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EPA Method 1615. Measurement of Enterovirus and Norovirus Occurrence in Water by Culture and RT-qPCR. I. Collection of Virus Samples
Published on: March 28, 2015
Epidemiologic aspects and laboratory features of enterovirus infections in Western Germany, 2000-2005
Bernhard Roth1, Martin Enders, Annette Arents
1Department of General Virology, Institute of Genetics, Hohenheim University, Stuttgart, Germany.
Abstract:
From 2000 to 2005, a total of 1,096 enterovirus infections were diagnosed either by isolation of virus from cell culture or by RT-PCR (5'non-coding region (NCR)). Typing of viruses (n = 674) was carried out by immunofluorescence with monoclonal antibodies, neutralization test or molecular methods. Seasons with high enterovirus activity were characterized by high prevalence of echovirus 30 (62.2% in 2000, 25.5% in 2001) and echovirus 13 (34.5% in 2001). In contrast, in the 2003 season, which had very low enterovirus activity, these types were rare. During this season, cell culture sensitivity (human colonic carcinoma cells and human embryonic lung fibroblasts (HEL)) was exceptionally low. In order to determine the type of "non-cultivable" enteroviruses, purified RNA from selected stool samples was subjected to direct molecular typing. VP1/2A-specific fragments were amplified by RT-PCR, cloned and sequenced. The predominant virus identified was coxsackie A. Consequently, rhabdomyosarcom cells were introduced into the daily routine, which improved the isolation of enteroviruses. Echovirus 30 was again most commonly isolated during seasons 2004 and 2005 with increasing enterovirus activity. In conclusion, high prevalence of echovirus 30 and 13 is indicative of seasons with high enterovirus activity. The type of circulating enteroviruses may influence isolation of enterovirus from cell culture. RT-PCR (VP1/2A) combined with cloning and sequencing of amplicons is a useful tool for viral typing directly from stool samples. In cases of severe enterovirus infection, virological diagnosis should not solely rely on virus isolation from cell culture.
Insights
High enterovirus activity, particularly echovirus 30 and 13, indicates active seasons. Molecular typing like RT-PCR is crucial for diagnosing enterovirus infections when cell culture methods fail.
Area of Science:
- Virology
- Molecular Biology
- Infectious Diseases
Background:
- Enterovirus infections pose a significant public health challenge.
- Accurate and timely diagnosis is essential for patient management and epidemiological surveillance.
- Traditional virus isolation methods can be limited by the sensitivity and type of cell culture used.
Purpose of the Study:
- To analyze enterovirus prevalence and typing from 2000 to 2005.
- To investigate the impact of viral type on isolation efficiency.
- To evaluate molecular methods for enterovirus typing directly from clinical samples.
Main Methods:
- Diagnosis using virus isolation and RT-PCR (5' non-coding region).
- Viral typing via immunofluorescence, neutralization tests, and molecular methods (VP1/2A fragments).
- Direct molecular typing of "non-cultivable" enteroviruses using RT-PCR, cloning, and sequencing.
Main Results:
- Echovirus 30 and 13 were predominant during high enterovirus activity seasons (2000-2001, 2004-2005).
- Low enterovirus activity in 2003 correlated with the rarity of these types and low cell culture sensitivity.
- Coxsackie A was identified as the predominant virus in "non-cultivable" samples using direct molecular typing.
Conclusions:
- High prevalence of echovirus 30 and 13 signifies active enterovirus seasons.
- Enterovirus type influences cell culture isolation success.
- RT-PCR combined with sequencing is a valuable tool for direct enterovirus typing from stool samples.
- Virological diagnosis of severe enterovirus infections should incorporate molecular methods beyond cell culture isolation.
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11:09EPA Method 1615. Measurement of Enterovirus and Norovirus Occurrence in Water by Culture and RT-qPCR. II. Total Culturable Virus Assay
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12:32EPA Method 1615. Measurement of Enterovirus and Norovirus Occurrence in Water by Culture and RT-qPCR. Part III. Virus Detection by RT-qPCR
Published on: January 16, 2016
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