Immobilized cell, preparation method thereof and preparation method of 2-O-alpha-D-glucopyranosyl-L-ascorbic acid

By immobilizing sucrose phosphorylase mutant cells, the cell stability is improved by inclusion-crosslinking method, the problems of difficulty in removing by-products and decreasing cell activity in the prior art are solved, and efficient and economical production of 2-O-α-D-glucopyranosyl-L-ascorbic acid is achieved.

CN120230742AActive Publication Date: 2025-07-01BINZHOU SANYUAN BIOLOGICAL TECH
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Patent Information

Application Number
CN202510724533.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-03
Publication Date
2025-07-01
Estimated Expiration
2045-06-03

AI Technical Summary

Technical Problem

In the production process of 2-O-α-D-glucopyranosyl-L-ascorbic acid, it is difficult to effectively remove by-products, and cell activity decreases, affecting economic benefits.

Method used

Sucrose phosphorylase mutant cells were immobilized by the embedding-crosslinking method, and sodium alginate embedding and polyethyleneimine-genipine composite crosslinking were used to improve the stability and reusability of the cells.

Benefits of technology

The high stability and acid resistance of immobilized cells were achieved, and the activity was maintained at more than 90% after continuous use of 10 batches, which significantly improved the production efficiency and economic benefits of 2-O-α-D-glucopyranosyl-L-ascorbic acid.

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Abstract

The invention belongs to the technical field of bioengineering, and particularly relates to an immobilized cell, a preparation method thereof and a preparation method of 2-O-alpha-D-glucopyranosyl-L-ascorbic acid. According to the method, sucrose phosphorylase mutant cells from Bifidobacterium pseudolongum are immobilized, so that the stability, the acid resistance and the reusability of the sucrose phosphorylase mutant cells are remarkably improved, sucrose and vitamin C are used as raw materials to produce 2-O-alpha-D-glucopyranosyl-L-ascorbic acid, and the activity is kept 90% or above after the sucrose phosphorylase mutant cells are continuously used for 10 batches. And the method has an important application value in the field of production of the 2-O-alpha-D-glucopyranosyl-L-ascorbic acid.
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Description

Technical Field

[0001] The present invention belongs to the technical field of bioengineering, and particularly relates to an immobilized cell, a preparation method thereof, and a preparation method of 2-O-α-D-glucopyranosyl-L-ascorbic acid. Background Art

[0002] Disclosing the information of this background art section is only intended to enhance the understanding of the overall background of the present invention, and is not necessarily regarded as an admission or any form of implication that this information constitutes the prior art already known to those of ordinary skill in the art.

[0003] 2-O-α-D-glucopyranosyl-L-ascorbic acid (AA-2G) is a glycoside derivative of L-ascorbic acid (L-AA, also known as vitamin C) with significantly improved stability. This compound and its preparation technology were first jointly developed by the Chemical Research Institute of Hayashibara Co., Ltd. in Japan and the Department of Pharmacy of Okayama University in Japan in 1990, and is obtained by replacing the C2 hydroxyl group of L-ascorbic acid with a glucosyl group. Since C2 and C3 in the L-ascorbic acid structure are enediol structures, it has extremely strong reducibility and is extremely unstable under conditions such as oxygen, metal ions, light, and alkalinity, which limits its industrial application. While 2-O-α-D-glucopyranosyl-L-ascorbic acid itself does not have reducibility and is not prone to oxidation reactions, it has better stability compared to L-ascorbic acid. Moreover, through the hydrolysis of α-glucosidase, it generates L-ascorbic acid and glucose, exerting the same reducibility and antioxidant properties as L-ascorbic acid. At the same time, it also prolongs the action duration of L-ascorbic acid. Therefore, it is a good substitute for L-ascorbic acid.

