A sophorolipid-containing composition with excellent handling properties.

A sophorolipid composition with controlled lactone-type and oleic acid-diacetyllactone-type SL proportions and adjusted moisture content addresses handling challenges, enabling easy recovery and low-temperature fluidity, thus improving industrial sophorolipid production efficiency.

JP7842460B2Active Publication Date: 2026-04-08SARAYA CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-08-05
Publication Date
2026-04-08

AI Technical Summary

Technical Problem

Existing methods for producing sophorolipids face challenges in efficiently recovering the product from the culture medium, which can lead to environmental and operational burdens due to the need for solvent extraction or column chromatography, and the product may solidify at low temperatures, increasing energy consumption and complexity.

Method used

A sophorolipid-containing composition is formulated with specific proportions of lactone-type SL, oleic acid-diacetyllactone-type SL, and adjusted moisture content to ensure good settling properties and fluidity at low temperatures, achieved through controlled fermentation conditions and substrate selection.

Benefits of technology

The composition allows for easy handling and recovery by settling, reducing environmental impact and energy consumption, while maintaining fluidity even at -5°C, enhancing operational efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a sophorolipid (SL)-containing composition having excellent handleability, and a production method therefor. An SL-containing composition according to the present invention has the following properties: (A) the content of lacton-type SL: 45-81 mass% per 100 mass% of the total amount of SL; and (B) the content of oleic acid-diacetyl lactone-type SL: at most 95 mass% per 100 mass% of the total amount of lacton-type SL.
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Description

[Technical Field]

[0001] The present invention relates to a sophorolipid-containing composition with excellent handling properties, and a method for producing the same. [Background technology]

[0002] Biosurfactants (hereinafter also referred to as BS), which are surfactants derived from living organisms, are known for their high biodegradability and safety. Sophorolipids (hereinafter also referred to as SL), a type of glycolipid-type BS, are fermentation products obtained from yeast fermentation. SL can be easily produced, for example, by inoculating yeast into a liquid culture medium containing sugars such as glucose and a carbon source such as vegetable oil, and stirring while aerating under mild temperature and pressure conditions. Furthermore, SL is considered suitable for industrial production because of its high productivity compared to other BS (for example, around 100 g / L).

[0003] However, in order to industrially produce fermentation products on a large scale, one challenge is efficiently recovering the target product from the culture obtained after the cultivation is complete. Depending on the cultivation conditions, SL may be produced in a solubilized state in the culture medium. In this case, it is necessary to extract SL from the culture medium using organic solvents or isolate it using column chromatography, etc. (see, for example, Non-Patent Documents 1 and 2, Patent Document 1, etc.), which places a burden on the environment and workers. Furthermore, depending on the cultivation conditions, SL may solidify at low temperatures. It is difficult to remove solidified SL from the culture tank, and it is necessary to add hot water or heat the culture tank. As a result, the energy required for production increases, and the number of work steps increases, increasing the burden on workers.

[0004] Numerous methods for producing SL have been known for some time. For example, Patent Document 2 proposes using a mixture of lipids (vegetable oil) and fatty acids as a hydrophobic substrate in the culture medium to obtain SL in high yield using Candida yeast. Patent Document 3 describes a culture method for producing lactone-type SL with strong antibacterial and antifungal activity, in which the molar ratio of the diacetyllactone type produced is improved by controlling the amount of oxygen supplied to the culture medium, and that by making the molar ratio of the diacetyllactone type 80% or more, SL can be easily obtained as an easy-to-handle solid. [Prior art documents] [Patent Documents]

[0005] [Patent Document 1] Japanese Patent Publication No. 2014-140383 [Patent Document 2] Japanese Patent Publication No. 2002-45195 [Patent Document 3] WO2010 / 050413 [Patent Document 4] Japanese Patent Publication No. 2003-9896 [Non-patent literature]

[0006] [Non-Patent Document 1] DG Cooper and DA Paddock, Appl. Environ. Microbiol., 47, 173-176 (1984) [Non-Patent Document 2] RD Ashby, DKY Solaiman and TA Foglia, Biotechnol. Lett., 30, 1093-1100, 2008 [Overview of the project] [Problems that the invention aims to solve]

[0007] The present invention aims to provide a technology for improving the handling properties of compositions containing SL (hereinafter referred to as "SL-containing compositions"). Specifically, the aim is to provide an SL-containing composition with excellent handling properties and a method for producing the same. Handling properties as used herein include sedimentation and / or fluidity. Specifically, the present invention aims to provide an SL-containing composition that has sedimentation properties and can be easily separated or recovered from the culture by settling in the culture at the end of the culture period, and a method for producing the same. Furthermore, the present invention aims to provide an SL-containing composition that does not solidify at low temperatures (-5°C) and possesses fluidity, and a method for producing the same. [Means for solving the problem]

[0008] The inventors diligently conducted research to solve the aforementioned problems and discovered that an SL-containing composition obtained by culturing SL-producing yeast in a culture medium containing vegetable oil and fatty acids in specific proportions has good settling properties. They also confirmed that the SL-containing composition contains lactone-type SL and oleic acid-diacetyllactone-type SL in predetermined proportions. Furthermore, they confirmed that when the water content of the SL-containing composition is adjusted to 35-70% by mass, it does not solidify at a temperature of -5°C and possesses fluidity under low-temperature conditions. This invention was completed through further research based on these findings, and has the following embodiments.

[0009] (I) Composition containing sophorolipid (SL) (I-1) SL-containing composition having the following characteristics: (A) Lactone-type SL content: 45-81% by mass per 100% by mass of total SL, (B) Content of oleic acid-diacetyllactone type SL: 95% by mass or less per 100% by mass of total lactone type SL. (I-2) The SL-containing composition described in (I-1) having the following characteristics: (C) Hexane extract content: 6% by mass or less on a dry weight basis. (I-3) An SL-containing composition described in (I-1) or (I-2), having the following characteristics: (D) Moisture content: 55% by mass or less. (I-4) An SL-containing composition described in any one of (I-1) to (I-3), characterized by further having at least one of the following characteristics (E) and (F): (E) Content of acid-type SL: 10 to 50% by mass per 100% by mass of the total amount of SL, (F) Content of dimeric SL: 0.1 to 40% by mass per 100% by mass of the total amount of SL. (I-5) An SL-containing composition described in any one of (I-1) to (I-4), wherein the moisture content is adjusted to 50% by mass, and after standing at -5°C for 72 hours, the viscosity of the SL-containing composition at a product temperature of -5°C is 1490 mPa·s or more (TVB-10M type viscometer, measurement time: 1 minute).

[0010] (I-6) An SL-containing composition described in any one of (I-1) to (I-5), having the following characteristics: (A) Content of lactone-type SL: 58 to 81% by mass per 100% by mass of the total amount of SL. (I-7) An SL-containing composition described in (I-6), having the following characteristics: (D) Moisture content: 45% by mass or less. (I-8) An SL-containing composition described in (I-6) or (I-7), characterized by further having at least one of the following characteristics (E) and (F): (E) Content of acid-type SL: 15 to 25% by mass per 100% by mass of the total amount of SL, (F) Content of dimeric SL: 5 to 25% by mass per 100% by mass of the total amount of SL. (I-9) An SL-containing composition described in any one of (I-6) to (I-8), wherein the moisture content is adjusted to 50% by mass, and after standing at -5°C for 72 hours, the viscosity of the SL-containing composition at a product temperature of -5°C is 8180 mPa·s or more (TVB-10M type viscometer, measurement time: 1 minute).

[0011] (II) Method for producing SL-containing composition 1 (II-1) A method for producing an SL-containing composition having the following characteristics (A) to (B) or (A) to (C), (A) Lactone-type SL content: 45-81% by mass per 100% by mass of total SL, (B) Content of oleic acid-diacetyllactone type SL: 95% by mass or less per 100% by mass of total lactone type SL, (C) Hexane extract content: 6% by mass or less on a dry weight basis; The manufacturing method comprises a step of culturing SL-producing yeast in a culture medium containing a hydrophobic substrate and a hydrophilic substrate. The hydrophobic substrate consists solely of fatty acids, or contains fatty acids and vegetable oil with a melting point of 30°C or lower. The total amount of fatty acids contained in the culture medium, or, if it contains vegetable oil with a melting point of 30°C or lower, the ratio of free fatty acids to 100% by mass of the total amount of fatty acids and said vegetable oil is 20% by mass or more, preferably 30% by mass or more. A method for producing the SL-containing composition. (II-2) The manufacturing method described in (II-1), wherein the pH of the culture in the initial stage of cultivation is 4-5. (II-3) The manufacturing method described in (II-2), characterized in that the pH of the culture is not controlled during the culture period. (II-4) During the culture period, the aeration and stirring culture conditions were determined by the amount of oxygen supplied to the culture, and the apparent oxygen transfer capacity coefficient (k L A manufacturing method according to any of (II-1) to (II-3), wherein the amount is set to 145 (l / hr) or more, preferably 200 (l / hr) or more, more preferably 500 (l / hr) or more, and not limited to 1200 (l / hr) or less, when converted to (a). (II-5) A manufacturing method according to any one of (II-1) to (II-4), wherein the SL-containing composition further has at least one of the following properties (E) and (F): (E) Acid-type SL content: 10-50% by mass per 100% by mass of total SL, (F) Content of dimerized SL: 0.1 to 40% by mass per 100% by mass of total SL. (II-6) A manufacturing method according to any one of (II-1) to (II-5), wherein the SL-containing composition is prepared by adjusting the water content to 50% by mass and allowing it to stand for 72 hours under -5°C conditions, after which the viscosity at a temperature of -5°C is 1490 mPa·s or higher (TVB-10M viscometer, measurement time 1 minute).

