Application of protein MoUPE11 in reducing pathogenicity of pyricularia grisea

By constructing a gene knockout vector for rice blast fungus MoUPE11 and inhibiting the expression of the protein MoUPE11, the problem of the difficulty in reducing the pathogenicity of rice blast fungus was solved, and effective prevention and control of rice blast was achieved, reducing the adverse effects of rice blast on rice.

CN121064299AActive Publication Date: 2025-12-05SOUTH CHINA AGRICULTURAL UNIVERSITY
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202511632141.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-10
Publication Date
2025-12-05
Estimated Expiration
2045-11-10

AI Technical Summary

Technical Problem

Among the methods for controlling rice blast, existing technologies are insufficient to effectively reduce the pathogenicity of rice blast fungus, and chemical control is prone to drug resistance and environmental pollution, while the effectiveness of biological control is easily affected by environmental factors, and the breeding speed of disease-resistant varieties is difficult to keep up with the mutation speed of rice blast fungus.

Method used

By constructing a gene knockout vector encoding the protein MoUPE11, the expression of the protein MoUPE11 in *Magnaporum oryzae* was inhibited, and the pathogenicity of *Magnaporum oryzae* was reduced by utilizing RNA interference, gene editing, or homologous recombination techniques.

Benefits of technology

It significantly reduces the pathogenicity of rice blast fungus, slows down conidial germination and appressorium development, and increases sensitivity to oxidative stress, thereby reducing the incidence of rice blast and achieving green control.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN121064299A_ABST
    Figure CN121064299A_ABST
Patent Text Reader

Abstract

The invention discloses an application of protein MoUPE11 in reducing pathogenicity of magnaporthe oryzae. A knockout vector of a gene for coding the protein MoUPE11 is constructed to obtain a knockout mutant MoUPE11, and pathogenicity analysis is performed on the knockout mutant MoUPE11 to find that compared with a wild type control, the pathogenicity of the knockout mutant MoUPE11 is remarkably reduced, and the pathogenicity of a complement mutant MoUPE11-com of the knockout mutant MoUPE11 is recovered to the wild type level, so that the protein MoUPE11 is related to the pathogenicity of pyricularia grisea, and the application has the advantages that the application is simple, the application is convenient, and the application is easy to popularize. The pathogenicity of the protein MoUPE11 can be reduced by inhibiting expression of the protein MoUPE11 in magnaporthe oryzae, so that the morbidity of the rice blast is reduced, the control of the rice blast is realized, and the adverse effect of the rice blast on rice is reduced. In addition, the protein MoUPE11 can be used as a target for development of green rice blast prevention and control products.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The application belongs to the technical field of biological agent development and preparation of plant diseases. More specifically, it relates to the application of protein MoUPE11 in reducing the pathogenicity of Magnaporthe oryzae. BACKGROUND

[0002] The pathogen of rice blast is Magnaporthe oryzae (Pyricularia oryzae) which can cause 10% to 30% reduction of rice yield every year, threatening the safe production of rice. Magnaporthe oryzae

[0003] The main methods for preventing rice blast are chemical control, biological control and breeding of disease-resistant varieties. Breeding of disease-resistant varieties is the most effective method for preventing rice blast, which is economical and sustainable. However, the breeding cycle of disease-resistant varieties is long, and the mutation rate of Magnaporthe oryzae is fast, which makes it difficult to keep up with the mutation rate of Magnaporthe oryzae. Chemical control can take effect quickly, but it can easily lead to drug resistance of the pathogen and environmental pollution and pesticide residues if not used properly. Biological control has the advantage of environmental friendliness, but its control effect is easily affected by environmental factors.

[0004] Taking Magnaporthe oryzae pathogenicity-related genes as targets and reducing the pathogenicity of Magnaporthe oryzae to reduce its harm is an important method for preventing rice blast. At present, the molecular mechanism of Magnaporthe oryzae pathogenicity is not yet perfect, and it is necessary to continuously excavate Magnaporthe oryzae pathogenicity-related genes to facilitate the development of rice blast prevention and treatment preparations with multiple targets and low resistance risk. SUMMARY

[0005] In order to perfect the molecular mechanism of Magnaporthe oryzae pathogenicity and enrich the targets for the development of rice blast prevention and treatment preparations, the application provides the application of protein MoUPE11 in reducing the pathogenicity of Magnaporthe oryzae.

[0006] The first object of the application is to provide the application of protein MoUPE11 in reducing the pathogenicity of Magnaporthe oryzae.

[0007] The second object of the application is to provide the application of a reagent for inhibiting the expression of a gene encoding the protein MoUPE11 in reducing the pathogenicity of Magnaporthe oryzae.

[0008] The third object of the application is to provide the application of a reagent for inhibiting the expression of a gene encoding the protein MoUPE11 in preparing a product for reducing the pathogenicity of Magnaporthe oryzae.

[0009] The fourth object of the application is to provide the application of a reagent for knocking out a gene encoding the protein MoUPE11 in reducing the pathogenicity of Magnaporthe oryzae.

