Recombinant <i>Bacillus subtilis </i>for synthesizing GDP-L-fucose and application thereof
11578342 · 2023-02-14
Assignee
Inventors
- Long Liu (Wuxi, CN)
- Jian Chen (Wuxi, CN)
- Guocheng Du (Wuxi, CN)
- Jieying Deng (Wuxi, CN)
- Chunmei Chen (Wuxi, CN)
- Xueqin Lv (Wuxi, CN)
- Jianghua Li (Wuxi, CN)
Cpc classification
C12N9/1205
CHEMISTRY; METALLURGY
C12N9/1229
CHEMISTRY; METALLURGY
C12N15/90
CHEMISTRY; METALLURGY
C12N2500/12
CHEMISTRY; METALLURGY
C12R2001/125
CHEMISTRY; METALLURGY
C12P19/32
CHEMISTRY; METALLURGY
International classification
C12N15/90
CHEMISTRY; METALLURGY
C12P19/32
CHEMISTRY; METALLURGY
Abstract
The disclosure discloses recombinant Bacillus subtilis for synthesizing guanosine diphosphate fucose and a construction method and application thereof. The recombinant Bacillus subtilis is obtained by intensively expressing guanylate kinase and nucleotide diphosphokinase genes and expressing exogenous fucokinase and phosphate guanylyltransferase genes in a genome of Bacillus subtilis 168. According to the disclosure, a bacterial strain for synthesizing the guanosine diphosphate fucose is obtained by reconstructing the Bacillus subtilis 168, with a volume of intracellular accumulation up to 196.15 g/L. According to the disclosure, by intensively expressing the guanylate kinase and nucleotide diphosphokinase genes, and enhancing the supply of intracellular GDP-L-fucose composition cofactors, the synthesis of the guanosine diphosphate fucose is promoted. The construction method for the recombinant Bacillus subtilis of the disclosure is simple and convenient to use, thus having good application prospects.
Claims
1. A recombinant Bacillus subtilis 168 expressing a guanylate kinase gene and a nucleotide diphosphokinase gene, wherein an exogenous fucokinase gene, and an exogenous phosphate guanylyltransferase gene are expressed in the genome of the recombinant Bacillus subtilis 168, and wherein the guanylate kinase gene and nucleotide diphosphokinase gene are expressed by substituting a P43 promoter of the recombinant Bacillus subtilis 168 with promoters of the guanylate kinase gene nucleotide diphosphokinase gene from Bacillus subtilis 168.
2. The recombinant Bacillus subtilis 168 of claim 1, wherein the guanylate kinase gene comprises the nucleotide sequence of SEQ ID NO: 4, and the nucleotide diphosphokinase gene comprises the nucleotide sequence of SEQ ID NO: 5.
3. The recombinant Bacillus subtilis 168 of claim 1, wherein the fucokinase gene and the phosphate guanylyltransferase gene are fkp genes derived from Bacteroides fragilis.
4. The recombinant Bacillus subtilis 168 of claim 3, wherein the fkp gene is expressed by expression vector pP43NMK.
5. The recombinant Bacillus subtilis 168 of claim 4, wherein the fkp gene is ligated into expression vector pP43NMK, and the expression vector pP43NMK after ligation comprises the nucleotide sequence of SEQ ID NO: 3.
6. A method for generating guanosine diphosphate fucose comprising incubating the recombinant Bacillus subtilis 168 of claim 1 in a medium comprising fucose to undergo fermentation in a fermentation medium.
7. The method of claim 6, wherein the method further comprises inoculating a seed solution comprising the recombinant Bacillus subtilis 168 into the fermentation medium in an inoculum size with OD value of 0.1 to 0.3, and culturing at 35° C. to 40° C., 200 rpm to 250 rpm, and for 18 hours to 20 hours.
8. The method of claim 6, wherein the fermentation further comprises inoculating the recombinant Bacillus subtilis 168 into a seed medium and culturing for 8 hours to 10 hours.
9. The method of claim 8, wherein the seed medium contains 10 g/L of tryptone, 5 g/L of yeast powder, and 10 g/L of NaCl.