[0012] (III) Method for producing SL-containing composition 2 (III-1) A method for producing an SL-containing composition having the following characteristics (A) to (B) or (A) to (C), (A) Lactone-type SL content: 45-81% by mass, preferably 55-81% by mass, per 100% by mass of total SL. (B) Content of oleic acid-diacetyllactone type SL: 95% by mass or less per 100% by mass of total lactone type SL, (C) Hexane extract content: 6% by mass or less on a dry weight basis; The manufacturing method comprises a step of culturing SL-producing yeast in a culture medium containing a hydrophobic substrate and a hydrophilic substrate. The hydrophobic substrate is limited to vegetable oils with a melting point of 30°C or lower. A characteristic feature is that the pH of the culture during cultivation is adjusted to 4.5-5. A method for producing the SL-containing composition. (III-2) During the culture period, the aeration and stirring culture conditions were determined by the amount of oxygen supplied to the culture, and the apparent oxygen transfer capacity coefficient (k L The manufacturing method described in (III-1), which is set to 200 (l / hr) or more when converted to (a), and 1200 (l / hr) or less for the unrestricted. (III-3) The manufacturing method described in (III-1) or (III-2), wherein the SL-containing composition further has at least one of the following characteristics (E) and (F): (E) Acid-type SL content: 10 to 50% by mass, preferably 15 to 30% by mass, per 100% by mass of total SL. (F) Content of dimerized SL: 0.1 to 40% by mass, preferably 1 to 30% by mass, per 100% by mass of total SL. (III-4) A manufacturing method according to any one of (III-1) to (III-3), wherein the SL-containing composition is prepared by adjusting the water content to 50% by mass and allowing it to stand for 72 hours under -5°C conditions, and the viscosity at a temperature of -5°C after this period is 1490 mPa·s or higher, preferably 8000 mPa·s or higher (TVB-10M viscometer, measurement time 1 minute).

[0013] (IV) Method for producing SL-containing composition 3 (IV-1) A method for producing an SL-containing composition having the following characteristics (A) to (B) or (A) to (C), (A) Lactone-type SL content: 45-81% by mass, preferably 50-80% by mass, per 100% by mass of total SL. (B) Content of oleic acid-diacetyllactone type SL: 95% by mass or less per 100% by mass of total lactone type SL, (C) Hexane extract content: 6% by mass or less on a dry weight basis; The above-mentioned manufacturing method includes a step of culturing SL-producing yeast in a culture medium containing a hydrophobic substrate and a hydrophilic substrate. The hydrophobic substrate consists solely of vegetable oil with a melting point of 30°C or lower, or contains vegetable oil with a melting point of 30°C or lower and fatty acids. The total amount of vegetable oil with a melting point of 30°C or lower contained in the culture medium, or if fatty acids are included, the proportion of free fatty acids in 100% by mass of the total amount of vegetable oil with a melting point of 30°C or lower and fatty acids, is 0 to less than 20% by mass. The aeration and stirring culture conditions during the culture period are determined by the amount of oxygen supplied to the culture, and the apparent oxygen transfer capacity coefficient (k L A method for producing an SL-containing composition, characterized by setting the concentration to 145 (l / hr) or less when converted to (a). (IV-2) The manufacturing method described in (IV-1), wherein the pH of the culture in the initial stage of cultivation is 4-5. (IV-3) The manufacturing method described in (IV-2), characterized in that the pH of the culture is not controlled during the culture period. (IV-4) The manufacturing method according to any one of (IV-1) to (IV-3), wherein the SL-containing composition further has at least one of the following characteristics (E) and (F): (E) Acid-type SL content: 10 to 50% by mass, preferably 10 to 20% by mass, per 100% by mass of total SL. (F) Content of dimerized SL: 0.1 to 40% by mass, preferably 5 to 30% by mass, per 100% by mass of total SL. (IV-5) A manufacturing method according to any one of (IV-1) to (IV-4), wherein the SL-containing composition is prepared by adjusting the water content to 50% by mass and allowing it to stand for 72 hours under -5°C conditions, and the viscosity at a temperature of -5°C after this period is 1490 mPa·s or higher, preferably 3000 mPa·s or higher (measured for 1 minute using a TVB-10M viscometer). [Effects of the Invention]

[0014] According to the present invention, it is possible to manufacture and provide an SL-containing composition that has good settling properties and is easy to handle. Furthermore, according to the present invention, it is possible to manufacture and provide an SL-containing composition that does not solidify even under low temperature conditions of -5°C and has good fluidity. [Modes for carrying out the invention]

[0015] (I) Composition containing sophorolipid (SL) (1) Sophorolipid (SL) Sophorolipids (SLs) are glycolipids composed of sophorose or sophorose with a partially acetylated or esterified hydroxyl group, and hydroxy fatty acids. Sophorose is a sugar consisting of two glucose molecules linked by a β1→2 bond. Hydroxy fatty acids are fatty acids containing a hydroxyl group. SLs are broadly classified into acidic types, where the carboxyl group of the hydroxy fatty acid is free, and lactone types, where intramolecular sophorose is bonded. SLs obtained by fermentation of certain yeasts (SL-producing yeasts) are usually mixtures of acidic SLs represented by general formula (1) and lactone SLs represented by general formula (2), and are obtained as an aggregate of more than 30 structural homologs, including those with different fatty acid chain lengths (R2), those with acetylated or protonated 6' (R3) and 6'' (R4) positions of sophorose, and those with esterification at one of the 3', 4', 2'', 3'', and 4'' (R5) positions of sophorose.

[0016] [Acid type SL] [ka]

[0017] [In formula (1), R1 represents a hydrogen atom or a methyl group; R3 and R4 may be the same or different, representing a hydrogen atom or an acetyl group; R5 consists entirely of hydrogen atoms, or of the five R5s, one may be a saturated fatty acid residue or an unsaturated fatty acid residue that may have a hydroxyl group, and the rest are hydrogen atoms; R2 is a saturated aliphatic hydrocarbon chain, or an unsaturated aliphatic hydrocarbon chain having at least one double bond, and may have one or more substituents; R6 indicates a hydroxyl group.

[0018] In this specification, acidic SLs in formula (1) above, where all R5 atoms are hydrogen atoms, are referred to as "acidic SLa," and all other acidic SLs are referred to as "acidic SLb." When referring to both collectively without making a distinction, they are referred to as "acidic SL." Note that these acidic SLs are monomers, and may be referred to as "monomer acidic SLs" in contrast to the dimeric SLs described later.

[0019] [Lactone-type SL] [ka]

[0020] [In equation (2), R1 to R4 are the same as defined in equation (1).]

[0021] In this specification, lactone-type SL in formula (2) above, where both R3 and R4 are acetyl groups, is referred to as "diacetyllactone-type SL." When referring to them collectively without particularly distinguishing between the presence or absence of acetyl groups, it is written as "lactone-type SL." This lactone-type SL is a monomer and may be referred to as "monomer lactone-type SL" in contrast to the dimeric type SL described later.

[0022] Furthermore, the SL obtained by fermentation of SL-producing yeast may include a dimer in which, among the acid-type SL represented by formula (1), one R5 is a saturated fatty acid residue that may have a hydroxyl group or an unsaturated fatty acid residue that may have a hydroxyl group, and the R6 at the C-1 position of the acid-type SL represented by formula (3) below combines with any one of the R7s to form a single bond.

[0023] [Dimeric type SL] [ka]

[0024] [In formula (3), R 1’ represents a hydrogen atom or a methyl group; R 3’ and R 4’represents a hydrogen atom or an acetyl group, which may be the same or different; R 2’ is a saturated aliphatic hydrocarbon chain or an unsaturated aliphatic hydrocarbon chain having at least one double bond, and may have one or more substituents; One of R7 combines with R6 of the acid-type SL represented by the formula (1) to form a single bond, and the rest are all hydrogen atoms.

[0025] In the general formulas (1) to (3), the number of carbon atoms of the saturated or unsaturated aliphatic hydrocarbon chain represented by R2 or R 2’ is not limited, but usually 9 to 20, preferably 9 to 18, more preferably 11 to 16, and particularly preferably 14 to 16 can be exemplified. Examples of the saturated aliphatic hydrocarbon chain include linear or branched alkylene groups. A linear alkylene group is preferred. Examples of the unsaturated aliphatic hydrocarbon chain include alkenylene groups having 1 to 3 double bonds. An alkenylene group having 1 to 2 double bonds is preferred, and an alkenylene group having 1 double bond is more preferred. The substituents of the saturated or unsaturated aliphatic hydrocarbon chain represented by R2 or R 2’ are not particularly limited, and examples thereof include a halogen atom, a hydroxyl group, a lower (C 1~6 ) alkyl group, a halo-lower (C 1~6 ) alkyl group, a hydroxy-lower (C 1~6 ) alkyl group, a halo-lower (C 1~6 ) alkoxy group, etc. Here, examples of the halogen atom bonded to the halogen atom, alkyl group or alkoxy group include a fluorine atom, a chlorine atom, a bromine atom and an iodine atom.

