber may be dried as needed before use.

[0114] (Manufacturing method for rubber products) The present disclosure is a method for manufacturing rubber products, comprising a kneading step of kneading a trans-type polyisoprenoid obtained by the method for manufacturing trans-type polyisoprenoids according to the present disclosure with an additive to obtain a kneaded product, a raw rubber product molding step of molding a raw rubber product from the kneaded product, and a vulcanization step of vulcanizing the raw rubber product.

[0115] The rubber products are not particularly limited as long as they are rubber products that can be manufactured using rubber (preferably natural rubber), and examples include pneumatic tires, rubber rollers, rubber fenders, gloves, and medical rubber tubing.

[0116] When the rubber product is a pneumatic tire, that is, when the method for manufacturing the rubber product of the present disclosure is the method for manufacturing a pneumatic tire of the present disclosure, the raw rubber product molding step corresponds to a raw tire molding step in which a raw tire is molded from the kneaded mixture, and the vulcanization step corresponds to a vulcanization step in which the raw tire is vulcanized. In other words, the method for manufacturing a pneumatic tire of the present disclosure is a method for manufacturing a pneumatic tire that includes a kneading step in which a trans-type polyisoprenoid obtained by the method for manufacturing the trans-type polyisoprenoid is kneaded with an additive to obtain a kneaded mixture, a raw tire molding step in which a raw tire is molded from the kneaded mixture, and a vulcanization step in which the raw tire is vulcanized.

[0117] <Mixing process> In the kneading process, the trans-type polyisoprenoid obtained by the method for producing the trans-type polyisoprenoid is kneaded with an additive to obtain a kneaded product.

[0118] The additives are not particularly limited, and any additives used in the manufacture of rubber products can be used. For example, in the case of a pneumatic tire, examples of additives include rubber components other than the trans-type polyisoprenoid, reinforcing fillers such as carbon black, silica, calcium carbonate, alumina, clay, and talc, silane coupling agents, zinc oxide, stearic acid, processing aids, various antioxidants, softeners such as oil, vulcanizing agents such as wax and sulfur, and vulcanization accelerators.

[0119] The mixing process can be carried out using rubber mixing equipment such as open roll mixers, Banbury mixers, or closed-type mixers.

[0120] <Raw rubber product molding process (for tires, the raw tire molding process)> In the raw rubber product molding process, raw rubber products (raw tires in the case of tires) are molded from the mixture obtained in the kneading process. The molding method for raw rubber products is not particularly limited, and any method used for molding raw rubber products may be applied as appropriate. For example, if the rubber product is a pneumatic tire, the kneaded material obtained in the kneading process can be extruded to match the shape of each tire component, molded on a tire molding machine using a normal method, and the tire components can be bonded together to form a raw tire (unvulcanized tire).

[0121] <Vulcanization process> In the vulcanization process, rubber products are obtained by vulcanizing the raw rubber products obtained in the raw rubber product molding process. There are no particular limitations on the method for vulcanizing raw rubber products; any method used for vulcanizing raw rubber products may be applied as appropriate. For example, if the rubber product is a pneumatic tire, a pneumatic tire can be obtained by heating and pressurizing the raw tire (unvulcanized tire) obtained in the raw rubber product molding process in a vulcanizing machine.

[0122] (vector) The vector disclosed herein has a molecular weight of 10 under non-binding conditions of a lipid membrane. 4 This vector contains a gene encoding a trans-prenyltransferase (tPT) family protein capable of producing the above products. By introducing such a vector into an organism and performing transformation, the vector contains a molecule with a molecular weight of 10 under non-lipid membrane conditions. 4 A gene encoding a tPT family protein capable of producing the above products is expressed, and in the organism, 10 5 This makes it possible to enzymatically produce trans polyisoprenoids with molecular weights exceeding [a certain value].

[0123] The vectors of this disclosure can be prepared by inserting the nucleotide sequence of a gene encoding the tPT family protein (preferably the promoter nucleotide sequence and the nucleotide sequence of the gene encoding the tPT family protein) into a vector commonly known as a transformation vector using conventionally known methods.

[0124] Examples of vectors that can be used to construct the vectors of this disclosure include pBI-based vectors, binary vectors such as pGA482, pGAH, and pBIG, intermediate plasmids such as pLGV23Neo, pNCAT, and pMON200, and pH35GS containing GATEWAY cassettes.

[0125] Examples of promoters that can be used to construct the vectors of this disclosure include promoters that are commonly used in the field of genetic engineering, such as the CaMV35 promoter and the NOS promoter.

[0126] The vectors of this disclosure may contain other nucleotide sequences, insofar as they contain the nucleotide sequences of the genes encoding the tPT family proteins. Typically, in addition to these nucleotide sequences, vectors contain vector-derived sequences, and further include restriction enzyme recognition sequences, spacer sequences, marker gene sequences, reporter gene sequences, and so on. Furthermore, the vectors of this disclosure may optionally include the base sequence of a gene encoding a coenzyme.

[0127] Examples of the marker genes include drug resistance genes such as kanamycin resistance genes, hygromycin resistance genes, and bleomycin resistance genes. The reporter genes are introduced to confirm the expression site in the plant body and include, for example, luciferase genes, GUS (β-glucuronidase) genes, GFP (green fluorescent protein), and RFP (red fluorescent protein).

[0128] (Transformed organism, method for producing trans polyisoprenoids using the transformed organism) For example, by introducing the vector of this disclosure into cells such as those of plants, a transformed organism (transformed cell) is obtained that is transformed to express the tPT family protein. That is, a transformed organism into which the gene encoding the tPT family protein has been introduced is obtained. In this transformed organism, the expression of the tPT family protein results in 10 5 Trans polyisoprenoids with a molecular weight exceeding a certain threshold can be produced enzymatically. These synthesized trans polyisoprenoids then accumulate within the lipid membranes of cells.

[0129] The host into which the gene encoding the tPT family protein is introduced is not particularly limited as long as it has a lipid membrane, but examples include microorganisms (including algae and microalgae), plants, and animals. Among these, the host is preferably a microorganism or a plant, more preferably a microorganism, and even more preferably a microalga. Generally, the synthesis of trans polyisoprenoids using living organisms is difficult, but by introducing the gene encoding the tPT family protein into the host, the synthesis of trans polyisoprenoids can be easily achieved.

[0130] The aforementioned microorganisms may be either prokaryotes or eukaryotes. Prokaryotes such as those belonging to the genera Escherichia, Bacillus, Synechocystis, and Synechococcus, or eukaryotic microorganisms such as yeasts and filamentous fungi can be used. Among these, Escherichia coli, Bacillus subtilis, Rhodosporidium toruloides, or Mortierella sp. are preferred, with Escherichia coli being more preferred.

[0131] From the standpoint of established genetic modification methods, the aforementioned algae and microalgae are preferably those of the genus Chlamydomonas, Chlorella, Phaeodactylum, or Nannochloropsis, with Nannochloropsis being more preferred. Specific examples of algae belonging to the genus Nannochloropsis include Nannochloropsis occulata, Nannochloropsis gaditana, Nannochloropsis salina, Nannochloropsis oceanica, Nannochloropsis atomus, Nannochloropsis maculata, Nannochloropsis granulata, and Nannochloropsis sp. Among these, Nannochloropsis occulata or Nannochloropsis gaditana are preferred, with Nannochloropsis occulata being more preferred.

