Candida antarctica lipase B mutant and application thereof

By engineering the protein of Candida antarcticis lipase B, introducing specific amino acid mutations and constructing mutants with high enzyme activity, the problems of CALB tolerance and catalytic activity in industrial environments were solved, resulting in a significant improvement in enzyme activity and expanding its application potential in multiple fields.

CN121592622APending Publication Date: 2026-03-03SOUTH CHINA UNIV OF TECH
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Patent Information

Application Number
CN202511692995.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-10-31
Publication Date
2026-03-03

AI Technical Summary

Technical Problem

The existing Candida antarcticis lipase B (CALB) has poor tolerance to industrial environments such as high temperature and extreme pH, low expression levels, and limited catalytic activity on non-natural substrates, which limits its further industrial application.

Method used

CALB was modified using protein engineering by introducing specific amino acid mutations, such as Q11L, F71N, F118Y, V149T, L219N, and T244D, to enhance its enzyme activity. A mutant with high enzyme activity was constructed and expressed using the T7 promoter, pelB signal peptide, and pET-28a(+) vector. The expression was carried out using host microorganisms such as Escherichia coli Rosetta(DE3) and Pichia pastoris GS115.

Benefits of technology

It significantly improved the enzyme activity of the CALB mutant by 76.39% to 192.47%, enhancing its industrial application potential and economic value in the fields of food, medicine, daily chemicals, and chemicals.

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Abstract

The invention discloses a Candida antarctica lipase B mutant and application thereof, and belongs to the technical field of biology. According to the invention, 11 mutants with improved enzyme activity are obtained, including 6 single site mutants and 5 combined mutants; wherein compared with a wild type, the enzyme activities of the mutants Q11L, F118Y, V149T, L219N and T244D are all improved by 76.39%, 20.97%, 20.29%, 18.45% and 34.06% respectively, and the enzyme activities of the mutants Q11L, F118Y, V149T, L219N and T244D are respectively improved by 76.39%, 20.97%, 20.29%, 18.45% and 34.06%; according to the invention, the CALB mutant with high enzymatic activity is obtained, and the CALB mutant has great industrial application potential and economic value.
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Description

[0001] This application is a divisional application of Chinese invention patent application number "202411542179.3" entitled "A Candida antarcticis lipase B mutant and its preparation method". Technical Field

[0002] This invention belongs to the field of biotechnology, specifically relating to an Antarctic Candida lipase B mutant with enhanced enzyme activity and its applications. Background Technology

[0003] Lipase (EC 3.1.1.3) catalyzes the hydrolysis of lipids to produce fatty acids, glycerol, and mono- or diglycerides. It is derived from *Candida antarctica* (…). Candida antarctica The lipase B (CALB) of the novel coronavirus has excellent catalytic performance and has been commercially supplied through a eukaryotic expression host (Novozym 435), and is widely used in the food industry, spice industry, biofuel and other fields.

[0004] However, CALB still faces some challenges in actual industrial production. For example, its poor tolerance to harsh industrial environments such as high temperatures and extreme pH levels, low expression levels, and limited catalytic activity on non-natural substrates restrict its further industrial application. Therefore, improving the catalytic activity and stability of CALB to make it more suitable for industrial applications is urgent. Modifying the enzyme through protein engineering is the main strategy to solve this problem. Summary of the Invention

[0005] To overcome the shortcomings and deficiencies of existing technologies, the present invention aims to provide a CALB mutant with enhanced enzyme activity and its applications. The enzyme activities of mutants Q11L, F71N, F118Y, V149T, L219N, T244D, S31T / F71N, F71N / F118Y, F71N / L219, S31T / F71N / F118Y, and F71N / F118Y / L219N are all increased, with increases of 76.39%, 34.07%, 20.97%, 20.29%, 18.45%, 34.06%, 127.41%, 99.86%, 240.88%, 172.80%, and 192.47%, respectively. This invention yields a CALB mutant with high enzyme activity, possessing significant industrial application potential and economic value.

[0006] The objective of this invention is achieved through the following technical solution: A mutant of Candida antarctica lipase B, whose amino acid sequence is SEQ ID NO.1, is obtained by any of the following mutations: 1) At least one of Q11L, F71N, F118Y, V149T, L219N, and T244D; 2) S31T, and at least one of Q11L, F71N, F118Y, V149T, L219N and T244D; except for S31T / F71N / L219N.

