Method for the diastereomeric pure preparation of DL / LD-methionylmethionine

The method addresses the issues of low bulk density and flammability in DL/LD-methionylmethionine by cyclization and epimerization, resulting in a product with improved handling and safety for aquaculture use.

JP7729893B2Active Publication Date: 2025-08-26EVONIK OPERATIONS GMBH
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Patent Information

Application Number
JP2023540454
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-12-30
Filing Date
2021-12-23
Publication Date
2025-08-26
Estimated Expiration
2041-12-23

AI Technical Summary

Technical Problem

Existing methods for preparing DL/LD-methionylmethionine result in products with an undesirable ratio of the less soluble DLLD-Met-Met diastereomer, leading to issues like low bulk density, poor flowability, and flammability, and high water solubility, which are problematic for use in aquaculture.

Method used

A method involving cyclization and epimerization of DD/LL-methionylmethionine to produce DL/LD-methionylmethionine diketopiperazine (DLLD-DKP) followed by hydrolysis, achieving a higher proportion of DLLD-Met-Met and improved handling and safety properties.

Benefits of technology

The method yields a product with a significantly higher proportion of DLLD-Met-Met, enhancing bulk density, flowability, and safety, reducing water solubility, making it suitable for aquaculture applications.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates in particular to a process for the preparation of DL / LD-methionine diketopiperazine (I), characterized in that an aqueous solution or suspension containing DD / LL-methionylmethionine, having a pH between 3 and 7, measured at 20° C. using a pH electrode, is reacted at a temperature between 150 and 220° C., preferably between 170 and 210° C., until an aqueous solution or suspension is produced which contains a proportion of DL / LD-methionine diketopiperazine of at least 30 mol %, preferably 50 mol %, in particular 60 mol %, based on the total content of DL / LD- and DD / LL-methionine diketopiperazines in the reaction mixture, said process forming part of an overall process for the preparation of DL / LD-methionylmethionine, which is obtained by hydrolysis from the initially produced DL / LD-methionine diketopiperazine (I). TIFF2024504577000009.tif26150
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Description

[Technical Field]

[0001] introduction The present invention relates to a process for the diastereomeric pure preparation of DL / LD-methionylmethionine from DD / LL-methionylmethionine by cyclization and epimerization to give DL / LD-2,6-bis(methionyl)-1,4-diketopiperazine (I, meso-methionine-DKP, meso-met-DKP) and subsequent hydrolysis. "Diastereomeric pure" and "essentially diastereomeric pure" are understood in this context to mean a product containing at least 90 mol %, preferably at least 95-97 mol %, of the desired DL / LD diastereomer, based on the total content of methionylmethionine (Met-Met) present.

[0002] [ka]

[0003] WO2010043558 discloses a method for the preparation of methionylmethionine (Met-Met), a homologous dipeptide of DL-methionine that is increasingly used primarily as a high-value methionine source for the feeding of fish and crustaceans kept in aquaculture.

[0004] Due to its two stereogenic centers (two asymmetric carbon atoms), the product exists in the form of two diastereomers, DL,LD-Met-Met and DD,LL-Met-Met, i.e., two enantiomeric pairs of configurational isomers, both of which are virtually equally well utilized by animals but have significantly different physical properties that can lead to certain problems in practical handling.

[0005] The two diastereomers were found to form different crystal structures: DLLD-Met-Met formed spheres in the final product precipitate, while DDLL-Met-Met crystallized as needles, which is associated with different fluidity and aggregation tendencies, as well as different solubilities.

[0006] DLLD-Met-Met at room temperature has a water solubility of just 0.4 g / l, while the water solubility of DDLL-Met-Met is significantly higher at 21.0 g / l. However, high water solubility is rather disadvantageous for use in aquaculture, as it can result in loss of valuable substances as a result of leaching from the feed pellets. Products from the preparation method according to WO2010043558 typically have a DLLD- / DDLL-Met-Met ratio of 60 / 40. Therefore, products with a significantly higher proportion of DLLD-Met-Met are desirable. In addition, products known to date have a maximum yield of 500 kg / m 3 It exhibits a relatively low bulk density of 1.0, a very fair to relatively poor flowability of 3 (satisfactory) to 5 (poor), and a relatively low minimum ignition energy of MIE<3 mJ, and is therefore relatively flammable; therefore, these properties also appear to require improvement.

