M88w mutant enzyme for preparing rebaudioside i and application thereof

By mutating the UGT76G1 enzyme with the M88W mutation, the efficiency of converting rebaudioside A to rebaudioside I was improved, solving the problem of low conversion efficiency and realizing efficient and economical production of rebaudioside I.

CN121427862BActive Publication Date: 2026-05-12成都圆大生物科技有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
成都圆大生物科技有限公司
Filing Date
2026-01-04
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

In existing technologies, the conversion efficiency of rebaudioside A to rebaudioside I is low, resulting in high raw material costs and failing to meet market demand.

Method used

The M88W mutant enzyme of UGT76G1 was used, and the methionine in the 88th amino acid sequence of UGT76G1 was mutated to tryptophan by site-directed mutagenesis, which improved the efficiency of catalyzing the conversion of rebaudioside A to rebaudioside I.

Benefits of technology

The catalytic efficiency is significantly improved, from the original 7% to at least 90%, and it can maintain a high catalytic effect in reaction systems of different scales, significantly reducing production costs.

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Abstract

The present application relates to the technical field of biological catalysis, and discloses an M88W mutant enzyme for preparing rebaudioside I and application thereof, wherein the enzyme is obtained by generating the following mutation on UGT76G1: M88W: the methionine in the 88th amino acid sequence of UGT76G1 is mutated into tryptophan; the enzyme can be applied to the preparation of RI with higher utilization value through RA in vitro conversion, and the conversion rate is higher than 90%, and the enzyme has significant catalytic activity. The mutant enzyme of UGT76G1 discovered in the present application has high activity and high catalytic efficiency, is simple to use, and is suitable for wide application.
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Description

Technical Field

[0001] This invention relates to the field of biocatalysis technology, specifically to an M88W mutant enzyme for preparing ribobandi glycoside I and its application. Background Technology

[0002] The statements in this section provide only background information relevant to the disclosure of this application and may not constitute prior art.

[0003] Rebaudioside I is a natural, calorie-free sweetener isolated from stevia (S. rebaudiana Morita). It is a type of steviol glycoside, with an English name of Rebaudioside I (RI). Its sweetness is approximately 200-300 times that of sucrose, and its sweetness is purer. The bitter aftertaste and licorice-like finish are significantly lower than rebaudioside A (RA) and some other steviol glycosides (such as stevioside). It is characterized by high sweetness and low calories, making it suitable for diabetics or those trying to lose weight. It is stable to heat, acids, and alkalis (it does not decompose below 200℃) and can be used in the baking, beverage, and other food industries. It is not broken down by human digestive enzymes, produces almost no calories, and is excreted unchanged through the kidneys after consumption. It poses no teratogenic or carcinogenic risk, and daily intake does not require strict limits, making it a promising candidate for food applications.

[0004] However, its extremely low content in natural stevia leaves constitutes the primary limitation to its commercial development. In typical dried stevia leaves, the total content of steviol glycosides is approximately 10%-20% (dry weight), while the content of ribobadiin I is usually only 0.2%-0.6% of the dry leaf weight, far lower than ribobadiin A (usually 3%-5%) and steviol glycosides (usually 5%-10%). Even in high-glycoside varieties selected through traditional breeding methods, the increase in ribobadiin I content is very limited. This naturally low abundance results in exceptionally high costs for large-scale isolation and purification of ribobadiin I directly from plant materials, making raw material supply unstable and unable to meet market demand.

[0005] Converting the higher-content rebaudioside A into the more valuable rebaudioside I is an effective method. Conventional methods use enzymes such as β-glucosidase for glycosylation modification, but the conversion process is cumbersome and inefficient, further reducing the utilization rate of the raw materials. A highly efficient biocatalyst determines the final yield of rebaudioside I; therefore, developing high-efficiency biocatalysts is of great value. Summary of the Invention

[0006] The purpose of this invention is to address the problem of low conversion efficiency in converting rebaudioside A to the more valuable rebaudioside I, and to provide an M88W mutant enzyme for preparing rebaudioside I and its application. A new UGT76G1 mutant was discovered, which catalyzes the conversion of rebaudioside A to rebaudioside I with an efficiency higher than 90%.

[0007] The technical solution of the present invention is as follows:

[0008] In one aspect, the present invention provides an M88W mutant enzyme for preparing riboflavin I, which is a mutant of UGT76G1, and the mutant has at least 80% similarity to UGT76G1.

[0009] Preferably, the mutant has at least 90% similarity to UGT76G1.

