Eradication of Epstein-Barr virus by allogeneic bone marrow transplantation: implications for sites of viral latency.
- 1 November 1988
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 85 (22) , 8693-8696
- https://doi.org/10.1073/pnas.85.22.8693
Abstract
Wild-type strains of Epstein-Barr virus (EBV) can be distinguished on the basis of variations in the molecular weight of virus-encoded, growth transformation-associated proteins. This approach was used to study the persistence of EBV in two seropositive recipients of allogeneic bone marrow transplants. The first patient received marrow from her EBV-seronegative brother, became EBV seronegative after grafting, and remained so for greater than 1200 days. Subsequently, she became infected with a new EBV strain that differed from her pretransplant strain but was indistinguishable from the virus isolated from her husband. The second patient received marrow from his EBV-seropositive brother. This patient showed only a transient decrease in IgG antibodies to EBV capsid antigen. His pretransplant strain differed from the virus of his donor. On days 252 and 915 after transplantation, lymphoblastoid cell lines were grown from the peripheral blood of the patient and were found to carry exclusively the virus of the donor. These results suggest that the latently EBV-infected host cells reside in a cellular compartment that can be destroyed by graft-versus-host reactivity, irradiation, or cytotoxic drugs. Hemopoietic tissue is the most likely candidate.This publication has 33 references indexed in Scilit:
- Detection of Epstein-Barr Virus Strain Variants in Lymphoblastoid Cell Lines 'Spontaneously' Derived from Patients with Rheumatoid Arthritis, Infectious Mononucleosis and Normal ControlsJournal of General Virology, 1987
- Characterization of ebv‐carrying b‐cell populations in healthy seropositive individuals with regard to density, release of transforming virus and spontaneous outgrowthInternational Journal of Cancer, 1987
- EPSTEIN-BARR VIRUS INFECTION AND IMMUNITY IN BONE MARROW TRANSPLANT RECIPIENTSTransplantation, 1986
- Replication of Epstein–Barr Virus within the Epithelial Cells of Oral Hairy Leukoplakia, an AIDS-Associated LesionNew England Journal of Medicine, 1985
- Epstein–Barr Virus–Associated B-Cell Proliferations of Diverse Clonal Origins after Bone Marrow Transplantation in a 12-Year-Old Patient with Severe Combined ImmunodeficiencyNew England Journal of Medicine, 1985
- Epstein–Barr Virus Replication in Oropharyngeal Epithelial CellsNew England Journal of Medicine, 1984
- Simple Repeat Array in Epstein-Barr Virus DNA Encodes Part of the Epstein-Barr Nuclear AntigenScience, 1983
- Selective Antimicrobial Modulation of Human Microbial Flora: Infection Prevention in Patients with Decreased Host Defense Mechanisms by Selective Elimination of Potentially Pathogenic BacteriaThe Journal of Infectious Diseases, 1981
- Epstein-Barr virus-related serology in marrow transplant recipientsInternational Journal of Cancer, 1980
- Epstein-barr virus infection following bone-marrow transplantationInternational Journal of Cancer, 1978