[0026] In the general formula (1) above, the saturated fatty acid residue represented by R5 can be a linear fatty acid residue having 12 to 20 carbon atoms (lauric acid residue, myristic acid residue, pentadecyl acid residue, palmitic acid residue, margaric acid residue, stearic acid residue, arachidin residue). Preferably, it is a linear fatty acid residue having 14 to 20 carbon atoms, more preferably 16 to 20 carbon atoms, and even more preferably 16 to 18 carbon atoms, with palmitic acid residue having 16 carbon atoms and stearic acid residue having 18 carbon atoms being particularly preferred. As for unsaturated fatty acid residues, a linear fatty acid residue having 12 to 20 carbon atoms having 1 to 3 double bonds can be mentioned. Preferably, the number of double bonds is 1 to 2, more preferably 1. Also, preferably, the number of carbon atoms is 16 to 20, more preferably 16 to 18, and particularly preferably 18. Suitable unsaturated fatty acid residues include: a 16-carbon palmitoleic acid residue with one double bond; an 18-carbon oleic acid residue or vaccenic acid residue (preferably an oleic acid residue) with one double bond; a 18-carbon linoleic acid residue with two double bonds; a 18-carbon (9,12,15)-linolenic acid residue, a (6,9,12)-linolenic acid residue, and an eleostearic acid residue with three double bonds; a 20-carbon (9,12,15)-linolenic acid residue, a (6,9,12)-linolenic acid residue, and an eleostearic acid residue with two double bonds. More preferably, a 16-carbon palmitoleic acid residue and a 18-carbon oleic acid residue with one double bond are used, and particularly preferably, a 18-carbon oleic acid residue with one double bond is used.

[0027] These fatty acid residues may or may not have hydroxyl groups. If they do have hydroxyl groups, the number of hydroxyl groups can be 1 to 2, preferably 1. The position of the hydroxyl group on the fatty acid residue can be the ω position or the ω-1 position. In acidic SL(1), if R5 is a saturated fatty acid residue that may have a hydroxyl group or an unsaturated fatty acid residue that may have a hydroxyl group, the position of -OR5 may be any of the 3', 4', 2", 3", and 4" positions of the sophorose ring. In other words, acidic SL(1) includes SL compounds in which an -OR5 group having the above-mentioned fatty acid residue R5 is bonded to any one of these positions.

[0028] In the diacetyllactone-type SL compounds of the general formula (2) above, where both R3 and R4 are acetyl groups, there are SL compounds in which R1 is a methyl group and R2 is a C15 alkenylene group having one double bond. Among these SL compounds, compounds in which R2 is a C15 alkenylene group having double bonds at positions 8 and 9 when the carbon atom bonded to R1 is considered position 1 are particularly preferred, and in the present invention, these are referred to as "oleic acid-diacetyllactone-type SL compounds".

[0029] Candida bombicola is a suitable example of the SL-producing yeast. Note that the genus Candida has now been renamed the genus Starmerella. This yeast is a known SL-producing yeast that produces significant amounts of SL [Canadian Journal of Chemistry, 39,846 (1961) (Note: The genus Torlopsis described in this document belongs to the genus Candida, but as mentioned above, it is now classified under the genus Starmerella), Applied and Environmental Microbiology, 47,173 (1984), etc.]. Candida bombicola is registered in the ATCC (American Type Culture Collection), a biological resource bank, and can be obtained from there (e.g., Candida bombicola ATCC22214). Other SL-producing yeasts belonging to the genus Candida (Starmerella) that are known to produce SL can also be used. Examples of SL-producing yeasts include Candida magnoliae, Candida gropengisseri, Candida apicola, Candida petrophilum, Candida bogoriensis, and Candida batistae.

[0030] (2) SL-containing composition The SL-containing composition targeted by the present invention contains at least acidic SL and lactoneic SL from the aforementioned SLs. Preferably, it contains lactoneic SL and oleic acid-diacetyllactone SL in a certain proportion, and more preferably, it contains acidic SL and dimeric SL in a certain proportion. The SL-containing composition targeted by the present invention also contains a water-containing substance in a certain proportion.

[0031] Specifically, the SL-containing compositions of the present invention include compositions having the following characteristics: (A) and (B), and (A) to (C): (A) Lactone-type SL content: 45-81% by mass per 100% by mass of total SL, (B) Content of oleic acid-diacetyllactone type SL: 95% by mass or less per 100% by mass of total lactone type SL, (C) Hexane extract content: 6% by mass or less on a dry weight basis.

[0032] The content of the lactone-type SL is not limited, but is preferably 45 to 78% by mass, more preferably 50 to 78% by mass, per 100% by mass of the total amount of SL.

[0033] Furthermore, while there is no lower limit to the content of the oleic acid-diacetyllactone type SL, 10% by mass per 100% by mass of the total lactone type SL can be cited. The preferred range for this content is 40-95% by mass, more preferably 55-95% by mass.

[0034] The hexane extract content is not limited, but can be said to be 6% by mass or less on a dry weight basis. Preferably, it can be 0 to 5% by mass, and more preferably 0 to 2.2% by mass. The hexane extract content in the SL-containing composition can be determined from the weight of the dry product obtained by extracting from the SL-containing composition with n-hexane under room temperature (20±5℃) conditions. Details will be described in the examples section below.

[0035] The SL-containing compositions of the present invention also include compositions having the following properties: (D) Moisture content: 55% by mass or less. The SL-containing composition of the present invention may be a dry product that does not contain water, or a hydrated product that contains water. Preferably, it is a hydrated product containing water at a ratio of 52% by mass or less. The lower limit of the moisture content is not limited, but 30% by mass can be mentioned. Preferably, it is 35% by mass or more, more preferably 40% by mass or more. The moisture content of the SL-containing composition (hydrated product) is preferably 35 to 55% by mass, more preferably 40 to 55% by mass. The moisture content in the SL-containing composition can be calculated from the weight difference before and after drying the SL-containing composition under conditions of 105°C for 3 hours. Details will be described in the Examples section below.

[0036] The SL-containing composition of the present invention includes compositions having the properties of (A) to (B), (A) to (C), or (A) to (D) described above, in addition to the following properties: (E) Acid-type SL content: 10 to 50% by mass per 100% by mass of total SL. (F) Content of dimerized SL: 0.1 to 40% by mass per 100% by mass of total SL.

[0037] The content of the acid-type SL is not limited, but preferably 13 to 50% by mass, more preferably 15 to 46% by mass, per 100% by mass of the total SL. The content of the dimer-type SL is not limited, but preferably 0.5 to 30% by mass, more preferably 1 to 30% by mass, per 100% by mass of the total SL.

[0038] The aforementioned (A), (B), (E), and (F) can be calculated by diluting the target SL-containing composition with ethanol (99.5v%) so that the dry residue is approximately 1%, subjecting the prepared ethanol dilution to high-performance liquid chromatography (HPLC) under the conditions described in Table 1 below, and calculating from the peak area of ​​each SL obtained. The method for determining the dry residue is described in the Examples section below.

[0039] [Table 1]

[0040] In HPLC under the conditions described in Table 1, monomeric acid-type SL elutes in the retention time regions of 10-23 minutes (acid-type SLa) and 45-58 minutes (acid-type SLb). Monomeric lactone-type SL (including diacetyllactone-type SL; the same applies hereinafter) elutes in the retention time region of 23-40 minutes. Among the peaks that appear particularly in the 28-33 minute region of this area, the peak with the highest peak intensity is the peak derived from oleic acid-diacetyllactone-type SL. Dimeric SL elutes in the retention time region of 58-70 minutes.

[0041] The mass ratio of acidic SL (acidic SLa, acidic SLb), lactone-type SL, and dimeric-type SL contained in the SL-containing composition can be calculated from the ratio of each peak area obtained by the HPCL analysis. Specifically, the total amount of SL (acidic SL, lactone-type SL, and dimeric-type SL) is set to 100 mass%, and the mass percentage of each SL can be determined by calculating the ratio of the peak area of ​​each SL to this total.

[0042] Furthermore, the proportion of oleic acid-diacetyllactone type SL in the total amount of lactone-type SL (100% by mass) can also be calculated from the peak area ratio obtained by the HPCL analysis described above.

[0043] The SL-containing composition of the present invention includes a composition in which the water content is adjusted to 50% by mass, and the viscosity of the SL-containing composition at a temperature of -5°C after standing for 72 hours under -5°C conditions is 1490 mPa·s or higher. Although not limited, a preferred viscosity is 2000 mPa·s or higher, and a more preferred viscosity is 2500 mPa·s or higher. The upper limit of the viscosity is not limited as long as the effects of the present invention are achieved, but for example, it can be exemplified by 221300 mPa·s or less, preferably 21000 mPa·s or less.

[0044] The viscosity can be measured using a TVB-10M viscometer with a measurement time of 1 minute. The rotor number and stirring speed of the viscometer can be set according to the viscosity of the sample being measured, as follows: [Table 2]

[0045] The SL-containing composition of the present invention contains a predetermined amount of SL, as described above. The SL-containing composition of the present invention is not particularly limited in its manufacturing method, and includes compositions produced by culturing SL-producing yeast as described later. However, it is characterized in that, at least when the water content is adjusted with distilled water to approximately 91.7% by mass, and the pH is adjusted to acidic (pH 2.5 to 3.0), the SL contained therein becomes insoluble and settles. In the present invention, this characteristic of the SL-containing composition is referred to as "settling property".