[0010] The fifth object of the application is to provide the application of a reagent for knocking out a gene encoding the protein MoUPE11 in preparing a product for reducing the pathogenicity of Magnaporthe oryzae.​

[0011] A sixth object of the present application is to provide the use of an agent inhibiting the expression of a gene encoding the protein MoUPE11 in the prevention and treatment of rice blast.

[0012] A seventh object of the present application is to provide the use of an agent inhibiting the expression of a gene encoding the protein MoUPE11 in the preparation of a product for the prevention and treatment of rice blast.

[0013] An eighth object of the present application is to provide the use of an agent for knocking out a gene encoding the protein MoUPE11 in the prevention and treatment of rice blast.

[0014] A ninth object of the present application is to provide the use of an agent for knocking out a gene encoding the protein MoUPE11 in the preparation of a product for the prevention and treatment of rice blast.

[0015] The above objects of the present application are achieved by the following technical solutions: The present application constructs a knockout vector of a gene encoding the protein MoUPE11, and obtains a knockout mutant MoUPE11 and found that, compared with the wild type control, MoUPE11 the conidium germination and appressorium development are slowed down, the glycogen metabolism of the conidium is slowed down, the conidium is more sensitive to oxidative stress and the pathogenicity is significantly reduced, while the phenotype and pathogenicity of the complemented mutant are similar to those of the wild type of Magnaporthe oryzae, indicating that the protein MoUPE11 is related to the pathogenicity of Magnaporthe oryzae. Therefore, the present application claims the application of the protein MoUPE11 in reducing the pathogenicity of Magnaporthe oryzae.

[0016] Specifically, the application is achieved by inhibiting the expression of the protein MoUPE11 in Magnaporthe oryzae; the amino acid sequence of the protein MoUPE11 is shown in SEQ ID NO. 1.

[0017] Specifically, the inhibition of the expression of the protein MoUPE11 in Magnaporthe oryzae is achieved by interfering with the expression of a gene encoding the protein MoUPE11, or by mutating the coding region of a gene encoding the protein MoUPE11, or by knocking out a gene encoding the protein MoUPE11.

[0018] More specifically, the inhibition of the expression of the protein MoUPE11 in Magnaporthe oryzae is achieved by interfering with the expression of a gene encoding the protein MoUPE11 by RNA interference technology, or by mutating the coding region of a gene encoding the protein MoUPE11 by a gene editing system, or by knocking out a gene encoding the protein MoUPE11 by homologous recombination.

[0019] The application also provides a method for reducing the pathogenicity of Magnaporthe oryzae, which comprises inhibiting the expression of protein MoUPE11 in Magnaporthe oryzae.

[0020] Specifically, the expression of protein MoUPE11 in Magnaporthe oryzae is inhibited by interfering with the expression of the gene encoding the protein MoUPE11, or by mutating the coding region of the gene encoding the protein MoUPE11, or by knocking out the gene encoding the protein MoUPE11.

[0021] More specifically, the expression of protein MoUPE11 in Magnaporthe oryzae is inhibited by interfering with the expression of the gene encoding the protein MoUPE11 by RNA interference technology, or by mutating the coding region of the gene encoding the protein MoUPE11 by a gene editing system, or by knocking out the gene encoding the protein MoUPE11 by homologous recombination.

[0022] In view of the fact that the pathogenicity of Magnaporthe oryzae can be significantly reduced by knocking out the gene encoding protein MoUPE11 to inhibit the expression of protein MoUPE11 in Magnaporthe oryzae, the prevention and treatment of rice blast is achieved. Therefore, the application also claims the use of a reagent for inhibiting the expression of the gene encoding the protein MoUPE11 in reducing the pathogenicity of Magnaporthe oryzae.

[0023] The application also claims the use of a reagent for inhibiting the expression of the gene encoding the protein MoUPE11 in preparing a product for reducing the pathogenicity of Magnaporthe oryzae.

[0024] The application also claims the use of a reagent for knocking out the gene encoding the protein MoUPE11 in reducing the pathogenicity of Magnaporthe oryzae.

[0025] The application also claims the use of a reagent for knocking out the gene encoding the protein MoUPE11 in preparing a product for reducing the pathogenicity of Magnaporthe oryzae.

[0026] The application also claims the use of a reagent for inhibiting the expression of the gene encoding the protein MoUPE11 in preventing and treating rice blast.

[0027] The application also claims the use of a reagent for inhibiting the expression of the gene encoding the protein MoUPE11 in preparing a product for preventing and treating rice blast.

[0028] The application also claims the use of a reagent for knocking out the gene encoding the protein MoUPE11 in preventing and treating rice blast.

[0029] The application also claims the use of a reagent for knocking out the gene encoding the protein MoUPE11 in preparing a product for preventing and treating rice blast.

[0030] Optionally, the reagent for inhibiting the expression of the gene encoding the protein MoUPE11 is a reagent for knocking out the gene encoding the protein MoUPE11 by using antisense gene technology or RNA interference technology. MoUPE11 The reagent for inhibiting the expression is used.

