WO2005054491A1 - 光学活性テトラヒドロチオフェン誘導体の製造方法、および、光学活性テトラヒドロチオフェン-3-オールの晶析方法 - Google Patents
光学活性テトラヒドロチオフェン誘導体の製造方法、および、光学活性テトラヒドロチオフェン-3-オールの晶析方法 Download PDFInfo
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- WO2005054491A1 WO2005054491A1 PCT/JP2004/017837 JP2004017837W WO2005054491A1 WO 2005054491 A1 WO2005054491 A1 WO 2005054491A1 JP 2004017837 W JP2004017837 W JP 2004017837W WO 2005054491 A1 WO2005054491 A1 WO 2005054491A1
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- Prior art keywords
- tetrahydrothiophen
- optically active
- penicillium
- tetrahydrothiophene
- organic solvent
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12P—FERMENTATION OR ENZYME-USING PROCESSES TO SYNTHESISE A DESIRED CHEMICAL COMPOUND OR COMPOSITION OR TO SEPARATE OPTICAL ISOMERS FROM A RACEMIC MIXTURE
- C12P17/00—Preparation of heterocyclic carbon compounds with only O, N, S, Se or Te as ring hetero atoms
- C12P17/16—Preparation of heterocyclic carbon compounds with only O, N, S, Se or Te as ring hetero atoms containing two or more hetero rings
- C12P17/167—Heterorings having sulfur atoms as ring heteroatoms, e.g. vitamin B1, thiamine nucleus and open chain analogs
Definitions
- the present invention provides a method for producing (R) -tetrahydrothiophene_3_ol, which can be used as an intermediate for synthesizing an optically active drug, by biological conversion, and a method for producing optically active tetrahydrothiophen-3-ol. It relates to a crystallization method.
- a first object of the present invention is to solve the problems of the stereoselective reduction method or the optical resolution method described above (for example, the sub-configuration of an optically active substance having a configuration opposite to that of a desired optically active substance).
- Novel production method of optically active tetrahydrothiophen-3-ol from tetrahydrothiophen-3-one by a biotransformation method with little raw material, use of highly toxic compounds, reduced selectivity, etc. It is to provide.
- optical purity of optically active tetrahydrothiophen-3-ol it is desirable to increase the optical purity of optically active tetrahydrothiophen-3-ol in order to use it as a synthetic intermediate of pharmaceuticals.
- a diastereomer salt is formed with an optically active acid or base, and one of them is determined by a difference in their solubility. It is known to preferentially crystallize diastereomeric salts.
- a method using column chromatography for optical isomer separation or a preferential crystallization method using a seed crystal having high optical purity is known.
- tetrahydrothiophen-3-ol is a liquid at room temperature, and it is difficult to improve the optical purity by a normal preferential crystallization method.
- it is difficult to apply a method by diastereomeric salt formation since it has a functional group having a markedly acidic or basic property such as a carboxy group or an amino group.
- the method using optical isomer separation column chromatography is not suitable for industrial production in terms of equipment or cost.
- a second object of the present invention is to provide a method for obtaining tetrahydrothiophen-3-ol having higher optical purity by using optically active tetrahydrothiophen-3-ol as a raw material. It is.
- the present inventors stereoselectively convert the 3-oxo group of tetrahydrothiophen-3-one represented by the following formula (I) from a wide variety of microorganisms.
- a microorganism capable of reducing and converting to optically active (R) -tetrahydrothiophen-3-ol was searched, a microorganism having high selectivity was found, and the first embodiment of the present invention was completed.
- the first aspect of the present invention is as follows.
- a method comprising:
- the strain capable of performing the bioconversion method is Penicillium 'binacem'.
- a second aspect of the present invention is as follows.
- An optically active tetrahydrothiophen-3-ol is crystallized by dropping optically active tetrahydrothiophen-3-ol into an organic solvent having a liquid temperature of 1 ° C. or lower.
- the organic solvent is at least one solvent selected from the group consisting of hexane, heptane, ethyl acetate, butyl acetate, acetone, methyl ketone, ethanol, 2-propanol, and toluene, or a mixed solvent thereof. 4] The method according to any one of [8].
- microorganisms include Penicillium.
- the other microorganisms are stored in a preservation institution assigned to the strain name, and can be easily obtained.