[0132] Preferred plants include Arabidopsis thaliana, Brassica napus, Brassica rapa, Cocos nucifera, Elaeis guineensis, Cuphea, Glycine max, Zea mays, Oryza sativa, Helianthus annuus, Cinnamomum camphora, or Jatropha curcas, with Arabidopsis thaliana being more preferred.

[0133] Next, a brief explanation will be given of the method for producing the transformed organism, but such transformed organisms can be produced by conventionally known methods.

[0134] Methods for introducing the vectors of this disclosure into plants (including plant cells such as callus, cultured cells, spheroplasts, and protoplasts) can be any method for introducing DNA into plant cells. Examples include methods using Agrobacterium (Japanese Patent Publication No. 59-140885, Japanese Patent Publication No. 60-70080, International Publication No. 94 / 00977), electroporation (Japanese Patent Publication No. 60-251887), and methods using particle guns (gene guns) (Japanese Patent No. 2606856, Japanese Patent No. 2517813). Furthermore, it is also possible to prepare transformed organisms by introducing the vector of this disclosure into living organisms, parts of living organisms, organs, tissues, cultured cells, spheroplasts, protoplasts, etc., such as microorganisms, yeast, animal cells, and insect cells, by the DNA introduction method described above.

[0135] The transformed organism can be obtained by the methods described above. Here, the transformed organism is not limited in form as long as it contains transformed cells, and may be a single cell, a tissue formed by combining cells, or a transformed organism. Furthermore, the term "transformed organism" is a concept that includes not only the transformed organism obtained by the above method, but also its offspring or clones, and further offspring organisms obtained by subculturing them.

[0136] For example, once transformed plant cells into which the vector of this disclosure has been introduced are obtained, it is possible to obtain offspring or clones from these transformed plant cells through sexual reproduction, asexual reproduction, tissue culture, cell culture, cell fusion, etc. Furthermore, it is possible to obtain reproductive materials (e.g., seeds, fruits, scions, tubers, roots, plants, adventitious buds, adventitious embryos, callus, protoplasts, etc.) from these transformed plant cells or their offspring or clones, and to mass-produce the transformed plants based on these materials.

[0137] Methods for regenerating plants from transformed plant cells (transformed plants) include, for example, the method by Doi et al. for eucalyptus (Japanese Patent Application No. 11-127025), the method by Fujimura et al. for rice (Fujimura et al. (1995), Plant Tissue Culture Lett., vol.2: p74-), the method by Shillito et al. for maize (Shillito et al. (1989), Bio / Technology, vol.7: p581-), the method by Visser et al. for potato (Visser et al. (1989), Theor.Appl.Genet., vol.78: p589-), and the method by Akama et al. for Arabidopsis thaliana (Akama et al. (1992), Plant Cell Rep., vol.12: p7-). Those skilled in the art can regenerate plants from transformed plant cells by referring to these methods.

[0138] In regenerated plants, the expression of a target protein gene can be confirmed using well-known methods. For example, the expression of the target protein can be determined by Western blot analysis.

[0139] One method for obtaining seeds from the aforementioned transgenic plants is to allow the transgenic plants to root in a suitable culture medium, and then transplant the rooted plants into pots filled with moist soil. The plants are then grown under suitable cultivation conditions to eventually form seeds, thereby obtaining the seeds. Another method for obtaining plant bodies from seeds is to sow the seeds derived from the transgenic plants obtained as described above in moist soil and grow them under suitable cultivation conditions to obtain plant bodies.

[0140] In this disclosure, by introducing the vector of this disclosure into cells such as plants, the genes encoding the tPT family proteins contained in the vector are expressed in the cells. 5Trans polyisoprenoids having a molecular weight exceeding 10 can be produced enzymatically. Specifically, by culturing the transformed organism obtained by the above method, callus obtained from transformed plant cells, cells redifferentiated from the callus, etc. in a suitable medium, or by growing the transformed plant redifferentiated from transformed plant cells, plant bodies obtained from seeds obtained from the transformed plant, etc. under suitable cultivation conditions, 10 5 It is possible to produce trans-type polyisoprenoids having a molecular weight exceeding [a certain value].

[0141] (Manufacturing method for rubber products) The present disclosure is a method for manufacturing rubber products, comprising a kneading step of kneading a trans-type polyisoprenoid obtained from the transformed organism with an additive to obtain a kneaded product, a raw rubber product molding step of molding a raw rubber product from the kneaded product, and a vulcanization step of vulcanizing the raw rubber product.

[0142] As a rubber product, it is the same as those mentioned above.

[0143] When the rubber product is a pneumatic tire, that is, when the method for manufacturing the rubber product of this disclosure is the method for manufacturing a pneumatic tire of this disclosure, the raw rubber product molding step corresponds to a raw tire molding step in which a raw tire is molded from the kneaded mixture, and the vulcanization step corresponds to a vulcanization step in which the raw tire is vulcanized. In other words, the method for manufacturing a pneumatic tire of this disclosure is a method for manufacturing a pneumatic tire that includes a kneading step of kneading a trans-type polyisoprenoid obtained from the transformed organism with an additive to obtain a kneaded mixture, a raw tire molding step in which a raw tire is molded from the kneaded mixture, and a vulcanization step in which the raw tire is vulcanized.

[0144] <Mixing process> In the kneading process, the trans-type polyisoprenoid obtained from the transformed organism and the additive are kneaded together to obtain a paste.

[0145] The trans-type polyisoprenoid obtained from the transformed organism is obtained by collecting a lipid membrane from the transformed organism and subjecting the collected lipid membrane to the following solidification step. Furthermore, there are no particular restrictions on the method for collecting the lipid membrane from the transformed organism, and any commonly used method can be employed. For example, a portion of the transformed cell may be cut, the cut tissue may be pulverized, and the lipid membrane may be extracted using an organic solvent.

[0146] <Solidification process> The collected lipid membrane is subjected to a solidification process. The solidification method is not particularly limited and includes methods such as adding the lipid membrane to a solvent that does not dissolve trans-type polyisoprenoids (trans rubber), such as ethanol, methanol, or acetone, or adding an acid to the lipid membrane. By performing the solidification process, rubber can be recovered from the lipid membrane as a solid component. The obtained rubber may be dried as needed before use.

[0147] The additives are not particularly limited, and any additives used in the manufacture of rubber products can be used. For example, in the case of a pneumatic tire, examples of additives include rubber components other than rubber obtained from the latex, reinforcing fillers such as carbon black, silica, calcium carbonate, alumina, clay, and talc, silane coupling agents, zinc oxide, stearic acid, processing aids, various antioxidants, softeners such as oil, vulcanizing agents such as wax and sulfur, and vulcanization accelerators.

[0148] The mixing process can be carried out using rubber mixing equipment such as open roll mixers, Banbury mixers, or closed-type mixers.

[0149] <Raw rubber product molding process (for tires, the raw tire molding process)> The process for molding natural rubber products is the same as described above.

[0150] <Vulcanization process> The vulcanization process is the same as the process described above. [Examples]

[0151] The present disclosure will be described in detail based on examples, but the present disclosure is not limited to these examples.