[0031] Optionally, the reagent is siRNA or dsRNA targeting the gene MoUPE11 .

[0032] Specifically, the reagent for knocking out the gene encoding the protein MoUPE11 is a reagent for functionally knocking out the gene or knocking out the entire gene. MoUPE11

[0033] Optionally, the reagent is a knockout vector for the gene MoUPE11 .

[0034] Optionally, the knockout vector is constructed by using the filamentous fungus expression vector pCT74.

[0035] Specifically, the rice blast is caused by Magnaporthe oryzae. Magnaporthe oryzae .

[0036] In addition, the conidial germination and appressorium development of the Magnaporthe oryzae knockout mutant Δ MoUPE11 are slowed down, and the glycogen metabolism of the conidium is slowed down. Therefore, the application of the reagent for inhibiting the expression of the gene encoding the protein MoUPE11 or the reagent for knocking out the gene encoding the protein MoUPE11 in inhibiting the conidial germination, appressorium development and glycogen metabolism of the conidium of Magnaporthe oryzae is also within the protection scope of the present application.

[0037] The present application has the following beneficial effects: By constructing the knockout vector of the gene encoding the protein MoUPE11, the knockout mutant MoUPE11 is constructed, and the pathogenicity analysis shows that, compared with the wild type control, the pathogenicity of the knockout mutant MoUPE11 is significantly reduced, while the pathogenicity of the complementation mutant MoUPE11 com returns to the wild type level, indicating that the protein MoUPE11 is related to the pathogenicity of Magnaporthe oryzae, and the pathogenicity of Magnaporthe oryzae can be reduced by inhibiting the expression of the protein MoUPE11 in Magnaporthe oryzae, thereby reducing the incidence of rice blast, achieving the prevention and control of rice blast, and reducing the adverse effects of rice blast on rice. In addition, the green prevention and control product of rice blast can also be developed by taking the protein MoUPE11 as a target. BRIEF DESCRIPTION OF DRAWINGS

[0038] Figure 1 Magnaporthe oryzae MoUPE11 ​A schematic diagram of the construction of a gene knockout vector.

[0039] Figure 2 For some hygromycin-resistant transformants HPH Gene PCR analysis results; DNA marker: DL 2000 Marker.

[0040] Figure 3 For some hygromycin-resistant transformants MoUPE11 Gene PCR analysis results; DNA marker: DL 2000 Marker.

[0041] Figure 4 For HPH Southern blot analysis results of rice blast fungus knockout transformants with fragments as probes.

[0042] Figure 5 For some bleomycin-resistant transformants MoUPE11 Gene PCR analysis results; DNA marker: DL2000 Marker.

[0043] Figure 6 Rice blast fungus knockout mutant MoUPE11 and complement mutant MoUPE11 -com Gene MoUPE11 The results of RT-qPCR analysis are shown; different letters in the figure indicate significant differences. p< 0.05.

[0044] MoUPE11 Rice blast fungus knockout mutant Figure 7 and complement mutant MoUPE11 Statistical results of conidial germination and appressorium formation observed in -com; Figure A shows the statistical results of conidial germination rate; Figure B shows the statistical results of appressorium formation rate; Figure p< 0.05.

[0045] MoUPE11 Rice blast fungus knockout mutant Figure 8 and complement mutant MoUPE11 Analysis results of the stress resistance capability of com.

[0046] MoUPE11 Rice blast fungus knockout mutant Figure 9 and complement mutant MoUPE11The results of pathogenicity determination of the com against rice in vitro leaf. DETAILED DESCRIPTION

[0047] The present application will be further described by the following description of the drawings and specific examples, but the examples do not limit the present application in any form. Unless otherwise specified, the reagents, methods and equipment used in the present application are conventional reagents, methods and equipment in the technical field.

[0048] Unless otherwise specified, the reagents and materials used in the following examples are commercially available.

[0049] The amino acid sequence of the protein MoUPE11 is shown in SEQ ID NO. 1 as follows, and the underlined part in the sequence is the signal peptide thereof: MoUPE11 IDVRGYVGDNCGGAWVGCANLNPNVCCTPFGGSRASVGFAAIPTNWRIRGQAFTGGGCNSYGGQGDSNGRDFFCLPYTTRGDRTGGSYSFVNRKRAIDETCPAEQPLGRCEATVKPDTIGLADGTEYNITSLSEDQVNELSAIAASGAGVEAVPANFQVLRRSISA.

