4.6 Article

Variable High-Pressure-Processing Sensitivities for Genogroup II Human Noroviruses

Journal

APPLIED AND ENVIRONMENTAL MICROBIOLOGY
Volume 82, Issue 19, Pages 6037-6045

Publisher

AMER SOC MICROBIOLOGY
DOI: 10.1128/AEM.01575-16

Keywords

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Funding

  1. U.S. Department of Agriculture (USDA) [2015-69003-23410, 2011-68003-30005, 2011-68003-30395]

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Human norovirus (HuNoV) is a leading cause of foodborne diseases worldwide. High-pressure processing (HPP) is one of the most promising nonthermal technologies for the decontamination of viral pathogens in foods. However, the survival of HuNoVs after HPP is poorly understood because these viruses cannot be propagated in vitro. In this study, we estimated the survival of different HuNoV strains within genogroup II (GII) after HPP treatment using viral receptor-binding ability as an indicator. Four HuNoV strains (one GII genotype 1 [GII. 1] strain, two GII. 4 strains, and one GII. 6 strain) were treated at high pressures ranging from 200 to 600 MPa. After treatment, the intact viral particles were captured by porcine gastric mucin-conjugated magnetic beads (PGM-MBs) that contained histo-blood group antigens, the functional receptors for HuNoVs. The genomic RNA copies of the captured HuNoVs were quantified by real-time reverse transcriptase PCR (RT-PCR). Two GII. 4 HuNoVs had similar sensitivities to HPP. The resistance of HuNoV strains against HPP ranked as follows: GII. 1 > GII. 6 > GII. 4, with GII. 4 being the most sensitive. Evaluation of temperature and matrix effects on HPP-mediated inactivation of HuNoV GII. 4, GII. 1, and GII. 6 strains showed that HuNoV was more easily inactivated at lower temperatures and at a neutral pH. In addition, phosphate-buffered saline (PBS) and minimal essential medium (MEM) can provide protective effects against HuNoV inactivation compared to H2O. Collectively, this study demonstrated that (i) different HuNoV strains within GII exhibited different sensitivities to high pressure, and (ii) HPP is capable of inactivating HuNoV GII strains by optimizing pressure parameters.

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