[0004] The prior art provides the application of sucrose phosphorylase or its mutants in the production process of 2-O-α-D-glucopyranosyl-L-ascorbic acid. The production technology using sucrose phosphorylase will produce by-products with a structure similar to 2-O-α-D-glucopyranosyl-L-ascorbic acid and lower stability than 2-O-α-D-glucopyranosyl-L-ascorbic acid, which are difficult to remove in the downstream separation and purification process; the existing technical solutions based on mutants have higher conversion rates of L-ascorbic acid and higher product purities of 2-O-α-D-glucopyranosyl-L-ascorbic acid. In order to improve economic efficiency, the whole cells after the reaction are separated and sucrose and vitamin C are used again as substrates to produce 2-O-α-D-glucopyranosyl-L-ascorbic acid, and it is found that these cells have almost no activity. Summary of the Invention

[0005] In order to overcome the above problems and improve economic efficiency, the present invention provides an immobilized cell, a preparation method thereof, and a preparation method of 2-O-α-D-glucopyranosyl-L-ascorbic acid. Through the immobilization of cells, it can be reused in multiple batches as a catalyst, which has extremely high application value for the industrial production of 2-O-α-D-glucopyranosyl-L-ascorbic acid. To achieve the above objectives, the present invention provides the following technical solutions: In the first aspect of the present invention, a preparation method of an immobilized cell is provided. The cell immobilization is carried out by an embedding-crosslinking method. Specifically, sodium alginate is used for embedding, and polyethyleneimine-glutaraldehyde is used for composite crosslinking; it includes the following steps: S1, preparing microspheres: suspending the wet cells of the sucrose phosphorylase mutant in water, mixing them with a sodium alginate solution, then adding carboxymethyl chitosan and cellulose nanocrystals, continuing to stir well to obtain a mixed solution, and then dropping the mixed solution into a CaCl2 solution and magnetically stirring for solidification; collecting the microspheres; In one or more embodiments of the present invention, the nucleotide sequence of the sucrose phosphorylase mutant is as shown in SEQ ID NO.1, and the amino acid sequence is as shown in SEQ ID NO.2; S2, polyethyleneimine-genipin composite crosslinking: adding the microspheres obtained in S1 into an aqueous polyethyleneimine solution, magnetically stirring, and then collecting the microspheres; then adding the microspheres into a genipin solution, magnetically stirring, and collecting the microspheres again to obtain the product.

[0006] In step S1, the mass ratio (m / m) of the wet cells to sodium alginate added is 1:0.5 - 1:2, and the optimal ratio is 1:1; the mass ratio (m / m) of the wet cells to carboxymethyl chitosan added is 1:0.5 - 1:2, and the optimal ratio is 1:1; the mass ratio (m / m) of the wet cells to cellulose nanocrystals added is 15:3 - 15:15, and the optimal ratio is 15:8.

[0007] In step S2, the mass ratio (m / m) of the microspheres to polyethyleneimine added is 15:1 - 5:1, and the optimal ratio is 10:1; the mass ratio (m / m) of the microspheres to genipin added is 15:1 - 5:1, and the optimal ratio is 10:1. In the preparation method provided by the present invention, adding carboxymethyl chitosan can improve the cell embedding effect, and adding cellulose nanocrystals can make the immobilized microspheres have better strength and are not easily broken.

[0008] The present invention improves the crosslinking effect through composite crosslinking; through comparative experiments, it is found that the immobilized cells obtained by polyethyleneimine-genipin composite crosslinking have better stability than other composite crosslinking schemes.

[0009] In the second aspect of the present invention, there is provided an immobilized cell of a genetically engineered bacterium of a sucrose phosphorylase mutant prepared by the method for preparing the immobilized cell.

[0010] In the third aspect of the present invention, there is provided a recombinant sucrose phosphorylase bacterium comprising the immobilized cell of the genetically engineered bacterium of the sucrose phosphorylase mutant described in the second aspect.

[0011] In the fourth aspect of the present invention, there is provided the use of the immobilized cell of the genetically engineered bacterium of the sucrose phosphorylase mutant described in the second aspect or the recombinant sucrose phosphorylase bacterium described in the third aspect in the preparation of 2-O-α-D-glucopyranosyl-L-ascorbic acid.

[0012] In the fifth aspect of the present invention, there is provided a method for preparing 2-O-α-D-glucopyranosyl-L-ascorbic acid, comprising: using the immobilized cell of the genetically engineered bacterium of the sucrose phosphorylase mutant as a catalyst, using sucrose and vitamin C as substrates, and pure water as a reaction medium to form a reaction system, and reacting to obtain 2-O-α-D-glucopyranosyl-L-ascorbic acid; wherein, the immobilized cell of the genetically engineered bacterium of the sucrose phosphorylase mutant is the recombinant sucrose phosphorylase bacterium described in the third aspect.