[0046] The details of the evaluation method for the sedimentation properties of SL-containing compositions are described in the Examples section ([Physical Property Evaluation Method] "(2-2) Sedimentation Properties of SL-containing Compositions in Distilled Water"), but a brief explanation is as follows. Dilute 5g of SL-containing composition (at 20°C) with a dry residue of 50% by adding 25g of distilled water (at 20°C) (moisture content: approximately 91.7% by mass). If the pH of the diluted solution is not in the range of 2.5 to 3.0, adjust the pH to 2.5 to 3.0 using a pH adjusting agent (for example, an acid such as hydrochloric acid or sulfuric acid, or an alkaline agent such as sodium hydroxide or potassium hydroxide). After stirring and mixing this diluted solution for 10 seconds, let it stand for 5 minutes under 20°C conditions, and then visually check for the presence of precipitate. If clear precipitate (or clear separation) is observed, it is judged as "settling present," and if not, it is judged as "not settling present."

[0047] In other words, when a composition containing SL is described as having "settling properties," it means that when it is adjusted to an acidic dilution with a water content of approximately 91.7% by mass (pH 2.5-3.0), the SL becomes insoluble and settles. Such a SL-containing composition with sedimenting properties can be considered easy to handle because the SL can be insoluble and settled by simple methods such as diluting with distilled water and / or adjusting the pH to an acidic level, allowing for recovery.

[0048] Furthermore, as shown in the examples described later (physical property evaluation results of production examples 1 to 4), SL-containing compositions evaluated as having "settling properties" by the above evaluation method are found to have similarly good settling properties in the culture. In other words, when an SL-containing composition having the same composition (total amount of SL, SL composition (%), percentage of oleic acid-diacetyllactone type SL contained in lactone type SL (%), and / or hexane extract content) as an SL-containing composition evaluated as having "settling properties" by the above evaluation method is produced by culturing SL-producing yeast, it is considered that the SL-containing composition will have good settling properties in the culture.

[0049] The SL-containing composition of the present invention is also characterized by having low-temperature fluidity. The details of the evaluation method for low-temperature fluidity of SL-containing compositions are described in the Examples section, but a brief explanation is as follows. The SL-containing composition is placed in a lidded container and left to stand for 3 days (72 hours) in the dark at -5°C. After that, the container is inverted, and the fluidity of the contents is visually checked for 30 seconds. If the moisture content of the SL-containing composition to be measured is not 50% by mass, distilled water is used to adjust the moisture content to 50% by mass. If fluidity is observed in the contents based on the visual inspection, it is judged as "low-temperature fluidity present," and if not, it is judged as "low-temperature fluidity absent."

[0050] The SL-containing composition having low-temperature fluidity is easier to handle and requires less work compared to SL-containing compositions that solidify at low temperatures and have no fluidity.

[0051] (II) Method for producing SL-containing composition The SL-containing composition of the present invention may have the composition and properties described above, and its manufacturing method is not particularly limited. However, as an example, it can be produced by culturing SL-producing yeast under predetermined conditions using an aqueous liquid medium containing a hydrophobic substrate and a hydrophilic substrate. In this case, however, the SL-containing composition targeted by the present invention does not include the culture itself obtained by the cultivation (hereinafter also referred to as "SL-containing culture").

[0052] Here, the hydrophobic substrate is one that has low affinity for water used as the culture medium solvent, and is not limited, but its types preferably include fatty acids and vegetable oils that contain fatty acids as components. Examples of fatty acids include saturated or unsaturated fatty acids having 6 to 18 carbon atoms. These can be used individually or in combination of two or more. Preferably, it is at least one fatty acid selected from saturated or unsaturated fatty acids having 12 to 18 carbon atoms, and more preferably, at least one fatty acid selected from saturated fatty acids having 16 carbon atoms (palmitic acid) and saturated or unsaturated fatty acids having 18 carbon atoms (stearic acid, oleic acid, linoleic acid, linolenic acid). Vegetable oils are not limited, but preferably include those that contain saturated or unsaturated fatty acids having 12 to 18 carbon atoms as constituent fatty acids of triglycerides. Examples of such vegetable oils include soybean oil, rapeseed oil, cottonseed oil, sunflower oil (high linol, high oleic), kapok oil, sesame oil, corn oil, rice oil, peanut oil, safflower oil (high linol, high oleic), olive oil, linseed oil, tuki oil, castor oil, palm kernel oil, palm olein, palm stearin, and coconut oil. All of these are vegetable oils with a melting point of 30°C or lower. They can be used individually or in combination of two or more.

[0053] Furthermore, the hydrophilic substrate has a high affinity for water used as the culture medium solvent and is not limited, but preferably includes sugars and nitrogen sources necessary for the growth of SL-producing yeast. Sugars include monosaccharides such as glucose, fructose, and galactose; disaccharides such as sucrose and maltose. Monosaccharides such as glucose are preferred. Types of nitrogen sources include yeast extract, peptone, and urea.

[0054] In addition to the hydrophobic and hydrophilic substrates described above, the culture medium may optionally contain inorganic salts (e.g., phosphates, magnesium salts, sodium salts, etc.), organic acids (e.g., lactic acid, acetic acid, citric acid, propionic acid, etc.), and vitamins, which are useful for the growth of SL-producing yeast, to the extent that they do not interfere with the effects of the present invention.

[0055] While there are no limitations on the method for producing an SL-containing composition using SL-producing yeast, three methods (production methods 1 to 3) described below are preferred.

[0056] (1) Manufacturing method 1 Manufacturing method 1 includes a step of culturing SL-producing yeast using a culture medium in which at least fatty acids, or fatty acids and vegetable oil with a melting point of 30°C or lower, are used as a hydrophobic substrate to be incorporated into the culture medium, and the proportion of free fatty acids is 20% by mass or more when the total amount of fatty acids in the culture medium, or the total amount of fatty acids and vegetable oil if vegetable oil with a melting point of 30°C or lower is included (collectively referred to as "total amount of fatty acids and vegetable oil") is taken as 100% by mass.

[0057] The ratio of free fatty acids to the total amount of fatty acids and vegetable oil in the culture medium (100% by mass) is not limited, but preferably 30% by mass or more. The upper limit is 100% by mass (however, this is when only fatty acids are used and no vegetable oil is used as the hydrophobic substrate).

[0058] In this manufacturing method, it is preferable that the pH of the culture is not particularly controlled during the culture period, except for the initial pH being in the range of 4 to 5. In this case, the pH of the culture gradually decreases during the culture period and, although not restricted, it usually reaches about pH 3 towards the end of the culture period.

[0059] Furthermore, in this manufacturing method, it is preferable that the SL-producing yeast is cultured by aeration and stirring. The aeration and stirring conditions can be such that the amount of oxygen supplied to the culture medium is 145 (l / hr) or more when converted to an apparent oxygen transfer capacity coefficient (kLa). The apparent oxygen transfer capacity coefficient is preferably 200 (l / hr) or more, more preferably 500 (l / hr) or more. The upper limit is not limited, but is 1200 (l / hr) or less. Details of how to set the amount of oxygen supplied to the culture are described in the Examples section (the same applies to manufacturing methods 2 and 3 below).

[0060] Under the above conditions, a culture containing SL (SL-containing culture) can be obtained by culturing at 20-45°C, preferably 25-35°C, for 4-14 days, preferably 5-7 days. A desired SL-containing composition having the effects of the present invention can be prepared and obtained by treating the SL-containing culture by the method described later.

[0061] (2) Manufacturing method 2 Manufacturing method 2 includes a step of culturing SL-producing yeast using a vegetable oil with a melting point of 30°C or lower as a hydrophobic substrate to be added to the culture medium, while adjusting the pH of the culture to 4.5-5 during the cultivation period.

[0062] While there are no restrictions on adjusting the pH of the culture during the incubation period, it can be done by monitoring the pH of the culture and adding pH adjusters (such as sodium hydroxide or potassium hydroxide) as needed.

[0063] In this manufacturing method, it is preferable that the SL-producing yeast is cultured by aeration and stirring. The aeration and stirring conditions can be such that the amount of oxygen supplied to the culture medium is higher than 160 (l / hr) when converted to an apparent oxygen transfer capacity coefficient (kLa). Preferably, the apparent oxygen transfer capacity coefficient is 200 (l / hr) or more, more preferably 500 (l / hr) or more. The upper limit is not limited, but is 1200 (l / hr) or less. Under the above conditions, a culture containing SL (SL-containing culture) can be obtained by culturing at 20 to 45°C, preferably 25 to 35°C, for 4 to 14 days, preferably 5 to 7 days. A desired SL-containing composition having the effects of the present invention can be prepared and obtained by processing the SL-containing culture by the method described later.

[0064] (3) Manufacturing method 3 Manufacturing method 3 includes a step of culturing SL-producing yeast using a medium in which, as a hydrophobic substrate to be added to the culture medium, a vegetable oil with a melting point of 30°C or lower, or a fatty acid and a vegetable oil with a melting point of 30°C or lower, and when the total amount of vegetable oil with a melting point of 30°C or lower in the culture medium, or if fatty acids are included, the total amount of vegetable oil with a melting point of 30°C or lower and fatty acids (collectively referred to as "total amount of fatty acids and vegetable oil") is taken as 100% by mass, the proportion of free fatty acids is 0 to less than 20% by mass, and the aeration stirring culture conditions are set so that the amount of oxygen supplied to the culture medium is 145 (l / hr) or less when converted to the apparent oxygen transfer capacity coefficient (kLa).