[0152] (Obtaining the trans-type prenyltransferase gene derived from Sapodilla) To obtain the gene for the trans-type prenyltransferase that synthesizes high molecular weight trans-1,4-polyisoprene, we performed de novo assembly on the transcriptome data of Sapodilla that synthesizes high molecular weight trans-1,4-polyisoprene to create contig sequences. From these, we searched for genes similar to the trans-type prenyltransferase gene from Arabidopsis thaliana and discovered two genes (MztPT1 [SEQ ID NO: 1] and MztPT2 [SEQ ID NO: 3]). To isolate the cDNA of MztPT1 and MztPT2, various tissues of Sapodilla were collected and crushed into a powder using a mortar and pestle in liquid nitrogen. Total RNA was then extracted using NucleoSpin RNA Plant and Fungi (MACHEREY-NAGEL, Duren, Germany). The obtained total RNA was dissolved in 50 μL of DEPC water. To obtain the cDNA of MztPT1, total RNA prepared from the petiole of Sapodilla was reverse transcribed using the PrimeScriptII 1st strand cDNA Synthesis Kit (TaKaRa Bio) as a template. The resulting 1st strand cDNA was then used as a template for PCR using a primer set (3769 Fw:5'-ATGTTATTTTCCAGGGGATTTTC-3' (SEQ ID NO: 7) and 3769 Rv:5'-CTACTTTGCTCTTGTAATGACTCTG-3' (SEQ ID NO: 8)). The PCR products were subjected to electrophoresis using a 0.8% agarose gel, and the agarose gel containing the target band was excised and recovered. This was then purified using the Fast Gene Gel / PCR Extraction Kit (Nippon Genetics) (hereinafter, this procedure will be referred to as gel recovery). Furthermore, since the contig sequence corresponding to MztPT2 was not assembled at the 5' end, cDNA was synthesized using the GeneRacer Kit (Invitrogen) with total RNA prepared from sapodilla leaves as a template. Using this as a template, PCR was performed using a primer set (GeneRacer 5' Primer: 5'-CGACTGGAGCACGAGGACACTGA-3' (SEQ ID NO: 9) and 4033 Rv GSP Race: 5'-CTTGGGGAAAGTGGCCTTATTGCTGAC-3' (SEQ ID NO: 10)) to amplify the unknown 5' region. By performing nested PCR using this as a template, the target sequence was amplified more specifically. The primers used were GeneRacer 5′Nested Primer (5'-GGACACTGACATGGACTGAAGGAGTA-3' (SEQ ID NO: 11)) and 4033 Rv GSP nested Race (5'-CTGCCTCACTAGCCCCTCCAACTATGG-3' (SEQ ID NO: 12)). After determining the sequence of the amplified 5' unknown region, the full-length MztPT2 coding sequence was amplified by performing PCR using the leaf's 1st strand cDNA as a template with a primer set designed based on that sequence information (R4033 SLi XhoI Fw:5'-TCAGGGCGGATATCTCGAGATGGCCTTGAACCTTTTTC-3' (SEQ ID NO: 13) and R4033 SLi KpnI Rv:5'-CTAGTGCGGCCGCGGTACCATTAATATTGACGGTTATTAATGTAATG-3' (SEQ ID NO: 14)) and then recovered on a gel. PCR products containing the full-length coding sequences of MztPT1 and MztPT2 were subjected to dA addition using a 10×A-attachment mix (TOYOBO), and then subcloned into pGEM-T Easy vectors (Clontech) to produce pGEM-MztPT1 and pGEM-MztPT2, respectively. The ChloroP1.1 algorithm (http: / / www.cbs.dtu.dk / services / ChloroP / ) predicted that the N-terminal amino acid positions 1-75 of MztPT1 were the plastid translocation sequence. Therefore, the gene sequence encoding the mutant enzyme MztPT1ΔN, which had this region deleted, was amplified by PCR. The template used was pGEM-MztPT1, and the primer set was MztPT1DN NdepColdISLi Fw(5'-TATCGAAGGTAGGCATATGGAGGAGCAACAGGATC-3'(SEQ ID NO: 15)) and pCold 3769 KpnSLi Rv(5'-CGGATCCCTCGAGGGTACCCTACTTTGCTCTTGTAATGACTCTG-3'(SEQ ID NO: 16)). The amplified gene was recovered from the gel, dA was added, and subcloning was performed into the pGEM-T Easy vector to produce pGEM-MztPT1ΔN. For MztPT2, a sequence optimized to match the codon frequency of E. coli (MztPT2opt) was chemically synthesized. Furthermore, since MztPT2 contained amino acid sequences related to membrane binding at its N-terminus, the gene sequence encoding the mutant MztPT2ΔN (SEQ ID NO: 6), which had amino acid positions 1-158 at the N-terminus deleted, was amplified by PCR. The template used was MztPT2opt, and the primer sets were tPT2opt 159 NdeSLi Fw(5'-CATATCGAAGGTAGGCATATGCTGGCACATGTTATTAGC-3'(SEQ ID NO: 17)) and tPT2opt 159 KpnSLi Rv(5'-CGGATCCCTCGAGGGTACCTTAATACTGGCGGTTATTGATATAATG-3'(SEQ ID NO: 18)). The amplified gene was recovered via gel, dA addition was performed, and pGEM-MztPT2ΔN was constructed by subcloning into a pGEM-T Easy vector.

[0153] (Preparation of a construct for E. coli expression) To clone each gene (MztPT1, MztPT2) into the NdeI-KpnI site of the E. coli expression plasmid pCold I, the respective gene sequences were amplified by PCR. The template used was a pGEM-T Easy vector into which each gene had been introduced. The primer sets used to amplify MztPT1 were pCold 3769 NdeSLi Fw(5'-CATATCGAAGGTAGGCATATGTTATTTTCCAGGGGATTTTC-3'(SEQ ID NO: 19)) and pCold 3769 KpnSLi Rv(5'-CGGATCCCTCGAGGGTACCCTACTTTGCTCTTGTAATGACTCTG-3'(SEQ ID NO: 20)). The primer sets for amplifying MztPT2 are 4033 NdeI Fw(5'-CATATGATGGCCTTGAACCTTTTTC -3'(SEQ ID NO: 21)) and R4033 SLi KpnI Rv(5'-CTAGTGCGGCCGCGGTACCATTAATATTGACGGTTATTAATGTAATG -3'(SEQ ID NO: 22)). Each PCR product, as well as pGEM-MztPT1ΔN and pGEM-MztPT2ΔN, were digested with restriction enzymes NdeI and KpnI, and gene fragments containing each protein-coding sequence were recovered on gels. Similarly, the pCold I vectors were digested with NdeI and KpnI, and after gel recovery, they were concatenated with their respective coding sequence fragments using Ligation High (TOYOBO) to produce pCold I-MztPT1, pCold I-MztPT2, pCold I-MztPT1ΔN, and pCold I-MztPT2ΔN.

[0154] (Expression and purification in E. coli) E. coli BL21 was transformed using each of the prepared constructs (pCold I-MztPT1, pCold I-MztPT2, pCold I-MztPT1ΔN, and pCold I-MztPT2ΔN). The transformed E. coli were cultured, and enzyme expression was induced by adding IPTG. After collecting the cells by centrifugation, the cells were lysed by sonication, and then centrifugation was performed at 4°C, 10000×g, for 10 minutes to collect the soluble and insoluble fractions. The soluble proteins MztPT1ΔN and MztPT2ΔN were obtained using NiTrapHP (Cytiva). 2+ - The soluble fraction was purified by affinity chromatography. The eluted fraction containing the target protein was concentrated by replacing the solution with an imidazole-free buffer (50 mM Tris-Cl (pH 7.5), 2 mM DTT) using a centrifugal ultrafiltration filter Amicon Ultra (Merck).