10. The method of claim 6, wherein the fermentation medium comprises: 20 g/L of glycerinum, 6 g/L of peptone, 12 g/L of yeast powder, 6 g/L of (NH.sub.4)SO.sub.4, 12.5 g/L of K.sub.2HPO.sub.4*3H.sub.2O, 2.5 g/L of KH.sub.2PO.sub.4, 5 g/L of CaCO.sub.3, and 10 ml/L of microelement solution; and wherein the microelement solution comprises: 1.0 g/L of MnSO.sub.4*5H.sub.2O, 0.4 g/L of CoCl.sub.2*6H.sub.2O, 0.2 g/L of NaMoO.sub.4*2H.sub.2O, 0.2 g/L of ZnSO.sub.4*7H.sub.2O, 0.1 g/L of AlCl.sub.3*6H.sub.2O, 0.1 g/L of CuCl.sub.2*H.sub.2O, 0.05 g/L of H.sub.3BO.sub.4, and 5M of HCl.
Description
BRIEF DESCRIPTION OF FIGURES
(1)
(2)
(3)
DETAILED DESCRIPTION
(4) The detailed description will be made to the disclosure in conjunction with embodiments and figures.
(5) Method for measuring guanosine diphosphate fucose:
(6) High performance liquid chromatography (HPLC) detection method: Agilent1200, a VWD detector, a C18 column (250×4.6 mm, 5 μm), a mobile phase A: 20 Mm of triethylamine acetate buffer (TEAA) with pH 6.0, and a mobile phase B: acetonitrile, with a flow rate of 0.6 mL/min, a column temperature of 35° C., and a sample introduction volume of 10 μL.
(7) Embodiment 1 Intensive Expression of Guanylate Kinase gmk and Nucleotide Diphosphokinase ndk
(8) According to upstream and downstream sequences of guanylate kinase gmk and nucleotide diphosphokinase ndk, a P.sub.43 promoter and a sequence of an actinospectacin resistance gene of Bacillus subtilis (Bacillus subtilis 168 purchased from American Type Culture Collection, ATCC No. 27370) published on NCBI, a substitution frame 1 (shown as SEQ ID NO. 1) containing the upstream and downstream sequences of the guanylate kinase gmk, the P43 promoter and the sequence of the actinospectacin resistance gene and a substitution frame 2 (shown as SEQ ID NO. 2) containing the upstream and downstream sequences of the nucleotide diphosphokinase ndk, the P43 promoter and the sequence of the actinospectacin resistance gene are constructed.
(9) The constructed substitution frame 1 is electrically transformed into competent cells of the Bacillus subtilis 168, with a volume of addition of substitution frame 1 of 100 to 300 ng and under electrical transformation conditions of a voltage of 2.5 kV and an electric shock reagent of 5 ms. The constructed substitution frame 2 is electrically transformed into the competent cells of the Bacillus subtilis 168, with a volume of addition of substitution frame 2 of 100 to 300 ng and under electrical transformation conditions of a voltage of 2.5 kV and an electric shock reagent of 5 ms. Then, the competent cells are recovered at 37° C. for 5 h, coated on a resistant LB plate of actinospectacin with a final concentration of 10 μg/mL and subjected to anaerobic culture at 37° C. for 48 h, and a plurality of monoclones are selected.
(10) As the upper and downstream sequences of the guanylate kinase gmk and the nucleotide diphosphokinase ndk exist in the substitution frames, which are homologous with a transportprotein gene of the Bacillus subtilis 168, the P43 promoters in the substitution frames are substituted with promoters of the guanylate kinase gmk and the nucleotide diphosphokinase ndk of the Bacillus subtilis 168.
(11) Through the screening of the resistant plate of actinospectacin, and colony PCR verification, after sequencing, whether or not the guanylate kinase gmk and the nucleotide diphosphokinase ndk are intensively expressed successfully is confirmed, and one in which the actinospectacin is positive in resistance is the Bacillus subtilis with the substitution frame successfully transformed; the agarose gel electrophoretogram is shown in
(12) Upon the confirmation of the successful intensive expression of the guanylate kinase gmk and the nucleotide diphosphokinase ndk, recombinant Bacillus subtilis BSGN is obtained.
(13) Embodiment 2 Heterogenous Expression of Exogenous Genes of Bacteroides fragilis
(14) According to sequences of fucokinase and phosphate guanylyltransferase genes fkp of Bacteroides fragilis (ATCC No. 25285) published on NCBI, a recombinant plasmid pP.sub.43-Fkp with a sequence, shown as SEQ ID NO. 3, is constructed through PCR linear amplification of the genes fkp and a plasmid pP43NMK and connection by one-step clone of ClonExpress II One Step Cloning Kit (Vazyme).
(15) The constructed recombinant plasmid is electrically transformed into the competent cells of the recombinant Bacillus subtilis BSGN obtained in Embodiment 1, with a volume of addition of 50 to 300 ng and under electrical transformation conditions of a voltage of 2.5 kV and an electric shock reagent of 5 ms. Then, the competent cells are recovered at 37° C. for 5 h, coated on a resistant LB plate of kanamycin with a final concentration of 10 μg/mL and subjected to anaerobic culture at 37° C. for 48 h, and a plurality of monoclones are selected.