[0065] While there is no lower limit to the oxygen transfer capacity coefficient, 75 (l / hr) can be cited. Preferably, the aeration and stirring culture conditions are set such that the amount of oxygen supplied to the culture medium is 100 to 145 (l / hr), more preferably 120 to 145 (l / hr), when converted to the apparent oxygen transfer capacity coefficient (kLa). In this manufacturing method, it is preferable that the pH of the culture is not particularly controlled during the culture period, except for the initial pH being in the range of 4 to 5. In this case, the pH of the culture gradually decreases during the culture period and, although not restricted, it usually reaches about pH 3 towards the end of the culture period.

[0066] Under the above conditions, a culture containing SL (SL-containing culture) can be obtained by culturing at 20-45°C, preferably 25-35°C, for 4-14 days, preferably 5-12 days. A desired SL-containing composition having the effects of the present invention can be prepared and obtained by treating the SL-containing culture by the method described later.

[0067] (Processing of SL-containing cultures and method for recovering SL-containing compositions) The SL-containing culture produced by the above method contains not only the produced SL, but also SL-producing yeast (cellular cells), unassimilated hydrophobic and hydrophilic substrates, and other culture medium components. For this reason, it is preferable to remove the cellular cells and culture medium components to prepare an SL-containing composition containing a relatively high proportion of SL. The SL-containing composition of the present invention is preferably an SL-containing composition prepared by removing cellular cells and culture medium components from an SL-containing culture. The method for removing cellular cells and culture medium components from an SL-containing culture to recover the SL-containing composition of the present invention can be carried out by combining known methods, to the extent that it does not interfere with the effects of the present invention.

[0068] Specifically, as described in Production Example 1 below, when an SL-containing culture (acidic) is left standing at room temperature, it separates into three layers from bottom to top: a brown liquid layer mainly containing SL, a milky white solid layer mainly containing bacterial cells, and a supernatant layer mainly containing impurities in the culture medium. Similarly, when an SL-containing culture (acidic) is left standing at room temperature after heat sterilization, it separates into three layers. After removing the supernatant layer, an equal amount of water is added to the supernatant, and the pH is adjusted to approximately pH 6-7 with an aqueous sodium hydroxide solution to solubilize the SL. Next, the supernatant is collected by centrifugation, and then an aqueous sulfuric acid solution is added to adjust the pH to approximately pH 2-3 to insolubleize the SL. After standing, decantation is performed to obtain an SL-containing composition as a water-containing substance containing approximately 40-55% water. The details will be explained in Production Example 1 below. This method is a method for recovering SL contained in SL-containing cultures with high yield, as described in, for example, Japanese Patent Application Publication No. 2003-9896 (Patent Document 4).

[0069] The SL-containing compositions prepared in this manner are not limited, but contain SL (acid-type SL, lactone-type SL, and dimeric-type SL) in the proportions described above, and include compositions substantially composed of these SLs. In addition to SL, fatty acids may be included in proportion such that the hexane extract content is 6% by mass or less. The SL-containing compositions include compositions substantially composed of SL and fatty acids. The method for calculating the hexane extract content will be described in detail in the following examples.

[0070] The fatty acid in question is not particularly limited, as long as it does not impair the settling properties and / or low-temperature fluidity that are characteristic of the SL-containing composition of the present invention. Examples from Experimental Example 1 described later include saturated fatty acids with 6 to 8 or 18 carbon atoms (hexanoic acid, octanoic acid, stearic acid), and unsaturated fatty acids with 18 carbon atoms (oleic acid, linoleic acid, linolenic acid).

[0071] In this specification, the terms “contains” and “includes” include the meanings of “consisting of” and “substantially consisting of.” [Examples]

[0072] The present invention will be described below using manufacturing examples and experimental examples to aid in understanding its structure and effects. However, the present invention is not limited in any way by these manufacturing examples and experimental examples. The following experiments were conducted at room temperature (20±5℃) and atmospheric pressure unless otherwise specified. Unless otherwise specified, "%" below means "mass%" and "parts" means "parts by mass".

[0073] The raw materials used in the manufacturing and experimental examples described later, along with the various measurement and evaluation methods, are as follows. Furthermore, Table 2 lists the physical properties (iodine value, melting point, and freezing point) of the vegetable oils used as raw materials, the constituent fatty acid composition (wt%) of their main component, triglycerides, and the fatty acid composition of the fatty acids used as raw materials.

[0074] [Raw materials] Palm olein: Product name NBD Palm Olein IV 56 (Source: Unitata Berhad) Safflower oil (High Linol): Product name Safflower Salad Oil (Source: Summit Essential Oil Co., Ltd.) Soybean oil: Product name: Soybean oil (Source: Summit Essential Oil Co., Ltd.) Rapeseed oil (clearly pressed oil): Product name: Clearly pressed rapeseed oil (Source: Summit Essential Oil Co., Ltd.) Sunflower oil (high oleic): Product name: High Oleic Sunflower Oil (Source: Summit Essential Oil Co., Ltd.) Safflower oil (high oleic): Product name: High oleic safflower oil (Source: Summit Essential Oil Co., Ltd.) Fatty acids (HE1885): Product name: Nouracid HE 1885 (contains 21 wt% or more palmitic acid and 64 wt% or more oleic acid) (Source: Oleon) Fatty acid (NAA-34): Product name NAA-34 (contains 21 wt% or more palmitic acid and 58 wt% or more oleic acid) (Source: NOF Corporation) Glucose: Product name: Nisshoku Hydrated Crystalline Glucose (Source: Nippon Shokuhin Kako Co., Ltd.) Inorganic acid salts: KH2PO3, MgSO4, NaCl (mixing ratio [mass ratio] 10:5:1) Yeast extract: Product name: Meast Powder N (Source: Asahi Food & Healthcare Co., Ltd.) Peptone: Product name: Peptone from Glycine max (Source: SIGMA-ALDRICH)

[0075] [Table 3]

[0076] [Measurement method] (1) Method for calculating the SL content and SL composition in an SL-containing composition The SL-containing composition is diluted with ethanol (99.5v%) so that the dry residue is approximately 1%, and the prepared ethanol dilution is subjected to high-performance liquid chromatography (HPLC) under the conditions described in Table 1. The method for measuring the dry residue is described in (2) below.

[0077] In HPLC under the conditions described in Table 1, monomeric acid-type SL elutes in the retention time regions of 10-23 minutes (acid-type SLa) and 45-58 minutes (acid-type SLb). Monomeric lactone-type SL (including diacetyllactone-type SL; the same applies hereinafter) elutes in the retention time region of 28-40 minutes. Among the peaks that appear in this region, particularly in the 28-33 minute range, the peak with the highest peak intensity is the peak derived from oleic acid-diacetyllactone-type SL. Dimeric SL elutes in the retention time region of 58-70 minutes.

[0078] The amounts of acidic SL, lactone-type SL, and dimeric-type SL contained in the SL-containing composition are calculated using a calibration curve created for standard samples of known concentration, based on the respective peak areas obtained from the HPCL analysis. The total amount of SL in the SL-containing composition is determined by summing the contents of acidic SLa, acidic SLb, lactone-type SL, and dimeric-type SL. The proportion of each SL (acidic SL, lactone-type SL, and dimeric-type SL) in 100% by mass of the total SL contained in the SL-containing composition (SL composition %) can be calculated from the peak area ratio of the HPCL analysis. The proportion of oleic acid-diacetyllactone-type SL in 100% by mass of the total lactone-type SL can also be calculated from the peak area ratio of the HPCL analysis.

[0079] (2) Method for measuring the dry residue and moisture content of SL-containing composition 1. Fill a petri dish with dried glass beads (bead diameter: 3.0 mm), cover it, and accurately measure the total weight (container weight). 2. Place the mixed and homogenized SL-containing composition (hydrated) over the beads in the petri dish so that it is spread evenly, quickly cover it, and accurately measure the weight (weight before drying). 3. Transfer this to a 105°C drying oven (constant temperature drying oven DY300: manufactured by Yamato Scientific Co., Ltd.) and dry for 3 hours with the lid open. 4. Place the container in a desiccator with a lid and a desiccant (silica gel), allow it to cool to room temperature, and then accurately measure the weight (weight after drying). 5. Calculate the drying residue and moisture content using the following formula.

[0080]

number

[0081] (3) Method for measuring the hexane extract content of SL-containing composition 1. Accurately weigh the centrifuge tubes and beakers. 2. Place approximately 5 g of the mixed and homogenized SL-containing composition into a centrifuge tube and accurately measure its weight (weight a). 3. Add an amount of n-hexane equal to the volume of the separated SL-containing composition, seal the container tightly, and shake vigorously to mix. 4. Centrifuge at 1000 × g for 10 minutes. 5. Using a pipette or similar tool, remove only the hexane layer and transfer it to a beaker. 6. Repeat the above extraction procedure three times. These procedures should be performed after adjusting the temperature of the SL-containing composition and n-hexane to room temperature (20±5℃). 7. Heat the beaker containing the recovered hexane layer in a water bath (approximately 80°C) to evaporate the hexane, then accurately measure its weight (weight b). 8. Calculate the hexane extract content (wet weight equivalent, dry weight equivalent) using the following formula.

[0082]

number

[0083] (4) Method for setting the amount of oxygen supplied to the culture during the culture period As an indicator of the amount of oxygen supplied to the culture during the culture period, the oxygen transfer capacity coefficient (k L a) was adopted. Specifically, the oxygen transfer capacity coefficient (k) when 3L of tap water (simulating the culture) is placed in a 5L culture tank used for actual cultivation (without bacterial inoculation), and cultured under the actual cultivation conditions (30°C) (simulated culture) is measured. L a) is measured using the sodium sulfite method with an exhaust gas meter (measurement gas: O2).