[0010] Preferably, the mutant is obtained by the following mutation of the original UGT76G1: M88W: the methionine in the 88th amino acid sequence of UGT76G1 is mutated to tryptophan.

[0011] Preferably, the mutation is caused by the site-directed mutagenesis primers shown in sequences SEQ ID NO.2 and SEQ ID NO.3.

[0012] Preferably, the amino acid sequence of the mutant is shown in SEQ ID NO.1.

[0013] Another aspect of the present invention provides the use of the enzyme for preparing rebaudioside I as described above in catalyzing the conversion of rebaudioside A to rebaudioside I.

[0014] According to a preferred embodiment, the catalysis is in vitro catalysis or in vivo catalysis.

[0015] Another aspect of the present invention provides a method for preparing riboflavin I, comprising the following steps:

[0016] A starting composition containing ribobadiidine A is contacted with a biocatalyst capable of converting ribobadiidine A into ribobadiidine I to prepare ribobadiidine I; the biocatalyst is an M88W mutant of UGT76G1, wherein the mutation of M88W is: the methionine in the 88th amino acid sequence of UGT76G1 is mutated to tryptophan.

[0017] The mutation was caused by site-directed mutagenesis primers shown in sequences SEQ ID NO.2 and SEQ ID NO.3.

[0018] According to a preferred embodiment, the biocatalyst is selected from high-purity substances, cell lysates, or whole-cell suspensions.

[0019] According to a preferred embodiment, the cells in the cell lysate or whole-cell suspension are microbial cells. For example, the microbial cells are Escherichia coli.

[0020] According to a preferred embodiment, the starting composition containing ribobadiol A is a plant extract or a pure substance. For example, it is a stevia extract.

[0021] According to a preferred embodiment, the content of the prepared ribobadiin I is 85%-99% of the content of ribobadiin A in the starting composition containing ribobadiin A.

[0022] Compared with existing technologies, the advantages of this invention are:

[0023] 1. An M88W mutant enzyme for preparing ribaodiidine I and its application. This invention fills the technical gap in in vitro culture of RI and lays the foundation for the industrial application of RI.

[0024] 2. An M88W mutant enzyme for preparing ribonucleoside I and its application. The enzyme activity of the mutated UGT76G1 enzyme catalyzing ribonucleoside I was significantly increased from the original 7% to at least 90%, an increase of 12.8 times, which is significant.

[0025] 3. An M88W mutant enzyme for preparing rebaudioside I and its application. In practical applications, whether it is a small system of 10 mL, a medium system of 100 mL, or a large system of 5 L, the enzyme of this application can exert a good catalytic conversion effect. The enzyme activity for catalyzing the conversion of rebaudioside A to rebaudioside I can remain stable and maintained at more than 90%. Attached Figure Description

[0026] Figure 1 A schematic diagram of the gene of a UDP-glycosyltransferase UGT76G1 constructed on the pETDuet plasmid;

[0027] Figure 2 A schematic diagram showing the results of polyacrylamide gel electrophoresis of the enzyme solution.

[0028] Figure 3 A schematic diagram showing the results of gel electrophoresis of the enzyme solution. Detailed Implementation

[0029] The specific embodiments listed in this invention are merely examples, and the invention is not limited to the specific embodiments described below. For those skilled in the art, any equivalent modifications and substitutions to the embodiments described below are also within the scope of this invention. Therefore, all equivalent transformations and modifications made without departing from the spirit and scope of this invention should be covered within its scope. Where specific conditions are not specified in the embodiments, conventional conditions or conditions recommended by the manufacturer shall apply. All reagents or instruments whose manufacturers are not specified are commercially available conventional products. To better illustrate this invention, numerous specific details are provided in the following detailed embodiments. Those skilled in the art should understand that this invention can be practiced even without certain specific details. In other embodiments, methods, means, equipment, and steps well known to those skilled in the art are not described in detail in order to highlight the main points of this invention.

[0030] Unless otherwise defined, all technical and scientific terms used herein have the same meanings as commonly understood by one of ordinary skill in the art. Unless otherwise specified, all units used in this specification are International Standard Units (SI), and all numerical values ​​and ranges appearing in this invention should be understood to include systematic errors unavoidable in industrial production.

[0031] The gene sequence of UDP-glycosyltransferase UGT76G1 was obtained from NCBI and artificially synthesized by a biotechnology company.

[0032] The features and performance of the present invention will be further described in detail below with reference to embodiments.

