Preparation method and application of MgAl-LDH-dsRNA nano nucleic acid pesticide for preventing and treating apple ring spot

By compounding dsRNA with nano MgAl-LDH to prepare MgAl-LDH-dsRNA nano nucleic acid pesticide, the key genes of apple ring rot pathogen are targeted and silenced, solving the problem of poor stability of naked dsRNA and achieving green and efficient prevention and control of apple ring rot.

CN120665869APending Publication Date: 2025-09-19HENAN AGRICULTURAL UNIVERSITY
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Patent Information

Application Number
CN202510841394.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-23
Publication Date
2025-09-19

AI Technical Summary

Technical Problem

In the existing technology, naked dsRNA has poor molecular stability in the natural environment and is easily degraded by ultraviolet rays and nucleases, which affects the prevention and control of apple ring rot. In addition, the use of chemical pesticides leads to environmental pollution and increased drug resistance.

Method used

Naked dsRNA was compounded with nano-MgAl-LDH to prepare MgAl-LDH-dsRNA nanonucleic acid pesticide. By targeting and silencing the key pathogenic gene BdNIS1 of apple ring rot fungus, the biocompatibility and ion exchange properties of nano-MgAl-LDH were utilized to achieve drug loading and release.

Benefits of technology

It significantly inhibits the infection ability of apple ring rot fungus, reduces the expression of pathogen-related target genes, provides a green and efficient disease prevention and control method, and improves the molecular stability of dsRNA.

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Abstract

The invention provides a preparation method of a MgAl-LDH-dsRNA nano nucleic acid pesticide for preventing and treating apple ring rot, which comprises the following steps: carrying out in-vitro synthesis and purification on dsRNA of a key pathogenic effect gene BdNIS1 of target silence Botryosphaeria dothidea to obtain dsRNA, and adding the dsRNA into a nano chitosan colloid dispersion system to obtain the MgAl-LDH-dsRNA nano nucleic acid pesticide for preventing and treating the apple ring rot. The invention also provides an application for preventing and treating apple ring spot. The naked dsRNA is combined with the nano MgAl-LDH, the prepared MgAl-LDH-dsRNA nano nucleic acid pesticide has the effect of resisting physalospora piricola, the expression quantity of pathogenic bacteria related target genes in the infection stage is obviously inhibited, and the infection capacity of physalospora piricola is obviously reduced. The nano MgAl-LDH has a two-dimensional layered structure, and can realize loading and release of drugs through ion exchange. Therefore, the RNAi nucleic acid pesticide has a wide application prospect in the field of prevention and control of physalospora piricola.
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Description

Technical Field

[0001] The invention belongs to the technical field of plant disease prevention and control, and particularly relates to a preparation method and application of a MgAl-LDH-dsRNA nano nucleic acid pesticide for preventing and controlling apple ring rot. Background Art

[0002] apple( Malusdomestica ) is one of the four most famous fruits in the world and one of the fruit varieties that earns the most foreign exchange from export in my country. Apple and its related industries occupy an important position in my country's agricultural economy and must be given high attention. Apple ring rot is one of the main diseases that affect the safe production of apples in my country. The pathogens of this disease are complex and mainly composed of the genus Botrytis cinerea ( Botryosphaeria dothidea ), Botrytis cinerea ( B. obtusa ), Botrytis cinerea ( B. stevensii ) and Botrytis cinerea ( B.kuwatsukai ) and other species, among which Botrytis cinerea ( B. dothidea ) is the main pathogen. B.dothidea Not only can it infect branches and trunks, causing rough bark or ulcers, severely weakening the tree and reducing the quality and quantity of fruit, it can also harm fruit during storage, causing it to rot and deteriorate, leading to serious economic losses. Currently, the prevention and control of apple ring rot mainly relies on the selection of disease-resistant varieties, combined with scientific planting plans and the spraying of chemical pesticides for comprehensive prevention and control. However, the breeding cycle of apple varieties is long, difficult, and slow to show results. At the same time, the large-scale use of chemical agents not only pollutes the environment and enhances the resistance of pathogens, but also forms pesticide residues on the fruit, which enter the human body through the biological cycle and threaten the health of consumers. Therefore, the development of new green, efficient, and low-residue biopesticides has become an indispensable path to achieving the sustainable development of modern agriculture.

[0003] In recent years, with the rapid development of RNAi technology, this technology has shown great application potential in the field of plant pathogen control. More and more cases have proved that it is feasible to use nucleic acid pesticides based on RNAi technology to control diseases. RNAi nucleic acid pesticides have been successfully used to control Fusarium graminearum ( Fusarium graminearum ), Sclerotinia sclerotiorum ( Sclerotinia sclerotiorum ), myrtle rust ( Austropuccinia psidii )、Botrytis cinerea( Botrytis cinerea ), Rice Sheath Blight Pathogen ( Rhizoctonia solani ), Aspergillus niger ( Aspergillus niger ) and Verticillium dahliae ( Verticillium dahliae ) and other fungi. B. dothidea), there are few reports on their sensitivity to RNAi, or whether pathogens can absorb exogenous double-stranded small RNA (dsRNA). It is well known that RNAi primarily functions through dsRNA and siRNA. Naked dsRNA remains relatively stable only at low temperatures (<4°C), with its molecular stability significantly reduced in the wild. Exposed to the elements, naked dsRNA is susceptible to degradation by ultraviolet light, high temperatures, and the widespread presence of nucleases on plant surfaces, which can affect its efficacy. Therefore, developing RNAi-based nucleic acid pesticides based on dsRNA or siRNA, and enhancing their molecular stability through structural modifications or synergistic enhancers, will provide a breakthrough solution for the industrial application of a new generation of nucleic acid pesticides. Summary of the Invention

[0004] The technical problem to be solved by the present invention is to address the deficiencies of the above-mentioned prior art and provide a method for preparing and applying a MgAl-LDH-dsRNA nanonucleic acid pesticide for preventing and treating apple ring rot. The method compounds naked dsRNA with nano-MgAl-LDH to prepare an RNAi-type nanonucleic acid pesticide against apple ring rot pathogens. The MgAl-LDH-dsRNA nanonucleic acid pesticide for preventing and treating apple ring rot of the present invention has an anti-apple ring rot effect, and the expression of pathogen-related target genes during the infection stage is significantly suppressed, significantly reducing the infection ability of apple ring rot pathogens. In addition, nano-MgAl-LDH has good biocompatibility and can achieve drug loading and release through ion exchange. Therefore, this RNAi-type nucleic acid pesticide has a very broad application prospect in the field of prevention and control of apple ring rot pathogens.