[0007] In Q11L, the 11th amino acid is mutated from Q to L, and the same applies to the others. Furthermore, the Candida antarcticis lipase B mutant, whose amino acid sequence is SEQ ID NO.1, is obtained by any of the following mutations: Q11L; or F71N; or F118Y; or V149T; or L219N; or T244D; or S31T / F71N; or F71N / F118Y; or F71N / L219N; or S31T / F71N / F118Y; or F71N / F118Y / L219N.

[0008] The gene sequence encoding the amino acid sequence shown in SEQ ID NO.1 is shown in SEQ ID NO.2.

[0009] The encoding gene of a mutant of Candida antarcticis lipase B.

[0010] Preferably, an enhanced enzyme activity Candida antarcticus lipase B mutant F71N / L219N, the amino acid sequence of which is shown in SEQ ID NO.3, is described above. The mutant has amino acids 71 ​​and 219 mutated from phenylalanine (F) and leucine (L) to asparagine (N) and asparagine (N), respectively.

[0011] The encoding gene of an enhanced enzyme activity Candida antarcticus lipase B mutant F71N / L219N, the nucleotide sequence of which is shown in SEQ ID NO.4.

[0012] The aforementioned mutant-related biological materials are any one or more combinations of the following biological materials: (a) An expression cassette containing the above-mentioned encoded genes; (b) Recombinant expression vectors containing the above-mentioned coding genes; (c) A recombinant expression vector containing the expression cassette described in (a); (d) Recombinant microorganisms containing the above-mentioned encoding genes; (e) Recombinant microorganisms containing the expression cassette described in (a); (f) Recombinant microorganisms containing the recombinant expression vector described in (b) or (c).

[0013] Furthermore, the expression elements used in the expression cassette described in (a) are: the T7 promoter (Pt7), the pelB signal peptide, and the T7 terminator (Tt7).

[0014] The pelB signal peptide is derived from Bacteroides lysodeana (…). Paenibacillus chitinolyticus Its amino acid sequence is shown as 1–22 aa in GenBank No. QGS70241.2; the gene sequence encoding the pelB signal peptide is shown as 1–66 bp in GenBank No. MN121846.2.

[0015] Furthermore, the starting vector for the recombinant expression vector described in (b) and (c) is a pET series vector, etc.; preferably, it is a pET-28a(+) vector.

[0016] Furthermore, the host microorganisms corresponding to the recombinant microorganisms mentioned in (d), (e), and (f) are selected from prokaryotes or yeast, etc.; the prokaryotes include Escherichia spp. ( Escherichia Bacteria such as *Pichia pastoris*; the yeast includes *Pichia pastoris* and other yeasts. More specifically, the prokaryotes are *Escherichia coli* (…). Escherichia coli Specifically, it can be Escherichia coli Rosette (DE3) and Match 1 T1; the yeast is Pichia pastoris GS115.

[0017] The application of the above-mentioned mutants, coding genes, or mutant-related biological materials in the preparation of highly active Candida antarcticis lipase B mutants.

[0018] Furthermore, the aforementioned mutants, coding genes, or mutant-related biomaterials are applied in fields such as food, medicine, daily chemicals, and chemicals.

[0019] A method for obtaining the above-mentioned mutant includes the following steps: by designing primers containing mutation sites to perform site-directed mutagenesis on the gene encoding the amino acid sequence shown in SEQ ID NO.1 of Candida antarcticis lipase B, and then expressing the mutant to obtain the Candida antarcticis lipase B mutant.

[0020] Furthermore, primers containing mutation sites were designed to introduce mutations into the gene encoding the amino acid sequence shown in SEQ ID NO.1 of Candida antarcticis lipase B. After correct sequencing, the gene was transformed into Escherichia coli Rosetta (DE3) for expression, resulting in the Candida antarcticis lipase B mutant.

[0021] The specific implementation steps of this invention are as follows: 1. Construction of CALB mutant recombinant expression vector: 1) The wild-type gene of Candida antarctica lipase B synthesized after codon optimization and the pelB signal peptide from Bacteroides lysodeoxycholica were ligated into the pET-28a(+) vector containing the Pt7 promoter to construct the expression plasmid pET-28a(+)-Pt7-pelB-CALBWT; 2) The site-directed mutant wild-type CALB was amplified by overlap PCR to obtain the corresponding CALB mutant expression plasmid.

[0022] 2. Construction of CALB mutant recombinant engineered bacteria and preparation of CALB with high enzyme activity: The CALB mutant expression plasmid was transformed into Escherichia coli Rosetta(DE3) to obtain recombinant engineered bacteria; then, CALB mutant was obtained by fermentation.

