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两种裂解噬菌体对禽源多药耐药和生物膜形成鸡沙门氏菌的作用。

Effect of two lytic bacteriophages against multidrug-resistant and biofilm-forming Gallinarum from poultry.

机构信息

Faculdade De Agronomia E Medicina Veterinária, Universidade De Passo Fundo , Passo Fundo, RS, Brazil.

Centro de Diagnóstico e Pesquisa em Patologia Aviária, Faculdade de Veterinária, Universidade Federal Do Rio Grande Do Sul , Porto Alegre, RS, Brazil.

出版信息

Br Poult Sci. 2020 Dec;61(6):640-645. doi: 10.1080/00071668.2020.1805724. Epub 2020 Sep 30.

Abstract
  1.  Gallinarum (SG) infections cause fowl typhoid, which leads to important economic losses. Multidrug resistance (MDR) and the capacity for bacteria to form biofilms could play an important role in the persistence of SG in poultry flocks resulting in intermittent disease outbreaks. The aim of the following study was to assess the lytic activity of two new bacteriophages ( phages UPF_BP1 and UPF_BP2) against MDR and biofilm-forming SG. 2. Forty-six strains of SG, isolated in 2015, were characterised by antimicrobial resistance, biofilm formation profiles and susceptibility to two new bacteriophages. 3. Of these strains, 24% were multidrug resistant and more than 80% formed biofilm, with no statistical difference between incubation temperatures (42°C or 22°C). With regard to the lytic activity of the phages, 85% of strains were susceptible to at least one phage. Of these, 74% were lysed by both phages, including MDR and biofilm producing strains. 4. The use of salmonella phages UPF_BP1 and UPF_BP2 were shown to be promising alternatives for the biological control of fowl typhoid.
摘要
  1. 鸡白痢(SG)感染引起家禽伤寒,导致重大经济损失。多药耐药(MDR)和细菌形成生物膜的能力可能在 SG 在禽群中的持续存在中发挥重要作用,导致间歇性疾病爆发。本研究的目的是评估两种新噬菌体(噬菌体 UPF_BP1 和 UPF_BP2)对 MDR 和生物膜形成的 SG 的裂解活性。

  2. 2015 年分离的 46 株 SG 菌株通过抗菌药物耐药性、生物膜形成谱和对两种新噬菌体的敏感性进行了特征描述。

  3. 在这些菌株中,24%为多药耐药,超过 80%形成生物膜,在 42°C 或 22°C 的孵育温度下无统计学差异。关于噬菌体的裂解活性,至少有一噬菌体敏感的菌株占 85%。其中,74%的菌株被两种噬菌体裂解,包括 MDR 和生物膜产生菌株。

  4. 表明使用沙门氏菌噬菌体 UPF_BP1 和 UPF_BP2 是控制家禽伤寒的有前途的生物控制替代方法。

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