[0005] To solve the above technical problems, the technical solution adopted by the present invention is: a method for preparing a MgAl-LDH-dsRNA nanopesticide for preventing and treating apple ring rot, the method comprising: S1, targeted silencing of apple ring rot pathogen ( Botryosphaeria dothidea ) Key pathogenic effector genes BdNIS1 The dsRNA is synthesized in vitro and purified to obtain dsRNA; the apple ring rot pathogen ( Botryosphaeria dothidea ) Key pathogenic effector genes BdNIS1 The full-length nucleotide sequence of the apple ring rot pathogen ( Botryosphaeria dothidea ) Key pathogenic effector genes BdNIS1 The cDNA nucleotide sequence is shown in SEQ ID No. 2; the nucleotide sequence of the dsRNA is shown in SEQ ID No. 3; S2, adding the dsRNA obtained in S1 to the nano MgAl-LDH colloidal dispersion, mixing, and obtaining the MgAl-LDH-dsRNA nano nucleic acid pesticide for preventing and treating apple ring rot. Preferably, the targeted silencing of apple ring rot fungus in S1 Botryosphaeria dothidea Key pathogenic effector genes BdNIS1 The method for in vitro synthesis of dsRNA is: S101, Extraction of Apple Ring Rot Botryosphaeria dothidea Total RNA was reverse transcribed to obtain cDNA; S102. Based on the cDNA obtained in S1, PCR amplification was performed using primers T7-BdNIS1-F and T7-BdNIS1-R to obtain a PCR product. The amplified target gene fragment was recovered by electrophoresis on a 1.2% agarose gel to obtain a purified PCR product. The reaction system for PCR amplification was as follows: 1 μL of cDNA obtained in S1, 1 μL of primer T7-BdNIS1-F, 1 μL of primer T7-BdNIS1-R, 12.5 μL of KOD DNA polymerase, and ddH2O to make up to 25 μL; The reaction program for PCR amplification was as follows: 98°C for 3 min; 98°C for 10 sec, 58°C for 5 sec, and 68°C for 5 sec, for a total of 35 cycles; 68°C for 7 min, and hold at 16°C; The nucleotide sequence of the primer T7-BdNIS1-F is shown in SEQ ID No. 4; The nucleotide sequence of the primer T7-BdNIS1-R is shown in SEQ ID No. 5; S103, using the purified PCR product obtained in S102 as a template DNA, and using a T7 RNA Transcription Kit to synthesize naked dsRNA targeting the target gene fragment in vitro; Alternatively, the purified PCR product obtained in S102 was analyzed using HyperScribe TM T7 High Yield Cy3 / Cy5 RNA Labeling Kit is used to synthesize naked dsRNA containing fluorescently labeled target gene fragments in vitro.

[0006] Preferably, when the T7 RNA Transcription Kit is used in S103, the reaction system is: 1 μL of T7 RNA Polymerase, 1 μL of RNase Inhibitor, 5 μL of 10× Transcription Buffer, 8 μL of NTP Mix, 1 μg of the purified PCR product obtained in S102, and DEPC H2O added to 50 μL; the reaction procedure is: 37°C for 4 hours, incubation at 72°C for 10 minutes, and then incubation at room temperature for 20 minutes; When using HyperScribe in S103 TM For the T7 High Yield Cy3 / Cy5 RNA Labeling Kit, the reaction system is: 2 μL of 10× Reaction Buffer, 2 μL of 20 mM ATP, 2 μL of 20 mM GTP, 2 μL of 20 mM CTP, 1.5 μL of 20 mM UTP, 1 μL of 10 mM Cy3-UTP, 1 μg of the purified PCR product obtained in S102, 2 μL of T7 RNA Polymerase Mix, and ddH2O to make up to 20 μL; the reaction procedure is: 37°C for 4 hours.

[0007] Preferably, the preparation method of the nano-MgAl-LDH colloidal dispersion system in S2 is: dispersing the nano-MgAl-LDH in DEPC water and dispersing it by ultrasonic vibration; The preparation method of the nano MgAl-LDH is: S201, MgCl2 . 6H2O and AlCl3 are dissolved in deionized water to obtain a metal salt solution; S202, dissolving NaOH and CH3COONa in deionized water to obtain an alkaline mixed solution; S203. Under N2 atmosphere, the alkaline mixed solution obtained in S202 was stirred, and the metal salt solution obtained in S201 was added, and the mixture was stirred for 1 hour under N2 atmosphere and a temperature of 60°C. At the same time, the pH value of the system was maintained at 10.0 with an aqueous sodium hydroxide solution. After centrifugation, the supernatant was discarded, and the precipitate was washed three times with deionized water from which CO2 had been removed. The washed precipitate was dispersed in deionized water, reacted at a temperature of 160°C for 16 hours, and centrifuged. The obtained precipitate was washed three times with deionized water from which CO2 had been removed, and then washed three times with anhydrous ethanol. The washed precipitate was then resuspended in deionized water from which CO2 had been removed, frozen at a temperature of -80°C, and freeze-dried at a temperature of -30°C for 48 hours to obtain nano-MgAl-LDH.

[0008] Preferably, the MgCl2 in S201 . The usage ratio of 6H2O, AlCl3 and deionized water is 1.22g:0.27mg:20mL; the usage ratio of NaOH, CH3COONa and deionized water in S202 is 0.48g:0.648g:80mL.

[0009] Preferably, the final concentration of nano-MgAl-LDH in the MgAl-LDH-dsRNA nano-nucleic acid pesticide for preventing and treating apple ring rot in S2 is 0.2×10 -2 g / mL, and the final concentration of dsRNA was 0.005×10 -2 g / mL.

[0010] The present invention also provides the use of the MgAl-LDH-dsRNA nanoparticle nucleic acid pesticide for preventing and treating apple ring rot prepared by the above-mentioned preparation method, wherein the MgAl-LDH-dsRNA nanoparticle nucleic acid pesticide for preventing and treating apple ring rot is used to prevent and treat apple ring rot ( Botryosphaeria dothidea ).

[0011] Compared with the prior art, the present invention has the following advantages: The present invention takes the green prevention and control of apple ring rot as its basic starting point. Based on RNAi technology, naked dsRNA is combined with nano MgAl-LDH to prepare an RNAi-type nano nucleic acid pesticide against apple ring rot pathogens, providing technical support for the green prevention and control of apple ring rot pathogens. The efficacy evaluation shows that the MgAl-LDH-dsRNA nano nucleic acid pesticide for preventing and treating apple ring rot of the present invention has the effect of resisting apple ring rot pathogens. The expression level of the pathogen-related target gene in the infection stage is significantly inhibited, and the infection ability of apple ring rot pathogens is significantly reduced. In addition, the MgAl-LDH nanomaterial can realize drug loading and release through ion exchange. The material has a two-dimensional layered structure, which provides space for the embedding of drug molecules and is conducive to interaction with drug molecules. Therefore, this RNAi-type nucleic acid pesticide has a very broad application prospect in the field of prevention and control of apple ring rot pathogens.