[0155] The purified MztPT1ΔN was subjected to activity testing using the following reaction solution. After reacting at 30°C for 2 hours, the product was extracted with butanol, followed by toluene / hexane extraction. [Table 1]

[0156] The purified MztPT2ΔN was subjected to activity testing using the following reaction solution. After reacting at 30°C for 16 hours, the product was extracted with butanol, followed by toluene / hexane extraction. [Table 2]

[0157] After the reaction, the reaction was stopped by adding 200 μL of saturated saline solution and stirring. 1 mL of saturated n-butanol was added to saturated saline solution and stirred by vortex for 1 minute. After centrifugation at 15,000 rpm at room temperature for 1 minute, the upper butanol layer was collected to obtain a polyisoprenoid [C] of a degree of polymerization universally found in common organisms. 120 (Molecular weight 1.81×10 3 A molecular weight of approximately 3 × 10 was extracted. 3Polyisoprenoids up to a certain level can be extracted. Subsequently, 500 μL of toluene / hexane (1:1, vol / vol) was added to the aqueous layer, stirred with a vortex mixer for 5 minutes, and then centrifuged at 15,000 rpm at room temperature for 1 minute. The upper layer (toluene / hexane layer) was collected to extract further high molecular weight polyisoprenoid products. This toluene / hexane extraction was performed twice, extracting a total of 1 mL of the toluene / hexane layer. 50 μL of both extracts were added to 3 mL of ClearZol, and the radioactivity was measured using a liquid scintillation counter (LD 6500, BECKMAN COULTER). The background value was subtracted from the measured value, and the total count was calculated by multiplying by 20 since 50 μL of 1 mL was measured.

[0158] (Confirmation of molecular weight of the product) To analyze the degree of polymerization of the reactant (polyprenyl diphosphate) contained in the butanol extract by reverse-phase TLC, it was converted to polyprenyl alcohol by acid phosphatase treatment. 500 μL of ultrapure water was added to the butanol extract, and after centrifugation at 15,000 rpm at room temperature for 1 minute, the upper butanol layer was collected in a separate tube. Butanol was removed by distillation using a centrifugal evaporator, and the reaction product was concentrated to 200 μL. The concentrated reaction product was reacted at 37°C for 18 hours with the reaction composition shown below, which includes acid phosphatase (Sigma). [Table 3]

[0159] After the reaction, 120 μL of 5 M NaOH was added to the reaction solution, and the mixture was incubated at 37 °C for 30 minutes. To extract the resulting polyprenyl alcohol, 700 μL of pentane was added and the mixture was stirred by vortexing. After centrifugation at 15,000 rpm at room temperature for 1 minute, the upper pentane layer was recovered. The pentane layer was washed with 500 μL of saturated saline, and after recovering the pentane layer, the pentane layer was washed with 500 μL of ultrapure water and the pentane layer was recovered. After completely evaporating the pentane using a centrifugal evaporator, it was redissolved in 50 μL of pentane and developed on a TLC plate (HPTLC silica gel 60, RP-18, MERCK). The developing solvent was acetone:water = 39:1 (v / v). At that time, polyprenyl alcohol standards with carbon numbers 55, 60, 85, and 90 were also developed simultaneously. After development, after visualizing the positions of the standards by iodine staining, 14 the positions were marked with ink containing a C-labeled radioactive substance. After contacting the TLC plate covered with a plastic film and the imaging plate to expose it to light, signal detection was performed using a fluorine imaging analyzer FLA2000 (Fuji film). The molecular weight of the product extracted with toluene / hexane was confirmed by GPC. The measurement conditions for GPC were performed under the conditions described below.

[0160] (Activity measurement results) Since most of the MztPT1 expressed in Escherichia coli was fractionated into the insoluble fraction, as a result of activity measurement using that fraction, the product was extracted into the butanol extraction layer in MztPT1, and as a result of reverse-phase TLC, C 55 -C 60 (Molecular weight approximately 700 - 800) was confirmed to be the product. Similarly, in purified MztPT1ΔN, the product was extracted into the butanol extraction layer, and as shown in Figure 3, as a result of reverse-phase TLC, C 55 -C 60 (Molecular weight approximately 700 - 800) was confirmed to be the product. On the other hand, the activity of MztPT2 was not confirmed. Also, in purified MztPT2ΔN, as shown in Figure 4, the product was extracted into the toluene / hexane extraction layer, and as a result of GPC analysis, the molecular weight of the product was 10 4It is approximately such that the molecular weight is 10 under non-lipid membrane conditions. 4 It was found that the above products could be generated. The GPC measurement conditions were as described below.

[0161] These results suggest that MztPT1 has a molecular weight of 10 when not bound to a lipid membrane. 4 Products with a molecular weight of less than 10 showed no activity under non-lipid membrane conditions, and MztPT2ΔN showed no activity under non-lipid membrane conditions. 4 It was found that the above products could be synthesized.

[0162] (Example 1) (Obtaining the gene encoding the MLDP membrane-bound peptide) To fuse membrane-bound peptides to MztPT2ΔN, we obtained membrane-binding regions derived from major lipid droplet protein (MLDP).

[0163] (Obtaining total RNA from Chlamydomonas) RNA extraction was performed using RNAiso (TaKaRa BIO) from Chlamydomonas sta6 strain (CC-4348, sta6-1 mt+) obtained from the Chlamydomonas Resource Center. Chlamydomonas cells stored at -80°C were mixed with 1 mL of RNAiso Plus for 5 minutes, then centrifuged at 12,000 × g for 3 minutes at 4°C. After collecting the supernatant, 200 μL of chloroform was added and mixed by vortexing. After standing at room temperature for 5 minutes, the mixture was centrifuged at 12,000 × g for 15 minutes at 4°C. The aqueous layer was collected, and 500 μL of isopropanol was added and mixed by vortexing. After standing at room temperature for 10 minutes, the mixture was centrifuged at 12,000 × g for 15 minutes at 4°C to precipitate the RNA, and the upper layer was discarded. The pellets were washed with 750 μL of 75% ethanol, centrifuged at 12,000 × g for 5 minutes at 4°C to remove the upper layer, and then allowed to stand at room temperature for 5 minutes to dry. Finally, they were dissolved in 50 μL of DEPC-treated water. To remove contaminating genomic DNA from the extracted total RNA, DNase treatment was performed. DNase I recombinant and RNase-free (Roche) were used for the DNase treatment. The following reaction mixtures were prepared and incubated at 37°C for 30 minutes. After the reaction, 350 μL of DEPC-treated water and 400 μL of phenol were added and mixed, and the mixture was centrifuged at 15,000 rpm at room temperature for 15 minutes. The upper layer was collected, 30 μL of 3M NaOAc and 660 μL of ethanol were added and mixed, and the mixture was allowed to stand at -30°C for 1 hour. The mixture was centrifuged at 4°C and 15,000 rpm for 15 minutes to precipitate the RNA, and the upper layer was discarded. 700 μL of 70% ethanol was added to wash the pellet, and the upper layer was removed by centrifuging at 12,000 × g at 4°C for 5 minutes. The mixture was then allowed to stand at room temperature for 5 minutes and dried. The obtained precipitate was dissolved in 50 μL of DEPC-treated water.