[0023] 3. Characterization of the enzymatic properties of CALB mutants: The enzymatic properties of the mutants were determined by microwell colorimetry using 4-nitrophenylbutyrate as a substrate.

[0024] The present invention has the following advantages and effects compared with the prior art: This invention yielded 11 mutants with enhanced enzyme activity, including 6 single-point mutants and 5 combined mutants. Compared to the wild type, the enzyme activities of mutants Q11L, F71N, F118Y, V149T, L219N, T244D, S31T / F71N, F71N / F118Y, F71N / L219N, S31T / F71N / F118Y, and F71N / F118Y / L219N were all increased by 76.39%, 34.07%, 20.97%, 20.29%, 18.45%, 34.06%, 127.41%, 99.86%, 240.88%, 172.80%, and 192.47%, respectively. This invention provides CALB mutants with high enzyme activity, which have significant industrial application potential and economic value. Attached Figure Description

[0025] Figure 1 The images show colony PCR electrophoresis images of wild-type CALB and mutant expression vectors; where M is the DL5000 DNA Marker, and lanes 1-24 are, in order: Q11L, S31T, S56L, S56A, F71N, F118Y, V149T, A151P, S201T, F205H, L219N, Q231M, T244D, L261K, M298K, S31T / F71N, F71N / F118Y, F71N / L219, S31T / F71N / F118Y, S31T / F71N / L219N, and F71N / F118Y / L219N.

[0026] Figure 2 Bar chart showing the relative enzyme activity of wild-type CALB and mutants.

[0027] Figure 3 Bar chart showing the residual enzyme activity of wild-type CALB and mutants. Detailed Implementation

[0028] The present invention will be further described in detail below with reference to embodiments and accompanying drawings, but the embodiments of the present invention are not limited thereto. Operational steps or conditions not specifically noted in the following embodiments can be performed with reference to conventional techniques.

[0029] In the examples, the CALB used was derived from Candida antarctica ( Candida antarctica The amino acid sequence of the gene is shown in SEQ ID NO.1. The nucleotide sequence of the coding gene obtained after codon optimization of Aspergillus niger is shown in SEQ ID NO.2. A 6*His tag sequence (CATCATCATCATCATCAC) was also introduced at the 3' end. The gene was synthesized by a commercial company.

[0030] Example 1 Construction of Antarctic Candida lipase B and its mutant expression vector (1) Construction of wild-type CALB expression vector Using pET-28a(+) plasmid as a template, primers ZF / R and KOD One were used. TM Linearized vector fragments were amplified using PCR Master Mix. The CALB encoding gene nucleotide sequence (6*His+ SEQ ID NO.2), optimized with a 6*His tag sequence introduced at the 3' end, was used as a template. The CALBWT gene sequence was amplified using primers WT-F / R and the high-fidelity enzyme PrimerStart Mix. The pelB signal peptide sequence was introduced into the CALBWT fragment using primers. The amplified fragments were homologously fused using In-Fusion homologous recombination. The ligation product was transformed into E. coli Match1 T1 competent cells using a chemical method. Positive transformants were selected and sequenced for identification. Finally, the wild-type CALB expression vector pET-28a(+)-Pt7-pelB-CALBWT was obtained.

[0031] The amino acid sequence of the pelB signal peptide is shown as 1–22 aa in GenBank No. QGS70241.2; the gene sequence encoding the pelB signal peptide is shown as 1–66 bp in GenBank No. MN121846.2.

[0032] ZF: 5′-CTAGCATAACCCCTTGGGGCC-3′; ZR: 5′-GTCGGCAGGTATTTCATGGTATATCTCCTTCTTAAAGTT-3′; WT-F: 5′-ATGAAATACCTGCTGCCGACCGCTGCTGCTGGTCTGCTGCTCCTCGCTGCCCAGCCGGCGATGGCCCTCCCTTCCGGTAGCGATCC-3′; WT-R: 5′-GCCCCAAGGGGTTATGCTAGTCAGTGATGATGATGATGATGGG-3′.

[0033] (2) Construction of CALB mutant expression vector Using the constructed wild-type CALB expression vector pET-28a(+)-Pt7-pelB-CALBWT as a template, linear vector fragments containing corresponding mutation sites were amplified using amplification primers containing the corresponding mutation sites.

