This study was designed to identify the pathogen causing soft rot of Pinellia ternata in Qianjiang of Hubei province and screen out the effective bactericides, so as to provide a theoretical basis for the control of soft rot of P. ternata. In this study, the pathogen was identified based on molecular biology and physiological biochemistry, followed by the detection of pathogenicity and pathogenicity spectrum via plant tissue inoculation in vitro and the indoor toxicity determination using the inhibition zone method to screen out bactericide with good antibacterial effects. The control effect of the bactericide against P. ternata soft rot was verified by the leave and tuber inoculation in vitro. The phylogenetic tree was constructed based on the 16 S rDNA, dnaX gene, and recA gene sequences, respectively, and the result showed that the pathogen belonged to the same branch as the type strain Dickeya fangzhongdai JS5. The physiological and biochemical tests showed that the pathogen was identical to D. fangzhongdai, which proved that the pathogen was D. fangzhongdai. The pathogenicity test indicated that the pathogen could obviously infect leaves at 24 h and tubers in 3 d. As revealed by the indoor toxicity test, 0.3% tetramycin, 5% allicin, and 80% ethylicin had good antibacterial activities, with EC_(50) values all less than 50 mg·L~(-1). Tests in tissues in vitro showed that 5% allicin exhibited the best control effect, followed by 0.3% tetramycin and 10% zhongshengmycin oligosaccharide, and their preventive effects were better than curative effects. Therefore, 5% allicin can be used as the preferred agent for the control of P. ternata soft rot, and 0.3% tetramycin and 10% zhongshengmycin oligosaccharide as the alternatives. This study has provided a certain theoretical basis for the control of P. ternata soft rot.
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http://dx.doi.org/10.19540/j.cnki.cjcmm.20211107.102 | DOI Listing |
Plant Dis
December 2024
Universidad de las Fuerzas Armadas, Ciencias de la Vida y la Agricultura, Sangolqui, Pichincha, Ecuador;
Bananas are Ecuador's second largest non-oil export product, and the quality of its fruit has established a strong presence in international markets. One-third of the world's banana exports originate from Ecuador. The Ecuadorian banana market is diversified, exporting fruit to various countries worldwide, making it a vital socio-economic and food security support for the country.
View Article and Find Full Text PDFPlant Dis
December 2024
Liaoning Institute of Economic Forestry, Dalian, Liaoning, China;
Aralia elata (Miq.) Seem, is an important cash crop in northeastern China. The tender shoots are rich in amino acids, vitamins, and trace elements, and the saponins of leaves and roots have antioxidant and immune-boosting properties.
View Article and Find Full Text PDFMar Drugs
November 2024
Department of Agricultural Chemistry, Institute of Environmentally Friendly Agriculture, College of Agriculture and Life Sciences, Chonnam National University, Gwangju 61186, Republic of Korea.
This study explores the biocontrol potential of sp. M21F004, a lactic acid bacteria (LAB) isolated from marine environments, against several bacterial and fungal phytopathogens. Out of 50 marine bacterial isolates, sp.
View Article and Find Full Text PDFPlant Dis
December 2024
Universidade Federal Rural do Semi-Arido, Ciências Agronômicas e Florestais, Mossoro, Rio Grande do Norte, Brazil;
Watermelon (), it's an important fruit in Brazil, producing 1.9 million ton/year, occupies the fifth place in the world, (FAO, 2022), but post-harvest diseases are a major limitation, leading to losses of up to 15% (Balasubramaniam et al. 2023).
View Article and Find Full Text PDFBMC Plant Biol
December 2024
Guangzhou Academy of Agricultural Sciences, Guangzhou, 510335, China.
Background: The modification of protein substrates by small ubiquitin-related modifier (SUMO) plays a vital role in plants subjected to biotic and abiotic stresses. However, its role in the stress responses of Brassica plants remains poorly understood.
Results: A genome-wide analysis revealed the presence of 30 SUMOylation genes in the Caixin genome.
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