[0164] (Obtaining MLDP cDNA derived from Chlamydomonas) The cDNA of Chlamydomonas MLDP (Accetion no. PNW79191.1) was synthesized using Chlamydomonas total RNA with Fast Gene Scriptase II (NIPPON Genetics EUROPE) as a template. This cDNA was amplified by PCR using primers MLDP 1 EcoRV Fw (5'-AGTCAGATATCTCATGGCCGAGTCTGCTG-3' (SEQ ID NO. 23)) and MLDP noend 765 BamHI Rv (5'-TGACTGGATCCTCGGGGCCGGGTTGCAC-3' (SEQ ID NO. 24)). The resulting Chlamydomonas-derived MLDP sequence is shown in SEQ ID NO. 5. The amplified gene was gel-collected, dA addition was performed, and pGEM-MLDP was constructed by subcloning into a pGEM-T Easy vector.

[0165] (Construction of a vector into which a gene fused with MLDP and a linker sequence has been introduced) To express a fusion protein in which MLDP and MztPT2ΔN are linked by a 24-amino acid linker sequence (N-terminus-TGNSADGGGGSGGSGGSGGGSTQG-C-terminus (SEQ ID NO: 25)) in a cell-free translation system, we first introduced the gene containing the fusion of MLDP and the linker sequence into the restriction enzyme site of pEU-E01-His-TEV-MCS-N2 (CellFree Science, Matsuyama, Japan) (hereinafter referred to as pEU-N2). The MLDP sequence was amplified by PCR using pGEM-MLDP as a template, with primer sets (MLDP-linker EcoRV 1 Fw:5'-AGTCAGATATCTCATGGCCGAGTCTGCTGGAAAG-3' (SEQ ID NO: 26) and MLDP+Linker MLDP 765 Rv:5'-CCGTCAGCGGAATTACCGGTGGGGCCGGGTTGCACG-3' (SEQ ID NO: 27)). Next, the linker sequence was amplified by PCR using pGFP-L4HPB containing the linker sequence as a template, with primer sets (MLDP+Linker Linker 1 Fw:5'-CGTGCAACCCGGCCCCACCGGTAATTCCGCTGACGG-3' (SEQ ID NO: 28) and MLDP-linker 837 BamHI Rv:5'-TGACTGGATCCGACCCTTGGGTCGATCCTCC-3' (SEQ ID NO: 29)). Using a solution of these two PCR products as a template, PCR was performed using a primer set (MLDP-linker EcoRV 1 Fw:5'-AGTCAGATATCTCATGGCCGAGTCTGCTGGAAAG-3' (SEQ ID NO: 30) and MLDP-linker 837 BamHI Rv:5'-TGACTGGATCCGACCCTTGGGTCGATCCTCC-3' (SEQ ID NO: 31)) to create a gene fusing the coding sequences of MLDP and the linker. This fusion gene was digested with restriction enzymes EcoRV and BamHI, and the resulting gel-recovered fragment was mixed with pEU-N2, which had also been digested with the same restriction enzyme set and recovered on a gel. The fragments were then ligated using Ligation High to create the pEU-N2-MLDP-linker.

[0166] (Construction of a vector introduced with MLDP-fused MztPT2ΔN) To introduce the gene encoding the protein (MLDP-MztPT2ΔN) in which MLDP, linker, and MztPT2ΔN are fused in this order from the N-terminal side to the C-terminal side into pEU-N2, using pGEM-Mztpt2ΔN as a template, the Mztpt2ΔN gene was amplified by PCR using the primer set (MztPT2 159 SmaI Fw: 5’-AGTCACCCGGGCTAGCCCATGTAATCAGCAACATCAAG-3’ (SEQ ID NO: 32), and MztPT2 1422 NotI Rv: 5’-TGACTGCGGCCGCGTTAATATTGACGGTTATTAATGTAATGAG-3’ (SEQ ID NO: 33)). After purifying this, the fragment digested with restriction enzymes SmaI and NotI and gel-extracted was mixed with pEU-N2―MLDP-linker digested with the same set of restriction enzymes and gel-extracted, and pEU-N2―MLDP-MztPT2ΔN was prepared by ligating using Ligation High.

[0167] (Obtaining Chlamydomonas-derived oil droplets) (Culturing Chlamydomonas) The Chlamydomonas sta6 strain (CC-4348, sta6-1 mt+), and its parental strain, the cw15 strain (CC-4349, cw15 mt+), were obtained from the Chlamydomonas Resource Center. The liquid culture of Chlamydomonas was carried out by swirling culture at 120 rpm under continuous light irradiation at 22 °C and a photon flux density of 100 μmol m -2 s ―1 The medium used was TAP liquid medium, and subculture was performed every week. In order to purify the oil droplets (LD) used in the cell-free translation system, it is necessary to grow under nitrogen-deficient conditions. In that case, 5 mL of the culture solution liquid-cultured for 7 days in the above liquid medium was added to 95 mL of the following HSM liquid medium, and the photon flux density was 30 μmol m -2 s ―1The cells were cultured at 120 rpm and 22°C. After 2-3 days, 2 μL of the sample was placed in a hemocytometer (Sunlead glass) and observed using a BX40 (OLYMPUS) microscope to calculate the cell density. The density was 2.6 (±1.2) × 10⁻⁶. 6 When the cell count reached 1 / mL, Chlamydomonas cells were collected by centrifugation at 2,000×g for 5 minutes. Subsequently, the cells were resuspended in 100 mL of HSM (N-free) medium and cultured again. Two days later, 1.3 mL of 1.5 M KOAc was added, and the cells were cultured for another 2 days. The culture medium was collected, removed by centrifugation at 2,000×g for 5 minutes, flash-frozen in liquid nitrogen, and then stored at -80°C.

[0168] [Table 4]

[0169] (Preparation of oil droplets derived from Chlamydomonas) Chlamydomonas cells cultured in 5 mL of Buffer A were suspended and allowed to stand for 5 minutes. Then, 30 mL of Buffer B was added, and the mixture was centrifuged at 20,000 × g at 4 °C for 30 minutes. The uppermost layer containing LD (oil droplets) was collected with a pipette, 3 mL of Buffer B was added and the mixture was suspended. After centrifuging at 1,000 × g at 4 °C for 10 minutes, the lower layer of solution was collected using a syringe to separate and remove the neutral lipid layer, which mainly consisted of broken LD. The collected lower suspension was centrifuged at 20,000 × g at 4 °C for 30 minutes to remove the aqueous phase. Then, 60 μL of TD Buffer [0.1 M Tris-Cl (pH 7.5), 5 mM DTT] was added to the LD layer remaining in the tube and the mixture was resuspended. To determine the amount of LD to be added to the cell-free expression system, the protein concentration of the LD suspension was measured using the Bradford method with an absorbance microplate reader (SpectraMax ABS Plus, Molecular Devices). Furthermore, the recovered LDs were observed using a BX40 (OLYMPUS) fluorescence microscope to confirm their identity. [Table 5]

[0170] (Cell-free expression) (MRNA synthesis and extraction for cell-free expression) mRNA was synthesized from the prepared construct using the WEPRO7240H Expression Kit (CellFree Sciences, Matsuyama, Japan). The reaction was carried out at 37°C for 3 hours with the following composition. After the reaction, ethanol precipitation was performed, and the resulting pellet was dissolved in 25 μL of 1× DB Buffer. The recovered mRNA was stored at -80°C. [Table 6]

[0171] (Introduction of proteins onto oil droplets using a cell-free translation system) To introduce foreign proteins into the LD while coupling with translation and folding in a cell-free translation system, the translation reaction was performed using the wheat germ-derived cell-free protein expression kit WEPRO7240H Expression Kit (CellFree Sciences). An mRNA premix was prepared by adding 15 μL of 1× DB Buffer to 7.5 μL of the prepared mRNA. Subsequently, a translation reaction solution was prepared with the following composition. [Table 7]