[0007] The synthesis of 2,5-diketopiperazine proceeding from methionine methyl ester has been disclosed since 1972 in German Patent No. 2261926, which discloses that heating the isopropyl ester of methionine produces 3,6-bis[2-(methylthio)ethyl]-2,5-piperazinedione (methionine diketopiperazine, DKP). A publication by Baker, D.H. et al. (Journal of Nutrition, volume 114, no. 2, 1984, pages 292-297) also describes this method for preparing diketopiperazine. However, the use of methionine isopropyl ester as a starting material is extremely expensive and therefore uneconomical.

[0008] assignment The problem addressed by the underlying invention was therefore to provide a method for the preparation of DLLD,DDLL-Met-Met quality having a significantly higher proportion of DLLD-Met-Met based on the total amount of diastereomers compared to prior art products, as well as to provide a product which is intended to additionally have maximally improved handling and safety-related properties compared to previous products.

[0009] Description of the Invention The stated problem is solved by the present invention since only the poorly soluble enantiomeric pair, DLLD-Met-Met, is substantially isolated, and the unwanted DLLD-Met-Met is converted back directly to the precursor DKP again and simultaneously epimerized in the process.

[0010] Therefore, the fundamental part of the solution to the above-mentioned problem is, according to the present invention, the DL / LD-methionine diketopiperazine (I) [ka] 1. A method for the preparation of The method comprises reacting an aqueous solution or suspension containing DD / LL-methionylmethionine, having a pH of 3 to 7, preferably 4 to 6, and particularly about 5, as measured using a pH electrode at 20°C, at a temperature of 150 to 220°C, preferably 170 to 210°C, until an aqueous solution or suspension containing at least 30 mol%, preferably 50 mol%, and particularly 60 mol%, of DL / LD-methionine diketopiperazine, based on the total content of DL / LD- and DD / LL-methionine diketopiperazines in the reaction mixture, is produced (see Examples 3 to 11). This can then be hydrolyzed to give the corresponding methionylmethionine isomer mixture. A higher pH value above 9 or a lower pH value below 3 leads to a lower yield or a less favorable final DL / LD / DD / LL-DKP ratio, as shown in Comparative Examples 1 and 2.

[0011] In a study carried out, for example, a mother liquor containing essentially exclusively DDLL-Met-Met, containing sodium sulfate from an industrial Met-Met process according to WO 2010043558, was heated to a temperature above 170°C and maintained for approximately 1 hour. At pH 5, not only was DKP quantitatively produced, but surprisingly, the expected epimerization of DDLL-DKP (>95%) was also observed simultaneously, yielding a mixture of DLLD-DKP / DDLL-DKP with a ratio of approximately 60 / 40 (especially Example 10). This surprising epimerization of the DKP stereocenters forms the basis for returning the DKP thus obtained, after solid / liquid separation, to existing processes for converting DKP to Met-Met. In parallel, a sodium sulfate-containing waste stream with significantly reduced TOC / COD (ratio of total organic carbon to chemical oxygen demand) loads was produced. The reduction in the TOC / COD load of the wastewater stream occurs as a result of the significantly lower solubility of DKP compared to Met-Met.

[0012] Such a process is preferably carried out so that the total concentration of DL / LD- and DD / LL-methionylmethionine equivalents in the form of DL / LD- and DD / LL-methionine diketopiperazine in the reaction mixture at the end of the reaction is in the range of 0.1% to 18% by weight, particularly preferably in the range of 1% to 15% by weight. However, it is simplest and most advantageous to operate the process at a concentration of about 3% by weight, since this can be achieved without additional energy expenditure for concentration, and yet a sufficient amount of DKP (and therefore TOC) can be isolated from the waste stream.

[0013] The reaction is preferably carried out at a temperature of 175-210°C, which has the advantage that the reaction can be carried out within a reaction time that is reasonably achievable industrially, but further increases in temperature beyond this are limited by the concomitant decomposition of the methylthio groups.

[0014] In addition, in the process according to the invention, DD / LL-methionylmethionine-containing aqueous solutions or suspensions may be used which already contain DL / LD-methionylmethionine, in particular in a proportion of DL / LD-methionylmethionine of approximately up to 30 mol %, based on the total content of DD / LL- and DL / LD-methionylmethionine, which is advantageous because, depending on the process conditions, batches can also be obtained which contain somewhat higher proportions of DL / LD-methionylmethionine and can therefore be processed without problems.