[0033] Example 1: Preparation of the UGT76G1 mutant

[0034] The gene for UDP-glycosyltransferase UGT76G1 was constructed in the pETDuet plasmid (purchased from EMD Biosciences (Novagen)) vector (e.g.) Figure 1Subsequently, the mutant plasmid was constructed using the Novizan MutExpress II Fast Mutagenesis Kit V2. Primers for site-directed mutagenesis were designed using the Novizan website. The designed primers are shown in Table 1 below. The target plasmid was amplified using the designed primers via Phanta Max Super-Fidelity DNA Polymerase technology. The amplified products and the original UGT76G1 gene were constructed into the pET32a plasmid vector, respectively, and then transformed into single E. coli DE3 (BL21) competent cells (purchased from Beijing Qingke Biotechnology Co., Ltd.). 70 μL of each culture was spread onto LB agar plates containing Ampicillin (Amp, 50 mg / L) using glass beads and incubated overnight at 37°C.

[0035] Table 1

[0036]

[0037] Recombinant product identification: Five single colonies cultured in LB solid plate medium were randomly selected and added to 1.5 mL or 2 mL centrifuge tubes containing 600 μL of LB liquid medium containing Amp antibiotic. The culture was incubated at 37℃ and 220 rpm for 5-6 h. When the bacterial solution became turbid, 100 μL was aliquoted and sent for sequencing. The remaining bacterial solution was stored at 4℃. The results of each group of mutant sequences were verified. If the mutant was identified correctly, the mutant strain was preserved using 60% glycerol (LB medium formula: 10 g / L tryptone, 5 g / L yeast extract, 10 g / L NaCl; 15 g / L agar powder needs to be added to the solid medium).

[0038] The sequence of the UGT76G1 mutant is shown in SEQ ID NO.1.

[0039] Enzyme solution collection:

[0040] Stock solution preparation: Inoculated strains were cultured overnight;

[0041] Inoculate the stock solution into TB medium (2% v / v); (TB medium formulation: peptone 20 g / L, yeast extract 24 g / L, glycerol 4 g / L, dipotassium hydrogen phosphate 12.25 g / L, potassium dihydrogen phosphate 2.3 g / L). Incubate for approximately 4 h until OD... 600Once the pH reaches 0.7-0.9, add IPTG (0.1 mmol / L) and express for 48 h (180 rpm, 20℃). Collect the bacterial cells; centrifuge at 4℃, 4000 rpm, 10 min to collect the cells; wash the cells once with approximately 100 mL of pure water and once with PBS; add PBS buffer (1:10 with bacterial cells) and mix well, sonicate (15%, sonicate for 4 seconds, pause for 3 seconds, 5 min), and centrifuge twice (10000 rpm, 8 min); the supernatant is the protein solution containing the target enzyme, i.e., the enzyme solution, with an enzyme protein content of 5-10 mg / mL. PBS buffer formulation: NaCl (sodium chloride): 8 g / L, KCl (potassium chloride): 0.2 g / L, Na₂HPO₄ (disodium hydrogen phosphate): 1.44 g / L, KH₂PO₄ (potassium dihydrogen phosphate): 0.24 g / L, adjust pH to 7.4.

[0042] The obtained enzyme solution was subjected to polyacrylamide gel electrophoresis and gel electrophoresis tests to detect the content of target genes and target proteins. The results showed that... Figure 2-3 By comparing the test results with the standard spectrum, it can be seen from the graph that the content of both the target protein and the target DNA is relatively high.

[0043] Example 2: Enzyme activity assay for preparing riboflavin I from the UGT76G1 mutant:

[0044] In a 10 ml reaction system, 0.3 g of RA and 0.9 g of sucrose (excess) were weighed out. Following a dosage of 20 mg of enzyme protein, the enzyme solution prepared in Example 1, 20 mg of sucrose synthase SUS1, and buffer (citric acid-phosphate (pH 8.0)) were added. The reaction was carried out at 35 °C for 16 h (the reaction was incomplete to observe enzyme activity). The resulting suspension was collected, and the contents of rebaudioside I and rebaudioside A were determined by HPLC. In the control group experiment, the unmutated UDP-glycosyltransferase UGT76G1 enzyme solution was used for catalysis, with other conditions the same as the experimental group. The results are shown in Table 2 below. The table shows that the enzyme activity obtained after site mutation for the preparation of rebaudioside I was higher than that of the original enzyme.

