Category Ranking

98%

Total Visits

921

Avg Visit Duration

2 minutes

Citations

20

Article Abstract

Advances in molecular testing and microfluidic technologies have opened new avenues for rapid detection of animal viruses. We used a centrifugal microfluidic disk (CMFD) to detect 6 important swine viruses, including foot-and-mouth disease virus, classical swine fever virus, porcine reproductive and respiratory swine virus-North American genotype, porcine circovirus 2, pseudorabies virus, and porcine parvovirus. Through integrating the loop-mediated isothermal amplification (LAMP) method and microfluidic chip technology, the CMFD could be successfully performed at 62℃ in 60 min. The detection limit of the CMFD was 3.2 × 10 copies per reaction, close to the sensitivity of tube-type LAMP turbidity methods (1 × 10 copies per reaction). In addition, the CMFD was highly specific in detecting the targeted viruses with no cross-reaction with other viruses, including porcine epidemic diarrhea virus, transmissible gastroenteritis virus, and porcine rotavirus. The coincidence rate of CMFD and conventional PCR was ~94%; the CMFD was more sensitive than conventional PCR for detecting mixed viral infections. The positive detection rate of 6 viruses in clinical samples by CMFD was 44.0% (102 of 232), whereas PCR was 40.1% (93 of 232). Thirty-six clinical samples were determined to be coinfected with 2 or more viruses. CMFD can be used for rapid, sensitive, and accurate detection of 6 swine viruses, offering a reliable assay for monitoring these pathogens, especially for detecting viruses in widespread mixed-infection clinical samples.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6838697PMC
http://dx.doi.org/10.1177/1040638719841096DOI Listing

Publication Analysis

Top Keywords

swine viruses
12
virus porcine
12
clinical samples
12
viruses
9
detection swine
8
loop-mediated isothermal
8
isothermal amplification
8
cmfd
8
viruses including
8
copies reaction
8

Similar Publications

African swine fever (ASF) is a contagious viral disease that affects domestic pigs and Eurasian wild boars, causing significant economic losses to the global pig industry. Since its first outbreak in February 2019, ASF has had a profound impact on the Vietnamese pig sector. This review presents a comprehensive analysis of ASF outbreaks in Vietnam from 2019 to 2024, focusing on outbreak dynamics, control strategies, economic impact, and key lessons learned.

View Article and Find Full Text PDF

The gut microbiota of piglets is crucial for intestinal health and immune function, yet highly susceptible to various factors. Multiple factors such as Genetic and Sow Factors, feeding environment, diet and pathogen combine to shape the gut microbiota of piglets. PEDV, a highly pathogenic and transmissible virus, disrupts the gut microbiota by damaging the intestinal epithelial barrier, leading to microbial imbalance, weakened gut immunity, and severe diarrhea.

View Article and Find Full Text PDF

Foot-and-mouth disease virus (FMDV), a critical pathogen in the global livestock industry, has long been a focal point of international disease control strategies. This study developed a nanoparticle-based FMDV vaccine platform. We fused the FMDV immunodominant epitope (VP1-G-H-loop) and T-cell epitope (T) with the nanoparticle scaffold (LS), efficiently producing the T-LS-LOOP nanoparticle vaccine using the prokaryotic expression system (BL21).

View Article and Find Full Text PDF

Circovirus porcine (PCV) is a widespread pathogen in swine, consisting of four species: PCV1, PCV2, PCV3, and PCV4. Coinfection with other pathogens exacerbates the severity of Porcine Respiratory Disease Complex (PRDC), leading to significant economic losses. In Brazil, pleurisy lesions in pigs, often due to chronic inflammation from bacterial, viral, and environmental factors, are a major economic concern.

View Article and Find Full Text PDF

African swine fever virus (ASFV) is a large DNA virus that causes a highly lethal disease in pigs and currently has no effective vaccines or antiviral treatments available. We designed a protein switch that combines the DNase domain of colicin E9 (DNase E9) and its inhibitor Im9 with the viral protease cleavage site. The complex is only destroyed in the presence of an ASFV pS273R protease, which releases DNase activity.

View Article and Find Full Text PDF