Effects of Ethylicin Fumigation on Soil-Borne Diseases and Tomato Growth in an Organic Agricultural Park
Abstract
1. Introduction
2. Materials and Methods
2.1. Test Agent
2.2. Experimental Design
2.3. Test Detection Indicators
- (1)
- Detection of Fusarium spp. and Phytophthora spp. in soil
- (2)
- Detection of Meloidogyne spp. in soil
- (3)
- Determination of soil physicochemical properties
- (4)
- Plant growth and yield measurement
- (5)
- Disease and Meloidogyne spp. incidence assessment
2.4. Data Statistics
3. Results
3.1. Soil Temperature During Ethylicin Fumigation
3.2. Effects of Ethylicin Fumigation on Soil-Borne Pathogens
3.3. Effects of Ethylicin Fumigation on Soil Physicochemical Properties
3.4. Effects of Ethylicin Fumigation on Tomato Growth
3.5. Effects of Ethylicin Fumigation on Tomato Yield
3.6. Efficacy of Ethylicin Fumigation Against Meloidogyne spp. and Phytophthora parasitica
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Name | Manufacturer |
|---|---|
| 80% Ethylicin | Hainan Zhengye Zhongnong High-Tech Co., Ltd. (Haikou, China) |
| Trial Time | Plot Number | Agent | Treatment Dose (g/m2) | Application Mode |
|---|---|---|---|---|
| 2023 | 1 | Control | - | - |
| 2 | Ethylicin | 20 | Drip Irrigation | |
| 2024 | 1 | Control | - | - |
| 2 | Ethylicin | 20 | Drip Irrigation |
| Index | A Component Composition and Dosage | B Component Composition and Dosage |
|---|---|---|
| Fusarium spp. | KCl 1 g | Streptomycin sulfate 1 g |
| D-Galactose 40 g | Ox-gall extract 1 g | |
| K2HPO4 2 g | Fe-Na EDTA 0.02 g | |
| MgSO4 1 g | Na2B4O7•10H2O 2 g | |
| Agar 30 g | C6Cl5NO2 1.5 g | |
| L-Asparagine 4 g | ||
| Phytophthora spp. | Agar 34 g | Ampicillin 0.03 g |
| Glucose 40 g | C6Cl5NO2 0.15 g | |
| Rifampicin 0.02 g |
| Soil Parameter | Method | Main Reagents |
|---|---|---|
| Ammonium nitrogen | KCl extraction distillation method | 2 mol L−1 KCl solution, 1 mol L−1 NaOH stock solution, potassium sodium tartrate stock solution, sodium salicylate/sodium nitroprusside solution, dichloroisocyanurate solution |
| Nitrate nitrogen | KCl extraction reduction distillation method | 2 mol L−1 KCl extraction solution, copper sulfate pentahydrate stock solution, NaOH solution, copper hydrazide reagent, sulfanilamide reagent |
| Organic matter | K2Cr2O7 oxidation titration method | 0.008 mol L−1 K2Cr2O7 standard solution, concentrated H2SO4, 0.2 mol L−1 FeSO4 solution, o-phenanthroline indicator |
| Available potassium | NH4OAc extraction with flame photometry | 1 mol L−1 NH4OAc neutral solution, potassium standard solution |
| pH | pH meter method | pH 4.0, 6.0, 7.0, 8.0, and 10.0 buffer solutions |
| Electrical conductivity | Conductivity meter | Distilled water |
| Sort | 0 | 1 | 2 | 3 | 4 | 5 |
|---|---|---|---|---|---|---|
| Disease spots | No disease | <5% spot coverage | 5% to 15% spot coverage | 15% to 25% spot coverage | 25% to 50% spot coverage | >50% spot coverage |
| Physicochemical Properties | NO3−-N (mg/kg) | NH4+-N (mg/kg) | Available K (mg/kg) | Organic Matter (g/kg) | pH (1:2.5) | Electrical Conductivity (ms/cm) |
|---|---|---|---|---|---|---|
| Control | 7.97 ± 1.50 | 2.13 ± 2.51 | 1076.88 ± 87.19 | 27.74 ± 3.12 | 7.70 ± 0.15 | 996.60 ± 276.82 |
| Ethylicin | 3.21 ± 1.70 ** | 5.69 ± 0.28 * | 1315.63 ± 162.31 NS | 35.23 ± 2.50 * | 8.12 ± 0.19 ** | 472.60 ± 124.54 ** |
| Treatment | Plant Height (cm) | Stem Diameter (mm) | Leaf Chlorophyll (SPAD) |
|---|---|---|---|
| Control | 111.89 ± 2.36 | 9.84 ± 0.68 | 39.42 ± 1.21 |
| Ethylicin | 130.38 ± 3.26 *** | 11.88 ± 0.63 * | 42.07 ± 0.86 * |
| Year | Treatment | Yield (kg/m2) | Individual Plant Yield (kg) |
|---|---|---|---|
| 2023 | Control | 6.50 ± 0.36 | 0.41 ± 0.02 |
| Ethylicin | 9.02 ± 0.72 *** | 0.56 ± 0.04 *** | |
| 2024 | Control | 2.55 ± 0.36 | 0.16 ± 0.02 |
| Ethylicin | 3.45 ± 0.39 * | 0.22 ± 0.02 * |
| Year | Treatment | Meloidogyne spp. | Phytophthora parasitica Disease | ||
|---|---|---|---|---|---|
| Root Rot Severity Grade | Disease Index | Root Rot Severity Grade | Disease Index | ||
| 2023 | Control | 0 | 0.00 | 0–3 | 3.75 ± 3.23 |
| Ethylicin | 0 | 0.00 | 0–1 | 1.25 ± 2.5 NS | |
| 2024 | Control | 0 | 0.00 | 1–2 | 5.56 ± 1.92 |
| Ethylicin | 0 | 0.00 | 0 | 0.00 ± 0.00 * | |
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Zheng, Y.; Wang, W.; Liu, S.; Yu, K.; Zhang, J.; Cheng, Y.; Jin, X.; Hao, Z.; Ren, L.; Gao, J.; et al. Effects of Ethylicin Fumigation on Soil-Borne Diseases and Tomato Growth in an Organic Agricultural Park. Agriculture 2026, 16, 1964. https://doi.org/10.3390/agriculture16181964
Zheng Y, Wang W, Liu S, Yu K, Zhang J, Cheng Y, Jin X, Hao Z, Ren L, Gao J, et al. Effects of Ethylicin Fumigation on Soil-Borne Diseases and Tomato Growth in an Organic Agricultural Park. Agriculture. 2026; 16(18):1964. https://doi.org/10.3390/agriculture16181964
Chicago/Turabian StyleZheng, Yiwen, Wenyue Wang, Shenyan Liu, Kunpeng Yu, Jin Zhang, Yingchao Cheng, Xi Jin, Zheng Hao, Lirui Ren, Jie Gao, and et al. 2026. "Effects of Ethylicin Fumigation on Soil-Borne Diseases and Tomato Growth in an Organic Agricultural Park" Agriculture 16, no. 18: 1964. https://doi.org/10.3390/agriculture16181964
APA StyleZheng, Y., Wang, W., Liu, S., Yu, K., Zhang, J., Cheng, Y., Jin, X., Hao, Z., Ren, L., Gao, J., He, R., & Cao, A. (2026). Effects of Ethylicin Fumigation on Soil-Borne Diseases and Tomato Growth in an Organic Agricultural Park. Agriculture, 16(18), 1964. https://doi.org/10.3390/agriculture16181964