[0084] The oxygen transport capacity coefficient (k) measured in this way L a) is referred to below as the "apparent oxygen transport capacity coefficient (k L a) is referred to as "a)". 1. Calibrate the exhaust gas meter (OFF-GAS Jr. DEX-2561-1: manufactured by Able Co., Ltd.) using the oxygen concentration in the atmosphere. 2. Dissolve sodium sulfite in tap water to prepare 3 L of a 0.4 mol / L sodium sulfite aqueous solution, and add 3 mL of a 0.1 mol / L copper sulfate aqueous solution to it. 3. Operate the system under the actual culture conditions at 30°C (aeration rate, stirring speed, etc.), and calculate the k value from the dissolved oxygen concentration in the culture tank (water), the saturated dissolved oxygen concentration of the water, the oxygen concentration in the atmosphere, the aeration rate, and the oxygen concentration in the exhaust gas. L 'a' was calculated.

[0085] Specifically, based on Equation 2 calculated from Equation 1 below, the apparent oxygen transport capacity coefficient (k L We found a).

number

[0086] [Methods for evaluating physical properties] (1) Evaluation of viscosity (mPa·s) 1. Place 55g of the SL-containing composition into a PET container (standard bottle (No. 5): 50mL capacity, mouth diameter 24.7mm, body diameter 38mm, body height 68.5mm) and leave it standing for 72 hours in a dark place at -5°C. 2. After standing, the viscosity of the SL-containing composition at a temperature of -5°C is measured using the following equipment under the following conditions. Measuring instrument: TVB-10M viscometer (manufactured by Toki Sangyo Co., Ltd.) Rotor and stirring speed: See Table 2. Measurement time: 1 minute

[0087] (2) Evaluation of sedimentation (2-1) Precipitation of SL-containing composition in SL-containing culture 1. Add the SL-containing culture after cultivation to a centrifuge tube. 2. With the culture temperature adjusted to 20°C, shake the centrifuge tube well by hand for 10 seconds to agitate the sample. 3. Place the stirred culture in a centrifuge tube and leave it in the dark at 20°C for 12 hours. 4. After standing, visually inspect the centrifuge tube to confirm the presence or absence of sediment and evaluate it according to the following criteria. ○ Sedimentation present: Sediment is observed. × No settling: No sediment was observed.

[0088] (2-2) Settling properties of SL-containing compositions in distilled water (separation and confirmation of presence or absence of precipitates) 1. Add 5 g of SL-containing composition, adjusted to a dry residue of 50%, and 25 g of distilled water to a centrifuge tube. 2. Adjust the pH of the sample (moisture content: 91.7%) to pH 2.5-3.0 using a pH meter (HM-30G, manufactured by Toa DKK) with hydrochloric acid, sulfuric acid, sodium hydroxide, potassium hydroxide, etc. 3. With the sample temperature adjusted to 20°C, shake the centrifuge tube well by hand for 10 seconds to mix the sample, and then let it stand at 20°C for 5 minutes. 4. After standing, visually inspect the centrifuge tube to confirm the presence or absence of sediment and evaluate it according to the following criteria. ○ Sedimentation present: Clear separation and sedimentation are observed [a clear supernatant (aqueous layer) and a cloudy or brownish sedimentary layer (SL-containing composition)]. × No settling: The entire inside of the centrifuge tube is uniformly transparent or slightly opaque, and no separation or settling is observed.

[0089] (3) Evaluation of cold fluidity 1. Place 15g of the SL-containing composition into a PET container (standard bottle (No. 5)), seal it, and leave it standing for 3 days (72h) in a dark place at -5°C. If the moisture content of the SL-containing composition was not 50%, adjust the moisture content to 50% and use that composition. 2. After standing, the container is inverted at -5°C, and the fluidity of the contents is visually checked for 30 seconds and evaluated according to the following criteria. ○ Good low-temperature fluidity: The contents are fluid. The contents that were at the bottom of the container before inversion flow towards the opening of the container within 30 seconds after inversion. △ Low-temperature fluidity present: Although the contents are fluid, it takes more than 30 seconds for the contents that were at the bottom of the container before inversion to move towards the opening of the container after inversion. × Poor low-temperature fluidity: The contents have no fluidity at all. The contents at the bottom of the container do not move at all, or fall to the opening of the container in a solidified state.

[0090] Manufacturing Example 1: Manufacturing of SL-containing composition (Manufacturing Method 1) (1) Preculture As a culture medium, a liquid medium containing 10g of glucose, 10g of peptone, and 5g of yeast extract per liter of water was used, and SL-producing yeast (Starmerella bombicola strain ATCC22214) was cultured with shaking at 30°C for 2 days, and this was used as the pre-culture solution.

[0091] (2) Main culture The main culture medium (3L) was placed in a 5L capacity fermentation tank (tabletop culture device Bioneer-NEO: manufactured by Marubishi Bioengin Co., Ltd.), and 120mL of the above pre-culture solution was inoculated into it. Fermentation was carried out at 30°C for 5 days by aeration and stirring. The aeration and stirring conditions were such that the amount of oxygen supplied to the medium was equal to the apparent oxygen transfer capacity coefficient (k L The settings were adjusted to convert to 540 (1 / hr) (airflow rate: 1.8 L / min, stirring speed: 600 rpm).

[0092] For this culture medium, an aqueous liquid medium (pre-sterilization pH 4.5-4.8) was used, containing water, hydrophobic substrates (vegetable oil, fatty acids) and hydrophilic substrates (glucose, yeast extract, and urea) as listed in Table 3, in addition to inorganic salts. The pH of the culture was not controlled during the culture period.

[0093] Six days after the start of cultivation, the culture was stopped, and the culture (pH approximately 3) removed from the fermentation tank was heated to 50-80°C, then returned to room temperature (25°C), and allowed to stand for more than one day. The culture was then separated into three layers from bottom to top: a brown liquid layer, a milky white solid layer mainly consisting of bacterial cells, and a supernatant. After removing the supernatant, an equal amount of industrial water or groundwater was added. While stirring, a 48% sodium hydroxide aqueous solution was gradually added to adjust the pH to 6.5-6.9, solubilizing the SL contained in the culture. This was then centrifuged using a benchtop centrifuge (Westphalia: Westphalia Separator AG) (2,400xg, 15 minutes, room temperature (25°C)) to precipitate the milky white solid (bacterial cells), and the supernatant containing SL was recovered. While stirring the recovered supernatant, a 62.5% sulfuric acid aqueous solution was gradually added to adjust the pH to 2.5-3.0, thereby insolubilizing the SL. After standing at room temperature (25°C) for two days, the supernatant was removed as much as possible by decantation, and the residue (containing water) was obtained as the SL-containing composition.

[0094] For the SL-containing compositions thus obtained, the total amount of SL, the SL composition (%), the percentage of oleic acid-diacetyllactone type SL contained in the lactone type SL (%), the water content, and the hexane extract content were measured using the method described above. The total amount of SL, the SL composition, and the percentage of oleic acid-diacetyllactone type SL were determined by diluting the SL-containing compositions obtained above with ethanol (99.5v%) so that the dry residue was approximately 1%, and then subjecting the diluted product to HPLC under the conditions described above, and determining the peak area of ​​each region.

[0095] Furthermore, the viscosity (mPa·s), sedimentation properties, and low-temperature fluidity of the obtained SL-containing compositions were evaluated according to the method described above.

[0096] The results are shown in Table 4-1 (Examples 1-1 to 1-14) and Table 4-2 (Comparative Examples 1-1 to 1-7). The results shown in Tables 4-1 and 4-2 were obtained without controlling the pH of the culture during the culture period (it decreased from approximately pH 5 initially to pH 3 during culture), and under aeration and stirring conditions, the amount of oxygen supplied to the culture was determined by the apparent oxygen transfer capacity coefficient (k L The following are the measurement and evaluation results of SL-containing compositions obtained by culturing them after converting them to the values ​​(1 / hr) shown in the table.

[0097] Table 4-2 also shows the results of measuring or evaluating the total amount of SL, SL composition (%), the percentage of oleic acid-diacetyllactone type SL contained in lactone type SL (%), water content, hexane extract content, viscosity, sedimentation properties, and low-temperature fluidity for existing SL-containing compositions (products 1-5) in the same manner as described above.

[0098] [Table 4-1] [Table 4-2]

[0099] As shown in Table 4-2, under these culture conditions, when the hydrophobic substrate added to the culture medium was only vegetable oil, no sedimentation was observed in the prepared SL-containing composition (see Comparative Examples 1-2 to 1-7). Furthermore, even when the hydrophobic substrate consisted of vegetable oil and fatty acids, if the proportion of free fatty acids in the total amount was 10% or less, no sedimentation was observed in the SL-containing composition, similar to the above (see Comparative Example 1-1). From this, it appears that the SL produced in this case is solubilized in the culture medium.

[0100] On the other hand, as shown in Table 4-1, when the hydrophobic substrates added to the culture medium were vegetable oil and fatty acids, the prepared SL-containing composition exhibited sedimentation when the proportion of free fatty acids in the total amount was 20% or more (Examples 1-1 to 1-4, Examples 1-7 to 1-14). From this, it is thought that the SL produced in this case is insoluble in the culture medium. Furthermore, even when the hydrophobic substrate added to the culture medium was only fatty acids, sedimentation (insolubilization of SL) was observed in the prepared SL-containing composition (Examples 1-5 to 1-6). Furthermore, all of these SL-containing compositions (Examples 1-1 to 1-14) exhibited good fluidity at -5°C (low-temperature fluidity).

