Isolation and Identification of Postharvest Rot Pathogens in Citrus × tangelo and Their Potential Inhibition with Acidic Electrolyzed Water
-
Published:2024-06-06
Issue:
Volume:
Page:
-
ISSN:1867-0334
-
Container-title:Food and Environmental Virology
-
language:en
-
Short-container-title:Food Environ Virol
Author:
Ji Ying,Wang Jieqiong,Liu Ye,Liu Shaoyan,Jiang Xuanjing,Huang Huaming
Abstract
AbstractThis study focused on the identification of rot-causing fungi in Citrus × tangelo (tangelo) with a particular emphasis on investigating the inhibitory effects of acidic electrolyzed water on the identified pathogens. The dominant strains responsible for postharvest decay were isolated from infected tangelo fruits and characterized through morphological observation, molecular identification, and pathogenicity detection. Two strains were isolated from postharvest diseased tangelo fruits, cultured and morphologically characterized, and had their gene fragments amplified using primers ITS1 and ITS4. The results revealed the rDNA-ITS sequence of two dominant pathogens were 100% homologous with those of Penicillium citrinum and Aspergillus sydowii. These isolated fungi were confirmed to induce tangelo disease, and subsequent re-isolation validated their consistency with the inoculum. Antifungal tests demonstrated that acidic electrolyzed water (AEW) exhibited a potent inhibitory effect on P. citrinum and A. sydowii, with EC50 values of 85.4 μg/mL and 60.12 μg/mL, respectively. The inhibition zones of 150 μg/mL AEW to 2 kinds of pathogenic fungi were over 75 mm in diameter. Furthermore, treatment with AEW resulted in morphological changes such as bending and shrinking of the fungal hyphae surface. In addition, extracellular pH, conductivity, and absorbance at 260 nm of the fungi hypha significantly increased post-treatment with AEW. Pathogenic morphology and IST sequencing analysis confirmed P. citrinum and A. sydowii as the primary pathogenic fungi, with their growth effectively inhibited by AEW.
Funder
Natural Science Foundation of Fujian Province Natural Science Foundation of Nanping Education and scientific research project of Fujian Education Department
Publisher
Springer Science and Business Media LLC
Reference47 articles.
1. Beatriz, E. G. S., Adriana, X. S. M., & Liliana, T. G. S. (2019). Antifungal activity of acidic electrolyzed water against strawberry postharvest molds (Fragaria x ananassa Duch cv. Camarosa). Acta Agronómica, 68(2), 126–133. https://doi.org/10.15446/acag.v68n2.78247 2. Bonants, P. J. M., Carroll, G. C., Weerdt, M., Brouwershaven, I. R., & Baayen, P. R. (2003). Development and validation of a fast PCR-based detection method for pathogenic isolates of the citrus black spot fungus, Guignardia citricarpa. European Journal of Plant Pathology, 109, 503–513. https://doi.org/10.1023/A:1024219629669 3. Bui, T. C. H., Huynh, L. K. L., Tran, T. B. V., Doan, T. K. T., Nguyen, T. T. N., Phan, T. T. Q., Nguyen, V. A., Kha, C. T., & Do, T. K. (2022). Identification of pathogens causing anthracnose on King Oranges (Citrus nobilis var. Typica Hassk). Pakistan Journal of Biological Sciences. https://doi.org/10.3923/pjbs.2022.137.143 4. Chang, Y. D., Jia, J., Jie, Y. J., Li, R. R., Shi, J. S., Chen, X., & Wang, J. M. (2020). Isolation and identification of pathogen of pomegranate fruit rot. Journal of Shaxi Agriculture Sciences, 05, 806–811. https://doi.org/10.3969/j.issn.1002-2481.2020.05.33 5. Chen, X. Q., Tango, C. N., Daliri, E. B. M., & Oh, S. Y. (2019b). Disinfection efficacy of slightly acidic electrolyzed water combined with chemical treatments on fresh fruits at the industrial scale. Foods. https://doi.org/10.3390/foods8100497
|
|