- the preservation institutions are as follows. IAM: Institute of Applied Microorganisms, University of Tokyo, ATCC: American Type Culture Collection, NBRC: Bioresource Division, Biotechnology Division, National Institute of Technology and Evaluation
- Penicillium vinaceum (Penicillium vinaceum) IAM7143 and Streptomyces michiganensis (Streptomyces michiganensis) NBRC12797 are dated November 16, 2004, and Aspergillus' Ocaraseus (Aspergillus ochraceus) ATCC NITE BP-35, NITE BP-36, and NITE BP-36 were registered at the National Institute of Technology and Evaluation Patent Organism Depositary Center (2-5-8 Kisakazu Kazusa Kamatari, Chiba, Japan) as of date. Deposited as 41.
- tetrahydrothiophen-3-one as a starting material can be used as an incubator.
- Base processing is performed. This treatment can be performed at the time of culturing the microorganism, or after culturing, by adding a substrate to the culture solution.
- the cultured cells of the microorganism may be collected and used as they are or after being subjected to pretreatment such as freeze-drying treatment, spray-drying treatment, organic solvent (for example, acetone) treatment, crushing treatment, or the like,
- pretreatment such as freeze-drying treatment, spray-drying treatment, organic solvent (for example, acetone) treatment, crushing treatment, or the like.
- the tetrahydrothiophen-3-one reductase may be roughly purified or purified and then suspended in a buffer, to which a substrate is added, followed by incubation to carry out the reaction.
- the substrate is added to the culture solution before or after a certain period of time after the start of the culture. It may be performed at the time of deviation.
- methanol, ethanol, methyl ethyl ketone, acetone and the like can be added at the same time mainly for the purpose of assisting dissolution of the substrate, but it is needless to say that the present invention is not limited to this.
- the cells can be produced by inoculating the above microorganisms into a nutrient source-containing medium and aerobically culturing the cells.
- the cultivation of microorganisms to prepare such a preparation of cultured cells and the cultivation of microorganisms with a substrate added can be performed in principle according to a general microorganism culturing method. Usually, it is preferably carried out under aerobic conditions such as shaking culture by liquid culture and aeration and agitation culture.
- any synthetic medium, semi-synthetic medium, natural medium and the like can be used as long as these microorganisms can grow.
- a carbon source such as glucose, maltose, xylose, fructose, sucrose, starch, dextrin, glycerin, mannitol, oatmeal, or the like can be used alone or in combination.
- Examples of the nitrogen source include peptone, meat extract, soy flour, casein, amino acids, malt extract, yeast extract, urea, ammonium citrate, ammonium fumarate, and other organic nitrogen sources, sodium nitrate, potassium nitrate, and ammonium sulfate.
- Inorganic nitrogen sources such as ammonium chloride, ammonium hydrogen phosphate, ammonium dihydrogen phosphate and the like can be used alone or in combination.
- salts and vitamins such as sodium salt sodium, potassium salt sodium, calcium carbonate, magnesium sulfate, sodium phosphate, potassium phosphate, and cobalt chloride can be added and used as necessary. When foaming is remarkable during the culture, various known antifoaming agents can be appropriately added to the medium.
- F1 medium potato starch 20 g / L, glucose 10 g / L, soybean powder 20 g / L, potassium dihydrogen phosphate lg / L, magnesium sulfate ⁇ 7 hydrate 0.5 g / L
- C medium potato starch 20 g / L, glucose 20 g / le soy flour 20 g / L, yeast extract 5 g / L, sodium chloride 2.5 g / L, calcium carbonate 3.2 g / L, metal ion mixture 2 ml / L ( Metal ion mixed solution composition: copper sulfate pentahydrate 0.25 g / L, zinc sulfate heptahydrate 0.25 g / L, manganese chloride tetrahydrate 0.25 g / L)).
- Culture conditions can be appropriately selected within a range where the microorganisms can grow well. Usually pH 5.0 10.0, 20-30. C, preferably pH 6.5-8.0, 25 28 ° C, usually Culture for 3 days, preferably about 3 days.
- the various culture conditions described above can be appropriately changed according to the type and characteristics of the microorganism used, external conditions, and the like, and the optimal conditions can be selected.
- the preparation of the cultured cells may be cells isolated by centrifugation or filtration after completion of the culture, or cells subjected to pretreatment such as freeze-drying, spray-drying, organic solvent treatment, and crushing. Is prepared by suspending in a suitable solution.
- the solution that can be used for suspending the cells may be the above-mentioned medium, or a buffer such as Tris-acetic acid, Tris-hydrochloric acid, sodium acetate, sodium citrate, sodium phosphate, or potassium phosphate, alone or in combination. It is a mixture.
- the pH of the buffer is preferably 5.0-9.0, more preferably 7.0-8.5.
- an energy source such as glucose or glycerol
- NAD (P) H or a coenzyme regeneration system when using cultured cells.