[0050] The nucleotide sequence of the gene encoding the protein MoUPE11, i.e. the gene MQFSALLVTFAAATVSA is shown in SEQ ID NO. 2 as follows, and the underlined part in the sequence is the exon, and the unlined part is the intron: MoUPE11 CTAAGCACTAATTGAGCGGCGCAGCACCTGGAAGTTGGCGGGGACAGCCTCGACACCGGCGCCGGAAG CTTTTGGGAAACCAGTTCAAGTCACGTCAGCATTTCGAGTCATAGAAAGGCACGAGAAAAGTAAGAGAAAGAAAAGAAAAACCCAC CAGCAATGGCGCT CAGCTCGTTAACCTGGTCCTCGGACAGACTCGTGATGTTGTACTCGGTGCCGT CAGCAAGGCCAATGGTGTCGGGCTTGACCGTGGCTTCGCATCTGCCCAGAGGCTGCTCGGCCGGGCAGGTCTCGTC GATGGCGCGCTTGCGGTTGACGAACGAGTACGAGCCGCCCGTGCGATCACCACGCGTCGTGTACGGGAGGCAGAAG AAGTCTCTGCCGTTGGAGTCCCCCTGGCCTCCGTACGAGTTGCAGCCGCCTCCCGTAAAGGCCTGGCCGCGGATAC CTGTACAATTGTAATGAGGTTTTTTGTCTGGTTAAGCTTTGCTCTTGTTTTTTTCCTTTTTTGTGTCTTTGAGAAAAGAAATCATTCGGAAGAAACTCAC GCCAGTTGGTCGGGAT GGCTGCAAAGCCAACGCTAGCCCTCGAGCCGCCAAA CGGTGTACAGCATACGTTGGGGTTGAGGTTTGCGCAACCAACCCAGGCCCCGCCGCAGTTGTCGCCGACGTAGCCC .

[0051] The wild-type strain of *Magnapordica oryzae* used in this invention is the dominant race ZC13 ​​in Guangdong Province; the tested rice is the susceptible indica rice line CO39; the cloning vector is pMD18-T vector; the gene knockout vector is the filamentous fungal expression vector pCT74; and the gene complementation vector is pCTZN (derived from the pCT74 plasmid, i.e., the gene on pCT74...). CTGACATCGATGGCCGACACGGTGGCGGCCGCGAAAGTGACGAGAAGTGCTGAGAACTGCAT and GFP Gene replaced with bleomycin resistance gene HPH ).

[0052] Example 1 Zeocin Obtaining knockout mutants and complement mutants 1. Experimental Procedure Rice blast fungus MoUPE11 A schematic diagram of gene knockout vector construction is shown below. MoUPE11 As shown. By Figure 1 It can be seen that the present invention achieves homologous recombination. Figure 1 Gene replacement MoUPE11 +gfp fragment, to achieve hph Gene knockout.

[0053] (1) Rice blast fungus MoUPE11 Amplification of upstream and downstream homologous arms of genes exist MoUPE11 Gene sequences of approximately 1000 bp in length were selected upstream and downstream of the gene as its homologous arms. The upstream homologous arm was named homologous arm A and the downstream homologous arm was named homologous arm B. Amplification primers were designed based on the selected sequences, as shown in Table 1 (SEQ ID NO. 3-6).

[0054] Table 1 MoUPE11 Primers for amplification of gene homologous arms A and B fragments

[0055] Genomic DNA was extracted from wild-type strains of *Magnapordica oryzae* using the OMEGA Fungal DNA Kit. Using the obtained genomic DNA as a template, PCR amplification was performed using the primers shown in Table 1 to obtain... MoUPE11 Homologous arm A of the gene ( MoUPE11 -A) and homologous arm B ( MoUPE11 -B).

[0056] The PCR reaction system used for PCR amplification is shown in Table 2: Table 2. PCR reaction system used for amplifying upstream and downstream homologous arms

[0057] The PCR reaction conditions used for PCR amplification were as follows: 94℃ for 5 min; 98℃ for 10 s, 55℃ for 30 s, 72℃ for 1 min, for a total of 30 cycles; 72℃ for 10 min.

[0058] After the reaction, the PCR amplification products were cleaned and recovered using the OMEGA Cycle Pure Kit.

[0059] (2) MoUPE11 Construction of gene knockout vector Referring to the instructions for the pMD18-T Vector Cloning Kit (TakaRa), clean and recover the obtained... MoUPE11 -A and MoUPE11 -B was ligated to the T vector to obtain the recombinant plasmid pMD18T- MoUPE11 -A and pMD18T- MoUPE11 -B. The bonding system used is shown in Table 3, and the reaction conditions were overnight bonding at 16°C.

[0060] Table 3 Connection System

[0061] Add 10 µL of the ligation product to 100 µL of E. coli DH5α competent cells and place on ice for 30 min; heat shock in a water bath at 42℃ for 90 s, then cool on ice for 5 min; add 700 µL of LB liquid medium and culture at 37℃ and 180 rpm for 1 h with shaking; centrifuge at 3500 rpm for 5 min, discard the supernatant, and mix 100 µL of the bacterial culture with the precipitate, then spread it on LB solid medium (containing 100 µg / mL Amp); culture at 37℃ for 8–12 h.

