Sampling and detection of Legionella pneumophila aerosols generated from an industrial cooling tower.

S. Ishimatsu, Hiroshi Miyamoto, Hajime Hori, Isamu Tanaka, Shin-ichi Yoshida
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引用次数: 67

Abstract

Cooling tower water has frequently been cited as a source of infection in outbreaks of Legionnaires' disease. However, there have been few reports on the presence of legionellae in aerosols from cooling towers. This paper describes our use of an impinger or a six-stage microbial impactor for detecting legionellae in air around a cooling tower contaminated with L. pneumophila (1.2+/-0.3x10(5) CFU/100 ml). Phosphate-buffered saline, Page's saline, 2% yeast extract solution and buffered yeast extract (BYE) broth were tested to evaluate their collection efficiency. These solutions were compared in laboratory experiments using an aerosol of L. pneumophila serogroup (SG) 1. Because BYE broth was the most efficient and storable collecting fluid among them, it was used for outdoor air sampling. In the outdoor air sampling, aerosolized L. pneumophila SG 6 was detected in the air around the cooling tower by the impinger (0.09 CFU/l. air). No legionellae were detected by the impactor with Legionella-selective agar plates (WYOalpha) because the plates were overgrown with fungi. Repetitive element PCR (rep-PCR) and arbitrarily primed PCR (AP-PCR) were employed to assess the epidemiological relationship among Legionella isolates from the air sample and the cooling tower water samples. L. pneumophila SG 6 isolated from the aerosols produced rep-PCR and AP-PCR fingerprints identical to those of L. pneumophila SG 6 strains from the cooling tower water, suggesting that the bacterium was aerosolized from the cooling tower.
工业冷却塔产生嗜肺军团菌气溶胶的取样与检测。
在军团病的爆发中,冷却塔的水经常被认为是感染源。然而,关于军团菌存在于冷却塔气溶胶中的报道很少。本文描述了我们使用撞击器或六级微生物撞击器来检测被嗜肺乳杆菌污染的冷却塔周围空气中的军团菌(1.2+/-0.3x10(5) CFU/100 ml)。采用磷酸盐缓冲生理盐水、Page’s生理盐水、2%酵母浸出液和BYE缓冲酵母浸出液进行收集效果评价。用嗜肺乳杆菌血清群(SG) 1的气溶胶对这些溶液进行了实验室实验比较。由于BYE肉汤是其中最有效和最易储存的采集液,因此将其用于室外空气采样。在室外空气采样中,通过冲击器在冷却塔周围空气中检测到雾化的嗜肺乳杆菌SG 6 (0.09 CFU/l)。空气)。军团菌选择性琼脂平板(WYOalpha)的冲击器未检测到军团菌,因为琼脂平板上长满了真菌。采用重复片段PCR (rep-PCR)和任意引物PCR (AP-PCR)对空气样本和冷却塔水样中军团菌分离株进行流行病学分析。从气溶胶中分离到的嗜肺乳杆菌SG 6与从冷却塔水中分离到的嗜肺乳杆菌SG 6具有相同的rep-PCR和AP-PCR指纹图谱,表明该细菌来自冷却塔雾化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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