Bactericidal composition for preventing and treating gray mold of eggplant, bactericide and application thereof
By combining fenthion with dimethomorph, zoxamidoprop-Zinc or pyrithione zinc, the resistance problem of eggplant gray mold control agents is solved, achieving more efficient disease control and environmentally friendly sterilization effects.
Patent Information
- Application Number
- CN202410929652.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-05-09
- Publication Date
- 2025-10-14
- Estimated Expiration
- 2043-05-09
AI Technical Summary
In the prior art, the long-term use of control agents for eggplant gray mold alone leads to increased pathogen resistance and decreased control effects. It is necessary to develop new fungicidal compositions to improve control effects and delay the development of resistance.
A fungicide composition is formed by compounding fenclorac with dimethomorph, zoxamide or zinc pyrithione, and the mass ratio is optimized to enhance the inhibitory effect on Botrytis cinerea.
It improves the prevention and control effect of eggplant gray mold, delays the development of pathogen resistance, reduces the amount of active ingredients used, and alleviates environmental pressure.
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Abstract
Description
[0001] This invention is a divisional application of the applicant's invention patent application with application number 202310516172.3 filed on May 9, 2023, and invention name "Fungicide composition, fungicide and application for preventing and controlling eggplant gray mold". Technical Field
[0002] The invention belongs to the technical field of pesticides, and particularly relates to a bactericidal composition for preventing and controlling eggplant gray mold. Background Art
[0003] Eggplant gray mold, caused by the fungus Botrytis cinerea Per., is a major eggplant disease that primarily affects leaves, stems, and fruit, and can be infective from the seedling stage to the mature plant. Gray mold typically causes a 20-40% yield reduction, and in severe cases, over 60% in the field, significantly impacting agricultural production. For many years, benzimidazole, diformamide, or anilinopyrimidine fungicides have been used to control gray mold in eggplant. However, long-term use of these fungicides alone has led to increased pathogen resistance, significantly reducing the effectiveness of existing fungicides. Consequently, there is an urgent need to identify and develop new control agents.
[0004] Fenclofenone is a botanical fungicide with independent intellectual property rights in my country. Its chemical name is 1-o-hydroxyphenylbutanone, CAS: 2887-61-8, and its molecular formula is C 10 H 12 O2, the structural formula is as follows:
[0005]
[0006] Chinese patent application number CN99112525.8 discloses the use of the compound 1-o-hydroxyphenylbutanone, detailing its preparation process, structural formula, and physical properties. It also discloses that 1-o-hydroxyphenylbutanone has inhibitory and bactericidal effects against major diseases of vegetables, various crops, and fruit trees. However, the bactericidal effects of 1-o-hydroxyphenylbutanone vary when formulated with different compounds, necessitating further research. Summary of the Invention
[0007] The technical problem to be solved by the present invention is to overcome the deficiencies of the prior art and provide a fungicide composition, fungicide and application for controlling eggplant gray mold, which has a bactericidal and synergistic effect on the pathogen of eggplant gray mold and can provide support for the screening and development of new control agents.
[0008] In order to solve the above technical problems, the present invention adopts the following technical solutions.
[0009] A fungicide composition for preventing and controlling eggplant gray mold. The active ingredients of the fungicide composition are prepared by compounding fentrazone and mandipropamid, or fentrazone and zoxamide, or fentrazone and zinc pyrithione.
[0010] In the above-mentioned fungicidal composition for preventing and controlling eggplant gray mold, preferably, the mass ratio of fentrazone to mandipropamid is 1-10:20-1.
[0011] In the above-mentioned fungicidal composition for preventing and controlling eggplant gray mold, preferably, the mass ratio of fenoxamyl to zoxamidin is 1:15-1.
[0012] In the above-mentioned fungicidal composition for preventing and controlling gray mold of eggplant, preferably, the mass ratio of fenoxamyl to zoxamidin is 1:7.5.
