欧文氏菌
微生物学
噬菌体
生物
溶解循环
噬菌体疗法
抗生素
火疫病
溶原循环
毒力
爆发
传染性
细菌
病毒学
大肠杆菌
病毒
基因
遗传学
作者
Sang-Guen Kim,Sung-Bin Lee,Su-Jin Jo,Kevin Cho,Jung-Kum Park,Jun Kwon,Sib Sankar Giri,Sang Wha Kim,JeongWoo Kang,Won-Joon Jung,Young Min Lee,Eunjung Roh,Se Chang Park
出处
期刊:Antibiotics
[Multidisciplinary Digital Publishing Institute]
日期:2022-11-06
卷期号:11 (11): 1566-1566
被引量:18
标识
DOI:10.3390/antibiotics11111566
摘要
Recently, there has been an increasing number of blight disease reports associated with Erwinia amylovora and Erwinia pyrifoliae in South Korea. Current management protocols that have been conducted with antibiotics have faced resistance problems and the outbreak has not decreased. Because of this concern, the present study aimed to provide an alternative method to control the invasive fire blight outbreak in the nation using bacteriophages (phages) in combination with an antibiotic agent (kasugamycin). Among 54 phage isolates, we selected five phages, pEa_SNUABM_27, 31, 32, 47, and 48, based on their bacteriolytic efficacy. Although only phage pEa_SNUABM_27 showed host specificity for E. amylovora, all five phages presented complementary lytic potential that improved the host infectivity coverage of each phage All the phages in the cocktail solution could lyse phage-resistant strains. These strains had a decreased tolerance to the antibiotic kasugamycin, and a synergistic effect of phages and antibiotics was demonstrated both in vitro and on immature wound-infected apples. It is noteworthy that the antibacterial effect of the phage cocktail or phage cocktail-sub-minimal inhibitory concentration (MIC) of kasugamycin was significantly higher than the kasugamycin at the MIC. The selected phages were experimentally stable under environmental factors such as thermal or pH stress. Genomic analysis revealed these are novel Erwinia-infecting phages, and did not encode antibiotic-, virulence-, or lysogenic phage-related genes. In conclusion, we suggest the potential of the phage cocktail and kasugamycin combination as an effective strategy that would minimize the use of antibiotics, which are being excessively used in order to control fire blight pathogens.
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