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Genomic Divergence Characterization and Quantitative Proteomics Exploration of Type 4 Porcine Astrovirus

Overview
Journal Viruses
Publisher MDPI
Specialty Microbiology
Date 2022 Jul 27
PMID 35891364
Authors
Affiliations
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Abstract

Porcine astrovirus (PAstV) has been identified as an important diarrheic pathogen with a broad global distribution. The PAstV is a potential pathogen to human beings and plays a role in public health. Until now, the divergence characteristics and pathogenesis of the PAstV are still not well known. In this study, the PAstV-4 strain PAstV/CH/2022/CM1 was isolated from the diarrheal feces of a piglet in Shanghai, which was identified to be a recombination of PAstV4/JPN (LC201612) and PAstV4/CHN (JX060808). A time tree based on the ORF2 protein of the astrovirus demonstrated that type 2-5 PAstV (PAstV-2 to 5) diverged from type 1 PAstV (PAstV-1) at a point from 1992 to 2000. To better understand the molecular basis of the virus, we sought to explore the host cell response to the PAstV/CH/2022/CM1 infection using proteomics. The results demonstrate that viral infection elicits global protein changes, and that the mitochondria seems to be a primary and an important target in viral infection. Importantly, there was crosstalk between autophagy and apoptosis, in which ATG7 might be the key mediator. In addition, the NOD-like receptor X1 (NLRX1) in the mitochondria was activated and participated in several important antiviral signaling pathways after the PAstV/CH/2022/CM1 infection, which was closely related to mitophagy. The NLRX1 may be a crucial protein for antagonizing a viral infection through autophagy, but this has yet to be validated. In conclusion, the data in this study provides more information for understanding the virus genomic characterization and the potential antiviral targets in a PAstV infection.

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References
1.
Zhao C, Chen C, Li Y, Dong S, Tan K, Tian Y . Genomic characterization of a novel recombinant porcine astrovirus isolated in northeastern China. Arch Virol. 2019; 164(5):1469-1473. DOI: 10.1007/s00705-019-04162-8. View

2.
Zhou W, Ullman K, Chowdry V, Reining M, Benyeda Z, Baule C . Molecular investigations on the prevalence and viral load of enteric viruses in pigs from five European countries. Vet Microbiol. 2015; 182:75-81. PMC: 7125590. DOI: 10.1016/j.vetmic.2015.10.019. View

3.
Lee M, Jeoung H, Park H, Lim J, Song J, An D . Phylogenetic analysis of porcine astrovirus in domestic pigs and wild boars in South Korea. Virus Genes. 2012; 46(1):175-81. PMC: 7089313. DOI: 10.1007/s11262-012-0816-8. View

4.
Qin Y, Fang Q, Liu H, Ji C, Chen Y, Ouyang K . Construction of a reverse genetic system for porcine astrovirus. Arch Virol. 2018; 163(6):1511-1518. DOI: 10.1007/s00705-018-3771-4. View

5.
Simon-Loriere E, Holmes E . Why do RNA viruses recombine?. Nat Rev Microbiol. 2011; 9(8):617-26. PMC: 3324781. DOI: 10.1038/nrmicro2614. View