[0013] In one or more embodiments, the amount of the catalyst is 5 g / L to 45 g / L based on the total weight of the immobilized cells, the final concentration of the substrate sucrose is 1.2 M to 1.4 M, preferably 1.3 M; the final concentration of the substrate vitamin C is 1.1 M to 1.3 M, preferably 1.2 M.

[0014] The beneficial effects of the present invention are as follows: By immobilizing the mutant cells of sucrose phosphorylase derived from Bifidobacterium pseudolongum ( Bifidobacterium pseudolongum ), the stability, acid resistance and reusability of the cells are significantly improved. As a catalyst, using sucrose and vitamin C as raw materials to produce 2-O-α-D-glucopyranosyl-L-ascorbic acid, the activity remains above 90% after continuous use for 10 batches. It has great economic benefits and application value in the production field of 2-O-α-D-glucopyranosyl-L-ascorbic acid. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] The accompanying drawings forming a part of the present invention are used to provide a further understanding of the present invention. The schematic embodiments and descriptions thereof of the present invention are used to explain the present invention and do not constitute an improper limitation to the present invention.

[0016] Figure 1 For immobilization E.coliReaction formula for the catalytic synthesis of 2-O-α-D-glucopyranosyl-L-ascorbic acid by BL21(DE3) / pET28a-BpSPase-W91A-V154T-H185G-A323H-N424L. Detailed implementation manners

[0017] It should be noted that the following detailed descriptions are all exemplary and are intended to provide further explanations of the present invention. Unless otherwise specified, all technical and scientific terms used in the present invention have the same meanings as those commonly understood by those of ordinary skill in the technical field to which the present invention belongs.

[0018] It should be noted that the terms used herein are only for describing specific implementation manners and are not intended to limit the exemplary embodiments according to the present invention. As used herein, unless the context clearly indicates otherwise, the singular forms are also intended to include the plural forms. In addition, it should also be understood that when the terms "comprise" and / or "include" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.

[0019] In order to enable those skilled in the art to more clearly understand the technical solution of the present invention, the technical solution of the present invention will be described in detail below in conjunction with specific embodiments.

[0020] The medium formulations used in the following examples are as follows: LB liquid medium: Tryptone 10 g / L, yeast extract 5 g / L, sodium chloride 10 g / L, the solvent is water, and the pH is 7.4.

[0021] Fermenter medium: Tryptone 15 g / L, yeast extract 12 g / L, sodium chloride 10 g / L, potassium dihydrogen phosphate 1.36 g / L, glycerol (glycerin) 15 g / L, dipotassium hydrogen phosphate trihydrate 2.28 g / L, ammonium sulfate 5 g / L, magnesium sulfate 0.375 g / L, antifoaming agent 1 g / L, and distilled water is added for dissolution.

[0022] The concentration of the product 2-O-α-D-glucopyranosyl-L-ascorbic acid was detected by high performance liquid chromatography (HPLC), and the analysis method was as follows: Column model: QS-C18, 5 μm, 4.6×250 mm; Mobile phase: 20 mM potassium dihydrogen phosphate solution, adjusted to pH = 2 with phosphoric acid, injection volume 10 μL; UV detector; Detection wavelength: 242 nm; Detection time: 10 min; Flow rate: 0.8 mL / min; Column temperature: 30 °C.

[0023] Sample treatment: Take 5 μL of the sample after the reaction is completed, dilute it 600 times with an aqueous solution, filter it through a 0.22 μm filter membrane, and perform HPLC detection.

[0024] Example 1, Cultivation and Fermentation of Strains Previously, a sucrose phosphorylase (BpSPase, NCBI accession number WP_129853343.1) derived from Bifidobacterium pseudolongum Bifidobacterium pseudolongum was obtained, and a mutant E.coli BL21(DE3) / pET28a-BpSPase-W91A-V154T-H185G-A323H-N424L (nucleotide sequence as SEQ ID NO.1, amino acid sequence as SEQ ID NO.2) was obtained through modification.

