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Kinome Profiling Identifies Druggable Targets for Novel Human Cytomegalovirus (HCMV) Antivirals
Kyle C Arend1,2, Erik M Lenarcic1,2, Heather A Vincent1,2
1From the ‡Department of Microbiology & Immunology.
Insights
New research identifies existing drugs that can fight human cytomegalovirus (HCMV) infection. By analyzing cellular kinases, scientists found potent antiviral compounds, including OTSSP167, offering hope for safer HCMV treatments.
Area of Science:
- Virology
- Drug Discovery
- Molecular Biology
Background:
- Human cytomegalovirus (HCMV) poses significant health risks to immunocompromised individuals and newborns.
- Current antiviral therapies for HCMV are limited by toxicity and side effects.
- There is a critical need for novel, safer strategies to combat HCMV infection.
Purpose of the Study:
- To identify cellular kinases altered during HCMV infection.
- To discover existing kinase inhibitors that can be repurposed as novel HCMV antivirals.
- To evaluate the efficacy and safety of identified compounds against HCMV.
Main Methods:
- Utilized multiplexed kinase inhibitor bead-mass spectrometry (MIB-MS) kinome profiling to quantify kinase perturbations in HCMV-infected cells.
- Tested identified kinase inhibitors and other compounds for antiviral activity using a flow cytometry-based assay and a fluorescent reporter virus.
- Determined half-maximal inhibitory concentration (IC50) values and assessed cytotoxicity.
Main Results:
- MIB-MS profiling revealed time-dependent changes in over 240 cellular kinases during HCMV infection.
- Three compounds demonstrated significant inhibition of HCMV replication (IC50 < 1 μm) without cellular toxicity.
- OTSSP167, a MELK inhibitor, emerged as the most potent antiviral (IC50 < 1.2 nm), effectively blocking viral gene expression and DNA replication.
Conclusions:
- MIB-MS kinome profiling is a valuable approach for identifying potential antiviral drug repurposing candidates.
- Kinase inhibitors, such as OTSSP167, show promise as novel therapeutic agents against HCMV.
- This strategy can accelerate the development of safer and more effective treatments for HCMV infections.
Abstract:
Human cytomegalovirus (HCMV) is a significant cause of disease in immune-compromised adults and immune naïve newborns. No vaccine exists to prevent HCMV infection, and current antiviral therapies have toxic side effects that limit the duration and intensity of their use. There is thus an urgent need for new strategies to treat HCMV infection. Repurposing existing drugs as antivirals is an attractive approach to limit the time and cost of new antiviral drug development. Virus-induced changes in infected cells are often driven by changes in cellular kinase activity, which led us to hypothesize that defining the complement of kinases (the kinome), whose abundance or expression is altered during infection would identify existing kinase inhibitors that could be repurposed as new antivirals. To this end, we applied a kinase capture technique, multiplexed kinase inhibitor bead-mass spectrometry (MIB-MS) kinome, to quantitatively measure perturbations in >240 cellular kinases simultaneously in cells infected with a laboratory-adapted (AD169) or clinical (TB40E) HCMV strain. MIB-MS profiling identified time-dependent increases and decreases in MIB binding of multiple kinases including cell cycle kinases, receptor tyrosine kinases, and mitotic kinases. Based on the kinome data, we tested the antiviral effects of kinase inhibitors and other compounds, several of which are in clinical use or development. Using a novel flow cytometry-based assay and a fluorescent reporter virus we identified three compounds that inhibited HCMV replication with IC50 values of <1 μm, and at doses that were not toxic to uninfected cells. The most potent inhibitor of HCMV replication was OTSSP167 (IC50 <1.2 nm), a MELK inhibitor, blocked HCMV early gene expression and viral DNA accumulation, resulting in a >3 log decrease in virus replication. These results show the utility of MIB-MS kinome profiling for identifying existing kinase inhibitors that can potentially be repurposed as novel antiviral drugs.
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