[0015] The process according to the invention can be operated with a residence time of 30 to 120 minutes, preferably 60 to 90 minutes. In this case, according to Examples 10 and 11, it is even possible to obtain a DKP yield of 96 to 98%, simultaneously with a very favorable DKP final ratio of 60 / 40 or 53 / 47 DLLD / DDLL-DKP. This is particularly surprising, since the prior art process used for comparison (WO 2010 / 043558, p. 45a, Comparative Example 12, Table 1) requires a significantly longer reaction time of 6 hours and leads to poorer results both in terms of DKP yield (51%) and final DKP ratio DLLD / DDLL-DKP (46 / 54) (see below).

[0016] In contrast to the present invention, WO 2010 / 043558 describes the following steps: i) General formula II [ka] [In the formula, The groups R1 and R2 in the urea derivatives IIa, IIb, IIc, IId, IIe, IIf and IIg are defined as follows: IIa:R 1 =COOH, R 2 =NHCONH2 IIb:R 1 =CONH2, R 2 =NHCONH2 IIc:R 1 =CONH2, R 2 =NH2 IId:R 1 -R 2 =-CONHCONH- IIe:R 1 =CN, R 2 =OH IIf:R 1 =CN, R 2 =NH2 IIg:R 1 ==O,R 2 =H] by converting the urea derivative of formula III [ka] providing a diketopiperazine of ii) converting the diketopiperazine to DL-methionyl-DL-methionine

[0013] Alternative embodiments of the methods according to the invention described herein are disclosed, including Methods A, B, C, and D shown in Scheme 3 of WO2010043558. In these methods, diketopiperazine (III) is produced as an intermediate.

[0017] Here, the conversion of the urea derivative to give the diketopiperazine is preferably carried out at a temperature of 50°C to 200°C, preferably 100°C to 180°C, particularly preferably 140°C to 170°C.

[0018] In a preferred method, the urea derivative is converted to the diketopiperazine under pressure, preferably at a pressure of 3 to 20 bar, particularly preferably at a pressure of 6 to 15 bar. The urea derivative is preferably converted to the diketopiperazine in the presence of a base. In this case, the base is preferably selected from the group consisting of nitrogen-containing bases, NH4HCO3, (NH4)2CO3, KHCO3, K2CO3, NH4OH / CO2 mixtures, carbamates, alkali metal bases and alkaline earth metal bases.

[0019] In a further preferred method, the urea derivative is converted to the diketopiperazine by reaction with methionine, where a ratio of urea derivative to methionine of 1:100 to 1:0.5 is preferred.

[0020] In a further preferred method, diketopiperazine is converted to DL-methionyl-DL-methionine by acid hydrolysis.

[0021] In contrast to the above-mentioned method according to WO 2010 / 043558, the present invention does not aim at the direct conversion of the less desirable DD,LL-Met-Met diastereomer into the desired DL,LD-Met-Met diastereomer, but instead the decisive step according to the invention of simultaneous cyclization and epimerization of the DD,LL-Met-Met diastereomer proceeding to the DLLD-DKP mixture is surprisingly achieved by applying the above-mentioned reaction conditions. The DLLD-DKP mixture can then be hydrolyzed to the corresponding DLLD-Met-Met mixture in high yield. The yield in this case is significantly higher than in the previously cited method according to WO 2010 / 043558, and the formation of Met as a by-product is virtually eliminated.

[0022] A further subject of the present invention is a complete process for obtaining diastereoisomerically pure DL / LD-methionylmethionine (see FIG. 1 ), which comprises: a. Methionine hydantoin is converted with an alkali metal base to give a diastereomeric mixture of DL / LD-methionine diketopiperazine and DD / LL-methionine diketopiperazine (DLLD-DKP and DDLL-DKP); By concentrating or cooling the reaction solution from (ba), DLLD-DKP and DDLL-DKP from (a) are crystallized, c. The crystallized DLLD-DKP and DDLL-DKP are separated from the DKP mother liquor; d. the separated DLLD-DKP and DDLL-DKP are mixed with water, and the mixture is brought to a pH of 10-14, preferably 13, by adding an appropriate amount of MOH (M=alkali metal) at 20°C, measured using a pH electrode, and hydrolyzed at a temperature of 90-150°C with a residence time of 30-180 minutes to give the corresponding aqueous solution or suspension of a diastereomeric mixture of DL / LD-methionylmethionine alkali metal salt and DD / LL-methionylmethionine alkali metal salt; e. The pH of the solution or suspension from d., measured at 20°C, is lowered to 7 or less, preferably to 4 to 6, particularly preferably to 4.7 to 6.0, by adding an appropriate amount of acid (acidification); f. Evaporation of water and / or cooling is used to produce a suspension consisting of a solids fraction containing primarily DL / LD-methionylmethionine and a mother liquor containing primarily DD / LL-methionylmethionine (precipitation); The solids from gf are separated from the mother liquor, h. Alternatively, the solid fraction separated from step g. is washed and / or dried to obtain diastereoisomerically pure DL / LD-methionylmethionine; i. reacting the residual DD / LL-methionylmethionine-containing mother liquor from g. according to the above procedure (see also claim 1) so as to produce an aqueous solution or suspension containing a diastereomeric mixture of DL / LD-methionine diketopiperazine and DD / LL-methionine diketopiperazine having a proportion of DL / LD-methionine diketopiperazine of up to 60 mol %, based on the total content of DL / LD- and DD / LL-methionylmethionine equivalents in the reaction mixture, j. This is then recycled to step b. The overall method (see FIG. 1) is characterized by:

[0023] Separation of the diastereomeric enantiomeric pair can be achieved by fractional crystallization at temperatures above 50°C and Met-Met concentrations below 15%, preferably below 10%. Under these conditions, the DLLD-Met-Met enantiomeric pair can be selectively precipitated virtually exclusively. DDLL-Met-Met remains in solution to an extent of greater than 95%. Such separation is not possible with the starting product, the cyclic dipeptide DKP, which has a DLLD-DKP / DDLL-DKP ratio of 55 / 45.

[0024] Preferably, 0.9 to 1.5 molar equivalents, particularly preferably 1.0 to 1.2 molar equivalents of base are used in step d., based on the total content of DL / LD- and DD / LL-methionylmethionine equivalents in the reaction mixture. This procedure results in essentially quantitative hydrolysis of the DKP precursor to the dipeptide.

[0025] As bases used in step d., alkali metal hydroxides, particularly preferably NaOH or KOH, are preferred, since they have sufficiently high alkalinity and solubility, are relatively cheap and at the same time are available in high quality, and additionally are industrial chemicals which do not pose any problems with regard to any traces possibly remaining in the final product.

[0026] The acid used in step e. is preferably a strong mineral acid, such as phosphoric acid, hydrochloric acid, or sulfuric acid, especially sulfuric acid. When neutralized with NaOH or KOH, sulfuric acid produces the corresponding sodium or potassium sulfate, which proves to be particularly helpful in the isolation of the product DL / LD-methionylmethionine, since particularly easily filterable product crystals are produced, especially in the case of prior use of NaOH.

[0027] Cooling in step f. is preferably carried out at a temperature at least above 50° C. This has the effect of precipitating out any small amount of DDLL-Met-Met still present, meaning that only a proportion of less than 5% of the undesired diastereomer DDLL-Met-Met still remains in the product.

[0028] The method is preferably carried out so that the suspension produced in step f. contains a total content of DD / LL- and DL / LD-methionylmethionine of at least 1% by weight, but not more than 15% by weight, thereby achieving the production of relatively easily filterable crystals consisting mainly of DLLD-Met-Met.

[0029] Thus, separation of the enantiomeric pair can be advantageously achieved by fractional crystallization at temperatures above 50°C and Met-Met concentrations below 10%. Under these conditions, the DLLD-Met-Met enantiomeric pair can be selectively precipitated virtually exclusively. DDLL-Met-Met remains in solution to an extent of greater than 95%. As previously noted, such separation is not possible with the starting product, the cyclic dipeptide DKP, which has a ratio of DLLD-DKP / DDLL-DKP of approximately 55 / 45.

[0030] The solids separated in step g. can be further purified and / or dried, resulting in a powdered, substantially diastereoisomerically pure DL / LD-methionylmethionine that is directly suitable for use as an animal feed additive for aquaculture.

[0031] Accordingly, the present invention further provides a powdered, substantially diastereoisomerically pure DL / LD-methionylmethionine obtainable by one of the above-described methods of the invention, which is suitable for use as an animal feed additive for aquaculture.

