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Malachite Green Assay for the Discovery of Heat-Shock Protein 90 Inhibitors
Published on: January 20, 2023
Heat Shock Protein 90 Ensures the Integrity of Rubella Virus p150 Protein and Supports Viral Replication
Masafumi Sakata1, Hiroshi Katoh2, Noriyuki Otsuki2
1Department of Virology 3, National Institute of Infectious Diseases, Tokyo, Japan msakata@nih.go.jp.
Abstract:
Two viral nonstructural proteins, p150 and p90, are expressed in rubella virus (RUBV)-infected cells and mediate viral genome replication, presumably using various host machineries. Molecular chaperones are critical host factors for the maintenance of cellular proteostasis, and certain viral proteins use this chaperone system. The RUBV p150 and p90 proteins are generated from a precursor polyprotein, p200, via processing by the protease activity of its p150 region. This processing is essential for RUBV genome replication. Here we show that heat shock protein 90 (HSP90), a molecular chaperone, is an important host factor for RUBV genome replication. The treatment of RUBV-infected cells with the HSP90 inhibitors 17-allylamino-17-desmethoxygeldanamycin (17-AAG) and ganetespib suppressed RUBV genome replication. HSP90α physically interacted with p150, but not p90. Further analyses into the mechanism of action of the HSP90 inhibitors revealed that HSP90 activity contributes to p150 functional integrity and promotes p200 processing. Collectively, our data demonstrate that RUBV p150 is a client of the HSP90 molecular chaperone and that HSP90 functions as a key host factor for RUBV replication.IMPORTANCE Accumulating evidence indicates that RNA viruses use numerous host factors during replication of their genomes. However, the host factors involved in rubella virus (RUBV) genome replication are largely unknown. In this study, we demonstrate that the HSP90 molecular chaperone is needed for the efficient replication of the RUBV genome. Further, we reveal that HSP90 interacts with RUBV nonstructural protein p150 and its precursor polyprotein, p200. HSP90 contributes to the stability of p150 and the processing of p200 via its protease domain in the p150 region. We conclude that the cellular molecular chaperone HSP90 is a key host factor for functional maturation of nonstructural proteins for RUBV genome replication. These findings provide novel insight into this host-virus interaction.
Insights
Heat shock protein 90 (HSP90) is crucial for rubella virus (RUBV) genome replication. This study shows HSP90 interacts with viral protein p150, aiding its function and processing for efficient viral replication.
Area of Science:
- Virology
- Molecular Biology
- Cellular Biology
Background:
- Rubella virus (RUBV) genome replication relies on host factors, many of which remain uncharacterized.
- Molecular chaperones, such as heat shock protein 90 (HSP90), are vital for cellular proteostasis and can be exploited by viruses.
Purpose of the Study:
- To investigate the role of HSP90 as a host factor in RUBV genome replication.
- To elucidate the mechanism by which HSP90 influences RUBV replication, focusing on viral nonstructural proteins.
Main Methods:
- Treatment of RUBV-infected cells with HSP90 inhibitors (17-AAG and ganetespib).
- Co-immunoprecipitation assays to detect interactions between HSP90 and RUBV proteins (p150, p90).
- Analysis of viral genome replication and protein processing in the presence of HSP90 inhibitors.
Main Results:
- HSP90 inhibition significantly suppressed RUBV genome replication.
- HSP90α was found to physically interact with the RUBV p150 protein.
- HSP90 activity was essential for the functional integrity of p150 and the processing of the precursor polyprotein p200.
Conclusions:
- RUBV p150 is a client protein of the HSP90 molecular chaperone.
- HSP90 acts as a key host factor, essential for the maturation of RUBV nonstructural proteins and subsequent viral genome replication.
- This study reveals a novel host-virus interaction critical for rubella virus replication.
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