[0062] Positive transformants with Amp resistance were selected, and recombinant plasmid DNA was extracted for sequencing and alignment. MoUPE11 I and Apa I respectively analyzed the pMD18T- sequenced and aligned samples. Kpn The A and pCT74 vectors were double-digested and gel-cleaved. The homologous arm A fragment was ligated to pCT74 using T4 DNA ligase, and the resulting compound was transformed into *E. coli* DH5α to obtain the recombinant plasmid pCT74-. MoUPE11 -A. Follow the same procedure, using MoUPE11 I and Xba pMD18T- RI double digestion and sequencing alignment Eco -B and recombinant plasmid pCT74- MoUPE11 -A was then excised and recovered from the gel. The homologous arm B fragment was ligated with pCT74- using T4 DNA ligase. MoUPE11A ligated and transformed into E. coli DH5a. After enzyme digestion verification, the gene knockout vector pCT74 was obtained MoUPE11 KO.

[0063] (3) MoUPE11 Amplification of the gene complementation fragment The promoter sequence with a length of 1500 bp and the terminator sequence with a length of 500 bp were selected upstream and downstream of the gene, respectively, and the amplification primers were designed based on the selected sequences, as shown in Table 4 (SEQ ID NO. 7-8). MoUPE11 Table 4

[0064] Amplification primers for the gene complementation fragment MoUPE11 Using the above genomic DNA as a template, the primers Com-F and Com-R were used for PCR amplification, and the gene complementation fragment (com) was obtained.

[0065] MoUPE11 MoUPE11 MoUPE11 MoUPE11 MoUPE11 The PCR reaction system used for PCR amplification is shown in Table 5: Table 5 PCR reaction system for amplifying the gene complementation fragment

[0066] MoUPE11

[0067] The PCR reaction conditions used for PCR amplification are as follows: 94°C for 5 min; 98°C for 10 s, 55°C for 30 s, 72°C for 4 min, for a total of 30 cycles; and 72°C for 10 min.

[0068] After the reaction, the PCR amplification product was cleaned and recovered using the OMEGA Cycle Pure Kit reagent kit.

[0069] (4) MoUPE11 Construction of the gene complementation vector The pCTZN-com and pCTZN vectors were double-digested with I and R I, respectively, and the gel was recovered, and the pCTZN-com fragment was ligated with pCTZN using T4 DNA ligase, transformed into E. coli DH5a, and the recombinant plasmid pCTZN-com was obtained. Xba Eco MoUPE11 MoUPE11 MoUPE11 MoUPE11

[0070] ​​​​​​​​​​​​(5) Preparation of rice blast fungus protoplasts Activated *Magnaporphyra yezoensis* strains were inoculated onto Jianli solid medium (yeast extract 5.0 g / L, anhydrous glucose 22.0 g / L, and agar powder 17.0 g / L) and cultured at 28°C for approximately 10 days. Mycelia were then collected using sterile forceps and transferred to 50 mL of YPS liquid medium (yeast extract 6.0 g / L, hydrolyzed casein 6.0 g / L, and sucrose 10.0 g / L) and cultured at 28°C with shaking at 120 rpm for 2 days. Mycelia were collected through a 200-mesh sieve, thoroughly ground, and transferred to 200 mL of YPS medium, and cultured for another day under the same conditions. Mycelia were then collected by filtration through a sieve and washed twice with sterile ddH2O and once with 0.7 mol / L NaCl solution. After drying, weigh 0.3–0.5 g of wet mycelium and add 10 mL of enzyme solution (containing 15 mg / mL lysozyme and 15 mg / mL wall-breaking enzyme) per 1 g of mycelium for enzymatic hydrolysis. Hydrolyze at 30°C and 80–110 rpm for approximately 1.5 h with shaking, observing the degree of hydrolysis under a microscope during this period. Filter the hydrolysate through four layers of clean paper. Wash the filtrate with pre-cooled 0.7 mol / L NaCl and collect it. Centrifuge at 4°C and 3500 rpm for 10 min. Resuspend the precipitate in 10 mL of pre-cooled STC solution (1.2 mol / L sorbitol, 10 mmol / L Tris-HCl, 50 mmol / L CaCl2, pH 7.5), centrifuge again, and resuspend in 1 mL of STC. Count the protoplasts using a hemocytometer and adjust the protoplast concentration to 1 × 10⁻⁶. 7 ~1×10 8 Quantity / mL, aliquoted and stored at -80℃.

[0071] (6) Transformation of rice blast fungus protoplasts use Xba I linearized knockout vector pCT74- MoUPE11 -KO, take 200 μL of rice blast fungus protoplasts and add 3-5 μg of the above linearized plasmid; or add the linearized complementation vector pCTZN- MoUPE11The -com plasmid was mixed with the protoplasts of the rice blast fungus knockout mutant; after incubating on ice for 20 min, 2 mL of pre-chilled PTC solution (60% PEG4000, 50 mmol / L CaCl2, 10 mmol / L Tris-HCl, pH 7.5) was added and mixed, and the mixture was incubated on ice for another 15 min; 20 mL of pre-chilled STC solution was added, and the mixture was centrifuged at 4000 rpm for 15 min at 4 °C. The pellet was resuspended in 4 mL of liquid regeneration medium (6.0 g / L yeast extract, 6.0 g / L hydrolyzed casein, and 200.0 g / L sucrose) and thawed at 28 °C and 100 rpm for 16–18 h; 30 mL of solid regeneration medium containing 200 μg / mL hygromycin was added to the centrifuge tube and cooled to about 45 °C; in the experiment of transforming protoplasts with the supplemental vector, the regeneration medium contained 150 µg / mL bleomycin, and after mixing, the mixture was poured into plates and incubated upside down in the dark at 28 °C for 4–5 days. Select resistant transformants and transfer them to Jianli medium containing the same concentration of hygromycin / bleomycin. Incubate at 28°C for 2–3 days for secondary verification to obtain stable transformed strains.