[0032] Such powdered, substantially diastereoisomerically pure DL / LD-methionylmethionine-containing products have the following characteristics: a. a total content of DD / LL- and DL / LD-methionylmethionine of at least 97% by weight; b. at least 90 mol% DL / LD-methionylmethionine and at most 10 mol% DD / LL-methionylmethionine, preferably at least 95 mol% DL / LD-methionylmethionine and at most 5 mol% DD / LL-methionylmethionine, in each case based on the total content of DD / LL- and DL / LD-methionylmethionine; c. Maximum 1.0% by weight residual moisture; d. Maximum 2.0% by weight of sulfates (ash) and e. Particle size distribution with a median D50 of 80 to 300 μm, preferably 150 to 250 μm It has.

[0033] The product is particularly suitable for use as an animal feed additive for aquaculture, since the product is relatively insoluble in water and therefore little is lost as a result of leaching from pre-incorporated feed pellets.

[0034] Thus, the present invention further provides the corresponding use of substantially diastereoisomerically pure DL / LD-methionylmethionine as an animal feed additive for aquaculture. After solid / liquid separation and drying, highly pure AQUAVl® Met-Met is obtained with a diastereomeric ratio of DLLD / DDLL-Met-Met of ≥95 / ≤5. This novel product can be produced at a rate of only 500 kg / m 3 compared to the conventional DLLD / DLDLL-Met-Met product mixture, which is the standard product from WO 2010043558, of less than 600 kg / m 3 The new product has a bulk density significantly greater than 5~6Compared to conventional DLLD / DLDLL-Met-Met product mixtures, which generally have a flow grade of 3 or better (satisfactory to good) they also exhibit significantly improved flow properties, generally a flow grade of 3 or better (satisfactory to good) on a scale of 1 to 6 as measured using a standard orifice cylinder (see analytical methods in the Examples). In addition, the minimum ignition energy of the products according to the invention at room temperature is above 10 mJ, and even at 100°C it is still above 3 mJ and therefore can no longer be classified as particularly sensitive to ignition. This is a great advantage for the safe handling of the products and the costs involved therefor. [Brief explanation of the drawings]

[0035] [Figure 1] FIG. 1 shows a scheme for the preparation of DL / LD-methionylmethionine, the scheme comprising the following steps: a. reaction of methionine hydantoin with an alkali metal base to give DLLD / DDLL-Met-DKP; b. crystallization of DLLD / DDLL-Met-DKP; c. separation of DLLD / DDLL-Met-DKP, c1. discharge of DKP mother liquor, c2. wastewater treatment; d. separation of DLLD / DDLL-Met to DLLD / DDLL-Met-Met. - alkaline hydrolysis of DDLL-DKP; e. acidification and; f. precipitation of DLLD-Met-Met; g. isolation of solid DLLD-Met-Met; h. washing and / or drying of DLLD-Met-Met, h1. bagging of DLLD-Met-Met; i. reaction and epimerization of DDLL-Met in the DDLL-Met-containing mother liquor to give DLLD / DDLL-Met-DKP; j. recycling of DLLD / DDLL-Met-DKP to step c. [Figure 2]1 shows the pH as a function of temperature measured in a DD,LL-methionylmethionine-containing solution for the preparation of DL,LD-methionine diketopiperazine, the solution having a DD,LL-methionylmethionine content of 3% by weight and therefore used in Industrial Example 10. This solution did not contain any KHCO3, in contrast to Comparative Example 12, which was carried out according to WO 2010043558, page 45a). The omission of a further additive (KHCO3) is an additional major advantage over the method from the WO document.

[0036] Example Unless otherwise stated, the examples were carried out according to the general method description and each relevant information in Table 1.

[0037] Analysis method Bulk density determination Bulk density in kg / L was determined using a 1 L graduated cylinder by filling the 1 L graduated cylinder exactly to the 1000 ml mark with bulk material and measuring by weighing the contents resulting in direct bulk density.

[0038] Determination of flow characteristics Flow characteristics (flowability) were determined by assigning a flow grade of 1 (very good) to 6 (unsatisfactory) based on conventional measurements of flowability using standard glass orifice vessels. These vessels had a cylindrical shape with a conical bottom (similar to a silo) with a centrally located orifice of different widths, ranging from narrow for grade 1 to relatively wide for grade 6. Measurements began with the narrowest orifice vessel, the orifice closed with a glass plate, the vessel filled with bulk material, the glass plate removed, and the flow was assessed. A grade of 1 was given only if substantial unrestrained flow of the bulk material could be observed. If this was not the case, the next wider orifice vessel was used, and a grade of 2 was assigned in the case of complete flow; if this was again not the case, the next wider orifice vessel was used, and so on, up to the widest orifice vessel (vessel 5). Only materials that could not flow unrestrained from this orifice vessel were given a grade of 6. All standard orifice containers had a cylindrical height of 70 mm and an internal width of 36 mm. The orifices had widths of 2.5 mm for container 1, 5 mm for container 2, 8 mm for container 3, 12 mm for container 4, and 18 mm for container 5.