[0045] Table 2

[0046]

[0047] Example 3: Preparation of Rebaudioside I from UGT76G1 mutant

[0048] In a 100ml reaction system, 3g of RA and 9g of sucrose (excess) were weighed out, and the enzyme solution prepared in Example 1 and 0.2g of sucrose synthase SUS1 were added according to the dosage of 0.2g of enzyme protein. The buffer was citrate-phosphate (pH 8.0). The reaction was carried out at 35℃ for more than 24 hours to ensure complete reaction. The suspension after reaction was taken, and the contents of rebaudioside I and rebaudioside A were determined by HPLC (the control group was catalyzed by unmutated UDP-glycosyltransferase UGT76G1 enzyme solution under the same conditions). The results are shown in Table 3 below. The mutated enzyme catalyzes the conversion of rebaudioside A to rebaudioside I with higher efficiency than the original enzyme.

[0049] Table 3

[0050]

[0051] Example 4: Preparation of Rebaudioside I from UGT76G1 mutant

[0052] In a 100ml reaction system, 3g of RA and 4.5g of sucrose (excess) were weighed out, and the enzyme solution prepared in Example 1 was added at a dosage of 0.3g of enzyme protein. 0.3g of sucrose synthase SUS1 was added, and the buffer was citrate-phosphate (pH 8.0). The reaction was carried out at 35℃ for more than 24 hours to ensure complete reaction. The suspension after reaction was taken, and the contents of rebaudioside I and rebaudioside A were determined by HPLC (the control group was catalyzed by unmutated UDP-glycosyltransferase UGT76G1 enzyme solution under the same conditions). The results are shown in Table 4 below. The mutated enzyme catalyzes the conversion of rebaudioside A to rebaudioside I with higher efficiency than the original enzyme.

[0053] Table 4

[0054]

[0055] Example 5: Preparation of Rebaudioside I from UGT76G1 mutant

[0056] In a 100ml reaction system, 3g of RA and 12g of sucrose (excess) were weighed out, and the enzyme solution prepared in Example 1 was added at a dosage of 0.1g of enzyme protein. 0.1g of sucrose synthase SUS1 was added, and the buffer was citrate-phosphate (pH 8.0). The reaction was carried out at 35℃ for more than 24 hours to ensure complete reaction. The suspension after reaction was taken, and the contents of rebaudioside I and rebaudioside A were determined by HPLC (the control group was catalyzed by unmutated UDP-glycosyltransferase UGT76G1 enzyme solution under the same conditions). The results are shown in Table 5 below. The mutated enzyme catalyzes the conversion of rebaudioside A to rebaudioside I with higher efficiency than the original enzyme.

[0057] Table 5

[0058]

[0059] Example 6: Preparation of Rebaudioside I from UGT76G1 mutant

[0060] In a 100ml reaction system, 3g of RA and 6g of sucrose (excess) were weighed out, and the enzyme solution prepared in Example 1 was added at a dosage of 0.15g of enzyme protein. 0.15g of sucrose synthase SUS1 was added, and the buffer was citrate-phosphate (pH 8.0). The reaction was carried out at 35℃ for more than 24 hours to ensure complete reaction. The suspension after reaction was taken, and the contents of rebaudioside I and rebaudioside A were determined by HPLC (the control group was catalyzed by unmutated UDP-glycosyltransferase UGT76G1 enzyme solution under the same conditions). The results are shown in Table 6 below. The mutated enzyme catalyzes the conversion of rebaudioside A to rebaudioside I with higher efficiency than the original enzyme.

[0061] Table 6

[0062]

[0063] Example 7: Preparation of Rebaudioside I from UGT76G1 mutant

[0064] The scale-up experiment was conducted by scaling up the materials according to the proportions in Example 2.

[0065] A scale-up reaction with a RA concentration of 50 g / L was carried out in a 5 L reaction system. 250 g of RA and 750 g of sucrose (excess) were weighed out, and the enzyme solution prepared in Example 1 and 16.7 g of sucrose synthase SUS1 were added according to the dosage of 16.7 g of enzyme protein. The buffer was citrate-phosphate (pH 8.0). The reaction was carried out at 35 °C for more than 24 h to ensure complete reaction. The suspension after reaction was taken, and the contents of rebaudioside I and rebaudioside A were determined by HPLC (the control group was catalyzed by unmutated UDP-glycosyltransferase UGT76G1 enzyme solution under the same conditions). The results are shown in Table 7 below. The mutated enzyme catalyzed the conversion of rebaudioside A to rebaudioside I with higher efficiency than the original enzyme.