[0025] The recombinant sucrose phosphorylase mutant E.coli BL21(DE3) / pET28a-BpSPase-W91A-V154T-H185G-A323H-N424L was inoculated into an LB liquid medium containing kanamycin at a final concentration of 50 μg / mL and cultured at 37 °C for 9 h as a seed solution. Then, it was inoculated into a 50 L fermenter containing 30 L of fermentation medium at an inoculation amount of 3.5% (v / v). It was cultured at 37 °C and 500 rpm for about 3 - 4 h until the cell density OD reached 6 - 8. After the temperature of the fermenter was lowered to 25 °C, lactose at a final concentration of 10 g / L was added as an inducer, and then it was cultured at 25 °C and 500 rpm for 12 h. The cultured fermentation broth was centrifuged at 8000 rpm for 10 min to obtain wet cells containing the sucrose phosphorylase mutant E.coli BL21(DE3) / pET28a-BpSPase-W91A-V154T-H185G-A323H-N424L.

[0026] Example 2, Immobilization of Cells Experimental Group: Cell immobilization was carried out by the embedding-crosslinking method. Sodium alginate embedding: The wet bacterial cells harvested by centrifugation in Example 1 were washed twice with pure water, suspended in pure water (30 g / L), mixed with a 3% (m / V, 30 g of sodium alginate added to every 1000 mL of water) sodium alginate solution of the same volume as the bacterial suspension, stirred thoroughly for 20 min, then 1.5% (m / V, V is the volume of the mixture of the bacterial suspension and the sodium alginate solution) carboxymethyl chitosan and 0.8% (m / V, V is the volume of the mixture of the bacterial suspension and the sodium alginate solution) cellulose nanocrystals were added, and stirring was continued thoroughly for 20 min. Then, the mixture was slowly dropped into 0.1 M CaCl2 solution at a rate of 100 drops / min through a dropping device and magnetically stirred (100 rpm) for 1 h. Then, all the microspheres were collected with a sieve (pore size <1 mm) to obtain microspheres containing the sucrose phosphorylase mutant E. coli BL21(DE3) / pET28a-BpSPase-W91A-V154T-H185G-A323H-N424L, and washed 3 times with pure water.

[0027] Polyethyleneimine-genipin composite crosslinking (the composite crosslinking agent can make the crosslinking effect between the microspheres and the crosslinking agent better): The embedded microspheres were added to a 0.3% (m / V) aqueous polyethyleneimine solution at 30 g / L, magnetically stirred (100 rpm) for 1 h, then all the microspheres were collected with a sieve (pore size <1 mm) and washed 3 times with pure water. Then, the microspheres were added to a 0.3% (m / V) genipin solution at 30 g / L, magnetically stirred (100 rpm) for 4 h, then all the microspheres were collected with a sieve (pore size <1 mm) and washed 3 times with pure water. They were stored in sterile water at 4°C for later use.

[0028] Control group 1: Cell immobilization was carried out by the embedding-crosslinking method. Sodium alginate embedding: The wet bacterial cells harvested by centrifugation in Example 1 were washed twice with pure water, suspended in pure water (30 g / L), mixed with a 3% (m / V) sodium alginate solution of the same volume as the bacterial suspension, stirred thoroughly for 20 min, then the mixture was slowly dropped into 0.1 M CaCl2 solution at a rate of 100 drops / min through a dropping device and magnetically stirred (100 rpm) for 1 h. Then, all the microspheres were collected with a sieve (pore size <1 mm) to obtain microspheres containing the sucrose phosphorylase mutant E. coli BL21(DE3) / pET28a-BpSPase-W91A-V154T-H185G-A323H-N424L, and washed 3 times with pure water.

[0029] Polyethyleneimine-glutaraldehyde composite crosslinking: Polyethyleneimine-glutaraldehyde composite crosslinking: The embedded alginate microspheres were added to a 0.3% (m / V) polyethyleneimine solution, and magnetically stirred (100 rpm) for 1 h. Then all the microspheres were collected with a sieve (pore size <1 mm) and washed 3 times with pure water. Subsequently, the microspheres were added to a 1% (V / V) glutaraldehyde solution, magnetically stirred (100 rpm) for 5 min, then all the microspheres were collected with a sieve (pore size <1 mm) and washed 3 times with pure water. They were stored at 4 °C in sterile water for later use.