[0172] 650 μL of sterile ultrapure water was added to a plastic tube (PP container, 4.5 mL, 5-094-02, AS ONE). A dialysis cup (MWCO12000, Cosmo Bio Co., Ltd.) was placed inside, ensuring no air entered the dialysis membrane, and allowed to stand for at least 10 minutes. After that, the sterile ultrapure water in the tube was discarded, 650 μL of 1× DB Buffer was added as the external solution, and 50 μL of the translation reaction solution prepared in the dialysis cup was added as the internal solution. The dialysis cup was then placed back into the plastic tube, ensuring no air entered the dialysis membrane, the cup was covered with Parafilm, and the reaction was carried out at 26°C for 5 hours. After the reaction, the external solution was replaced with fresh 1× DB Buffer, 5 μL of mRNA Premix was added to the internal solution, and the reaction was carried out for a further 13 hours. After the reaction was complete, the reaction solution was collected, 50 μL of which was transferred to a 1.5 mL tube, 50 μL of TD Buffer (+ 20% glycerol (w / v)) was added, and the mixture was centrifuged at 20,000 × g at 4°C for 30 minutes. Of the resulting LD fraction, soluble fraction, and precipitate fraction, the LD fraction was transferred together with the soluble fraction to a new tube and centrifuged again at 20,000 × g at 4°C for 30 minutes. From the centrifuged solution, the aqueous layer was withdrawn using a syringe (injection needle, NN-2719S; 1 mL tuberculin syringe, SS-01T, Terumo, Tokyo, Jaqpna) and collected in a separate tube (this was the soluble fraction). 100 μL of TD Buffer (+ 10% glycerol (w / v)) was added to the LD layer remaining in the tube, and the mixture was centrifuged again at 20,000 × g at 4°C for 30 minutes (washing step). The aqueous layer was withdrawn using a syringe and resuspended in 100 μL of TD Buffer containing a protease inhibitor cocktail (cOmplete mini EDTA-free Protease Inhibitor Cocktail Tablets, Roche) to obtain the purified LD fraction. Additionally, 100 μL of TD Buffer was added to the tube from which the LD and aqueous layers had been initially removed (containing the precipitate fraction), and the mixture was resuspended to obtain the precipitate fraction.

[0173] (Enzyme activity measurement) To measure the prenyltransferase activity of purified LD suspensions, which had been introduced with foreign proteins in a cell-free translation system, the following reaction compositions were used, and the mixtures were shaken in a bath at 30°C for 18 hours. However, to ensure a consistent amount of purified LD used in the assay, a 2 μg protein-containing LD suspension was added to the reaction system. Additionally, to measure the background of prenyltransferase activity, samples were prepared with ultrapure water instead of the purified LD solution and shaken in the same manner. [Table 8]

[0174] After the reaction, the reaction was stopped by adding 200 μL of saturated saline solution and stirring. 1 mL of saturated n-butanol was added to saturated saline solution and stirred by vortex for 1 minute. After centrifugation at 15,000 rpm at room temperature for 1 minute, the upper butanol layer was collected to obtain a polyisoprenoid [C] of a degree of polymerization universally found in common organisms. 120 (Molecular weight 1.81×10 3 A molecular weight of approximately 3 × 10 was extracted. 3 Polyisoprenoids up to a certain level can be extracted. Subsequently, 500 μL of toluene / hexane (1:1, vol / vol) was added to the aqueous layer, stirred with a vortex mixer for 5 minutes, and then centrifuged at 15,000 rpm at room temperature for 1 minute. The upper layer (toluene / hexane layer) was collected to extract further high molecular weight polyisoprenoid products. This toluene / hexane extraction was performed twice, extracting a total of 1 mL of toluene / hexane layer. 50 μL of both extracts were added to 3 mL of ClearZol, and the radioactivity was measured using a liquid scintillation counter (LD 6500, BECKMAN COULTER). The total count of the extract was calculated by subtracting the background value from the measured value and multiplying by 20 (since 50 μL of 1 mL was measured).

[0175] (Confirmation of product chain length by gel permeation chromatography (GPC)) The extracted toluene / hexane extract was desoldered using an evaporator, and 190 μL of tetrahydrofuran (THF) was added. The mixture was passed through a filter unit connected to a syringe (MS PTFE Syringe Filter, Pore Size: 0.45 μm, Membrane Solutions) and transferred to a light-shielding bottle to remove aggregates and other contaminants. Of this, 50 μL was separated and analyzed using GPC-8020 (TOSOH). The analytical conditions were as follows: Column configuration: Guard column TSKguardcolumn MP (XL) (manufactured by TOSOH Corporation) Solvent column TSKgel Multipore HXL-M (manufactured by TOSOH Corporation) (2-column linked) Measurement temperature: 40℃ Elution solvent: THF (tetrahydrofuran) Flow rate: 0.8mL / min Detection: Differential refractometer Molecular weight standard: Standard polystyrene For 12 to 30 minutes after injection, THF that leached from the column was collected every 30 seconds. After adding 3 mL of ClearZol to each sample, the radioactivity was measured using a liquid scintillation counter.

[0176] (Comparative Example 1) In Comparative Example 1, the procedure was the same as in Example 1, except that the MztPT2ΔN gene was directly introduced into a cell-free expression vector to create a vector that expresses the gene without fusing it with MLDP. pGEM-MztPT2 was used as a template and amplified by PCR using a primer set (MztPT2 159 SmaI Fw:5'-AGTCACCCGGGCTAGCCCATGTAATCAGCAACATCAAG-3' (SEQ ID NO: 34) and MztPT2 1422 NotI Rv:5'-TGACTGCGGCCGCGTTAATATTGACGGTTATTAATGTAATGAG-3' (SEQ ID NO: 35)). After purification, the resulting fragments were digested with SmaI and NotI and recovered on a gel. These fragments were then mixed with pEU-N2, which had been digested with the same restriction enzyme set and recovered on a gel, and ligated using Ligation High to produce pEU-N2-MztPT2ΔN. For the construction of pEU-N2 with only MLDP introduced, the sequence amplified as described above (obtaining Chlamydomonas-derived MLDP cDNA) was digested with EcoRV and BamHI, the gel was recovered, and then mixed with pEU-N2 digested with the same restriction enzyme set and gel recovered. The mixture was then ligated using Ligation High to produce pEU-N2-MLDP.

[0177] (Activity measurement results) Activity measurements revealed that in Comparative Example 1, no product was extracted from either the butanol extraction layer or the toluene / hexane layer, whereas in Example 1, product-derived counts were detected in the toluene / hexane layer. The molecular weight of the product extracted into this toluene / hexane layer was measured, and in Example 1, as shown in Figure 6, was 10. 5 The formation of trans polyisoprenoids with molecular weights exceeding [amount] was confirmed. In Comparative Example 1 (Figure 5, 3), MztPT2ΔN lacked membrane-binding ability, so it is thought that the enzyme did not bind to the LD and therefore no activity was observed. In Example 1 (Figure 5, 4), it is thought that by fusing the MLDP membrane-binding peptide to MztPT2ΔN, it gained membrane-binding ability, and the enzyme was able to bind to the LD. Furthermore, it was found that binding to the membrane allowed for the synthesis of higher molecular weight products than when the lipid membrane was not bound.