[0066] Table 7

[0067]

[0068] Example 8 Preparation of Rebaudioside I from UGT76G1 mutant

[0069] The scale-up experiment was conducted by scaling up the materials according to the proportions in Example 2.

[0070] A scale-up reaction with a RA concentration of 60 g / L was carried out in a 5 L reaction system. 300 g of RA and 900 g of sucrose (excess) were weighed out, and the enzyme solution prepared in Example 1 and 20 g of sucrose synthase SUS1 were added according to the dosage of 20 g of enzyme protein. The buffer was citrate-phosphate (pH 8.0). The reaction was carried out at 35 °C for more than 24 h to ensure complete reaction. The suspension after reaction was taken, and the contents of rebaudioside I and rebaudioside A were determined by HPLC (the control group was catalyzed by unmutated UDP-glycosyltransferase UGT76G1 enzyme solution under the same conditions). The results are shown in Table 8 below. The mutated enzyme catalyzed the conversion of rebaudioside A to rebaudioside I with higher efficiency than the original enzyme.

[0071] Table 8

[0072]

[0073] Example 9 Preparation of Rebaudioside I from UGT76G1 mutant

[0074] The scale-up experiment was conducted by scaling up the materials according to the proportions in Example 2.

[0075] A scale-up reaction with a RA concentration of 70 g / L was carried out in a 5 L reaction system. 350 g of RA and 1050 g of sucrose (excess) were weighed out, and the enzyme solution prepared in Example 1 and 23.3 g of sucrose synthase SUS1 were added according to the dosage of 23.3 g of enzyme protein. The buffer was citrate-phosphate (pH 8.0). The reaction was carried out at 35 °C for more than 24 h to ensure complete reaction. The suspension after reaction was taken, and the contents of rebaudioside I and rebaudioside A were determined by HPLC. (The control group was catalyzed by unmutated UDP-glycosyltransferase UGT76G1 enzyme solution under the same conditions.) The results are shown in Table 9 below. The mutated enzyme catalyzed the conversion of rebaudioside A to rebaudioside I with higher efficiency than the original enzyme.

[0076] Table 9

[0077]

[0078] In summary, the M88W mutant enzyme of this application significantly improved the conversion rate of rebaudioside A to rebaudioside I in different reaction systems compared with the original unmutated UGT76G1. The conversion rate in the scale-up experiment decreased slightly, but still remained at about 90%, which is a very outstanding effect.

[0079] The sequence of the UGT76G1 mutant (M88W) (SEQ ID NO.1):

[0080]

[0081] The embodiments described above merely illustrate specific implementation methods of this application, and while the descriptions are detailed and specific, they should not be construed as limiting the scope of protection of this application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of the technical solution of this application, and these modifications and improvements all fall within the scope of protection of this application.

Claims

1. An M88W mutant enzyme for preparing riboflavin I, characterized in that, It is a mutant of UGT76G1, obtained by the following mutations in UGT76G1: M88W: The methionine at position 88 of UGT76G1 is mutated to tryptophan; The nucleic acid sequence of the M88W mutant enzyme is shown in SEQ ID NO.

1.

2. The application of the M88W mutant enzyme for preparing rebaudioside I as described in claim 1 in the catalytic conversion of rebaudioside A to rebaudioside I.

3. The application according to claim 2, characterized in that, The catalysis is either in vitro or in vivo.

4. A method for preparing ribobandi glycoside I, characterized in that, Includes the following steps: A starting composition containing rebaudioside A is contacted with a biocatalyst capable of converting rebaudioside A into rebaudioside I to prepare rebaudioside I; The biocatalyst is the M88W mutant enzyme of UGT76G1. The specific mutation of M88W is that the methionine in the 88th amino acid sequence of UGT76G1 is mutated to tryptophan. The nucleic acid sequence of the M88W mutant enzyme is shown in SEQ ID NO.

1.

5. The method for preparing ribobandi glycoside I according to claim 4, characterized in that, The biocatalyst is in the form of a high-purity substance, cell lysate, or whole-cell suspension.

6. The method for preparing ribobandi glycoside I according to claim 5, characterized in that, The cells in the cell lysate or whole cell suspension are microbial cells.

7. The method for preparing ribobandi glycoside I according to claim 6, characterized in that, The microbial cells are one of Bacillus subtilis, Escherichia coli, Aspergillus oryzae, Penicillium, Aspergillus niger, Streptomyces, or yeast.

8. The method for preparing ribobandi glycoside I according to claim 4, characterized in that, The content of the prepared riboside I is 85%-99% of the content of riboside A in the starting composition containing riboside A.