[0030] Control group 2: Cell immobilization was carried out by the embedding-crosslinking method. Chitosan embedding: The wet bacterial cells harvested by centrifugation in Example 1 were washed 2 times with pure water. The wet bacterial cells were suspended in pure water (30 g / L). 5% (m / V) chitosan equal in volume to the bacterial suspension was dissolved in 1% (V / V) acetic acid solution. The solution was mixed evenly and stirred vigorously for 20 min. Then the mixture was slowly dropped into 0.2 M NaOH solution at a rate of 100 drops / min through a dropping device and magnetically stirred (100 rpm) for 5 min for solidification. Then all the microspheres containing the sucrose phosphorylase mutant E.coli BL21(DE3) / pET28a-BpSPase-W91A-V154T-H185G-A323H-N424L were collected with a sieve (pore size <1 mm) and washed 3 times with pure water.

[0031] Polyethyleneimine-genipin composite crosslinking: The embedded microspheres were added to a 0.3% (m / V) aqueous polyethyleneimine solution, and magnetically stirred (100 rpm) for 1 h. Then all the microspheres were collected with a sieve (pore size <1 mm) and washed 3 times with pure water. Subsequently, the microspheres were added to a 0.3% (m / V) genipin solution, magnetically stirred (100 rpm) for 4 h, then all the microspheres were collected with a sieve (pore size <1 mm) and washed 3 times with pure water. They were stored at 4 °C in sterile water for later use.

[0032] Control group 3: Cell immobilization was carried out by the embedding-crosslinking method. Sodium alginate embedding: The wet bacterial cells harvested by centrifugation in Example 1 were washed twice with pure water, suspended in pure water (30 g / L), mixed evenly with a 5% (m / V) sodium alginate solution of the same volume as the bacterial suspension, stirred thoroughly for 20 min, then 1.5% (m / V, V is the volume of the mixture of the bacterial suspension and the sodium alginate solution) carboxymethyl chitosan and 1% (m / V, V is the volume of the mixture of the bacterial suspension and the sodium alginate solution) cellulose nanocrystals were added, and stirring was continued thoroughly for 20 min. Then the mixture was slowly dropped into 0.1 M CaCl2 solution at a rate of 100 drops / min through a dropping device and magnetically stirred (100 rpm) for 1 h. Then all the microspheres were collected with a sieve to obtain microspheres containing the sucrose phosphorylase mutant E. coli BL21(DE3) / pET28a-BpSPase-W91A-V154T-H185G-A323H-N424L, and washed 3 times with pure water.

[0033] Polyethyleneimine-genipin composite crosslinking (the composite crosslinking agent can make the crosslinking effect between the microspheres and the crosslinking agent better): The embedded microspheres were added to a 0.5% (m / V) aqueous solution of polyethyleneimine at 30 g / L, magnetically stirred (100 rpm) for 1 h, then all the microspheres were collected with a sieve and washed 3 times with pure water. Then the microspheres were added to a 0.5% (m / V) genipin solution at 30 g / L, magnetically stirred (100 rpm) for 4 h, then all the microspheres were collected with a sieve and washed 3 times with pure water. They were stored at 4°C in sterile water for later use.

[0034] Example 3, Application of immobilized cells in the catalytic synthesis of 2-O-α-D-glucopyranosyl-L-ascorbic acid Immobilized E.coli The reaction formula for the catalytic synthesis of 2-O-α-D-glucopyranosyl-L-ascorbic acid by BL21(DE3) / pET28a-BpSPase-W91A-V154T-H185G-A323H-N424L is as Figure 1 shown.