[0039] pH determination Unless otherwise indicated, pH was measured using a glass electrode in aqueous solutions at a temperature of 20°C.

[0040] Quantitative determination of concentrations of Met, Met-Met, methionyl-DKP, etc. was performed against external standards using standard HPLC methods.

[0041] General method for DKP synthesis After adjusting the pH to 4.5 or 5 using either sulfuric acid or caustic soda, the aqueous solution of the dipeptide Met-Met was heated to 150–180 °C for a period of 30–120 min. After cooling to 70 °C, the pressure was reduced to obtain an aqueous suspension. After filtering off the filter cake and washing with water, a solid was obtained that primarily contained DKP, consisting of a mixture of DLLD-DKP and DDLL-DKP in a ratio of 50 / 50 or greater in the most favorable cases, regardless of the stereochemical configuration of the starting Met-Met.

[0042] Example 1 (pH Variations - Basic Conditions, Comparative Example) By adjusting the pH to 9.3 and otherwise proceeding according to the general method description, primarily methionine was already produced at a temperature of 140° C. Starting with a diastereomeric ratio of 36 / 64 DLLD / DDLL-Met-Met in the starting material, DKP was only obtained in 34% yield and a diastereomeric ratio of 57 / 43 DLLD / DDLL-DKP.

[0043] Example 2 (pH Variations - Acidic Conditions, Comparative Example) By adjusting the pH to 2.9 and otherwise proceeding according to the general method description, primarily methionine was already produced at a temperature of 140° C. Starting with the same diastereomeric ratio of 36 / 64 DLLD / DDLL-Met-Met in the starting material, DKP was only obtained in 60% yield and with a diastereomeric ratio of 36 / 64 DLLD / DDLL-DKP.

[0044] Examples 3 to 5 (Variations in Temperature, Reaction Time, and pH) Example 3 The mixture was heated to 150°C and held at this temperature for 120 min, then held at 120°C and pH 9.0 for 60 min, and otherwise proceeded according to the general procedure to afford DKP in 53% yield with significant epimerization. The diastereomeric ratio shifted from 15 / 85 DLLD / DDLL-Met-Met to 60 / 40 DLLD / DDLL-DKP.

[0045] Example 4 In contrast, heating the mixture to 150 °C and holding at this temperature and pH 4.8 for 120 min, otherwise proceeding according to the general method description, afforded DKP in 80% yield with significantly less epimerization: the diastereomeric ratio shifted from 15 / 85 DLLD / DDLL-Met-Met to 25 / 75 DLLD / DDLL-DKP.

[0046] Example 5 In contrast, heating the mixture to 160 °C and holding at this temperature for 60 min, otherwise proceeding as described in the general procedure, afforded DKP in 72% yield with significant epimerization: the diastereomeric ratio shifted from 15 / 85 DLLD / DDLL-Met-Met to 39 / 61 DLLD- / DDLL-DKP.

[0047] Example 6 1.47 kg of an aqueous solution containing 2.9% DDLL-Met-Met (151 mmol) and 0.9% DLLD-Met-Met (50 mmol) was adjusted to pH 4.5 by adding 10% NaOH. The solution was then heated as rapidly as possible to a temperature of 170 °C (7 barg) and maintained at this temperature for 90 minutes. When Met-Met was no longer analytically detectable, the reaction mixture was cooled to 100 °C by reducing the pressure. The resulting suspension was further cooled to 70 °C under vacuum. The resulting solid precipitate was filtered off, and the filter cake was washed with 150 g of water to obtain 98 g of brownish crystals. 43 g of a DKP mixture (161 mmol, 80% yield) composed of both diastereomers was isolated after drying with a DLLD- / DDLL-DKP ratio of 48 / 52 and a chemical purity of 98%.

[0048] Examples 7 and 8 (reaction time variations) Shortening the reaction time to 60 min and otherwise proceeding according to the method description of Example 6 gave a lower yield of 73% DKP with a diastereomeric ratio of 52 / 48 DLLD / DDLL-DKP, and a 30 min reaction time gave a 71% yield with a diastereomeric ratio of 48 / 52.