[0012] The present invention will be further described in detail below with reference to the accompanying drawings and embodiments. BRIEF DESCRIPTION OF THE DRAWINGS

[0013] Figure 1 The target silencing fungus for apple ring rot ( B. dothidea ) Key pathogenic effector genes BdNIS1 Gel electrophoresis of naked dsRNA (1.2% agarose gel, 120V, 28min).

[0014] Figure 2This is a scanning electron microscope image of the nano-MgAl-LDH prepared in Example 1 of the present invention.

[0015] Figure 3 In Example 2 of the present invention, Cy5 / Cy3-dsBdNIS1 labeled with fluorescein was used to incubate apple ring rot pathogen ( B. dothidea ) The absorption of fluorescently labeled dsRNA by pathogen hyphae was observed using a fluorescence microscope within 6 hours, and the mycelium at the corresponding treatment time points BdNIS1 Gene expression level.

[0016] Among them, (a) shows the absorption of dsRNA by the pathogen and the distribution of dsRNA in the mycelium cells when the mycelium of apple ring rot pathogen was incubated with Cy5-dsBdNIS1 for 6 hours; (b) shows the absorption of dsRNA by the pathogen and the distribution of dsRNA in the mycelium cells when the mycelium of apple ring rot pathogen was incubated with Cy3-dsBdNIS1 for 1-6 hours, and the distribution of dsRNA in the mycelium cells was observed every 1 hour; (c) shows the absorption of dsRNA in the mycelium of the pathogen at the corresponding time point in (b). BdNIS1 Gene expression (** indicates significant difference at the P ≤ 0.01 level).

[0017] Figure 4 This figure shows the inhibitory effect of dsBdNIS1 on apple fruit ring rot and apple twig ring rot tested using two treatment methods in Example 2 of the present invention (Treatment A: incubating the mycelium of the apple ring rot pathogen with dsBdNIS1 for 6 hours before inoculation; Treatment B: spraying dsBdNIS1 directly onto the inoculation point on the fruit or twig and then inoculating the mycelium of the apple ring rot pathogen).

[0018] The statistical results for apple fruits are after 3 days of incubation, and the statistical results for apple branches are after 7 days of incubation. (a) is the incidence map of apple ring rot on fruits and branches; (b) is the statistical map of the area of ​​ring rot lesions and the interaction between apple ring rot pathogens and apple fruits. BdNIS1 Gene expression levels (** indicates significant differences at the P ≤ 0.01 level).

[0019] Figure 5 Figures showing the effect of nano-MgAl-LDH coupled to dsBdNIS1 in Example 2 of the present invention and the inhibitory effect of the nano-nucleic acid pesticide MgAl-LDH-dsBdNIS1, formed by dsBdNIS1 and MgAl-LDH, on apple ring rot. (a) shows the coupling effect of MgAl-LDH on dsBdNIS1 at different concentrations; (b) and (c) show the inhibitory effect of MgAl-LDH-dsBdNIS1 on apple ring rot as tested using the Treatment B method (** indicates significant difference at the P ≤ 0.01 level; ns indicates not significant difference). DETAILED DESCRIPTION

[0020] Example 1 Apple ring rot fungus ( B.dothidea ) RNAi target gene, which has NIS1 (Necrosis-inducing secreted protein 1) domain, is the key pathogenic effect gene of apple ring rot pathogen identified. Botryosphaeria dothidea ) Key pathogenic effector genes BdNIS1 The gene sequence of B. dothidea The whole genome sequence and GFF3 gene annotation file were obtained through the correspondence between proteins and genes), from which a gene sequence with a length of 413 bp containing the key domain (NIS1) was selected ( BdNIS1 Specific primers were designed based on the 55-467 bp region of the cDNA sequence (413 bp is SEQ ID No. 3) (T7 promoter was added to the 5' end of the primer).

[0021] BdNIS1 The nucleotide sequence of the cDNA sequence is shown in SEQ ID No. 2; The preparation method of the MgAl-LDH-dsRNA nanoparticle nucleic acid pesticide for preventing and treating apple ring rot in this embodiment is as follows: S1, targeted silencing of apple ring rot pathogen ( Botryosphaeria dothidea ) Key pathogenic effector genes BdNIS1 The dsRNA was synthesized in vitro and purified to obtain dsRNA (named dsBdNIS1); the apple ring rot pathogen ( Botryosphaeria dothidea ) Key pathogenic effector genes BdNIS1 The full-length nucleotide sequence of the apple ring rot pathogen is shown in SEQ ID No.1; Botryosphaeria dothidea Key pathogenic effector genes BdNIS1 The cDNA nucleotide sequence is shown in SEQ ID No. 2; the nucleotide sequence of the dsRNA is shown in SEQ ID No. 3; The targeted silencing of apple ring rot pathogen ( Botryosphaeria dothidea ) Key pathogenic effector genes BdNIS1 The method for in vitro synthesis of dsRNA is: S101, extract apple ring rot pathogen ( Botryosphaeria dothidea ) total RNA, and reverse transcription was performed to obtain cDNA; S102. Using the cDNA obtained in S1 as the amplification template, PCR amplification was performed with primers T7-BdNIS1-F and T7-BdNIS1-R (Table 1). The resulting PCR product was subjected to 1.2% agarose gel electrophoresis (120 V, 28 min). Subsequently, a universal DNA purification and recovery kit (Shanghai Huiling) was used to recover the amplified target gene fragment to obtain a purified PCR product. Table 1 Targeted effector genes of apple ring rot pathogen BdNIS1 Primers used for in vitro synthesis of dsRNA

[0022] The reaction system for PCR amplification was as follows: 1 μL of cDNA obtained in S1, 1 μL of primer T7-BdNIS1-F, 1 μL of primer T7-BdNIS1-R, 12.5 μL of KOD DNA polymerase, and ddH2O to make up to 25 μL; The reaction program for PCR amplification was as follows: 98°C for 3 min; 98°C for 10 sec, 58°C for 5 sec, and 68°C for 5 sec, for a total of 35 cycles; 68°C for 7 min, and hold at 16°C; S103, the purified PCR product obtained in S102 was used to TM T7 High Yield Cy3 / Cy5 RNA Labeling Kit (APE×BIO) for in vitro synthesis of naked dsRNA containing fluorescently labeled target gene fragments; The naked dsRNA synthesized in vitro with the fluorescently labeled target gene fragment is purified to obtain the fluorescein-labeled dsRNA; The reaction system is as follows: 10× Reaction Buffer 2μL, 20mM ATP 2μL, 20mM GTP 2μL, 20mM CTP 2μL, 20mM UTP 1.5μL, 10mM Cy3-UTP 1μL, 1μg of the purified PCR product obtained in S102, T7RNA Polymerase Mix 2μL, and ddH2O to make up to 20μL; The reaction procedure is: react at 37°C for 4 hours to form dsRNA.