(16) Through the screening of the kanamycin resistant plate, and colony PCR verification, after sequencing, whether or not the fucokinase and the phosphate guanylyltransferase genes fkp are expressed successfully is confirmed. One in which the kanamycin is positive in resistance is the Bacillus subtilis with successful transformation; the agarose gel electrophoretogram is shown in
(17) Upon the confirmation of the successful expression of the fucokinase and the phosphate guanylyltransferase of the Bacteroides fragilis, recombinant Bacillus subtilis BSGNF is obtained.
(18) Embodiment 3 Production of Guanosine Diphosphate Fucose Through Fermentation
(19) The recombinant Bacillus subtilis BSGNF is prepared into a seed solution. A formula of a seed solution medium includes 10 g/L tryptone, 5 g/L yeast powder, and 10 g/L NaCl. A method for preparing the seed solution includes: selecting fresh single colonies on a plate, and culturing in the seed medium for 8 to 10 h.
(20) The seed solution is inoculated into a fermentation medium in an inoculum size with OD value of 0.1. A formula of the fermentation medium includes: 20 g/L initial glycerinum, 6 g/L peptone, 12 g/L yeast powder, 6 g/L (NH.sub.4)SO.sub.4, 12.5 g/L K.sub.2HPO.sub.4.3H.sub.2O, 2.5 g/L KH.sub.2PO.sub.4, 5 g/L CaCO.sub.3 and 10 ml/L microelement solution. The microelement solution contains: 1.0 g/L MnSO.sub.4.5H.sub.2O, 0.4 g/L CoCl.sub.2.6H.sub.2O, 0.2 g/L NaMoO.sub.4.2H.sub.2O, 0.2 g/L ZnSO.sub.4.7H.sub.2O, 0.1 g/L AlCl.sub.3.6H.sub.2O, 0.1 g/L CuCl.sub.2.H.sub.2O, 0.05 g/L H.sub.3BO.sub.4and 5 M HCl. The seed solution is cultured at 35° C. and 200 rpm for 18 h.
(21) After fermentation ends, the content of guanosine diphosphate fucose in fermented supernatant fluid is measured through a gas chromatograph-mass spectrometer, a gas chromatograph-mass spectrometer chromatogram of the guanosine diphosphate fucose is shown as
(22) Embodiment 4 Production of Guanosine Diphosphate Fucose Through Fermentation
(23) The recombinant Bacillus subtilis BSGNF is prepared into a seed solution. A formula of a seed medium includes: 10 g/L tryptone, 5 g/L yeast powder, and 10 g/L NaCl. A method for preparing the seed solution includes: selecting fresh single colonies on a plate, and culturing in the seed medium for 8 to 10 h.
(24) The seed solution is inoculated into a fermentation medium in an inoculum size with OD value of 0.3, and a formula of the fermentation medium includes: 20 g/L initial glycerinum, 6 g/L peptone, 12 g/L yeast powder, 6 g/L (NH.sub.4)SO.sub.4, 12.5 g/L K.sub.2HPO.sub.4.3H.sub.2O, 2.5 g/L KH.sub.2PO.sub.4, 5 g/L CaCO.sub.3 and 10 ml/L microelement solution. The microelement solution contains: 1.0 g/L MnSO.sub.4.5H.sub.2O, 0.4 g/L CoCl.sub.2.6H.sub.2O, 0.2 g/L NaMoO.sub.4.2H.sub.2O, 0.2 g/L ZnSO.sub.4.7H.sub.2O, 0.1 g/L AlCl.sub.3.6H.sub.2O, 0.1 g/L CuCl.sub.2.H.sub.2O, 0.05 g/L H.sub.3BO.sub.4and 5 M HCl. The seed solution is cultured at 40° C. and 250 rpm for 20 h.
(25) After fermentation ends, the content of guanosine diphosphate fucose in fermented supernatant fluid is up to 187.21 mg/L.
COMPARATIVE EXAMPLE 1
(26) According to upstream and downstream sequences of guanylate kinase gmk and nucleotide diphosphokinase ndk, a P.sub.43 promoter and a sequence of an actinospectacin resistance gene of Bacillus subtilis (Bacillus subtilis 168 purchased from American Type Culture Collection, ATCC No. 27370) published on NCBI, a substitution frame 1 (shown as SEQ ID NO. 1) containing the upstream and downstream sequences of the guanylate kinase gmk, the P43 promoter and the sequence of the actinospectacin resistance gene and a substitution frame 2 (shown as SEQ ID NO. 2) containing the upstream and downstream sequences of the nucleotide diphosphokinase ndk, the P.sub.43 promoter and the sequence of the actinospectacin resistance gene are constructed.