[0178] (Comparative Example 2) Comparative Example 2 was carried out in the same manner as in Example 1, except that the protein fused with the membrane-bound peptide of MLDP was changed from MztPTΔ2 to MztPT1. The MzTPT1 gene was amplified by PCR using pGEM-Mztpt1 as a template and a primer set (MztPT1 1 SmaI Fw:5'-AGTCACCCGGGATGTTATTTTCCAGGGGATTTTCTCGG-3' (SEQ ID NO: 36) and MztPT1 1263 NotI Rv:5'-TGACTGCGGCCGCGCTACTTTGCTCTTGTAATGACTCTG-3' (SEQ ID NO: 37)). After purification, the resulting fragments were digested with restriction enzymes SmaI and NotI and recovered on a gel. These fragments were then mixed with pEU-N2-MLDP-linker, which had been digested with the same restriction enzyme set and recovered on a gel, and ligated using Ligation High to produce pEU-N2-MLDP-MztPT1.

[0179] (Example 2) In Example 2, the full-length MztPT2 was cloned into a cell-free expression vector, allowing the enzyme to be expressed in a state where it retained the membrane-bound peptide originally present in MztPT2, and the enzyme was then conjugated to the LD. pGEM-MztPT2 was used as a template and amplified by PCR using a primer set (MztPT2 1 SmaI Fw:5'-AGTCACCCGGGATGGCCTTGAACCTTTTTC-3' (SEQ ID NO: 38) and MztPT2 1422 NotI Rv:5'-TGACTGCGGCCGCGTTAATATTGACGGTTATTAATGTAATGAG-3' (SEQ ID NO: 39)). After purification, the resulting fragments were digested with SmaI and NotI and recovered on a gel. These fragments were then mixed with pEU-N2, which had been digested with the same restriction enzyme set and recovered on a gel, and ligated using Ligation High to produce pEU-N2-MztPT2.

[0180] (result) In Comparative Example 2 (Figure 7-3), when MLDP-MztPT1 was bound to LD, activity was only observed in the butanol layer, and no activity was obtained in the toluene / hexane layer. On the other hand, with the full-length MztPT2 (Example 2, Figure 8-3), activity was obtained in the toluene / hexane layer, similar to MztPT2ΔN-MLDP. From this, it can be concluded that under non-lipid membrane conditions, 10 4 Even when tPT, which can only produce products of less than 10, is bound to a membrane, the product does not polymerize. In order to polymerize the product when bound to a membrane, a molecular weight of 10 is required under non-lipid membrane conditions. 4 It was found that the tPT that produces the above products needs to be bound to the membrane. Furthermore, since the same results were obtained with the original membrane-binding domain of MztPT2 as when a membrane-binding peptide derived from MLDP was fused, it was found that the amino acid sequence of the membrane-binding peptide can be any as long as it has membrane-binding ability.

[0181] (Example 3) Example 3 was carried out in the same manner as in Example 1, except that the lipid membrane was changed from Chlamydomonas-derived LD to microsomes contained in a cell-free expression solution derived from wheat germ. In the wheat germ-derived cell-free protein expression system, the reaction solution contains microsomes (membrane vesicles derived from organelle membranes, including the endoplasmic reticulum) derived from wheat germ extract. If the target protein has a membrane-binding domain or a highly hydrophobic domain, it may bind to the microsomal membrane in the reaction system after being expressed in the cell-free translation system. Therefore, MLDP-MztPT2ΔN was expressed using the wheat germ-derived cell-free protein expression kit using the same procedure as the protein introduction system to LD, except that LD was not added to the reaction system. After the translation reaction, the reaction solution was collected, 50 μL was transferred to a 1.5 mL tube, 50 μL of TD Buffer (+ 20% glycerol (w / v)) was added, and the mixture was centrifuged at 20,000 × g at 4°C for 30 minutes. Of the resulting soluble fraction and precipitate fraction, the soluble fraction was transferred to a new tube and further centrifuged at 100,000 × g at 4°C for 30 minutes. The aqueous layer of the centrifugation solution was collected in a separate tube (as the soluble fraction), and 100 μL of TD Buffer (+ 10% glycerol (w / v)) was added to the precipitate fraction remaining in the tube to suspend it, and the mixture was centrifuged at 100,000 × g at 4°C for 30 minutes (washing step). The aqueous layer was removed, and the mixture was suspended in 100 μL of TD Buffer containing a protease inhibitor cocktail (cOmplete mini EDTA-free Protease Inhibitor Cocktail Tablets, Roche), which was then used as the microsomal fraction.

[0182] (result) As shown in Figure 9, in Example 3, the lipid membrane was changed from Chlamydomonas-derived LD to a microsome lipid membrane, but even so, 10 5 The formation of trans-type polyisoprenoids with molecular weights exceeding a certain threshold was confirmed.

[0183] This disclosure (1) provides a molecular weight of 10 under non-binding conditions of a lipid membrane. 4 This invention relates to a method for producing trans polyisoprenoids, which includes a binding step of binding a trans prenyltransferase (tPT) family protein capable of producing the above-mentioned products to a lipid membrane in vitro.

[0184] (2) The present disclosure is that the tPT family protein is a protein having a membrane-binding domain, and by solubilizing it, it has a molecular weight of 10 in an aqueous layer unbound to a lipid membrane. 4 This is a method for producing the trans polyisoprenoid described in (1) of this disclosure, which is a protein capable of producing the above products.

[0185] Disclosure (3) is a method for producing a trans polyisoprenoid according to Disclosure (1) or (2), wherein the tPT family protein is derived from a plant that produces trans rubber.

[0186] The present disclosure (4) is a method for producing the trans polyisoprenoid described in the present disclosure (1) or (2), wherein the tPT family protein is derived from Manilkara zapota (sapodilla).

[0187] This disclosure (5) states that the tPT family protein does not have a membrane-binding domain and has a molecular weight of 10 in an aqueous layer under non-lipid membrane conditions. 4 The method for producing the trans polyisoprenoid described in this disclosure (1) is a protein to which the ability to bind to a lipid membrane is conferred by fusing a membrane-binding peptide to a protein capable of producing the above products.

[0188] This disclosure (6) does not have a membrane-bound region and has a molecular weight of 10 in the aqueous layer under non-bonded lipid membranes. 4 The method for producing the trans polyisoprenoid described in (5) of this disclosure is a method for producing trans polyisoprenoids, wherein the protein capable of producing the above products is derived from a plant that produces trans rubber.

[0189] Disclosure (7) is a method for producing a trans polyisoprenoid according to any one of Disclosures (1) to (6), wherein the binding step is a step of performing protein synthesis by coexisting a cell-free protein synthesis solution containing mRNA encoding the tPT family protein with a lipid membrane, and binding the tPT family protein to the lipid membrane.

[0190] The present disclosure (8) also relates to a method for manufacturing a pneumatic tire, which includes a kneading step of kneading a trans-type polyisoprenoid obtained by the method for producing a trans-type polyisoprenoid according to any one of the present disclosures (1) to (7) and an additive to obtain a kneaded product, a green tire molding step of molding a green tire from the kneaded product, and a vulcanization step of vulcanizing the green tire.

[0191] The present disclosure (9) also relates to a method for manufacturing a rubber product, which includes a kneading step of kneading a trans-type polyisoprenoid obtained by the method for producing a trans-type polyisoprenoid according to any one of the present disclosures (1) to (7) and an additive to obtain a kneaded product, a green rubber product molding step of molding a green rubber product from the kneaded product, and a vulcanization step of vulcanizing the green rubber product.

