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Recovery of pathogenic measles virus from cloned cDNA
M Takeda1, K Takeuchi, N Miyajima
1Department of Viral Diseases and Vaccine Control, National Institute of Infectious Diseases, Musashi-murayama, Tokyo 208-0011, Japan.
Abstract:
Reverse genetics technology so far established for measles virus (MeV) is based on the Edmonston strain, which was isolated several decades ago, has been passaged in nonlymphoid cell lines, and is no longer pathogenic in monkey models. On the other hand, MeVs isolated and passaged in the Epstein-Barr virus-transformed marmoset B-lymphoblastoid cell line B95a would retain their original pathogenicity (F. Kobune et al., J. Virol. 64:700-705, 1990). Here we have developed MeV reverse genetics systems based on the highly pathogenic IC-B strain isolated in B95a cells. Infectious viruses were successfully recovered from the cloned cDNA of IC-B strain by two different approaches. One was simple cotransfection of B95a cells, with three plasmids each encoding the nucleocapsid (N), phospho (P), or large (L) protein, respectively, and their expression was driven by the bacteriophage T7 RNA polymerase supplied by coinfecting recombinant vaccinia virus vTF7-3. The second approach was transfection with the L-encoding plasmid of a helper cell line constitutively expressing the MeV N and P proteins and the T7 polymerase (F. Radecke et al., EMBO J. 14:5773-5784, 1995) on which B95a cells were overlaid. Virus clones recovered by both methods possessed RNA genomes identical to that of the parental IC-B strain and were indistinguishable from the IC-B strain with respect to growth phenotypes in vitro and the clinical course and histopathology of experimentally infected cynomolgus monkeys. Thus, the systems developed here could be useful for studying viral gene functions in the context of the natural course of MeV pathogenesis.
Insights
New reverse genetics systems for measles virus (MeV) were developed using the pathogenic IC-B strain. These systems enable the study of MeV gene functions in natural pathogenesis.
Area of Science:
- Virology
- Molecular Biology
- Pathogenesis Research
Background:
- Established measles virus (MeV) reverse genetics rely on the attenuated Edmonston strain.
- MeV strains passaged in B95a cells retain pathogenicity, unlike those passaged in non-lymphoid cells.
Purpose of the Study:
- To develop novel MeV reverse genetics systems utilizing the highly pathogenic IC-B strain.
- To enable the study of viral gene functions within the context of natural MeV pathogenesis.
Main Methods:
- Developed two distinct reverse genetics systems for the IC-B MeV strain.
- Systems involved either cotransfection of B95a cells with N, P, and L protein plasmids and T7 polymerase, or transfection of a helper cell line expressing N, P, and T7 polymerase.
Main Results:
- Successfully recovered infectious MeV from cloned cDNA of the IC-B strain using both developed systems.
- Recovered virus clones exhibited RNA genomes identical to the parental IC-B strain.
- In vitro growth, and in vivo clinical course and histopathology in cynomolgus monkeys were indistinguishable from the parental IC-B strain.
Conclusions:
- The developed reverse genetics systems are effective for generating infectious MeV from the pathogenic IC-B strain.
- These systems provide a valuable tool for investigating MeV gene functions and pathogenesis.
- The findings pave the way for more accurate studies of MeV disease mechanisms.