- One example of a coenzyme regeneration system is a combination of glucose, glucose dehydrogenase, and NAD (P) + .
- the substrate tetrahydrothiophen-3-one
- a water-soluble organic solvent for example, methanol, ethanol, acetone, dimethylformamide, dimethylsulfoxide, or the like. It can be added to the body suspension.
- the addition amount can be 0.1 to 100 g per liter of the culture solution, and is preferably 110 to 20 g.
- the addition of the substrate may be carried out at once, but if the amount of the sauce is relatively large, it may be carried out several times or continuously.
- the reaction is allowed to proceed for 11 to 13 days, preferably for 1 day, by shaking or aeration and stirring, so that the substrate, tetrahydrothiophene-3 represented by the formula (I), is obtained.
- the -one can be converted to the desired (R) -tetrahydrothiophen-3-ol of formula ( ⁇ ).
- the second aspect of the present invention has two aspects:
- Crystallizing optically active tetrahydrothiophen-3-ol having higher optical purity (hereinafter referred to as “crystallization method I”); and
- the optically active tetrahydrothiophen-3-ol is dropped into an organic solvent at a liquid temperature of 1 ° C or lower, whereby the optically active tetrahydrothiophen-3-ol is crystallized.
- Crystallization method II for highly optically active tetrahydrothiophen-3-ol (hereinafter referred to as “crystallization method II”)
- crystallization of the optically active tetrahydrothiophen-3-ol is performed as follows.
- An optically active tetrahydrothiophen-3-ol as a raw material is mixed with an organic solvent to prepare a mixed solution of the optically active tetrahydrothiophen-3-ol and an organic solvent.
- the optically active tetrahydrothiophene-3-ol having higher optical purity can be obtained. All can be crystallized.
- the optically active tetrahydrothiophen-3-ol as a raw material is added to an organic solvent having a liquid temperature of 1 ° C. or lower, preferably 110 ° C., preferably while stirring the organic solvent.
- an organic solvent having a liquid temperature of 1 ° C. or lower, preferably 110 ° C. By dropping, optically active tetrahydrothiophen-3-ol having higher optical purity can be crystallized.
- the dripping speed and the dripping amount of the raw material are not particularly limited, and can be appropriately set.
- the crystallization method II it is preferable to drop optically active tetrahydrothiophene_3_ol while stirring the organic solvent, and it is more preferable to continue stirring even after dropping.
- the crystallization method ⁇ it is preferable to maintain the solution after the addition of the raw materials at 1 ° C or lower, as in the crystallization method I. preferable.
- optically active tetrahydrothiophene-3 -o which is a raw material used in crystallization methods I and II
- the optical purity of the compound is preferably 75% ee or more, unless it is racemic.
- the optically active tetrahydrothiophen-3-ol having such optical purity can be used in any method produced by any method. For example, those produced by the chemical synthesis, the optical resolution method using an enzyme, or the biological conversion method, specifically, the method of the first embodiment of the present invention can be mentioned. .
- the optically active tetrahydrothiophen-3-ol used in the crystallization methods I and ⁇ can be used in either the R form or the S form.
- the organic solvent used in the crystallization methods I and II may be any organic solvent that is compatible with the optically active tetrahydrothiophen-3-ol at room temperature and does not solidify at the crystallization temperature.
- Preferred organic solvents include hexane, heptane, toluene, acetone, methyl ethyl ketone, ethyl acetate, butyl acetate, ethanol, 2-propanol and the like. Usually, these solvents can be used alone or in combination of two or more.
- a mixed solvent of hexane and ethyl acetate or a mixed solvent of hexane and acetone can be used.
- the crystals of the optically active tetrahydrothiophen-3-ol crystallized in this manner can be separated and collected at a temperature of 1 ° C or lower by ordinary separation and recovery means, for example, filtration, centrifugation and the like. Can be.
- F1 medium potato starch 20 g / reglucose 10 g / L, soybean powder 20 g / L, potassium dihydrogen phosphate lg / L, magnesium sulfate heptahydrate 0.5 g / L
- F1 medium potato starch 20 g / reglucose 10 g / L, soybean powder 20 g / L, potassium dihydrogen phosphate lg / L, magnesium sulfate heptahydrate 0.5 g / L
- the solution was sterilized by high pressure steam at 121 ° C for 20 minutes. This is Aspergillus' Ocaraseus
- ATCC18500 was inoculated and cultured with shaking at 25 ° C for 72 hours. 30 mg of tetrahydrothiophen-3-one was added to the obtained culture, and the mixture was shaken at 25 ° C for 24 hours.
- the absolute configuration was determined by comparison with the specific rotation described in J. Am. Chem. Soc. L08, 2049 (1986).