[0072] (8) PCR verification analysis of rice blast fungus knockout mutant Genomic DNA was extracted from the hygromycin-positive transformants according to the instructions of the OMEGA Fungal DNA Kit, and then extracted using primers. HPH -F / HPH -R and MoUPE11 -F / MoUPE11 -R to proceed HPH Gene fragments and MoUPE11 PCR validation analysis of gene fragments. Primers used for PCR validation analysis of knockout mutants are shown in Table 6 (SEQ ID NO. 9-12).

[0073] Table 6 Primers used for PCR validation analysis of knockout mutants

[0074] The PCR reaction system used for PCR validation analysis is shown in Table 7: Table 7 PCR reaction system used for PCR validation analysis

[0075] The PCR reaction conditions were as follows: 98℃ for 3 min; 98℃ for 10 s, 60℃ for 10 s, 72℃ for 10 s, for a total of 30 cycles; 72℃ for 10 min to obtain the amplification product.

[0076] (9) PCR verification analysis of the complemented mutant of rice blast fungus Genomic DNA was extracted from the bleomycin-positive transformants according to the instructions of the OMEGA Fungal DNA Kit, and primers were used. MoUPE11 -F / MoUPE11 -R performs gene fragmentation MoUPE11 The PCR validation analysis used the same PCR reaction system and conditions as the knockout mutant PCR validation analysis.

[0077] (10) Southern blot analysis of rice blast fungus knockout mutant Use primers HPH -F / HPH -R amplification HPH Gene probes were used according to the instructions of the DIG High Prime DNA Labeling and Detection Starter Kit I (Roche LOT28309220). HPH The gene probe was subjected to Southern blot hybridization. The PCR reaction system used to amplify the gene probe is shown in Table 8.

[0078] Table 8 PCR reaction system used for amplifying gene probes

[0079] The PCR reaction conditions were as follows: 94℃ for 5 min; 98℃ for 10 s, 55℃ for 30 s, 72℃ for 1 min, for a total of 35 cycles; and 72℃ for 10 min to obtain the amplification product.

[0080] (11) RT-qPCR validation analysis of rice blast fungus knockout and complement mutants The obtained rice blast fungus was extracted using a column-based fungal total RNA extraction and purification kit (Shanghai Sangon Biotech Co., Ltd.). MoUPE11 Genomic RNA from knockout mutants and complement mutants was used; the RNA was reverse transcribed into cDNA according to the instructions of the reverse transcription kit (Takara). MoActin The gene was used as an internal reference gene and measured using RT-qPCR. MoUPE11 In knockout mutants and complement mutants MoUPE11 The relative expression levels of the target gene. Primers used for RT-qPCR validation analysis are shown in Table 9 (SEQ ID NO. 13-16).

[0081] Table 9 Primers used for RT-qPCR validation analysis

[0082] The qPCR reaction system used in the RT-qPCR verification analysis is shown in Table 10.

[0083] Table 10 qPCR reaction system used in the RT-qPCR verification analysis

[0084] The qPCR reaction conditions are: the first step 95℃, 30s; the second step 95℃, 5s; 60℃, 30s for 40 cycles; the third step 95℃, 10s; 65℃, 5s; 95℃, 5s. Each experiment is repeated for 3 times, and the relative expression level is calculated by using the method.

[0085] 2. Experimental results The application utilizes the method of homologous recombination to transform the pyricularia oryzae protoplast with the knockout vector pCT74- MoUPE11 -KO, and 45 candidate hygromycin resistant transformants are obtained. HPH The PCR analysis results of the hygromycin resistant transformants are shown in Table 2. Figure 2 It can be known that the gene is amplified in the 3 transformants. Figure 2 The PCR verification analysis of the gene in the 3 transformants is carried out, and the results are shown in Table 3. HPH It can be known that the gene is not amplified in the 3 transformants, which further indicates that the 3 transformants are positive transformants. MoUPE11 Figure 3 Based on the PCR verification analysis results, the application selects 2 from the 3 positive transformants (containing the gene but not containing the target gene) to carry out Southern blot analysis, and the Southern blot analysis results of the pyricularia oryzae knockout transformants using the fragment as a probe are shown in Table 4. Figure 3 It can be known that single copy bands appear in the 2 transformants by hybridization using the fragment as a probe. MoUPE11 The above results show that the pyricularia oryzae knockout mutant is successfully obtained.