[0023] Take 1µL of the reaction product, dilute it to 5µL with DEPC H2O, add 1µL of 6× Loading Buffer and mix well. Perform 1.2% gel electrophoresis to check the quality of dsRNA (qualified dsRNA is a single band of 413bp in size) Figure 1The reverse transcribed dsRNA was recovered and stored at -20°C.

[0024] In the step S103 of this embodiment, the synthesis of dsRNA can also be dsRNA without fluorescein labeling, and the specific method is as follows: The purified PCR product obtained in S102 was used as template DNA to synthesize naked dsRNA targeting the target gene fragment in vitro using the T7 RNA Transcription Kit (Shanghai Bolang). The naked dsRNA targeting the target gene fragment is synthesized in vitro and purified to obtain dsRNA; The reaction system consisted of 1 μL of T7 RNA Polymerase, 1 μL of RNase Inhibitor, 5 μL of 10× Transcription Buffer, 8 μL of NTP Mix, and 1 μg of the purified PCR product obtained in S102, with DEPC H2O added to 50 μL. The reaction procedure was as follows: 37°C for 4 hours, incubation at 72°C for 10 minutes, and then incubation at room temperature for 20 minutes to form dsRNA. Take 1µL of the reaction product, dilute it to 5µL with DEPC H2O, then add 1µL of 6× Loading Buffer and mix well. Use 1.2% agarose gel electrophoresis (120V, 28min) to detect the synthesis of the transcription product (qualified dsRNA is a single band of 413bp in size, SEQ ID No. 3). Recover the transcribed dsRNA and store it at -20℃.

[0025] S2, dispersing nano-MgAl-LDH in DEPC water, and dispersing by ultrasonic vibration to obtain nano-MgAl-LDH colloidal dispersion system; The preparation method of the nano MgAl-LDH is: S201, 1.22g MgCl2 . 6H2O and 0.27mg AlCl3 were dissolved in 20mL deionized water to obtain a metal salt solution; S202, dissolving 0.48 g of NaOH and 0.648 g of CH3COONa in 80 mL of deionized water to obtain an alkaline mixed solution; S203. Under N2 atmosphere, the alkaline mixed solution obtained in S202 was stirred, and the metal salt solution obtained in S201 was added, and the mixture was stirred for 1 h under N2 atmosphere and a temperature of 60°C. At the same time, the pH value of the system was maintained at 10.0 with a 2 mol / L sodium hydroxide aqueous solution. After centrifugation, the supernatant was discarded, and the precipitate was washed 3 times with deionized water from which CO2 had been removed. The washed precipitate was dispersed in deionized water, reacted at a temperature of 160°C for 16 h, and centrifuged. The obtained precipitate was washed 3 times with deionized water from which CO2 had been removed, and then washed 3 times with anhydrous ethanol. The washed precipitate was then resuspended in deionized water from which CO2 had been removed, frozen at a temperature of -80°C, and freeze-dried at a temperature of -30°C for 48 h to obtain nano-MgAl-LDH, i.e., magnesium-aluminum layered double hydroxide; the particle size of the nano-MgAl-LDH was 50 nm to 60 nm. The nano-MgAl-LDH prepared in this embodiment is a layered double hydroxide with a unique two-dimensional layered structure and a regular hexagonal structure, which is a nano-scale material ( Figure 2 ).

[0026] BET results show that the specific surface area of ​​nano-MgAl-LDH is 48.9051m 2 / g; MgAl-LDH nanomaterials can achieve drug loading and release through ion exchange. The material has a two-dimensional layered structure, which provides space for the embedding of drug molecules and is conducive to interaction with drug molecules.

[0027] The dsRNA obtained in S1 was added to the obtained nano-MgAl-LDH colloidal dispersion, and after mixing, a MgAl-LDH-dsRNA nano-nucleic acid pesticide for preventing and treating apple ring rot was obtained; the final concentration of nano-MgAl-LDH in the MgAl-LDH-dsRNA nano-nucleic acid pesticide for preventing and treating apple ring rot was 0.2×10 -2 g / mL, and the final concentration of dsRNA was 0.005×10 -2 g / mL.

[0028] Example 2 This example is the application of the MgAl-LDH-dsRNA nanoparticle nucleic acid pesticide for preventing and treating apple ring rot prepared in Example 1. The MgAl-LDH-dsRNA nanoparticle nucleic acid pesticide for preventing and treating apple ring rot is used to prevent and treat apple ring rot ( Botryosphaeria dothidea ).

[0029] (1) Apple ring rot pathogen ( Botryosphaeria dothidea ) Absorption test of exogenous dsRNA Specific steps: (1) Use the VIGS Tool website (https: / / vigs.solgenomics.net / ) to predict BdNIS1 The best silencing site; (2) The fluorescein-labeled dsRNA synthesized in step S103 of Example 1 was diluted to 50 ng / μL with DEPC water. The marginal hyphae of the rejuvenated apple ring rot pathogen colony on a PDA plate were selected and immersed in the solution. The mixture was incubated at 25°C, 100 rpm, and protected from light for 6 h. During this period, a portion of the hyphae was selected every hour and observed under a Cy3 (λ = 550 nm) / Cy5 (λ = 649 nm) excitation light source to see if the fluorescent-labeled dsRNA had penetrated the pathogen hyphae.

[0030] (3) The total RNA of mycelium within 1-6 hours of the above treatment was extracted using the Kangwei Century Ultrapure RNA Extraction Kit (CW0581S), and reverse transcribed using the All-in-One Script Rtpremix (with dsDNase) Kit (Ke Ermei) to obtain cDNA. Bd-Actin The key pathogenic effect genes of apple ring rot pathogen were detected by RT-qPCR technology after treatment with Cy5 / Cy3 fluorescently labeled dsRNA for 1-6h. BdNIS1 Target gene-specific primers were designed using DNAMAN (Table 2), and primer specificity was analyzed using Primer-BLAST (https: / / blast.ncbi.nlm.nih.gov / Blast.cgi). Primers were then ordered and synthesized on the Shanghai Bioengineering Online Primer Design website.

[0031] Table 2 RT-qPCR detection primers

[0032] like Figure 3 As shown, Figure 3 In Figures 3a and 3b, Bright is the microscope bright field channel, Cys (Cy5 / Cy3 fluorescence channel), and Merge is the fusion channel.

