High Mutant Frequency in Populations of a DNA Virus Allows Evasion from Antibody Therapy in an Immunodeficient Host
Open Access
- 15 February 2003
- journal article
- Published by American Society for Microbiology in Journal of Virology
- Vol. 77 (4), 2701-2708
- https://doi.org/10.1128/jvi.77.4.2701-2708.2003
Abstract
The degree of genetic heterogeneity of DNA virus populations in nature and its consequences for disease control are virtually unknown. The parvovirus minute virus of mice (MVMi) was used here to investigate (i) the frequency of antibody-escape mutants in populations of a DNA virus and (ii) the ability of a DNA virus to evade in the long-term a passive monoclonal antibody (MAb) therapy in an immunodeficient natural host. Independent clonal populations of MVMi harbored a high proportion of mutants resistant to neutralizing MAb (mutant frequency = [2.8 ± 0.5] × 10−5) that rapidly evolved under antibody pressure in culture to become mixtures dominated by genotypically diverse escape mutants. Immunodeficient mice naturally infected with clonal populations of MVMi and subsequently treated by intravenous injections of MAb were initially protected from the characteristic viral induced lethal leukopenia. However, some treated animals developed a delayed severe leukopenic syndrome associated with the emergence of genetically heterogeneous populations of MAb-resistant mutants in the MVMi main target organs. The 11 plaque-purified viruses analyzed from an antibody-resistant population obtained from one animal corresponded to four different mutant genotypes, although their consensus sequence remained wild type. All cloned escape mutants harbored single radical amino acid changes within a stretch of seven residues in a surface-exposed loop at the threefold axes of the capsid. This antigenic site, which can tolerate radical changes preserving MVMi pathogenic potential, may thereby allow the virus to evade the immune control. These findings indicate a high genetic heterogeneity and rapid adaptation of populations of a mammal DNA virus in vivo and provide a genetic basis for the failure of passive immunotherapy in the natural host.Keywords
This publication has 100 references indexed in Scilit:
- Parvovirus Initiator Protein NS1 and RPA Coordinate Replication Fork Progression in a Reconstituted DNA Replication SystemJournal of Virology, 2002
- Effector Function Activities of a Panel of Mutants of a Broadly Neutralizing Antibody against Human Immunodeficiency Virus Type 1Journal of Virology, 2001
- Identification of Aleutian Mink Disease Parvovirus Capsid Sequences Mediating Antibody-Dependent Enhancement of Infection, Virus Neutralization, and Immune Complex FormationJournal of Virology, 2001
- The Outcome of Acute Hepatitis C Predicted by the Evolution of the Viral QuasispeciesScience, 2000
- Antibody recognition of picornaviruses and escape from neutralization: a structural viewVirus Research, 1995
- Vaccine-induced escape mutant of hepatitis B virusThe Lancet, 1990
- Chronic Bone Marrow Failure Due to Persistent B19 Parvovirus InfectionNew England Journal of Medicine, 1987
- An Escherichia coli recBCsbcBrecF host permits the deletion-resistant propagation of plasmid clones containing the 5'-terminal palindrome of minute virus of miceGene, 1985
- A severe combined immunodeficiency mutation in the mouseNature, 1983
- Immunosuppressive activity of a subline of the mouse EL-4 lymphoma. Evidence for minute virus of mice causing the inhibition.The Journal of Experimental Medicine, 1976