[0086] The application utilizes the method of random insertion to transform the pyricularia oryzae knockout mutant HPH MoUPE11 with the gene complementation vector pCTZN- HPH -com. Figure 4 Figure 4 HPH MoUPE11 .

[0087] The application utilizes the method of random insertion to transform the pyricularia oryzae knockout mutant MoUPE11 MoUPE11 MoUPE11 ​​​​​​​Bleomycin-resistant transformants were obtained from protoplasts containing -13 (-13). The target gene of some of the bleomycin-resistant transformants ( MoUPE11 PCR analysis results are as follows Figure 5 As shown. By Figure 5 It can be seen that the target gene fragment was amplified in 4 candidate positive transformants, indicating that these 4 transformants contain... MoUPE11 Gene analysis confirmed that these four transformants were positive transformants.

[0088] Rice blast fungus knockout mutant MoUPE11 and complement mutant MoUPE11 -com Gene MoUPE11 The RT-qPCR analysis results are as follows Figure 6 As shown. By Figure 6 It can be seen that the present invention has successfully obtained rice blast fungus. MoUPE11 Knockout mutants and complement mutants.

[0089] Example 2 MoUPE11 Observational analysis of knockout mutants and complement mutants 1. Colony morphology observation and growth rate determination Wild-type and knockout mutant of rice blast fungus MoUPE11 and complement mutant MoUPE11 -com were inoculated onto Jianli medium and cultured at 28°C in the dark. The colony morphology was observed daily, and the colony diameter was measured on day 10.

[0090] Observation revealed that the knockout mutant MoUPE11 and complement mutant MoUPE11 The colony morphology and growth rate of -com were not significantly different from those of the wild type of rice blast fungus.

[0091] 2. Observation on the production and germination of conidia, appressorium formation, and glycogen metabolism of conidia. Moisten the activated rice blast fungus (wild type, knockout mutant) with 2-3 mL of sterile water. MoUPE11 and complement mutant MoUPE11- com) colony surface, crush the Magnaporthe mycelium with a sterilized small spoon, transfer the mycelium liquid to a tomato oat medium (40 g of raw oat is boiled in double distilled water for 1 h, after filtration, 150 mL of tomato juice, 0.06 g of calcium carbonate and 2.5%-3% of agar powder are added, and then double distilled water is added to make up to 1 L) with about 500 μL of mycelium liquid per dish, and the mycelium liquid is evenly spread on the dish with a glass rod; 24 h of light at 28°C, and 4-7 d of inverted culture; 5 mL of sterile water is added to the tomato oat medium with a pipette, and the colony is scraped with a spoon; the spore liquid is collected by filtering with a sterilized 200-mesh cell sieve or 4 layers of dust-free paper. The spore liquid concentration is adjusted to 5 x 105 / mL; 20 μL of the spore liquid is transferred to a hydrophobic slide with a pipette; the slide is kept moist, and the culture is carried out in the dark at 28°C; samples are taken at 2 h, 4 h, 6 h, 8 h, 10 h, 12 h and 24 h, respectively, and the germination of conidia is observed by taking pictures. 4 The germination of conidia and the formation of appressoria are observed and counted at 4 h and 12 h, respectively, and the results are shown in Table 2.

[0092] The spore liquid collected above is adjusted to a concentration of 5 x 105 / mL; 20 μL of the spore liquid is transferred to a hydrophobic slide with a pipette; the slide is kept moist, and the culture is carried out in the dark at 28°C; samples are taken at 2 h, 4 h, 6 h, 8 h, 10 h, 12 h and 24 h, respectively, and the glycogen metabolism of conidia is observed by taking pictures. 4 The germination of conidia and the formation of appressoria are observed and counted at 4 h and 12 h, respectively, and the results are shown in Table 2.

[0093] The observation results of the glycogen metabolism of conidia show that in the wild-type strain and the complemented mutant MoUPE11 of Magnaporthe grisea, the glycogen begins to be transported from conidia to newly formed appressoria at 6 h, and the glycogen in conidia is basically transported to appressoria at 12 h, and most of the glycogen in appressoria is decomposed at 24 h; while in the Δ MoUPE11 of Magnaporthe grisea, the glycogen in conidia begins to be transported from conidia to newly formed appressoria at 8-10 h, and the staining of glycogen can still be observed in conidia and appressoria at 24 h, i.e., the glycogen metabolism in conidia is slowed down. MoUPE11

[0094] The germination of conidia and the formation of appressoria are observed and counted at 4 h and 12 h, respectively, and the results are shown in Table 2. Figure 7 Figure 7 A is the statistical result of the germination of conidia, and B is the statistical result of the formation of appressoria. It can be seen from Table 2 that the Δ Figure 7 of Magnaporthe grisea has a lower germination rate of conidia and a lower formation rate of appressoria. MoUPE11 ​​The conidial germination rate at 4 h and the appressorium formation rate at 12 h were significantly lower than those of the wild type and the complement mutant.

[0095] The above results indicate that MoUPE11 It affects the development and maturation of appressorium.