[0101] From these observations, if the hydrophobic substrate consists only of fatty acids, or if it is a vegetable oil with a melting point of 30°C or lower and fatty acids, and the free fatty acid content is 20-100% of the total amount, the apparent oxygen transport capacity coefficient (k) of the culture can be determined without controlling the pH during the culture period. L It was confirmed that by preferably setting a) to 200 (l / hr) or higher, SL-containing compositions (Examples 1-1 to 1-14) with excellent handling properties in terms of both sedimentation and low-temperature fluidity can be prepared. Similar results were obtained when using fatty acid (HE1885) instead of fatty acid (NAA-34).

[0102] From a comparison of the composition and physical properties of various SL-containing compositions, it was confirmed that good settling properties and low-temperature fluidity were obtained when the lactone-type SL content was 45-81%, preferably 45-70%, per 100% of the total SL; the oleic acid-diacetyllactone-type SL content was 95% or less, preferably 92% or less, per 100% of the total lactone-type SL; the hexane extract content was 6% or less on a dry weight basis, preferably 3% or less (3% or less on a wet weight basis, preferably 1.5% or less); the acid-type SL content was 10-50%, preferably 15-50%, per 100% of the total SL; and the dimer-type SL content was 45% or less, preferably 40% or less, per 100% of the total SL. Furthermore, these SL-containing compositions (with a moisture content of 40-55%) were fluid at -5°C, and their viscosity was 2310-18980 mPa·s.

[0103] Manufacturing Example 2: Manufacturing of SL-containing composition (Manufacturing Method 2) (2-1) 120 mL of pre-culture solution, prepared in the same manner as in Production Example 1, was inoculated into the main culture medium (3 L) in the same manner as in Production Example 1, and fermented by aerated stirring culture at 30°C for 5 days. As the main culture medium, an aqueous liquid medium (pre-sterilization pH 4.5-4.8) was used, containing water, hydrophobic substrates (vegetable oil, fatty acid) and hydrophilic substrates (glucose, yeast extract, urea) listed in Table 5, in addition to inorganic salts. During the culture period, the pH of the culture was controlled to be within the range of 4-5.5. Furthermore, the aerated stirring culture conditions were set such that the amount of oxygen supplied to the culture was equal to the apparent oxygen transfer capacity coefficient (k L The settings were adjusted to convert to 540 (1 / hr) (airflow rate: 1.8 L / min, stirring speed: 600 rpm).

[0104] The culture was stopped on the 6th day after the start of cultivation, and the SL-containing composition was recovered in the same manner as in Production Example 1. The obtained SL-containing composition was measured in the same manner as in Production Example 1, with the total amount of SL, SL composition (%), percentage of oleic acid-diacetyllactone type SL contained in lactone type SL (%), water content, and hexane extract content measured by the method described above. The viscosity (mPa·s), sedimentation properties, and low-temperature fluidity of the obtained SL-containing composition were also evaluated according to the method described above.

[0105] The results are shown in Table 5. [Table 5]

[0106] As shown in Comparative Examples 1-2 to 1-7 of Production Example 1 (Table 4-2) above, when only vegetable oil is used as the hydrophobic substrate in the culture medium, the prepared SL-containing composition does not exhibit sedimentation unless the pH of the culture is controlled during the cultivation period. As shown in Table 5, a similar phenomenon was observed in Comparative Example 2-3. In contrast, even when only vegetable oil is used as the hydrophobic substrate, it was found that the obtained SL-containing composition exhibits sedimentation when the pH of the culture is controlled to the range of 4.5 to 5 during the cultivation period (Examples 2-1 to 2-2). On the other hand, even under these pH control conditions, when the pH was 4 or lower, the prepared SL-containing composition did not exhibit sedimentation (Comparative Example 2-1). Furthermore, even under pH control conditions, it was found that when the pH was 5.5 or higher, the prepared SL-containing composition's low-temperature fluidity decreased (Comparative Example 2-2). As shown in Examples 1-5 to 1-6 of Production Example 1 (Table 4-1) above, when the hydrophobic substrate of the culture medium was only fatty acids, the SL-containing composition prepared without controlling the pH of the culture during the culture period exhibited good sedimentation and low-temperature fluidity. However, when the pH of the culture was controlled to 5 during the culture period, it was confirmed that the low-temperature fluidity of the resulting SL-containing composition decreased (Comparative Example 2-4).

[0107] Manufacturing Example 3: Manufacturing of SL-containing composition (Manufacturing Method 2) (2-2) The aeration and stirring culture conditions are determined by the amount of oxygen supplied to the culture medium, and the apparent oxygen transfer capacity coefficient (k L Except for setting the ratio to 160-367 (1 / hr) when converted to a) and setting the incubation period to 6-12 days, an SL-containing composition was prepared in the same manner as in Example 2-2 described in Production Example 2, and its composition, viscosity (mPa·s), sedimentation properties, and low-temperature fluidity were evaluated.

[0108] The results are shown in Table 6. [Table 6]

[0109] When only vegetable oil is used as the hydrophobic substrate, the pH of the culture is controlled to 5 during the culture period, and the oxygen supply is measured using the apparent oxygen transport capacity coefficient (k LWhen converted to a) and reduced to 160 (1 / hr) or less, the obtained SL-containing composition settled well, but it was found that the low-temperature fluidity decreased (Comparative Example 3-1). From this, it was found that when only vegetable oil is used as the hydrophobic substrate, the pH of the culture during the culture period is controlled to 5, and the amount of oxygen supplied to the culture is reduced by the apparent oxygen transfer capacity coefficient (k L It was confirmed that a value higher than 160 (1 / hr), preferably 200 (1 / hr) or higher, when converted to a), is useful in producing an SL-containing composition that is easy to handle in terms of both settling properties and low-temperature fluidity.

[0110] Manufacturing Example 4: Manufacturing of SL-containing composition (Manufacturing Method 3) 120 mL of pre-culture solution prepared in the same manner as in Production Example 1 was inoculated into the main culture medium (3 L) in the same manner as in Production Example 1, and fermented by aerated stirring culture at 30°C for 5 to 10 days (Examples 4-1 to 4-3: 10 days, Comparative Example 4-1: 7 days, Comparative Example 4-2: 5 days). As the main culture medium, an aqueous liquid medium (pH 4.5 to 4.8 before sterilization) containing an inorganic salt in addition to the hydrophobic substrate (vegetable oil, fatty acid) and hydrophilic substrate (glucose, yeast extract, urea) listed in Table 7 was used in addition to water. During the culture period, the pH of the medium was not controlled (it decreased to pH 3 as culture progressed), and the aerated stirring culture conditions were such that the amount of oxygen supplied to the medium was equal to the apparent oxygen transfer capacity coefficient (k L The values ​​were converted to a) and set to match the values ​​listed in Table 7 (Example 4-1: airflow rate 0.5 L / min, stirring speed 380 rpm; Example 4-2: airflow rate 0.5 L / min, stirring speed 410 rpm; Example 4-3: airflow rate 0.5 L / min, stirring speed 410 rpm).

[0111] The culture was stopped 6 to 11 days after the start of cultivation, and the SL-containing composition was recovered in the same manner as in Production Example 1. The obtained SL-containing composition was measured for SL composition (%), the percentage of oleic acid-diacetyllactone type SL contained in lactone type SL (%), water content, and hexane extract content in the same manner as in Production Example 1, using the method described above. The viscosity (mPa·s), sedimentation properties, and low-temperature fluidity of the obtained SL-containing composition were also evaluated according to the method described above.

[0112] The results are shown in Table 7. [Table 7]

[0113] As shown in the above-mentioned Production Examples 1-3, when only vegetable oil is used as the hydrophobic substrate of the culture medium, and the pH of the culture is not controlled during the cultivation period (the pH decreases from the initial approximately 5 to approximately 3 during cultivation), the resulting SL-containing composition does not have sedimentation properties (Comparative Examples 1-2 to 1-7, Comparative Examples 2-3). In contrast, as shown in Table 7, even when only vegetable oil (free fatty acid content 0%) is used as the hydrophobic substrate and the pH of the culture is not controlled, it was confirmed that the resulting SL-containing composition has sedimentation properties and good low-temperature fluidity when the amount of oxygen supplied to the culture during the cultivation period is controlled to be 145 (1 / hr) or less when converted to an apparent oxygen transfer capacity coefficient (Examples 4-1 to 4-2).

[0114] Furthermore, in Production Example 1, when cultured in a medium with a free fatty acid content of 10% or less without controlling the pH, the SL-containing composition did not exhibit sedimentation (Comparative Example 1-1). However, from the results of Example 4-3, it was confirmed that even in this case, by controlling the amount of oxygen supplied to the culture during the culture period so that the apparent oxygen transfer capacity coefficient is 145 (1 / hr) or less, a good SL-containing composition with both sedimentation properties and low-temperature fluidity can be prepared.

[0115] Experimental Example 1: Evaluation of the relationship between residual fatty acids in the culture medium and the precipitation properties of SL. In Production Example 1, the relationship between the sedimentation properties of the SL-containing composition and the amount of free fatty acids contained therein (on a dry weight basis) was evaluated using each SL-containing composition prepared using culture systems in which sedimentation was observed (Examples 1-3) and culture systems in which sedimentation was not observed (Comparative Example 1-2). The SL-containing composition prepared in Example 1-3 (moisture content: 44.1%) and the SL-containing composition prepared in Comparative Example 1-2 (moisture content: 57.5%) contained free fatty acids at a ratio of 0.36% and 0.117%, respectively, when converted to hexane extract amount (on a dry weight basis).