[0033] Figure 3 Middle c shows the expression level of BdNIS1 gene detected by real-time fluorescence quantitative PCR (RT-qPCR) at different time points after dsBdNIS1 treatment. The grouping treatments are: H2O treatment: (1) Pick the edge hyphae of the rejuvenated apple ring rot fungus colony on the PDA plate and immerse them in 500 μL of DEPC water. Incubate at 25°C, 100 rpm, in the dark for 1-6 hours. 6 treatments were performed in 1-hour increments. (2) Use the Kangwei Century Ultrapure RNA Extraction Kit (CW0581S) to extract the total RNA of the hyphae within 1-6 hours of the above treatment, and use the All-in-One Script Rtpremix (with dsDNase) Kit (Ke Ermei) to reverse transcribe and obtain cDNA for use.

[0034] Cy3 fluorescently labeled dsBdN1S1 treatment: (1) Pick the edge hyphae of the rejuvenated apple ring rot fungus colony on the PDA plate and immerse them in 500 μL of 50 ng / μL Cy3-dsBdNIS1. Incubate at 25°C, 100 rpm, in the dark for 1-6 hours. 6 treatments were performed in 1-hour increments. (2) Use the Kangwei Century Ultrapure RNA Extraction Kit (CW0581S) to extract the total RNA of the hyphae within 1-6 hours of the above treatment, and use the All-in-One Script Rtpremix (with dsDNase) Kit (Ke Ermei) to reverse transcribe and obtain cDNA for use.

[0035] RT-qPCR was used to detect the key pathogenic effect genes of apple ring rot pathogen after Cy3-dsBdNIS1 treatment for 1-6h. BdNIS1 The above H2O treatment 1-6h gene was used as a standard reference, and 2- △△Ct Conduct analysis.

[0036] The test results are as follows Figure 3 As shown in (a), 6 hours after treatment with Cy5-dsBdNIS1, Cy5 signals were observed within the mycelium. The Cy5 fluorescence signal was evenly distributed throughout the mycelium, with slightly stronger fluorescence at the mycelial septa than elsewhere. This suggests that after the apple ring rot pathogen absorbs dsRNA through the cell membrane and cell wall, it is primarily transported between cells through the pores in the septa.

[0037] To verify this conclusion, the dsRNA absorption by mycelium was further studied using Cy3-labeled dsRNA (dsBdNIS1-Cy3).

[0038] The test results are as follows Figure 3As shown in (b), after 1 hour of Cy3-dsBdNIS1 treatment, the Cy3 fluorescence signal was only observed near the hyphal septa, with a diffuse pattern. At 2 hours of treatment, a faint Cy3 fluorescence signal was observed within the hyphal cells. After 3 hours of treatment, more fluorescence signal appeared within the cells, and after 4 hours, the entire hyphal cell was completely filled. At 5 and 6 hours, the fluorescence signal within the hyphal cells became even more saturated and continuously increased. Strong fluorescence signals were observed near the hyphal septa at all treatment time points, suggesting that the apple ring rot pathogen may absorb dsRNA through the cell walls and membranes near the septa, gradually diffusing the dsRNA into the hyphal cells from the absorption point, ultimately filling the entire cell. Subsequently, the dsRNA can be transported through the pores in the hyphal septa to other adjacent cells, providing a crucial guarantee for sustained gene silencing. Figure 3 The arrows in (b) indicate the distribution location of Cy3-dsBdNIS1 inside the hyphae after the apple ring rot fungus absorbed the fluorescently labeled dsRNA (Cy3-dsBdNIS1).

[0039] extract Figure 3 (b) Total RNA from mycelia at the corresponding treatment time points was reverse transcribed and tested by RT-qPCR. BdNIS1 The experimental results are as follows Figure 3 (c) 2 hours after treatment BdNIS1 The expression level did not change significantly. After 3 hours, when dsBdNIS1 diffused into the cell, BdNIS1 The expression level of BdNIS1 The expression level of BdNIS1 In summary, the exogenously applied dsRNA can be efficiently absorbed by the apple ring rot pathogen and can significantly inhibit the expression of key pathogenic genes in the mycelium of the apple ring rot pathogen within a short period of time (within 4 hours).

[0040] (II) Inhibition of apple ring rot by naked dsBdNIS1 The naked dsBdNIS1 is the dsBdNIS1 synthesized using the T7 RNA Transcription Kit (Shanghai Bolang) in Example 1, that is, the naked dsBdNIS1 without a fluorescent label.

[0041] Specific steps: a.Apple fruit Step 1: Select healthy (no lesions, no insects) and uniformly sized Red Fuji apples picked from the same orchard. Wash them with tap water, then disinfect the surface with 75% alcohol. Place them in a cool and ventilated place to evaporate excess alcohol and dry excess water.

[0042] Step 2: Use a 5mm hole puncher to punch a 2-3mm deep hole in the middle of the treated apple (about 2cm from the fruit stem on the side of the fruit), and then apply 50μL of dsBdNIS1 into the hole.

[0043] Step 3: Use the apple ring rot pathogen isolated and preserved in our laboratory ( Botryosphaeria dothidea ) as the inoculum source, after it was rejuvenated on the PDA plate, the fungus was punched out at the edge of the colony with a 5mm puncher, and the fungus cake with the hyphae side inward was inoculated into the small hole in step 2, and cultured at 25℃ for 72h. The disease situation of each treatment group was observed and recorded by taking photos.

[0044] Step 4: The tissue at the junction of the diseased and healthy parts of the fruit was cut, and the total RNA of the above fruit tissue was extracted using the Quick RNA Isolation Kit (Huayueyang) and reverse transcribed.

[0045] Step 5: RT-qPCR reaction system was formed using 2×SYBR Greenq PCR Premix and Universal Real-time Fluorescence Quantitative PCR Kit (Kermei). BdNIS1 The gene expression level was used as a control to analyze the rot area and necrotic tissue of apple fruit after dsBdNIS1 treatment. BdNIS1 RT-qPCR was performed using a real-time fluorescence quantitative PCR system (Thermo Fisher Scientific Quant Studio 3). △△Ct analyze BdNIS1 The relative expression level.

[0046] b. Apple branches Straight and uniformly thick Red Fuji apple tree branches were selected from the same orchard, cut into 15 cm segments, rinsed with tap water, and surface disinfected with 75% alcohol. The branches were then placed in a cool and ventilated place to allow excess alcohol to evaporate.

[0047] The ends of the dried branch segments were sealed with paraffin to prevent dehydration of the branches, and then a small hole was punched in the middle of the branch using a 5 mm hole puncher, and then 50 μL of dsBdNIS1 was applied to the small hole.