[0034] The specific amplification primers are shown in the table below (lowercase letters indicate the replaced codons):

[0035] The construction of plasmids with multiple mutations requires multiple primer pairs for amplification. Taking the F71N / L219N mutant as an example, fragment 1 needs to be amplified using primer pair F71N-F / L219N-R, and fragment 2 needs to be amplified using L219N-F / F71N-R. The amplified fragments are then homologously fused using in-fusion. The ligation product is then chemically transformed into E. coli Match1 T1 competent cells. Positive transformants are selected and sequenced for identification, finally yielding the CALB mutant expression vector.

[0036] Example 2 Construction, fermentation, and protein purification of wild-type CALB and mutant recombinant expression strains. (1) Construction of wild-type CALB and mutant recombinant expression strains The expression vectors of CALB and mutants constructed in Example 1 were transformed into *E. coli* Rosetta (DE3) competent cells via chemical transformation. LB plates containing kanamycin and chloramphenicol were used as selection plates. Transformants were picked from the selection plates and identified by colony PCR using primers YZ-F / R. Positive samples were identified as the correct recombinant expression strains. The identification results are as follows: Figure 1 As shown, the amplified band size was 992 bp, and the corresponding recombinant expression strain was correctly identified.

[0037] YZ-F: 5′-CTCCCTTCCGGTAGCGATC-3′; YZ-R: 5′-GCCCCAAGGGGTTATGCTAG-3′.

[0038] (2) Fermentation and protein purification of wild-type CALB and mutant recombinant expression strains a) Inoculate the CALB and mutant recombinant expression strains that were correctly identified in step (1) into 10 mL of liquid LB medium (containing 50 μg / mL kanamycin and 50 μg / mL chloramphenicol), and culture at 37℃ and 220 rpm for 8–14 h as seed culture; b) Inoculate the seed culture from step a) into TB medium (containing 50 μg / mL kanamycin and 50 μg / mL chloramphenicol) at an inoculation volume of 3%, with a liquid volume of 30 mL / 100 mL. Incubate at 37°C and 220 rpm until the bacterial concentration reaches OD500. 600 =0.8~1, add IPTG to the fermentation broth to a final concentration of 0.1M, and ferment at 20℃ for 24h; c) Centrifuge the fermentation broth obtained in step b) (10000 g, 10 min) to remove the bacterial cells. The resulting supernatant is the CALB crude enzyme solution.

[0039] d) Filter the CALB crude enzyme solution obtained in step c) using a 0.22 μm filter. Purify the filtrate by nickel column affinity chromatography. Wash the nickel column with 1.5 column volumes of Buffer B (500 mM NaCl, 500 mM imidazole, 20 mM Tris-HCl, pH 8.0), and rinse with Buffer A (500 mM NaCl, Tris-HCl, pH 8.0) to the UV baseline. Load the supernatant into a HisTRAP™ HP Ni-NTA pre-packaged column and perform gradient elution using a gradient mixing of phases B and A. The target protein elutes in 30% Buffer B. Remove the collected eluent by ultrafiltration (20 mM Tris-HCl, pH 8.0) to remove imidazole and other contaminating proteins, yielding the target protein.

[0040] Example 3 CALB and mutant enzyme activity analysis This invention employs a microporous colorimetric method to determine the hydrolytic activity of CALB lipase. The principle is that lipase hydrolyzes the substrate 4-nitrophenylbutyrate to generate p-nitrophenol (pNP) under alkaline conditions. p-Nitrophenol exhibits maximum absorption near a wavelength of 405 nm. By measuring the absorbance and calculating the amount of p-nitrophenol, the enzyme activity can be determined. Enzyme activity is defined as the amount of enzyme required to release 1 μmol of p-nitrophenol per minute at 45°C and pH=8. The enzyme protein concentration is determined using the BCA method, with bovine serum albumin as the standard.

[0041] The reaction system is as follows: (1) Buffer: 50mM Tris-HCl (pH 8.0).

[0042] (2) Substrate: 25 mM 4-nitrophenol butyrate emulsion.

[0043] (3) Termination solution: 90% ethanol.

[0044]

[0045] Incubate at 45℃ for 5 min, add 1000 μL of pre-cooled stop solution, and measure A. 405 Zero it according to the comparison.