[0035] The amount of catalyst is 40 g / L based on the total weight of the immobilized cells, with a final concentration of 1.3 M (sucrose is added in two portions. 0.65 M of sucrose is added at the beginning of the reaction, and the remaining 0.6 M of sucrose is added after the reaction proceeds for 3 h). The substrate sucrose has a final concentration of 1.2 M, and the substrate vitamin C has a final concentration of 1.2 M. Pure water is used as the reaction medium. The pH of the reaction system is adjusted to 5.0 with 1 M NaOH, and the total volume of the reaction solution is 1 L. Reaction conditions: React at 40 °C and 300 rpm in the dark for 15 h. After the reaction ends, take 20 μL of the sample at the end of the reaction, dilute it 500 times, filter it through a 0.22 μm filter membrane, and perform HPLC detection. Then, collect the microspheres by sieving, and wash them 3 times with pure water. Then, put them into the same reaction system and repeat the same steps. A total of 10 batches of reactions are carried out, and the detection results of each batch are shown in Table 1. From the results, it can be seen that the immobilized cells in the experimental group can be reused for 10 batches, and the activity can still be maintained above 90%.

[0036] Table 1. Experimental results of the reuse of immobilized cells for 10 batches

[0037] In another embodiment, the amount of catalyst is 5 g / L based on the total weight of the immobilized cells, with a final concentration of 1.2 M of the substrate sucrose and a final concentration of 1.1 M of the substrate vitamin C. The pH of the reaction system is 5.0, and the total volume of the reaction solution is 1 L.

[0038] In another embodiment, the amount of catalyst is 45 g / L based on the total weight of the immobilized cells, with a final concentration of 1.4 M of the substrate sucrose and a final concentration of 1.3 M of the substrate vitamin C. The pH of the reaction system is 5.0, and the total volume of the reaction solution is 1 L.

[0039] Example 4. Storage stability test of immobilized cells To determine the stability of the immobilized cells during storage, the activity of the immobilized cells stored at 4 °C is detected at regular intervals. The control group is free cells. The reaction solution (10 mL) of the activity detection system: The final concentration of the substrate sucrose is 500 mM, the final concentration of vitamin C is 450 mM, the amount of catalyst is 10 g / L based on the total weight of the immobilized cells (the control group is the equivalent amount of free cells before immobilization), pure water is used as the reaction medium, and the pH of the reaction system is adjusted to 5.0 with 1 M NaOH. Reaction conditions: React at 40 °C and 500 rpm in the dark for 2 h on a reactor. After the reaction ends, take 20 μL of the sample at the end of the reaction, dilute it 200 times, filter it through a 0.22 μm filter membrane, and perform HPLC detection. The detection results are shown in Table 2. From the results, it can be seen that the storage stability of the immobilized sucrose phosphorylase mutant cells is significantly enhanced, and they can still maintain 73% of their activity until 25 days.

[0040] Table 2. Experimental Results of Storage Stability Test of Immobilized Cells

[0041] Example 5. Temperature Stability Test of Immobilized Cells To determine the temperature stability of the immobilized cells, the free cells and the immobilized cells were respectively placed in a water bath at 40 °C and 50 °C for 12 h, and then samples were taken for activity detection. The reaction solution (10 mL) of the activity detection system: the final concentration of the substrate sucrose was 500 mM, the final concentration of vitamin C was 450 mM, the catalyst dosage was 10 g / L based on the total weight of the immobilized cells (the control group was the equivalent amount of free cells before immobilization), pure water was used as the reaction medium, and the pH of the reaction system was adjusted to 5.0 with 1 M NaOH. Reaction conditions: After reacting for 2 h in the dark on a reactor at 40 °C and 500 rpm, 20 μL of the sample at the end of the reaction was taken after the reaction ended, diluted 200 times, filtered through a 0.22 μm filter membrane, and subjected to HPLC detection. The detection results are shown in Table 3. From the results, the temperature stability of the immobilized sucrose phosphorylase mutant cells was significantly improved compared with that of the free cells.