[0049] Example 9 (Increasing reaction temperature) The temperature was further increased to 175°C and held at this temperature and pH 4.5 for 30 minutes, otherwise proceeding according to the method description of Example 6, again affording a somewhat higher yield of DKP of 77% compared to Example 8, with a diastereomeric ratio of 38 / 62 DLLD- / DDLL-DKP.

[0050] Example 10 (pH 6.0, reaction temperature 175°C) As in Example 6, an aqueous solution (Met-Met mother liquor from an industrial production plant) with a 2.7% Met-Met content, a 12 / 88 Met-Met starting ratio DLLD / DDLL, and a pH of 6.0 was heated as rapidly as possible to a temperature of 175°C and held at this temperature for 90 minutes. Otherwise, the procedure followed the method description of Example 6. An even higher yield of 96% and, at the same time, a very favorable diastereomeric ratio of DLLD- / DDLL-DKP was obtained.

[0051] Example 11 (pH 4.7, reaction temperature 175°C) As in Example 10, an aqueous solution (Met-Met mother liquor from an industrial production plant) with a 3.3% Met-Met content, a 25 / 75 Met-Met starting ratio DLLD / DDLL, and a pH of 4.7 was heated as rapidly as possible to a temperature of 175°C and held at this temperature for 90 minutes. Otherwise, the procedure followed the method description of Example 6. An even higher yield of 98% and, at the same time, a very favorable diastereomeric ratio of DLLD- / DDLL-DKP was obtained.

[0052] Example 12 (pH variation, comparative example according to WO2010043558, page 45a) -"Racemization of DL / LD-methionylmethionine" 12.6 g (45.0 mmol) of DD / LL-methionylmethionine (0 / 100 Met-Met starting ratio DLLD / DDLL) together with 4.5 g (45.0 mmol) of KHCO was dissolved in 75 ml of water in a 200 ml Roth laboratory reactor and heated to 160°C with stirring. The pressure rose to 7 bar, and after 6 h at this temperature, the autoclave was cooled to 20°C in an ice bath, and the pH was determined to be pH=9.1 in the resulting suspension using a glass electrode. The suspension was then filtered, and the filtered solid was washed multiple times with water and dried in a drying cabinet at 50°C under reduced pressure. The isolated yield was 6.0 g (22.9 mmol) (51%) of bis[2-(methylthio)ethyl]-2,5-piperazinedione (III), yellowish-white crystals, >98% purity (HPLC), melting point 233-236 °C; diastereomeric ratio: 54:46 (DD / LL-III: meso-III). The wash water and mother liquor were combined and concentrated to a volume of 25 mL on a rotary evaporator at 40 °C. A moderate stream of CO2 was then introduced into the resulting solution until a pH of 6.0 was obtained, and a white solid precipitated. This solid was filtered off, washed with a small amount of cold water, and dried overnight at 50 °C in a vacuum drying cabinet. The isolated yield was 5.5 g (19.6 mmol) (44%) of DD / LL / DL / LD-methionylmethionine (I), a white solid, >98% purity (HPLC).

[0053] Example 13 (Hydrolysis of DLLD / DDLL-Met-DKP to DLLD / DDLL-Met-Met, etc.) The diastereomeric mixture of DLLD / DDLL-Met-DKP produced according to Examples 10 and 11 could be hydrolyzed to the corresponding mixture of DLLD / DDLL-Met-Met alkali metal salts according to steps e.-h. (see above and Figure 1). After appropriate acidification, e.g., with sulfuric acid to pH 4.5-5.6, DLLD-Met-Met precipitated as a solid, filtered off, washed, and dried. The DLLD-Met-Met thus obtained was consistently purified in a flow grade of 1-2, 600 kg / m 3The products exhibited a bulk density of >63 μm and a low dust content of about 10% below 63 μm. The minimum ignition energies found for these products were above 10 mJ at room temperature and remained above 3 mJ at 100°C.

[0054] The mother liquor from the filtration, in which DDLL-Met-Met remained in solution, could then be fed to the cyclization and epimerization step i.

[0055] [Table 1-1]

[0056] [Table 1-2]

Claims

1. DL / LD-Methionine Diketopiperazine (I) 【Chemical 1】 1. A method for the preparation of 1. A method for producing a DD / LL-methionylmethionine-containing aqueous solution or suspension having a pH of 4-7 measured using a pH electrode at 20°C, at a temperature of 150-220°C until an aqueous solution or suspension containing DL / LD-methionine diketopiperazine in a proportion of at least 30 mol %, based on the total content of DL / LD- and DD / LL-methionine diketopiperazines in the reaction mixture, is produced.