[0048] The apple ring rot pathogen isolated and preserved in our laboratory ( Botryosphaeria dothidea ) as the inoculation source. After rejuvenation culture on PDA plates, cut the bacterial cake at the edge of the colony with a 5mm borer. Inoculate the cake with the mycelium side inward into the small hole in step 2. Culture at 25℃ with moisturizing for 7-10 days. Observe the disease situation of each treatment group and take photos for record.

[0049] The test results are as follows Figure 4 As shown in the figure, we adopted two treatment methods (Treatment A and Treatment B) to inoculate apple ring rot pathogen.

[0050] The groups are as follows: Treatment A: The mycelial blocks of the antibacterial fungus for apple ring rot were soaked in dsBdNIS1 for 6 hours before being inoculated onto apple branches and fruits (dsBdNIS1 in Treatment A in the figure). A mycelial block of the antibacterial fungus for apple ring rot, soaked in sterile H2O for the same period of time, was used as a positive control (Control in Treatment A in the figure).

[0051] Treatment B: dsBdNIS1 was sprayed directly onto the apple branches and fruits to be inoculated (dsBdNIS1 in Treatment B in the figure), and the mycelial blocks of apple ring rot pathogen were directly inoculated. Sterile H2O spraying was used instead of dsBdNIS1 spraying as a positive control (Control in Treatment B in the figure).

[0052] CK was the blank control, inoculated with sterile empty PDA agar blocks.

[0053] Treatment A and Treatment B were inoculated with apple ring rot pathogens, which could reduce the area of ​​rot or ulceration on apple fruits and branches. Total RNA was extracted from tissue samples at the junction of diseased and healthy apple fruits, and then reverse transcribed and tested by RT-qPCR. BdNIS1 The results showed that the expression level of apple ring rot pathogen in the sample tissues treated with Treatment A and Treatment B was BdNIS1 The gene expression levels decreased significantly. BdNIS1 It is feasible to adopt a spray-induced strategy for prevention and control by targeting genes.

[0054] Under Treatment A, the inhibition rate of apple fruit ring rot was about 50%, and the inhibition rate of branch ring rot was about 40%. BdNIS1 The gene expression level decreased by about 60%. Under Treatment B, the inhibition rate of apple fruit ring rot and branch ring rot was about 40%, among which the fruit interaction-like tissue BdNIS1 Gene expression also decreased by about 60%, such as Figure 4 (a), Figure 4 (b).

[0055] (3) Nanomaterial Nano-MgAl-LDH Modification Treatment Specific steps: The mass concentration is 0.4×10 -2 The preparation method of the nano-MgAl-LDH colloidal dispersion system with a concentration of 0.5 g / mL is as follows: nano-chitosan is dispersed in DEPC water and dispersed by ultrasonic vibration.

[0056] (IV) Preparation of CTS-dsRNA Nanopesticide for Controlling Apple Ring Rot Specific steps: Take 1.5mL of (3) with a mass concentration of 0.4×10 -2 g / mL nano-MgAl-LDH colloidal dispersion system, 150 μg of dsRNA obtained after purification in step S1 of Example 1 was added thereto respectively, and after thorough mixing, DEPC water was added to 3 mL. At this time, the working concentration of nano-MgAl-LDH was 0.2×10 -2 g / mL, and the final concentration of dsRNA was 0.005×10 -2 g / mL, mix by inverting several times, and let it stand at room temperature for 3 min for efficacy evaluation.

[0057] (V) Testing the coupling effect of nano-MgAl-LDH on dsRNA and evaluating the disease resistance of MgAl-LDH-dsRNA nanopesticide on apple fruit Screening of mass concentration of MgAl-LDH nanomaterials when fully coupled to dsRNA: Specific steps: The purified dsRNA synthesized in step S1 of Example 1 was adjusted to 100 ng / μL for later use; The nano-MgAl-LDH dispersed by ultrasonic vibration was adjusted to 1 times, 5 times, 10 times, 20 times and 40 times the concentration of dsRNA with DEPC water for use; Mix equal volumes of nano-MgAl-LDH at different concentrations and dsRNA (5 μL each, totaling 10 μL), then add 2 μL of 6× DNA Loading Buffer and mix thoroughly; Take 10 μL of the mixture and load it on 1.2% agarose gel electrophoresis to test the coupling effect, so as to screen the concentration at which the MgAl-LDH nanomaterial is completely coupled to dsRNA.

[0058] Select healthy (no lesions, no insects) and uniformly sized Red Fuji apples picked from the same orchard, wash them with tap water, then disinfect the surface with 75% alcohol, and place them in a cool and ventilated place to evaporate excess alcohol and dry excess water.

[0059] Use a 5mm hole puncher to punch a small hole with a depth of 2-3 mm in the middle of the treated apple (about 2 cm from the fruit stem on the side of the fruit), and then apply 50 μL of MgAl-LDH-dsRNA nucleic acid drug into the small hole.

[0060] The apple ring rot pathogen ( Botryosphaeria dothidea ) was used as the inoculum source, and after it was rejuvenated on the PDA plate, the fungus was punched out at the edge of the colony with a 5mm puncher. The fungus cake with the mycelium side was inoculated into the small hole, and the culture was kept moist at 25℃ for 72h. The disease situation of each treatment group was observed and recorded by taking photos.

[0061] The groups are as follows: CK: refers to the blank control group, inoculated with sterile empty PDA agar blocks; Control: refers to the positive control group, in which 50 μL of sterile H2O was sprayed on the fruit inoculation point and then directly inoculated with the mycelial block at the edge of the rejuvenated apple ring rot colony; dsBdNIS1: negative control group, 50 μL of dsBdNIS1 at the fruit inoculation point was sprayed with a concentration of 0.005×10 -2 g / mL of dsBdNIS1, and then directly inoculated with the mycelial block at the edge of the rejuvenated apple ring rot pathogen colony; MgAl-LDH: refers to the negative control group, spraying 50 μL of 0.2×10 -2 g / mL of MgAl-LDH, and then directly inoculated with the mycelial blocks at the edge of the rejuvenated apple ring rot pathogen colony; MgAl-LDH-dsBdNIS1: refers to the treatment group, 50 μL MgAl-LDH-dsBdNIS1 was sprayed on the fruit inoculation point (the final concentration of dsBdNIS1 in this preparation was 0.005×10 -2 g / mL, and the final concentration of nano-MgAl-LDH was 0.2×10 -2 g / mL), and then directly inoculate the mycelial blocks at the edge of the rejuvenated apple ring rot pathogen colony.