(27) The constructed substitution frame 1 is electrically transformed into competent cells of the Bacillus subtilis 168, with a volume of addition of substitution frame 1 of 100 to 300 ng and under electrical transformation conditions of a voltage of 2.5 kV and an electric shock reagent of 5 ms. The constructed substitution frame 2 is electrically transformed into the competent cells of the Bacillus subtilis 168, with a volume of addition of substitution frame 2 of 100 to 300 ng and under electrical transformation conditions of a voltage of 2.5 kV and an electric shock reagent of 5 ms. Then, the competent cells are recovered at 37° C. for 5 h, coated on a resistant LB plate of actinospectacin with a final concentration of 10 μg/mL and subjected to anaerobic culture at 37° C. for 48 h, and a plurality of monoclones are selected.
(28) As the upper and downstream sequences of the guanylate kinase gmk and the nucleotide diphosphokinase ndk exist in the substitution frames, which are homologous with a transportprotein gene of the Bacillus subtilis 168, the P.sub.43 promoters in the substitution frames are substituted with promoters of the guanylate kinase gmk and the nucleotide diphosphokinase ndk of the Bacillus subtilis 168.
(29) Through the screening of the resistant plate of actinospectacin, and colony PCR verification, after sequencing, whether or not the guanylate kinase gmk and the nucleotide diphosphokinase ndk are intensively expressed successfully is confirmed, and one in which the actinospectacin is positive in resistance is the Bacillus subtilis with the substitution frame successfully transformed; and one with a special band verified by colony PCR and consistence between a sequencing result and a theoretical result is the Bacillus subtilis in which the substitution frames are successfully transformed and recombined, i.e., the Bacillus subtilis in which the guanylate kinase gmk and the nucleotide diphosphokinase ndk are intensively expressed successfully.
(30) Upon the confirmation of the successful intensive expression of the guanylate kinase gmk and the nucleotide diphosphokinase ndk, recombinant Bacillus subtilis BSGN is obtained.
(31) Guanosine diphosphate fucose is produced by fermenting the recombinant Bacillus subtilis BSGN, with a fermentation condition being same as that in Embodiment 3. After fermentation ends, cells are collected through centrifugation, and an intracellular soluble mixed solution is obtained through ultrasonication, in which the guanosine diphosphate fucose is not detected.
COMPARATIVE EXAMPLE 2
(32) According to sequences of fucokinase and phosphate guanylyltransferase genes fkp of Bacteroides fragilis (ATCC No. 25285) published on NCBI, a recombinant plasmid with a sequence, shown as SEQ ID NO. 3, is constructed.
(33) The constructed recombinant plasmid is electrically transformed into competent cells of the Bacillus subtilis 168, with a volume of addition of 50 to 300 ng and under electrical transformation conditions of a voltage of 2.5 kV and an electric shock reagent of 5 ms. Then, the competent cells are recovered at 37° C. for 5 h, coated on a resistant LB plate of kanamycin with a final concentration of 25 μg/mL and subjected to aerobic culture at 37° C. for 12 h, and a plurality of monoclones are selected.
(34) Through the screening of the resistant plate of e kanamycin, and colony PCR verification, after sequencing, whether or not the fucokinase and phosphate guanylyltransferase genes are expressed successfully is confirmed, and one in which the kanamycin is positive in resistance is the Bacillus subtilis with successful transformation; and one with a special band verified by colony PCR and consistence between a sequencing result and a theoretical result is the Bacillus subtilis in which substitution frames are successfully recombined, i.e., the fucokinase and the phosphate guanylyltransferase are expressed successfully.
(35) Upon the confirmation of the successful expression of the fucokinase and the phosphate guanylyltransferase of the Bacteroides fragilis, recombinant Bacillus subtilis BSF is obtained.
(36) Guanosine diphosphate fucose is produced by fermenting the recombinant Bacillus subtilis BSF, with a fermentation condition being same as that in Embodiment 3. After fermentation ends, cells are collected through centrifugation, and an intracellular soluble mixed solution is obtained through ultrasonication, in which the guanosine diphosphate fucose is not detected.
(37) The foregoing description is only preferred embodiments of the disclosure, and is not intended to limit the disclosure. All any modifications, equivalent replacement and simple improvement and the like within the spirit and principles of the disclosure should be included within protection scope of the disclosure.