[0046] Enzyme activity calculation: CALB aqueous enzyme activity (U / mL) Sample dilution factor The measurement results are as follows Figure 2 As shown, compared with the wild type, the enzyme activities of mutants Q11L, F71N, F118Y, V149T, L219N, T244D, S31T / F71N, F71N / F118Y, F71N / L219, S31T / F71N / F118Y, and F71N / F118Y / L219N were all increased by 76.39%, 34.07%, 20.97%, 20.29%, 18.45%, 34.06%, 127.41%, 99.86%, 240.88%, 172.80%, and 192.47%, respectively. This invention yielded CALB mutants with high enzyme activity, which have significant industrial application potential and economic value.

[0047] Example 4 Thermal stability analysis of CALB and mutants This invention characterizes the thermostability of CALB and its mutants using residual enzyme activity after heat treatment. Experimental procedure: 2 mL of CALB and mutant fermentation broth was centrifuged at 10,000 rpm for 20 min at 4°C. 200 μL of the supernatant was transferred to a 1.5 mL Eppendorf tube, incubated in a 50°C water bath for 10 min, and then placed on ice for 5 min. The residual enzyme activity of CALB and its mutants was then determined using the method described in Example 3. Definition of residual enzyme activity: The hydrolytic activity of CALB and its mutants was determined using a microwell colorimetric method. The hydrolytic activity of CALB and its mutants before heat treatment was defined as the initial enzyme activity. The ratio of the hydrolytic activity of CALB and its mutants after heat treatment to the initial enzyme activity was defined as the residual enzyme activity.

[0048] Calculation of residual enzyme activity: CALB water enzyme activity (%) 100 The measurement results section is as follows: Figure 3 As shown, compared with the wild type, the thermal stability of mutants S31T, F118Y, V149T, L219N, T244D, and L261K was improved by 31.76%, 16.51%, 25.04%, 5.25%, 21.51%, and 3.81%, respectively.

[0049] In summary, compared with wild-type CALB, the mutant obtained by this invention significantly improves its enzyme activity and has great application value in the pharmaceutical, chemical and other industrial fields.

[0050] The above embodiments are preferred embodiments of the present invention, but the embodiments of the present invention are not limited to the above embodiments. Any changes, modifications, substitutions, combinations, or simplifications made without departing from the spirit and principle of the present invention shall be considered equivalent substitutions and shall be included within the protection scope of the present invention.

Claims

1. A Candida antarcticis lipase B mutant, characterized in that: The amino acid sequence of the Candida antarcticis lipase B mutant is obtained by any one of the following mutations of SEQ ID NO.1: Q11L; or F118Y; or V149T; or L219N; or T244D.

2. The gene encoding the Candida antarcticis lipase B mutant as described in claim 1.

3. The biomaterial related to the Antarctic Candida lipase B mutant as described in claim 1, characterized in that: It can be any one or more combinations of the following biological materials: (a) An expression cassette containing the gene of claim 2; (b) A recombinant expression vector containing the gene of claim 2; (c) A recombinant expression vector containing the expression cassette described in (a); (d) A recombinant microorganism containing the gene of claim 2; (e) Recombinant microorganisms containing the expression cassette described in (a); (f) Recombinant microorganisms containing the recombinant expression vector described in (b) or (c).

4. The biomaterial according to claim 3, characterized in that: The expression elements used in the expression cassette described in (a) are: the T7 promoter, the pelB signal peptide, and the T7 terminator; The starting vector for the recombinant expression vectors described in (b) and (c) is a pET series vector; The host microorganisms corresponding to the recombinant microorganisms described in (d), (e), and (f) are selected from prokaryotes or yeast.

5. The use of the gene of claim 2 or the biological material of any one of claims 3 to 4 in the preparation of the Candida antarcticis lipase B mutant of claim 1.

6. The application of the Antarctic Candida lipase B mutant according to claim 1, the gene according to claim 2, or the biological material according to any one of claims 3 to 4 in the fields of food, medicine, daily chemicals, or chemical industry.

7. A method for obtaining the Candida antarcticis lipase B mutant of claim 1, characterized in that: The method includes the following steps: by designing primers containing mutation sites to perform site-directed mutagenesis on the gene encoding the amino acid sequence shown in SEQ ID NO.1 of Candida antarcticis lipase B, and then expressing the mutant to obtain the Candida antarcticis lipase B mutant as described in claim 1.

8. The method according to claim 7, characterized in that: Primers containing the mutation site were designed to introduce a mutation into the gene encoding the amino acid sequence shown in SEQ ID NO.1 of Candida antarcticis lipase B. After the sequence was confirmed to be correct, the gene was transformed into Escherichia coli Rosetta (DE3) for expression, thus obtaining the Candida antarcticis lipase B mutant as described in claim 1.