[0192] The present disclosure (10) also relates to a vector containing a gene encoding a trans-type prenyltransferase (tPT) family protein capable of generating a product having a molecular weight of 10 4 or more under non-lipid membrane binding conditions.

[0193] The present disclosure (11) also relates to a transformed organism into which the vector according to the present disclosure (10) has been introduced.

[0194] The present disclosure (12) also relates to a method for producing a trans-type polyisoprenoid using the transformed organism according to the present disclosure (11) to produce a trans-type polyisoprenoid.

[0195] The present disclosure (13) also relates to a method for manufacturing a pneumatic tire, which includes a kneading step of kneading a trans-type polyisoprenoid obtained from the transformed organism according to the present disclosure (11) and an additive to obtain a kneaded product, a green tire molding step of molding a green tire from the kneaded product, and a vulcanization step of vulcanizing the green tire.

[0196] The present disclosure (14) also relates to a method for manufacturing a rubber product, which includes a kneading step of kneading a trans-type polyisoprenoid obtained from the transformed organism described in the present disclosure (11) and an additive to obtain a kneaded product, a raw rubber product molding step of molding a raw rubber product from the kneaded product, and a vulcanization step of vulcanizing the raw rubber product.

[0197] (Sequence Listing Free Text) SEQ ID NO: 1: Nucleotide sequence of the gene encoding tPT1 (MztPT1) derived from Saposilla SEQ ID NO: 2: Amino acid sequence of tPT1 (MztPT1) derived from Saposilla SEQ ID NO: 3: Nucleotide sequence of the gene encoding tPT2 (MztPT2) derived from Saposilla SEQ ID NO: 4: Amino acid sequence of tPT2 (MztPT2) derived from Saposilla SEQ ID NO: 5: Nucleotide sequence of the gene encoding MLDP derived from Chlamydomonas SEQ ID NO: 6: Nucleotide sequence of MztPT2ΔN, which is tPT2 derived from Saposilla lacking the membrane-binding peptide region SEQ ID NO: 7: Primer 1 SEQ ID NO: 8: Primer 2 SEQ ID NO: 9: Primer 3 SEQ ID NO: 10: Primer 4 SEQ ID NO: 11: Primer 5 SEQ ID NO: 12: Primer 6 SEQ ID NO: 13: Primer 7 SEQ ID NO: 14: Primer 8 SEQ ID NO: 15: Primer 9 SEQ ID NO: 16: Primer 10 SEQ ID NO: 17: Primer 11 SEQ ID NO: 18: Primer 12 SEQ ID NO: 19: Primer 13 SEQ ID NO: 20: Primer 14 SEQ ID NO: 21: Primer 15 SEQ ID NO: 22: Primer 16 SEQ ID NO: 23: Primer 17 SEQ ID NO: 24: Primer 18 SEQ ID NO: 25: Primer 19 Sequence ID 26: Primer 20 Sequence ID 27: Primer 21 Sequence ID 28: Primer 22 Sequence ID 29: Primer 23 Sequence ID 30: Primer 24 Sequence ID 31: Primer 25 Sequence ID 32: Primer 26 Sequence ID 33: Primer 27 Sequence ID 34: Primer 28 Sequence ID 35: Primer 29 Sequence ID 36: Primer 30 Sequence ID 37: Primer 31 Sequence ID 38: Primer 32 Sequence ID 39: Primer 33

Claims

1. A method for producing a trans polyisoprenoid, comprising a binding step of binding a trans prenyltransferase (tPT) family protein to a lipid membrane in vitro, A method for producing a trans polyisoprenoid, wherein the tPT family protein is any of the following [1] to [3], or a protein obtained by deleting the membrane-binding domain from any of the following proteins [1] to [3] and fusing it with a membrane-binding peptide. [1] Protein consisting of the amino acid sequence represented by Sequence ID No. 4 [2] The amino acid sequence represented by Sequence ID No. 4 consists of a sequence containing substitutions, deletions, insertions, and / or additions of 1 to 47 amino acids, and catalyzes a reaction that extends the chain length of the isoprenoid compound to the trans type, and when the membrane-binding region is missing, the molecular weight is 10 under non-lipid membrane conditions. 4 Proteins capable of producing the above products [3] The amino acid sequence has 90% or more sequence identity with the amino acid sequence represented by Sequence ID No. 4, and catalyzes a reaction that extends the chain length of the isoprenoid compound to the trans type, and when the membrane binding region is missing, the molecular weight is 10 under non-lipid membrane conditions. 4 Proteins capable of producing the above products

2. A method for producing a trans polyisoprenoid according to claim 1, wherein the tPT family protein is derived from a plant that produces trans rubber.

3. A method for producing a trans polyisoprenoid according to claim 1, wherein the tPT family protein is derived from Manilkara zapota (sapodilla).

4. A method for producing a trans polyisoprenoid according to any one of claims 1 to 3, wherein the binding step is a step of performing protein synthesis by coexisting a cell-free protein synthesis solution containing mRNA encoding the tPT family protein with a lipid membrane, and binding the tPT family protein to the lipid membrane.

5. A method for producing a pneumatic tire, comprising a kneading step of kneading a trans-type polyisoprenoid obtained by the method for producing a trans-type polyisoprenoid according to any one of claims 1 to 4 with an additive to obtain a kneaded product, a green tire molding step of forming a green tire from the kneaded product, and a vulcanization step of vulcanizing the green tire.

6. A method for producing rubber products, comprising a kneading step of kneading a trans-type polyisoprenoid obtained by a method for producing trans-type polyisoprenoid according to any one of claims 1 to 4 with an additive to obtain a kneaded product, a raw rubber product molding step of molding a raw rubber product from the kneaded product, and a vulcanization step of vulcanizing the raw rubber product.

7. comprising a gene encoding a trans-prenyltransferase (tPT) family protein, The vector is a protein in which the tPT family protein is one of the following [1] to [3], or a protein obtained by deleting the membrane-binding domain from one of the following proteins [1] to [3] and fusing it with a membrane-binding peptide. [1] Protein consisting of the amino acid sequence represented by Sequence ID No. 4 [2] The amino acid sequence represented by Sequence ID No. 4 consists of a sequence containing substitutions, deletions, insertions, and / or additions of 1 to 47 amino acids, and catalyzes a reaction that extends the chain length of the isoprenoid compound to the trans type, and when the membrane-binding region is missing, the molecular weight is 10 under non-lipid membrane conditions. 4 Proteins capable of producing the above products [3] The amino acid sequence has 90% or more sequence identity with the amino acid sequence represented by Sequence ID No. 4, and catalyzes a reaction that extends the chain length of the isoprenoid compound to the trans type, and when the membrane binding region is missing, the molecular weight is 10 under non-lipid membrane conditions. 4 Proteins capable of producing the above products

8. A transformed organism into which the vector according to claim 7 has been introduced.

9. A method for producing a trans polyisoprenoid using the transformed organism described in claim 8.

10. A method for producing a pneumatic tire, comprising a kneading step of kneading a trans-type polyisoprenoid obtained from a transformed organism according to claim 8 with an additive to obtain a kneaded product, a green tire molding step of forming a green tire from the kneaded product, and a vulcanization step of vulcanizing the green tire.

11. A method for producing a rubber product, comprising a kneading step of kneading a trans polyisoprenoid obtained from a transformed organism according to claim 8 with an additive to obtain a kneaded product, a raw rubber product molding step of molding a raw rubber product from the kneaded product, and a vulcanization step of vulcanizing the raw rubber product.

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