[0062] MgAl-LDH can conjugate with dsBdNIS1. As the loading ratio of MgAl-LDH increases, more dsBdNIS1 is conjugated, as evidenced by the enrichment of dsRNA in the loading well. At a dsBdNIS1:MgAl-LDH ratio of 1:40, dsRNA is completely conjugated by MgAl-LDH. This result suggests that MgAl-LDH, which carries a positive charge, may be used as a nanocomplex with dsBdNIS1 to enhance its efficacy or protect it.

[0063] The test results are as follows Figure 5As shown in (a), when naked dsBdNIS1 is mixed with CTS at different mass ratios, as the proportion of nanomaterials increases, its coupling ability to naked dsBdNIS1 molecules continues to increase, which is manifested as more and more precipitates around the loading hole. When the mass ratio of nano-MgAl-LDH to naked dsRNA reaches 40:1, naked dsBdNIS1 can be completely coupled (i.e., the coverage rate is 100%).

[0064] Nano-MgAl-LDH at a 40-fold mass concentration was used to completely couple dsBdNIS1 to obtain nano-dsBdNIS1 (i.e., MgAl-LDH-dsBdNIS1), which was used to treat Red Fuji apple fruit.

[0065] The nano nucleic acid pesticide preparation contains 0.005×10 -2 g / mL of dsBdNIS1 and a final working concentration of 0.2×10 -2 The final working concentration of nano-MgAl-LDH of 100 g / mL has achieved significant effects on in vitro apple fruits and branches, and has great application potential. The field dosage can also be carried out according to this formula.

[0066] The test results are as follows Figure 5 (b) Figure 5 As shown in (c), dsBdNIS1 conjugated with CTS (CTS-dsBdNIS1) exhibited differential inhibitory effects against apple ring rot pathogens. Lesion areas in the dsBdNIS1 and MgAl-LDH treatments alone were smaller than those in the wild-type control (Control). However, lesion areas in apple fruit treated with CTS-dsBdNIS1 were significantly smaller than those in the wild-type control, dsBdNIS1 alone, and MgAl-LDH alone, demonstrating the strongest synergistic inhibitory effect. These results demonstrate that MgAl-LDH can conjugate to dsRNA, and that its conjugation to dsRNA to form a nanoparticle further enhances its efficacy. Analysis of the lesion area of ​​diseased fruits showed that the lesion area of ​​naked dsBdNIS1 alone decreased by about 58% compared with the positive control (Control), and the lesion area of ​​MgAl-LDH alone decreased by about 56% compared with the positive control (Control). After treatment with MgAl-LDH-dsBdNIS1, the lesion area decreased the most, by about 83%.

[0067] Using MgAl-LDH nanomaterial as a carrier of dsBdNIS1, on the one hand, it can efficiently couple dsBdNIS1 through electrostatic forces, and on the other hand, it can efficiently bind to the fungal cell wall. That is, MgAl-LDH can act as an "intermediary" and "actively" deliver dsRNA to the apple ring rot fungus. Combined with the apple ring rot fungus's efficient absorption characteristics of dsRNA in the environment, this nanodrug (MgAl-LDH-dsBdNIS1) may achieve precise prevention and control of apple ring rot.

[0068] The present invention takes the key effector protein BdNIS1 of apple ring rot pathogen as the target, designs and synthesizes the targeted BdNIS1 The gene produces a dsRNA (dsBdNIS1) that is BdNIS1 It has a significant silencing effect, as shown by the following: after dsBdNIS1 treatment, the BdNIS1 The gene expression level was significantly reduced. After using dsBdNIS1 to treat apple ring rot pathogen, the growth and development of the pathogen was not inhibited, but its ability to infect apple hosts was significantly reduced. After spraying dsBdNIS1 on apple fruit and branch tissues, the plant tissues within the spraying range also developed a certain resistance to apple ring rot pathogen, and the ability of apple ring rot pathogen to infect them was significantly reduced. However, the exposed dsRNA structure is unstable and is easily degraded under the action of external ultraviolet rays and biological enzymes. Using nanomaterials to couple and coat dsRNA can prevent dsRNA from being directly attacked by these environmental conditions, thereby protecting the effective amount of applied dsRNA.

[0069] MgAl-LDH nanomaterials can achieve drug loading and release through ion exchange. The material has a two-dimensional layered structure, which provides space for the embedding of drug molecules and is conducive to interaction with drug molecules.

[0070] dsBdNIS1 carries a negative charge. When we mixed MgAl-LDH with dsBdNIS1, we found that MgAl-LDH could efficiently couple to dsBdNIS1 through electrostatic forces (MgAl-LDH: dsBdNIS1 = 40:1). When apple fruit was treated with MgAl-LDH-dsBdNIS1, it exhibited strong resistance to the apple ring rot pathogen. After MgAl-LDH binds to dsBdNIS1, it carries dsRNA and binds to the fungal cell wall. While MgAl-LDH itself has an antibacterial effect, the dsRNA is efficiently absorbed by the apple ring rot pathogen, effectively silencing its key effector genes within the pathogen. BdNIS1,Disarming pathogens, thereby reducing their pathogenicity. Apple ring rot pathogens have a high absorption efficiency for dsRNA. Co-administered MgAl-LDH and dsBdNIS can work together, one externally and one internally, to achieve broad-spectrum and precise control of apple ring rot pathogens, demonstrating significant potential for application. MgAl-LDH nanomaterials can load and release drugs through ion exchange. The material has a two-dimensional layered structure with adjustable interlayer spacing, providing space for drug molecules to embed. Its surface is rich in hydroxyl groups, which facilitates interaction with drug molecules.

[0071] The present invention takes the green prevention and control of apple ring rot as the basic starting point, combines naked dsRNA with nano MgAl-LDH based on RNAi technology, and prepares RNAi nano nucleic acid pesticides against apple ring rot pathogens, providing technical support for the green prevention and control of apple ring rot pathogens. The efficacy evaluation shows that the MgAl-LDH-dsRNA nano nucleic acid pesticide for preventing and controlling apple ring rot of the present invention has the effect of resisting apple ring rot pathogens, and the expression of pathogen-related target genes in the infection stage is significantly inhibited, and the infection ability of apple ring rot pathogens is significantly reduced. In addition, MgAl-LDH nanomaterials can be artificially synthesized in large quantities by co-precipitation method in an alkaline environment. Its main raw material is Mg 2+ and Al 3+ Therefore, this RNAi-based nucleic acid pesticide has a very broad application prospect in the prevention and control of apple ring rot fungus.

[0072] The above description is only a preferred embodiment of the present invention and does not limit the present invention in any way. Any simple modification, change and equivalent variation made to the above embodiment based on the essence of the invention technology shall still fall within the scope of protection of the technical solution of the present invention.