[0116] Specifically, various fatty acids were added to each SL-containing composition obtained in Examples 1-3 and Comparative Example 1-2 in the proportions (mass%) shown in Table 8. Table 8 also shows the amount of added fatty acids converted to hexane extract (dry weight). In other words, the actual SL-containing composition contains free fatty acids equivalent to the "hexane extract amount of the SL-containing composition," which is the "converted value of the added fatty acid amount to hexane extract" shown in Table 8 plus 0.36% or 0.117%.

[0117] 5g of this substance was placed in a centrifuge tube, and 25g of distilled water was added to prepare a total volume of 30g (91.7% moisture content). This was then mixed uniformly by shaking by hand for 10 seconds under conditions of 20°C, and then allowed to stand for 5 minutes. The sedimentation properties (presence or absence of precipitate) were evaluated. The sedimentation properties were evaluated according to the following criteria. [Assessment of sedimentation properties] ○: Sedimentation (sediment) is observed within 5 minutes of standing. ×: No sedimentation (sediment) is observed within 5 minutes of standing. The results are summarized in Table 8.

[0118] [Table 8]

[0119] From the results in Table 8(1), it was confirmed that the SL-containing compositions obtained in Examples 1-3, that is, SL-containing compositions whose content of lactone-type SL and oleic acid-diacetyllactone-type SL satisfies the requirements of (A) and (B) of the present invention, exhibited good sedimentation and good handling, regardless of the fatty acid content (hexane extract content). On the other hand, from the results in Table 8(2), it was confirmed that the SL-containing compositions obtained in Comparative Examples 1-2, that is, SL-containing compositions whose content of lactone-type SL did not satisfy the requirements of (A) of the present invention, exhibited poor sedimentation and poor handling, depending on the type of fatty acid, when the fatty acid content, converted to hexane extract content, was 7% or less, particularly 6% or less. From this, it can be concluded that the technology of the present invention is particularly useful for SL-containing compositions with a fatty acid content of 7% or less, particularly 6% or less, converted to hexane extract content, which tend to exhibit poor sedimentation.

[0120] Experimental Example 2: Evaluation of the effect of free fatty acid content in SL-containing compositions on foaming power. SL-containing compositions with varying amounts of free fatty acids were added to dishwashing detergents, and the foaming power of each dishwashing detergent was evaluated. The effect of the free fatty acid content in the SL-containing compositions on foaming power was then assessed.

[0121] (1) Preparation of test samples Using the SL-containing compositions of Examples 1-3 and oleic acid, SL-containing compositions 1-4 were prepared, each containing fatty acids in the proportions shown in Table 9. Furthermore, as shown in Table 10, 0.5 g of each of these SL-containing compositions 1-4 was added to 4.5 g of dishwashing detergent (Happy Elephant Vegetable & Dishwashing Detergent (manufactured by Saraya Co., Ltd.); fatty acid content 0%) to prepare test samples 1-4.

[0122] [Table 9]

[0123] (2) Method for evaluating foaming power The test samples 1-4 prepared above, along with a control sample of dish soap, were diluted with distilled water to a dish soap concentration of 15%. Diluted test samples 1-4 and control sample (1 g each), along with 100 mL of tap water (25°C), were added to a graduated cylinder. The mixture was then stirred at 5000 rpm for 3 minutes using a Robomix (equipped with a Homodisper φ40) (model number: RM / 1001, manufacturer: Primix Corporation). After stirring stopped, the foam height was read from the graduated cylinder's scale at 30 seconds, 60 seconds, and 180 seconds.

[0124] (3) Evaluation results of foaming power The results are shown in Table 10.

[0125] [Table 10]

[0126] The results in Table 10 confirm that adding the SL-containing composition of the present invention to dish soap enhances its foaming ability (see control sample and test sample 1). Furthermore, it was confirmed that the higher the fatty acid content in the SL-containing composition, the less the foaming effect is suppressed (test samples 1-4). Since the foaming ability of the dish soap itself becomes equivalent to that of the dish soap when the fatty acid content in the SL-containing composition is kept below 6%, it is considered preferable from the viewpoint of foaming ability that the free fatty acid content in the SL-containing composition be 6% or less.

Claims

1. A sophorolipid-containing composition characterized by having the following properties: (A) Content of lactone-type sophorolipid: 45 to 81% by mass per 100% by mass of total sophorolipid (B) Content of oleate-diacetyllactone type sophorolipid: 58.7 to 91.8% by mass per 100% by mass of total lactone type sophorolipid. (C) Hexane extract content: 6% by mass or less on a dry weight basis.

2. The sophorolipid-containing composition according to claim 1, having the following characteristics: (D) Moisture content: 55% by mass or less.

3. Furthermore, the sophorolipid-containing composition according to claim 1 or 2 is characterized by having at least one of the following properties (E) and (F): (E) Acid-type sophorolipid content: 10 to 50% by mass per 100% by mass of total sophorolipid (F) Content of dimeric sophorolipid: 0.1 to 40% by mass per 100% by mass of total sophorolipid.

4. A sophorolipid-containing composition according to any one of claims 1 to 3, wherein the water content is adjusted to 50% by mass, and the viscosity of the sophorolipid-containing composition at a temperature of -5°C after standing for 72 hours under -5°C conditions is 1490 mPa·s or more (TVB-10M viscometer, measurement time 1 minute).

5. A method for producing a sophorolipid-containing composition having the following characteristics (A) to (C), (A) Content of lactone-type sophorolipid: 45 to 81% by mass per 100% by mass of total sophorolipid (B) Content of oleate-diacetyllactone type sophorolipid: 58.7 to 91.8% by mass per 100% by mass of total lactone type sophorolipid. (C) Hexane extract content: 6% by mass or less on a dry weight basis; The manufacturing method comprises a step of culturing sophorolipid-producing yeast in a culture medium containing a hydrophobic substrate and a hydrophilic substrate. The hydrophobic substrate is a fatty acid and does not contain vegetable oil. The pH of the culture in the initial stages of cultivation is 4-5, and the pH of the culture is not controlled during the cultivation period. The aeration and stirring conditions during the culture period are characterized by being set so that the amount of oxygen supplied to the culture is 145 (l / hr) or more when converted to an apparent oxygen transfer capacity coefficient (kLa). A method for producing the sophorolipid-containing composition.

6. A method for producing a sophorolipid-containing composition having the following characteristics (A) to (C), (A) Content of lactone-type sophorolipid: 45 to 81% by mass per 100% by mass of total sophorolipid (B) Content of oleate-diacetyllactone type sophorolipid: 58.7 to 91.8% by mass per 100% by mass of total lactone type sophorolipid. (C) Hexane extract content: 6% by mass or less on a dry weight basis; The manufacturing method comprises a step of culturing sophorolipid-producing yeast in a culture medium containing a hydrophobic substrate and a hydrophilic substrate. The hydrophobic substrate is a vegetable oil with a melting point of 30°C or lower. During the culture period, adjust the pH of the culture to 4.5-5. A method for producing the sophorolipid-containing composition, characterized in that the aeration and stirring culture conditions during the culture period are set such that the amount of oxygen supplied to the culture is 200 (l / hr) or more when converted to an apparent oxygen transfer capacity coefficient (kLa).

7. A method for producing a sophorolipid-containing composition having the following characteristics (A) to (C), (A) Content of lactone-type sophorolipid: 45 to 81% by mass per 100% by mass of total sophorolipid (B) Content of oleate-diacetyllactone type sophorolipid: 58.7 to 91.8% by mass per 100% by mass of total lactone type sophorolipid. (C) Hexane extract content: 6% by mass or less on a dry weight basis; The above-mentioned manufacturing method includes a step of culturing sophorolipid-producing yeast in a culture medium containing a hydrophobic substrate and a hydrophilic substrate. The hydrophobic substrate is a vegetable oil with a melting point of 30°C or lower. The pH of the culture in the initial stages of cultivation is 4-5, and the pH of the culture is not controlled during the cultivation period. A method for producing a sophorolipid-containing composition, characterized by setting the aeration and stirring culture conditions during the culture period so that the amount of oxygen supplied to the culture is 145 (l / hr) or less when converted to an apparent oxygen transfer capacity coefficient (kLa).

8. A method for producing a sophorolipid-containing composition having the following characteristics (A) to (C), (A) Content of lactone-type sophorolipid: 45 to 81% by mass per 100% by mass of total sophorolipid (B) Content of oleate-diacetyllactone type sophorolipid: 58.7 to 91.8% by mass per 100% by mass of total lactone type sophorolipid. (C) Hexane extract content: 6% by mass or less on a dry weight basis; The above-mentioned manufacturing method includes a step of culturing sophorolipid-producing yeast in a culture medium containing a hydrophobic substrate and a hydrophilic substrate. The hydrophobic substrate contains vegetable oil and fatty acids with a melting point of 30°C or lower. The proportion of free fatty acids in the total amount of vegetable oils with a melting point of 30°C or lower contained in the culture medium is 20% by mass or more, The pH of the culture in the initial stages of cultivation is 4-5, and the pH of the culture is not controlled during the cultivation period. A method for producing a sophorolipid-containing composition, characterized by setting the aeration and stirring culture conditions during the culture period so that the amount of oxygen supplied to the culture is 145 (l / hr) or more when converted to an apparent oxygen transfer capacity coefficient (kLa).

Citation Information

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