Related Experiment Videos
Micronuclei formation and aneuploidy induced by Vpr, an accessory gene of human immunodeficiency virus type 1
M Shimura1, Y Tanaka, S Nakamura
1Department of Intractable Diseases, International Medical Center of Japan, Shinjuku-ku, Tokyo.
Abstract:
Vpr, an accessory gene of HIV-1, induces cell cycle abnormality with accumulation at G2/M phase and increased ploidy. Since abnormality of mitotic checkpoint control provides a molecular basis of genomic instability, we studied the effects of Vpr on genetic integrity using a stable clone, named MIT-23, in which Vpr expression is controlled by the tetracycline-responsive promoter. Treatment of MIT-23 cells with doxycycline (DOX) induced Vpr expression with a giant multinuclear cell formation. Increased micronuclei (MIN) formation was also detected in these cells. Abolishment of Vpr expression by DOX removal induced numerous asynchronous cytokinesis in the multinuclear cells with leaving MIN in cytoplasm, suggesting that the transient Vpr expression could cause genetic unbalance. Consistent with this expectation, MIT-23 cells, originally pseudodiploid cells, became aneuploid after repeated expression of Vpr. Experiments using deletion mutants of Vpr revealed that the domain inducing MIN formation as well as multinucleation was located in the carboxy-terminal region of Vpr protein. These results suggest that Vpr induces genomic instability, implicating the possible role in the development of AIDS-related malignancies.
Insights
The HIV-1 Vpr protein causes genetic instability by inducing cell cycle abnormalities and DNA damage. This suggests Vpr may play a role in AIDS-related cancers.
Area of Science:
- Virology
- Molecular Biology
- Genetics
Background:
- Human Immunodeficiency Virus type 1 (HIV-1) Vpr protein is linked to cell cycle dysregulation.
- Mitotic checkpoint control defects are a known cause of genomic instability.
Purpose of the Study:
- To investigate the effects of HIV-1 Vpr on genetic integrity.
- To identify the Vpr domains responsible for inducing genomic instability.
Main Methods:
- Utilized a stable MIT-23 cell clone with tetracycline-inducible Vpr expression.
- Analyzed Vpr-induced changes in cell cycle, ploidy, micronuclei formation, and aneuploidy.
- Employed Vpr deletion mutants to map functional domains.
Main Results:
- Vpr expression induced giant multinuclear cells and increased micronuclei (MIN) formation.
- Transient Vpr expression led to asynchronous cytokinesis and aneuploidy in previously pseudodiploid cells.
- The carboxy-terminal region of Vpr was identified as crucial for multinucleation and MIN induction.
Conclusions:
- HIV-1 Vpr induces genomic instability, characterized by aneuploidy and DNA damage.
- The findings suggest a potential role for Vpr in the pathogenesis of AIDS-related malignancies.