[0013] In the above-mentioned fungicidal composition for preventing and controlling eggplant gray mold, preferably, the mass ratio of fentrazone to zinc pyrithione is 1-20:20-1.
[0014] As a general technical concept, the present invention also provides a fungicide comprising the above-mentioned fungicide composition.
[0015] As a general technical concept, the present invention also provides a use of the above-mentioned fungicide composition or the above-mentioned fungicide in preventing and controlling eggplant gray mold.
[0016] Compared with the prior art, the advantages of the present invention are:
[0017] (1) In the fungicidal composition of the present invention, when fenthion is compounded with dimethomorph, zoxamidin or zinc pyrithione, it exhibits a synergistic effect on inhibiting the growth of Botrytis cinerea hyphae within a certain mass ratio range. Compared with a single active ingredient, it can improve the inhibitory effect on pathogens, thereby improving the control effect on eggplant gray mold, and can provide support for the screening and development of new control agents.
[0018] (2) The fungicidal composition of the present invention can delay the development of resistance of the eggplant gray mold pathogen and extend the service life of the agent.
[0019] (3) The bactericidal composition of the present invention can reduce the amount of active ingredients used, reduce the cost of prevention and control, and alleviate environmental pressure. DETAILED DESCRIPTION
[0020] The present invention will be further described below in conjunction with specific preferred embodiments, but the scope of protection of the present invention is not limited thereby. The materials and instruments used in the following examples are all commercially available.
[0021] Example 1
[0022] The invention discloses a fungicide composition for preventing and controlling eggplant gray mold. The active ingredients of the fungicide composition are prepared by compounding fenclorac and mandipropamid.
[0023] In this embodiment, the mass ratio of fentrazone to mandipropamid is 1-10:20-1.
[0024] A fungicide of the present invention includes the fungicide composition of the above embodiment.
[0025] The fungicide composition or fungicide of this embodiment can be used to prevent and control eggplant gray mold.
[0026] Example 2
[0027] The invention discloses a fungicide composition for preventing and treating eggplant gray mold. The active ingredients of the fungicide composition are prepared by compounding fenclorac and zoxamidin.
[0028] In this embodiment, the mass ratio of fenoxamyl to zoxamidin is 1:15-1, more preferably 1:7.5.
[0029] A fungicide of the present invention includes the fungicide composition of the above embodiment.
[0030] The fungicide composition or fungicide of this embodiment can be used to prevent and control eggplant gray mold.
[0031] Example 3
[0032] The invention discloses a fungicide composition for preventing and treating eggplant gray mold. The active ingredients of the fungicide composition are prepared by compounding fenclofenone and pyrithione zinc.
[0033] In this embodiment, the mass ratio of fentrazone to zinc pyrithione is 1-20:20-1.
[0034] A fungicide of the present invention includes the fungicide composition of the above embodiment.
[0035] The fungicide composition or fungicide of this embodiment can be used to prevent and control eggplant gray mold.
[0036] Indoor bioassay test
[0037] 1. Test strains: Infected eggplant leaves were collected and the pathogen of eggplant gray mold, Botrytis cinerea, was isolated in the laboratory and stored on PDA culture medium.
[0038] 2. Test agents
[0039] 98% fenoxam-1-one (Hubei Hengjingrui Chemical Co., Ltd.), 93% mandipropamid (Syngenta Crop Protection Co., Ltd., Switzerland), 97% zoxamidin (Dalian Kaifei Chemical Co., Ltd.), 99% zinc pyrithione (Shandong Haizhou Bioengineering Co., Ltd.).
[0040] Drug treatment: The test agent was first dissolved in dimethyl sulfoxide and then diluted with a 0.1% by mass Tween-80 aqueous solution to prepare a single-dose stock solution. Multiple groups of proportions were set according to Examples 1-3. The specific proportions are shown in Tables 1-3. Five mass concentration gradients were set for each single agent and proportioned mixture according to the equal ratio method.