[0042] Table 3. Experimental Results of Temperature Stability Test of Immobilized Cells

[0043] Example 6. Acid Resistance Test of Immobilized Cells In the reaction of sucrose phosphorylase catalyzing the production of 2-O-α-D-glucopyranosyl-L-ascorbic acid from sucrose and vitamin C, sucrose phosphorylase is relatively sensitive to the reaction pH. The activity of sucrose phosphorylase decreases significantly under too acidic or too alkaline conditions, and vitamin C is not suitable in an alkaline environment and is easily oxidized. Therefore, the reaction pH should be slightly acidic. To determine the stability of the immobilized cells in an acidic environment, the free cells and the immobilized cells were respectively placed in different pH systems for activity detection. The reaction solution (10 mL) of the activity detection system: the final concentration of the substrate sucrose was 500 mM, the final concentration of vitamin C was 450 mM, the catalyst dosage was 10 g / L based on the total weight of the immobilized cells (the control group was the equivalent amount of free cells before immobilization), pure water was used as the reaction medium, and the pH of the reaction system was adjusted to 3.0, 4.0, and 5.0 with 1 M NaOH. Reaction conditions: After reacting for 2 h in the dark on a reactor at 40 °C and 500 rpm, 20 μL of the sample at the end of the reaction was taken after the reaction ended, diluted 200 times, filtered through a 0.22 μm filter membrane, and subjected to HPLC detection. The detection results are shown in Table 4. From the results, the acid resistance of the immobilized sucrose phosphorylase mutant cells was significantly improved compared with that of the free cells.

[0044] Table 4. Experimental Results of Acid Resistance Test of Immobilized Cells

[0045] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. For those skilled in the art, the present invention may have various modifications and variations. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. A method for preparing immobilized cells, characterized in that, It includes the following steps: S1, preparing microspheres: suspending the wet cells of the sucrose phosphorylase mutant in water, mixing it with the sodium alginate solution, then adding carboxymethyl chitosan and cellulose nanocrystals, continuing to stir thoroughly to obtain a mixed solution, and then dropping the mixed solution into the CaCl2 solution and magnetically stirring for solidification; Collecting the microspheres; S2, polyethyleneimine-genipin composite crosslinking: adding the microspheres obtained in S1 into the polyethyleneimine aqueous solution and magnetically stirring, then collecting the microspheres; then adding the microspheres into the genipin solution and magnetically stirring, and collecting the microspheres again to obtain the product.

2. The preparation method of the immobilized cells according to claim 1, characterized in that, In step S1, the nucleotide sequence of the sucrose phosphorylase mutant is as shown in SEQ ID NO.1, and the amino acid sequence is as shown in SEQ ID NO.

2.

3. The immobilized cells of the sucrose phosphorylase mutant genetically engineered bacteria prepared by the method for preparing immobilized cells as claimed in claim 1.

4. A recombinant bacterium of sucrose phosphorylase, characterized in that, Containing the immobilized cells of the sucrose phosphorylase mutant genetically engineered bacteria as claimed in claim 3.

5. The application of the sucrose phosphorylase recombinant bacteria as claimed in claim 4 in the preparation of 2-O-α-D-glucopyranosyl-L-ascorbic acid.

6. A method for preparing 2-O-α-D-glucopyranosyl-L-ascorbic acid, characterized in that, It includes: Using the immobilized cells of the sucrose phosphorylase mutant genetically engineered bacteria as a catalyst, using sucrose and vitamin C as substrates, and pure water as a reaction medium to form a reaction system, and reacting to obtain 2-O-α-D-glucopyranosyl-L-ascorbic acid; Among them, the immobilized cells of the sucrose phosphorylase mutant genetically engineered bacteria are the sucrose phosphorylase recombinant bacteria as claimed in claim 4.

7. The preparation method of 2-O-α-D-glucopyranosyl-L-ascorbic acid according to claim 6, characterized in that, The dosage of the catalyst is 5 g / L - 45 g / L based on the total weight of the immobilized cells.

8. The preparation method of 2-O-α-D-glucopyranosyl-L-ascorbic acid according to claim 6, characterized in that, The final concentration of the substrate sucrose is 1.2 M - 1.4 M; the final concentration of the substrate vitamin C is 1.1 M - 1.3 M.

9. The preparation method of 2-O-α-D-glucopyranosyl-L-ascorbic acid according to claim 6, characterized in that, The dosage of the catalyst is 40 g / L based on the total weight of the immobilized cells; the final concentration of the substrate sucrose is 1.3 M; the final concentration of the substrate vitamin C is 1.2 M.

10. The preparation method of 2-O-α-D-glucopyranosyl-L-ascorbic acid according to claim 6, characterized in that, Reaction conditions: reacting at 40 °C, 300 rpm in the dark for 15 h.

Citation Information

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