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Rubella virus and birth defects: molecular insights into the viral teratogenesis at the cellular level
C D Atreya1, K V K Mohan, S Kulkarni
1Section of Viral Pathogenesis and Vaccine Adverse Reactions, Division of Viral Products, Center for Biologics Evaluation and Research, U.S. Food and Drug Administration, Bethesda, Maryland, USA. atreya@cber.fda.gov
Insights
Rubella virus (RV) infection causes congenital rubella syndrome (CRS) by inducing cell-cycle arrest and apoptosis. A specific RV protein interacts with citron-K kinase (CK), potentially explaining RV-induced birth defects.
Area of Science:
- Cell Biology
- Virology
- Developmental Biology
Background:
- In utero rubella virus (RV) infection leads to congenital rubella syndrome (CRS), causing fetal birth defects and potential death.
- Despite available vaccines, over 100,000 infants are born with CRS annually worldwide.
Purpose of the Study:
- To elucidate the cellular mechanisms underlying RV-induced teratogenesis.
- To investigate the role of citron-K kinase (CK) in RV infection and its impact on cell cycle and apoptosis.
Main Methods:
- Analysis of RV protein interactions with cellular kinases.
- Cell culture studies to observe RV-induced cell-cycle arrest and apoptosis.
- Comparison of RV-associated phenotypes with CK deficiency phenotypes.
Main Results:
- A rubella virus protein interacts with citron-K kinase (CK), causing cell-cycle arrest and tetraploidy (4N DNA cells).
- RV infection induces apoptosis in cultured cells.
- Perturbations in CK function lead to tetraploidy and subsequent apoptosis in specific cell types.
Conclusions:
- The interaction between RV protein P90 and CK interferes with CK function, inducing cell-cycle arrest and apoptosis in infected cells.
- This P90-CK interaction is a plausible mechanism initiating RV infection-induced apoptosis and subsequent fetal birth defects during organogenesis.
Background:
In utero rubella virus (RV) infection of a fetus can result in birth defects that are often collectively referred to as congenital rubella syndrome (CRS). In extreme cases, fetal death can occur. In spite of the availability of a safe and effective vaccine against rubella, recent worldwide estimates are that more than 100,000 infants are born with CRS annually.
Recent Progress:
Recently, several significant findings in the field of cell biology, as well as in the RV replication and virus-cell interactions, have originated from the authors' laboratory, and other researchers have provided insights into RV teratogenesis. It has been shown that 1) an RV protein induces cell-cycle arrest by generating a subpopulation of tetraploid nuclei (i.e., 4N DNA) cells, perhaps representative of the tetraploid state following S phase in the cell cycle, due to its interaction with citron-K kinase (CK); 2) RV infection induces apoptosis in cell culture, and 3) CK functional perturbations lead to tetraploidy, followed by apoptosis, in specific cell types.
Conclusions:
Based on several similarities between known RV-associated fetal and cellular manifestations and CK deficiency-associated phenotypes, it is reasonable to postulate that P90-CK interaction in RV-infected cells interferes with CK function and induces cell-cycle arrest following S phase in a subpopulation, perhaps representative of tetraploid stage, which could lead to subsequent apoptosis in RV infection. Taking all these observations to the fetal organogenesis level, it is plausible that P90-CK interaction could perhaps be one of the initial steps in RV infection-induced apoptosis-associated fetal birth defects in utero.
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