- the conversion reaction was carried out in the same manner as in Example 1, except that Penicillium vinaceum IAM7143 was used and the amount of substrate added was 50 mg. As a result, the desired product was obtained in an amount of 11 mg (22% yield) and an optical purity of 91% e.e. (R).
- F1 medium (potato starch 20 g, glucose 10 g / L, soybean powder 20 g / L, potassium dihydrogen phosphate lg, magnesium sulfate ⁇ 7 hydrate) sterilized by autoclaving at 121 ° C for 20 minutes
- Example 5 Hexane (6.8 mL) and acetone (2.8 mL) were added to 8 g of (R) -tetrahydrothiophen-3-ol having an optical purity of 87% ee and produced according to Example 4. This was cooled to -15 ° C while stirring. In this state, stirring was continued overnight. The precipitated white crystals were filtered using a Kiriyama funnel ( ⁇ 40 mm, No. 4 filter paper). The filtered crystals gradually became liquid (R) _tetrahydrothiophene_3_ol.
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Claims
Priority Applications (3)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US10/581,366 US20080050787A1 (en) | 2003-12-02 | 2004-12-01 | Method for Manufacturing Optically Active Tetrahydrothiophene Derivative and Method for Crystallization of Optically Active Tetrahydrothiophene-3-Ol |
JP2005515936A JP4394647B2 (ja) | 2003-12-02 | 2004-12-01 | 光学活性テトラヒドロチオフェン誘導体の製造方法、および、光学活性テトラヒドロチオフェン−3−オールの晶析方法 |
EP04819847A EP1712633A1 (en) | 2003-12-02 | 2004-12-01 | Process for producing optically active tetrahydrothiophene derivative and method of crystallizing optically active tetrahydrothiophen-3-ol |
Applications Claiming Priority (4)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP2003-403654 | 2003-12-02 | ||
JP2003403654 | 2003-12-02 | ||
JP2004-017369 | 2004-01-26 | ||
JP2004017369 | 2004-01-26 |
Publications (1)
Publication Number | Publication Date |
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WO2005054491A1 true WO2005054491A1 (ja) | 2005-06-16 |
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Application Number | Title | Priority Date | Filing Date |
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PCT/JP2004/017837 WO2005054491A1 (ja) | 2003-12-02 | 2004-12-01 | 光学活性テトラヒドロチオフェン誘導体の製造方法、および、光学活性テトラヒドロチオフェン-3-オールの晶析方法 |
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Country | Link |
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US (1) | US20080050787A1 (ja) |
EP (1) | EP1712633A1 (ja) |
JP (1) | JP4394647B2 (ja) |
WO (1) | WO2005054491A1 (ja) |
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WO2010025238A2 (en) | 2008-08-27 | 2010-03-04 | Codexis, Inc. | Ketoreductase polypeptides for the production of a 3-aryl-3-hydroxypropanamine from a 3-aryl-3-ketopropanamine |
WO2010025085A2 (en) | 2008-08-29 | 2010-03-04 | Codexis, Inc. | Ketoreductase polypeptides for the stereoselective production of (4s)-3[(5s)-5(4-fluorophenyl)-5-hydroxypentanoyl]-4-phenyl-1,3-oxazolidin-2-one |
US7820421B2 (en) | 2007-02-08 | 2010-10-26 | Codexis, Inc. | Ketoreductases and uses thereof |
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WO2013074650A1 (en) | 2011-11-18 | 2013-05-23 | Codexis, Inc. | Biocatalysts for the preparation of hydroxy substituted carbamates |
WO2014032777A1 (de) | 2012-08-28 | 2014-03-06 | Forschungszentrum Jülich GmbH | Sensor für nadp(h) und entwicklung von alkoholdehydrogenasen |
WO2016130412A1 (en) | 2015-02-10 | 2016-08-18 | Codexis, Inc. | Ketoreductase polypeptides for the synthesis of chiral compounds |
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WO2024150146A1 (en) | 2023-01-12 | 2024-07-18 | Novartis Ag | Engineered ketoreductase polypeptides |
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- 2004-12-01 JP JP2005515936A patent/JP4394647B2/ja not_active Expired - Fee Related
- 2004-12-01 US US10/581,366 patent/US20080050787A1/en not_active Abandoned
- 2004-12-01 WO PCT/JP2004/017837 patent/WO2005054491A1/ja active Application Filing
- 2004-12-01 EP EP04819847A patent/EP1712633A1/en not_active Withdrawn
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JP4394647B2 (ja) | 2010-01-06 |
US20080050787A1 (en) | 2008-02-28 |
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