2. 2. The method of claim 1, wherein the reaction is carried out at a pH of 4 to 6.

3. 3. The process according to claim 1, wherein the reaction is carried out at a temperature of from 175 to 210°C.

4. 3. The process according to claim 1 or 2, characterized in that the total concentration of DL / LD- and DD / LL-methionylmethionine equivalents in the form of DL / LD- and DD / LL-methionine diketopiperazine in the reaction mixture at the end of the reaction is in the range of 0.1% to 18% by weight.

5. 3. The method according to claim 1, wherein an aqueous solution or suspension containing DD / LL-methionylmethionine is used which already contains DL / LD-methionylmethionine.

6. 6. The process according to claim 5, characterized in that the aqueous solution or suspension used already contains DL / LD-methionylmethionine in a proportion of up to 30 mol %, based on its total content of DD / LL- and DL / LD-methionylmethionine.

7. 1. A process for obtaining diastereoisomerically pure DL / LD-methionylmethionine, comprising: a. Methionine hydantoin is converted with an alkali metal base to give a diastereomeric mixture of DL / LD-methionine diketopiperazine and DD / LL-methionine diketopiperazine (DLLD-DKP and DDLL-DKP); b. Concentrating or cooling the reaction solution from step a. causes the DLLD-DKP and DDLL-DKP from step a. to crystallize; c. separating the crystallized DLLD-DKP and DDLL-DKP from the DKP mother liquor; d. the separated DLLD-DKP and DDLL-DKP are mixed with water, the mixture is brought to a pH of 10-14 by adding an appropriate amount of alkali at 20°C, measured using a pH electrode, and hydrolyzed at a temperature of 90-150°C for a residence time of 30-180 minutes to give a corresponding aqueous solution or suspension of a diastereomeric mixture of DL / LD-methionylmethionine alkali metal salt and DD / LL-methionylmethionine alkali metal salt; e. The pH of the solution or suspension from step d., measured at 20°C, is lowered to 7 or less by the addition of an appropriate amount of acid; f. using water evaporation and / or cooling to produce a suspension consisting of a solids fraction containing primarily DL / LD-methionylmethionine and a mother liquor containing primarily DD / LL-methionylmethionine; g. the solids from f. are separated from the mother liquor; h. Alternatively, washed and / or dried to obtain diastereomerically pure DL / LD-methionylmethionine; i. reacting the residual DD / LL-methionylmethionine-containing mother liquor from g. in accordance with claim 1 to produce an aqueous solution or suspension containing a diastereomeric mixture of DL / LD-methionine diketopiperazine and DD / LL-methionine diketopiperazine having a proportion of DL / LD-methionine diketopiperazine of up to 60 mol %, based on the total content of DL / LD- and DD / LL-methionylmethionine equivalents in the reaction mixture; j. This is then recycled to step b. A method characterized by:

8. 8. The method of claim 7, wherein in step d., 0.9 to 1.5 molar equivalents of base are used, based on the total content of DL / LD- and DD / LL-methionylmethionine equivalents in the reaction mixture.

9. 9. The process according to claim 7 or 8, characterized in that in step d. an alkali metal hydroxide is used as the base.

10. 8. The method of claim 7, wherein in step e. a strong mineral acid is used.

11. 8. The method of claim 7, wherein in step f., the cooling is performed at a temperature of at least 50°C.

12. 8. The method of claim 7, wherein the suspension produced in step f. comprises a total content of DD / LL- and DL / LD-methionylmethionine of at least 1% by weight but not more than 15% by weight.

13. For use as an animal feed additive for aquaculture, with the following characteristics: a. a total content of DD / LL- and DL / LD-methionylmethionine of at least 97% by weight; b. at least 90 mol % DL / LD-methionylmethionine and at most 10 mol % DD / LL-methionylmethionine, in each case based on the total content of DD / LL- and DL / LD-methionylmethionine; c. a maximum of 1.0% by weight residual moisture; d. maximum 2.0% by weight sulfate (ash); and e. Particle size distribution with a median D50 of 80 to 300 μm A powdery diastereoisomerically pure DL / LD-methionylmethionine-containing product having the formula:

14. 14. Use of diastereoisomerically pure DL / LD-methionylmethionine according to claim 13 as an animal feed additive for aquaculture.

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