» Articles » PMID: 35975611

Metagenomic Analysis Reveals Presence of Different Animal Viruses in Commercial Fetal Bovine Serum and Trypsin

Overview
Journal Zool Res
Publisher Science Press
Date 2022 Aug 17
PMID 35975611
Authors
Affiliations
Soon will be listed here.
Abstract

Animal-derived biological products, such as fetal bovine serum (FBS) and trypsin, are important supplements for scientific, pharmaceutical, and medical use. Although preventive guidelines and tests are implemented to reduce potential viral contamination in these biologicals, they do not target unusual or emerging viruses, leading to safety concerns. Using unbiased metagenomics, we investigated the presence of viruses in recently collected commercial FBS and trypsin samples from different geographic regions. In total, we detected viral sequences belonging to , , , , , , , and , including several viruses related to bovine diseases, viruses of potential human and insect origin, and viruses of unknown origin. Bovine parvovirus 3 and bosavirus were detected with high frequency and abundance in FBS, necessitating more stringent testing for these parvoviruses during production. Both bovine norovirus and bovine viral diarrhea virus 1 displayed relatively high genetic distance to closest hits, indicating the presence of new genotypes in farm animals. While the origin of novel lyssavirus and Nipah virus is unclear, their presence raises the possibility of the introduction of pathogenic animal-derived viruses into biologicals. Our results showed relatively widespread contamination of different viruses in biologicals, underscoring the need for robust safety protocol alternatives, such as metagenomic sequencing, to monitor emerging viruses.

Citing Articles

Preparation of a universally usable, animal product free, defined medium for 2D and 3D culturing of normal and cancer cells.

Weber T, Bajramovic J, Oredsson S MethodsX. 2024; 12:102592.

PMID: 38445175 PMC: 10912720. DOI: 10.1016/j.mex.2024.102592.


Unmapped short reads from whole-genome sequencing indicate potential infectious pathogens in german black Pied cattle.

Neumann G, Korkuc P, Reissmann M, Wolf M, May K, Konig S Vet Res. 2023; 54(1):95.

PMID: 37853447 PMC: 10585868. DOI: 10.1186/s13567-023-01227-0.


A Diverse Virome Is Identified in Parasitic Flatworms of Domestic Animals in Xinjiang, China.

Zhang P, Zhang Y, Cao L, Li J, Wu C, Tian M Microbiol Spectr. 2023; 11(3):e0070223.

PMID: 37042768 PMC: 10269781. DOI: 10.1128/spectrum.00702-23.


Viral Metagenomics as a Tool to Track Sources of Fecal Contamination: A One Health Approach.

Santiago-Rodriguez T, Hollister E Viruses. 2023; 15(1).

PMID: 36680277 PMC: 9863393. DOI: 10.3390/v15010236.

References
1.
Baylis S, Miskey C, Blumel J, Kaiser M, Kapusinszky B, Delwart E . Identification of a novel bovine copiparvovirus in pooled fetal bovine serum. Virus Genes. 2020; 56(4):522-526. PMC: 7329774. DOI: 10.1007/s11262-020-01757-1. View

2.
Field H, Kung N . Henipaviruses-unanswered questions of lethal zoonoses. Curr Opin Virol. 2012; 1(6):658-61. DOI: 10.1016/j.coviro.2011.10.025. View

3.
Marcus-Sekura C, Richardson J, Harston R, Sane N, Sheets R . Evaluation of the human host range of bovine and porcine viruses that may contaminate bovine serum and porcine trypsin used in the manufacture of biological products. Biologicals. 2011; 39(6):359-69. PMC: 3206158. DOI: 10.1016/j.biologicals.2011.08.003. View

4.
Cantalupo P, Pipas J . Detecting viral sequences in NGS data. Curr Opin Virol. 2019; 39:41-48. DOI: 10.1016/j.coviro.2019.07.010. View

5.
Harvey E, Holmes E . Diversity and evolution of the animal virome. Nat Rev Microbiol. 2022; 20(6):321-334. DOI: 10.1038/s41579-021-00665-x. View