[0041] 3. Test methods
[0042] The hyphae growth rate method was used. 9 mL of pre-melted PDA medium was added to a sterile conical flask. 1 mL of drug solution was quantitatively pipetted sequentially, from low to high concentration, and added to each of the above conical flasks. After thorough shaking, the mixture was poured into a 9 cm diameter Petri dish to prepare drug-containing plates of the corresponding concentrations. A treatment without drug was used as a blank control, with five replicates for each treatment. A 5 mm diameter punch was used to cut a bacterial cake from the edge of the test strain colony. This cake was inoculated onto the center of the drug-containing plate and the blank control plate, with the hyphae facing upward. The plates were covered and incubated at 25°C. When the blank control colony diameter reached 2 / 3 of the Petri dish diameter, the colony diameter was measured using the cross-hatch method, and the hyphae growth inhibition rate of the different treatments was calculated.
[0043]
[0044] 4. Data analysis: DPS software was used for data statistical analysis. Linear regression was performed with the logarithmic value of fungicide concentration as x and the corresponding probability value of mycelial growth inhibition rate as y to obtain the toxicity regression equation and the toxicity EC of the agent to the target pathogen. 50 The co-toxicity coefficient (CTC) was calculated according to the Sun Yunpei method.
[0045]
[0046] In the above formula: ATI - the toxicity index of the mixture; S - the EC of the standard agent 50 , the unit is mg / L; M--EC of the mixture 50 , unit is mg / L.
[0047] TTI=TI A ×P A +TI B ×P B
[0048] In the above formula: TTI - theoretical toxicity index of the mixture; TI A --Toxicity index of agent A; P A --The percentage of agent A in the mixture, expressed as percentage (%); TI B --Toxicity index of agent B; P B--The percentage of agent B in the mixture, in percentage (%).
[0049]
[0050] In the above formula: CTC - co-toxicity coefficient; ATI - measured toxicity index of the mixture; TTI - theoretical toxicity index of the mixture.
[0051] 5. Measurement results
[0052] The synergistic effect of the agents was evaluated based on the calculated co-toxicity coefficient (CTC), with CTC ≤ 80 indicating antagonism, 80 < CTC < 120 indicating additive effects, and CTC ≥ 120 indicating synergism. The results are shown in Tables 1-3.
[0053] Table 1 Indoor bioactivity test of fenthiocarb and dimethomorph against Botrytis cinerea
[0054] Chemical name and ratio <![CDATA[EC 50 (mg / L)]]> ATI TTI CTC Fenbuconazole 5.0568 100.0000 -- -- Pydiflumetofen 41.8802 12.0744 -- -- Fenbuconazole 1 : Pydiflumetofen 60 39.7312 12.7275 13.5158 94.1675 Fenbuconazole 1 : Pydiflumetofen 30 30.9279 16.3503 14.9107 109.6544 Fenbuconazole 1 : Pydiflumetofen 20 24.2117 20.8858 16.2614 128.4379 Fenbuconazole 1 : Pydiflumetofen 10 16.4835 30.6780 20.0677 152.8725 Fenbuconazole 1 : Pydiflumetofen 5 10.5065 48.1302 26.7287 180.0694 Fenbuconazole 1 : Pydiflumetofen 1 6.6587 75.9428 56.0372 135.5220 Fenbuconazole 5 : Pydiflumetofen 1 2.0985 240.9721 85.3457 282.3482 Fenbuconazole 10 : Pydiflumetofen 1 1.5377 328.8548 92.0068 357.4246
[0055] As shown in Table 1, when fenoxam-1 and mandipropamid are compounded, when the mass ratio of fenoxam-1 to mandipropamid is 1:60-30, an additive effect is exhibited against Botrytis cinerea; when the mass ratio of fenoxam-1 to mandipropamid is 1-10:20-1, a synergistic effect is exhibited against Botrytis cinerea.