Claims

1. A method for preparing a MgAl-LDH-dsRNA nanopesticide for preventing and treating apple ring rot, characterized in that: The method is: S1, targeted silencing of apple ring rot pathogen Botryosphaeria dothidea Key pathogenic effector genes BdNIS1 The dsRNA is synthesized in vitro and purified to obtain dsRNA; the apple ring rot pathogen Botryosphaeria dothidea Key pathogenic effector genes BdNIS1 The full-length nucleotide sequence is shown in SEQ ID No. 1; Psoralea corylifolia Botryosphaeria dothidea Key pathogenic effector genes BdNIS1 The cDNA nucleotide sequence is shown in SEQ ID No. 2; the nucleotide sequence of the dsRNA is shown in SEQ ID No. 3; S2. Add the dsRNA obtained in S1 to the nano MgAl-LDH colloidal dispersion system, and after mixing, obtain the MgAl-LDH-dsRNA nano nucleic acid pesticide for preventing and controlling apple ring rot.

2. The method for preparing a MgAl-LDH-dsRNA nanoparticle nucleic acid pesticide for preventing and treating apple ring rot according to claim 1, characterized in that: Targeted silencing of Psoralea corylifolia as described in S1 Botryosphaeria dothidea Key pathogenic effector genes BdNIS1 The method for in vitro synthesis of dsRNA is: S101, Extraction of Apple Ring Rot Botryosphaeria dothidea Total RNA was reverse transcribed to obtain cDNA; S102. Based on the cDNA obtained in S1, PCR amplification was performed using primers T7-BdNIS1-F and T7-BdNIS1-R to obtain a PCR product. The amplified target gene fragment was recovered by electrophoresis on a 1.2% agarose gel to obtain a purified PCR product. The reaction system for PCR amplification was as follows: 1 μL of cDNA obtained in S1, 1 μL of primer T7-BdNIS1-F, 1 μL of primer T7-BdNIS1-R, 12.5 μL of KOD DNA polymerase, and ddH2O to make up to 25 μL; The reaction program for PCR amplification was as follows: 98°C for 3 min; 98°C for 10 sec, 58°C for 5 sec, and 68°C for 5 sec, for a total of 35 cycles; 68°C for 7 min, and hold at 16°C; The nucleotide sequence of the primer T7-BdNIS1-F is shown in SEQ ID No. 4; The nucleotide sequence of the primer T7-BdNIS1-R is shown in SEQ ID No. 5; S103, using the purified PCR product obtained in S102 as a template DNA, and using a T7 RNA Transcription Kit kit to synthesize naked dsRNA targeting the target gene fragment in vitro; Alternatively, the purified PCR product obtained in S102 was analyzed using HyperScribe TM The T7 High Yield Cy3 / Cy5 RNA Labeling Kit is used to synthesize naked dsRNA containing fluorescently labeled target gene fragments in vitro.

3. The method for preparing a MgAl-LDH-dsRNA nanopesticide for preventing and treating apple ring rot according to claim 2, characterized in that: When the T7 RNA Transcription Kit is used in S103, the reaction system is: 1 μL of T7 RNA Polymerase, 1 μL of RNase Inhibitor, 5 μL of 10× Transcription Buffer, 8 μL of NTPMix, 1 μg of the purified PCR product obtained in S102, and DEPC HO to 50 μL; the reaction procedure is: 37°C for 4 hours, incubation at 72°C for 10 minutes, and then incubation at room temperature for 20 minutes; When using HyperScribe in S103 TM For the T7 High Yield Cy3 / Cy5 RNA Labeling Kit, the reaction system is: 2 μL of 10× Reaction Buffer, 2 μL of 20 mM ATP, 2 μL of 20 mM GTP, 2 μL of 20 mM CTP, 1.5 μL of 20 mM UTP, 1 μL of 10 mM Cy3-UTP, 1 μg of the purified PCR product obtained in S102, 2 μL of T7 RNA Polymerase Mix, and ddH2O to make up to 20 μL; the reaction procedure is: 37°C for 4 hours.

4. The method for preparing the MgAl-LDH-dsRNA nanopesticide for preventing and treating apple ring rot according to claim 1, characterized in that: The preparation method of the nano-MgAl-LDH colloidal dispersion system in S2 is: dispersing the nano-MgAl-LDH in DEPC water and dispersing it by ultrasonic vibration; The preparation method of the nano MgAl-LDH is: S201, MgCl2 . 6H2O and AlCl3 are dissolved in deionized water to obtain a metal salt solution; S202, dissolving NaOH and CH3COONa in deionized water to obtain an alkaline mixed solution; S203. Under N2 atmosphere, the alkaline mixed solution obtained in S202 was stirred, and the metal salt solution obtained in S201 was added, and the mixture was stirred for 1 hour under N2 atmosphere and a temperature of 60°C. At the same time, the pH value of the system was maintained at 10.0 with an aqueous sodium hydroxide solution. After centrifugation, the supernatant was discarded, and the precipitate was washed three times with deionized water from which CO2 had been removed. The washed precipitate was dispersed in deionized water, reacted at a temperature of 160°C for 16 hours, and centrifuged. The obtained precipitate was washed three times with deionized water from which CO2 had been removed, and then washed three times with anhydrous ethanol. The washed precipitate was then resuspended in deionized water from which CO2 had been removed, frozen at a temperature of -80°C, and freeze-dried at a temperature of -30°C for 48 hours to obtain nano-MgAl-LDH.

5. The method for preparing the MgAl-LDH-dsRNA nanoparticle nucleic acid pesticide for preventing and treating apple ring rot according to claim 4, characterized in that: MgCl2 in S201 . The usage ratio of 6H2O, AlCl3 and deionized water is 1.22g:0.27mg:20mL; the usage ratio of NaOH, CH3COONa and deionized water in S202 is 0.48g:0.648g:80mL.

6. The method for preparing the MgAl-LDH-dsRNA nanoparticle nucleic acid pesticide for preventing and treating apple ring rot according to claim 1, characterized in that: The final concentration of nano-MgAl-LDH in the MgAl-LDH-dsRNA nanopesticide for preventing and treating apple ring rot described in S2 is 0.2×10 -2 g / mL, and the final concentration of dsRNA was 0.005×10 -2 g / mL.

7. Use of the MgAl-LDH-dsRNA nanoparticle nucleic acid pesticide prepared by the preparation method according to any one of claims 1 to 6 for preventing and treating apple ring rot, characterized in that: The MgAl-LDH-dsRNA nano nucleic acid pesticide for preventing and controlling apple ring rot is used for preventing and controlling apple ring rot Botryosphaeria dothidea .