[0096] 3. Analysis of stress resistance (1) Oxidative stress analysis Wild-type and knockout mutant of rice blast fungus MoUPE11 and complement mutant MoUPE11 -com were inoculated onto Jianli medium containing 20 mmol / L H2O2, and incubated upside down in an incubator at 28℃ for 10 days. The colony growth of different strains was then observed.

[0097] (2) Cell wall integrity analysis Wild-type and knockout mutant of rice blast fungus MoUPE11 and complement mutant MoUPE11 -com were inoculated onto Jianli medium containing 0.01% SDS (sodium dodecyl sulfate), 0.3 g / L CR (Congo red), and 0.08 g / L CFW (fluorescent whitening agent), respectively. After incubation at 28°C with the medium inverted for 10 days, the colony growth of different strains was observed.

[0098] (3) Analysis of high osmotic pressure stress Wild-type and knockout mutant of rice blast fungus MoUPE11 and complement mutant MoUPE11 -com were inoculated onto Jianli medium containing 0.8 mol / L NaCl and 0.8 mol / L Sorbitol, respectively, and incubated upside down in an incubator at 28°C for 10 days. The colony growth of different strains was then observed.

[0099] Rice blast fungus knockout mutant MoUPE11 and complement mutant MoUPE11- The results of the stress resistance analysis of com are as follows: Figure 8 As shown. By Figure 8 It can be seen that, compared with the wild type of rice blast fungus, MoUPE11The sensitivity to 20 mmol / L H2O2 was enhanced, while there was no significant difference in sensitivity to 0.8 mol / L NaCl, 0.8 mol / L Sorbitol, 0.01% SDS, 0.08 g / L CFW and 0.3 g / L CR.

[0100] Example 3 MoUPE11 Pathogenicity analysis of knockout and complement mutants Place moistened filter paper in a petri dish, and cut the fourth leaf of rice (CO-39) and spread it on the filter paper; collect wild-type and knockout mutant rice blast fungi. MoUPE11 and complement mutant MoUPE11 -com's conidial solution (conidial solution concentration is 1×10) 5 The above 10 μL conidial solution (containing 0.05% Tween 20) was added dropwise to rice leaves and placed in a dark artificial climate chamber at 25℃ and 90% humidity for 24 h. After culturing under 12 h light / 12 h dark conditions for 4–5 days, the disease incidence of the rice leaves was observed and photographed.

[0101] Rice blast fungus knockout mutant MoUPE11 and complement mutant MoUPE11 -com's results on the pathogenicity test of detached rice leaves are as follows: Figure 9 As shown. By Figure 9 It can be seen that, compared with the wild type of rice blast fungus and MoUPE11 Compared to -com, Δ MoUPE11 It will not form gray necrotic spots, and the lesion area is relatively small.

[0102] The above results indicate that Δ MoUPE11 The reduced pathogenicity to detached rice leaves indicates that... MoUPE11 Genes are related to the pathogenicity of rice blast fungus, and can be used as targets to develop rice blast control agents.

[0103] 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. Use of the protein MoUPE11 for reducing the pathogenicity of Magnaporthe grisea, characterized in that, The application is achieved by inhibiting the expression of the protein MoUPE11 in Magnaporthe grisea; the amino acid sequence of the protein MoUPE11 is shown as SEQ ID NO.

1.

2. Use according to claim 1, characterized in that, The inhibition of the expression of the protein MoUPE11 in Magnaporthe grisea is achieved by interfering with the expression of the gene encoding the protein MoUPE11, or by mutating the coding region of the gene encoding the protein MoUPE11, or by knocking out the gene encoding the protein MoUPE11.

3. Use of an agent for inhibiting the expression of the gene encoding the protein MoUPE11 in claim 1 in reducing the pathogenicity of Magnaporthe grisea.

4. Use of an agent for inhibiting the expression of the gene encoding the protein MoUPE11 in claim 1 in the preparation of a product for reducing the pathogenicity of Magnaporthe grisea.

5. Use of an agent for knocking out the gene encoding the protein MoUPE11 in claim 1 in reducing the pathogenicity of Magnaporthe grisea.

6. Use of an agent for knocking out the gene encoding the protein MoUPE11 in claim 1 in the preparation of a product for reducing the pathogenicity of Magnaporthe grisea.

7. Use of an agent for inhibiting the expression of the gene encoding the protein MoUPE11 in claim 1 in the prevention and treatment of rice blast.

8. Use of an agent for inhibiting the expression of the gene encoding the protein MoUPE11 in claim 1 in the preparation of a product for preventing and treating rice blast.

9. Use of an agent for knocking out the gene encoding the protein MoUPE11 in claim 1 in the prevention and treatment of rice blast.

10. Use of an agent for knocking out the gene encoding the protein MoUPE11 in claim 1 in the preparation of a product for preventing and treating rice blast.

Citation Information

Patent Citations

  • Application of effect protein MoUPE7 in regulation and control of pathogenicity of pyricularia grisea

    CN118271410A

  • Novel pathogenicity gene in blast fungus to suppress basal defenses of host and uses thereof

    KR1020100111512A