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Levings, R.

Publications and source records attributed to Levings, R..

2 recordsLinked to original sources

Evaluation of Aggregate Oral Fluid Sampling for Early Detection of African Swine Fever Virus Infection

African swine fever (ASF) is a highly infectious viral disease that poses significant threat to the United States and global pig industries. Given the lack of effective vaccines, control and prevention of the spread of African swine fever virus (ASFV) is dependent on enhanced surveillance and early disease detection. Commercial swine operations in the US are characterized by comparatively large number of pigs, and sampling individual pigs, which represents the main strategy for current ASF surveillance, is both costly and labor intensive. The major objective of this study was to estimate the diagnostic sensitivity of pen-based aggregate oral fluid testing for ASFV in infected pigs in a pen of 30 animals and evaluate its utility as a tool to support surveillance of ASF in the United States. The study was performed in three phases: (i) Virus (Ghana ASFV24) amplification in a target host species to generate the challenge inoculum, (ii) Titration of the inoculum (10% spleen homogenate) in target host species to determine the minimum dose inducing acute ASF in pigs with survival up to 5 - 6 days post-inoculation (dpi), and (iii) The main study involving 186 pigs consisting of 6 replicates of 30 pigs per pen and one seeder pig inoculated with the Ghana ASFV24 per pen. Daily sampling of aggregate oral fluids, uncoagulated blood, oropharyngeal swabs, fecal and water nipple swabs, and recording of rectal temperatures and clinical observations, was carried out. The seeder pigs were each inoculated intramuscularly with 0.5 ml of the 10% spleen homogenate which induced the desired clinical course of ASF in the pigs with survival of up to 6 dpi. ASFV DNA could be detected in the seeder pigs as early as 1 dpi and 2 dpi in the blood and oropharyngeal swabs, respectively. Transmission of ASFV from the seeder pigs to the contact pig population was detected via positive amplification of ASFV DNA in aggregate oral fluid samples at 3 days post-contact (dpc) in 4 out of 6 pens, and in all 6 pens at 4 dpc. Testing of oropharyngeal swabs and blood samples from individual pigs revealed variable number of ASFV positive pigs between 3 and 5 dpc, with detection of 100% positivity between 6 and 18 dpc, the study endpoint. These findings demonstrate the potential utility of aggregate oral fluid sampling for sensitive and early detection of ASFV incursion into naive swine herds. It also demonstrates that testing of environmental samples from the premises could further enhance overall ASF early detection and surveillance strategy. Author summaryEarly detection of ASFV in swine farms requires robust passive surveillance using sample types and sampling methods that allow sensitive and timely detection. Commercial swine operations in the US or North America are characterized by comparatively large number of pigs, and sampling individual pigs, which represents the current strategy for ASF surveillance, is both costly and labor-intensive. Oral fluid has been shown to be an acceptable sample type for detection of ASFV in individual infected pigs. For the first time on such a scale, we conducted a study enrolling 186 pigs, with daily sampling, in six experimental replicates at 3.2% pen prevalence using a highly virulent ASFV (Ghana ASFV24) to evaluate the utility of aggregate oral fluids for early detection of ASFV. Whole genome sequencing and characterization confirmed grouping of the virus with those in the p72 genotype II cluster. We demonstrate that intramuscular inoculation of the seeder pigs induces acute ASF and transmission to the contact pigs which is detectable in aggregate oral fluids as early as 3 - 4 dpc. We have shown that ASFV DNA detections in aggregate oral fluids correlate with the oropharyngeal swabs of individual pigs. In comparison, ASFV DNA in individual blood samples is detected 1-3 days later. The study demonstrates the potential utility of aggregate oral fluid sampling for enhanced surveillance of ASFV in large commercial swine operations.

microbiology↗

Inactivation of Highly Transmissible Livestock and Avian Viruses Including Influenza A and Newcastle Disease Virus for Molecular Diagnostics

There is a critical need for an inactivation method that completely inactivates pathogens at the time of sample collection but maintains the nucleic acid quality required for diagnostic PCR testing. This inactivation method is needed to alleviate concerns about transmission potential, reduce shipping complications and cost, and allow testing in lower containment laboratories to improve disease diagnostics by improving turn-around time. This study evaluated a panel of ten surrogate viruses that represent highly pathogenic animal diseases. These results showed that a commercial (PrimeStore(R)) molecular transport media (PSMTM) completely inactivated all viruses tested by >99.99% as determined by infectivity and serial passage assays. However, detection of viral nucleic acid by qRT-PCR was comparable in PSMTM and control-treated conditions. These results were consistent when viruses were evaluated in the presence of biological material such as sera and cloacal swabs to mimic diagnostic sample conditions for non-avian and avian viruses, respectively. The results of this study may be utilized by diagnostic testing laboratories for highly pathogenic agents affecting animal and human populations. These results may be used to revise guidance for select agent diagnostic testing and shipment of infectious substances. Contribution to the fieldActive surveillance and confirmatory testing efforts are in place to protect animals in the United States from certain highly contagious diseases and to limit financial impacts to consumers and producers when the food supply is disrupted. Confirmatory testing typically utilizes nucleic acid detection to identify active infection. Testing is required to be completed in high containment facilities due to the elevated pathogenicity and impact potential of animal diseases. The requirement for testing in high containment facilities limits the ability for regional and state laboratories to test for Tier 1 select agents. Shipment of diagnostic samples is costly, as well as time and temperature sensitive to avoid deterioration of sample quality needed for testing. These constraints lengthen response time and testing turn-around time. Here, we showed that a commercial (PrimeStore(R)) molecular transport media (PSMTM) completely inactivated all viruses tested without affecting nucleic acid detection/integrity. These data suggest that highly contagious agents are effectively inactivated by PSMTM without compromising the nucleic acid needed for diagnostic testing. These data provide support that this inactivation method can be utilized during sample collection to reduce constraints in disease diagnostics and in reagent sharing among international laboratories.

microbiology↗