[0056] Table 2 Indoor bioactivity test of fenthiocarb and oxadiazine against Botrytis cinerea
[0057]
[0058]
[0059] As shown in Table 2, when fenoxamyl and zoxamide were combined, when the mass ratio of fenoxamyl and zoxamide was 5:1, an additive effect was shown on Botrytis cinerea; when the mass ratio of fenoxamyl and zoxamide was 1:15-1, a synergistic effect was shown on Botrytis cinerea, especially when the mass ratio was 1:7.5, the co-toxicity coefficient reached 653.1869, and the synergistic effect was particularly significant.
[0060] Table 3 Indoor bioactivity test of fenthion and zinc pyrithione against Botrytis cinerea
[0061] Chemical name and ratio EC 50 (mg / L) ATI TTI CTC Fenbuconazole 5.0568 100.0000 -- -- Zinc pyrithione 8.3778 60.3595 -- -- Fenbuconazole 1 : Zinc pyrithione 30 7.0011 72.2286 61.6382 117.1815 Fenbuconazole 1 : Zinc pyrithione 20 5.1386 98.4081 62.2472 158.0925 Fenbuconazole 1 : Zinc pyrithione 10 6.3740 79.3348 63.9632 124.0319 Fenbuconazole 1 : Zinc pyrithione 5 3.8366 131.8042 66.9663 196.8218 Fenbuconazole 1 : Zinc pyrithione 1 2.4069 210.0960 80.1798 262.0312 Fenbuconazole 5 : Zinc pyrithione 1 3.3475 151.0620 93.3933 161.7483 Fenbuconazole 10 : Zinc pyrithione 1 3.7457 135.0028 96.3963 140.0497 Fenbuconazole 20 : Zinc pyrithione 1 1.8154 278.5502 98.1124 283.9094 Fenbuconazole 30 : Zinc pyrithione 1 5.1562 98.0722 98.7213 99.3425
[0062] As shown in Table 3, when fencyclopyrim and pyrithione zinc are compounded, when the mass ratio of fencyclopyrim and pyrithione zinc is 1:30 and 30:1, an additive effect is shown on Botrytis cinerea; when the mass ratio of fencyclopyrim and pyrithione zinc is 1-20:20-1, a synergistic effect is shown on Botrytis cinerea.
[0063] In summary, the phenyl funginone and the dual acylic funginamide, benzyl funginamide or zinc pyrithione are compounded to show synergistic effect on inhibiting the mycelium growth of Botrytis cinerea, compared with single effective component, the inhibition effect on pathogenic bacteria can be improved, and then the prevention and treatment effect on eggplant gray mold can be improved, which can provide support for screening and developing new prevention and treatment agents.
[0064] The above is only the preferred embodiment of the present application, and does not limit the present application in any form. Although the present application has been disclosed as above with the preferred embodiment, it is not intended to limit the present application. Any skilled person in the art can make many possible changes and modifications to the technical solutions of the present application, or modify equivalent embodiments with the above disclosed methods and technical contents without departing from the spirit and technical solutions of the present application. Therefore, any simple modification, equivalent replacement, equivalent change and modification made to the above embodiments according to the technical essence of the present application, which does not depart from the content of the technical solutions of the present application, still belongs to the protection scope of the technical solutions of the present application.
Claims
1. A fungicidal composition for preventing and treating eggplant gray mold, characterized in that: The active ingredient of the bactericidal composition is prepared by compounding fentrazone and pyrithione zinc; the mass ratio of fentrazone to pyrithione zinc is 1-20:20-1.
2. A fungicide, characterized in that: The invention comprises the bactericidal composition according to claim 1.
3. Use of the fungicide composition according to claim 1 or the fungicide according to claim 2 in preventing and controlling eggplant gray mold.
Citation Information
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Disinfection composition of mycophenolic ketone and dimethomorph
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