Unintended spread of a biosafety level 2 recombinant retrovirus
Open Access
- 22 September 2009
- journal article
- Published by Springer Nature in Retrovirology
- Vol. 6 (1) , 86
- https://doi.org/10.1186/1742-4690-6-86
Abstract
Background: Contamination of vertebrate cell lines with animal retroviruses has been documented repeatedly before. Although such viral contaminants can be easily identified with high sensitivity by PCR, it is impossible to screen for all potential contaminants. Therefore, we explored two novel methods to identify viral contaminations in cell lines without prior knowledge of the kind of contaminant. Results: The first hint for the presence of contaminating retroviruses in one of our cell lines was obtained by electron microscopy of exosome-like vesicles released from the supernatants of transfected 293T cells. Random amplification of particle associated RNAs (PAN-PCR) from supernatant of contaminated 293T cells and sequencing of the amplicons revealed several nucleotide sequences showing highest similarity to either murine leukemia virus (MuLV) or squirrel monkey retrovirus (SMRV). Subsequent mass spectrometry analysis confirmed our findings, since we could identify several peptide sequences originating from monkey and murine retroviral proteins. Quantitative PCRs were established for both viruses to test currently cultured cell lines as well as liquid nitrogen frozen cell stocks. Gene fragments for both viruses could be detected in a broad range of permissive cell lines from multiple species. Furthermore, experimental infections of cells negative for these viruses showed that both viruses replicate rapidly to high loads. We decided to further analyze the genomic sequence of the MuLV-like contaminant virus. Surprisingly it was neither identical to MuLV nor to the novel xenotropic MuLV related retrovirus (XMRV) but showed 99% identity to a synthetic retrovirus which was engineered in the 1980s. Conclusion: The high degree of nucleotide identity suggests unintended spread of a biosafety level 2 recombinant virus, which could also affect the risk assessment of gene-modified organisms released from contaminated cell cultures. The study further indicates that both mass spectrometry and PAN-PCR are powerful methods to identify viral contaminations in cell lines without prior knowledge of the kind of contaminant. Both methods might be useful tools for testing cell lines before using them for critical purposes.Keywords
This publication has 16 references indexed in Scilit:
- A Novel Cardiotropic Murine Adenovirus Representing a Distinct Species of MastadenovirusesJournal of Virology, 2009
- Characterization of Virus Isolates by Particle-Associated Nucleic Acid PCRJournal of Clinical Microbiology, 2005
- A virus discovery method incorporating DNase treatment and its application to the identification of two bovine parvovirus speciesProceedings of the National Academy of Sciences, 2001
- Detection of squirrel monkey retroviral sequences in interferon samplesJournal of Hepatology, 1998
- Transmissible Retrovirus in Epstein-Burr Virus-Producer B95-8 CellsVirology, 1995
- Insertion of SMRV‐H viral DNA at the c‐myc gene locus of a BL cell line and presence in established cell linesInternational Journal of Cancer, 1992
- Redesign of retrovirus packaging cell lines to avoid recombination leading to helper virus production.Molecular and Cellular Biology, 1986
- Generation of helper-free amphotropic retroviruses that transduce a dominant-acting, methotrexate-resistant dihydrofolate reductase gene.Molecular and Cellular Biology, 1985
- Identification of the RPMI 8226 retrovirus and its dissemination as a significant contaminant of some widely used human and marmoset cell linesInternational Journal of Cancer, 1982
- Squirrel monkey retrovirus: Electron microscopy of a virus from new world monkeys and comparison with Mason-Pfizer monkey virusArchiv für die gesamte Virusforschung, 1978