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Human cytomegalovirus attenuates AKT activity by destabilizing insulin receptor substrate proteins
Anthony J Domma1, Felicia D Goodrum2,3, Nathaniel J Moorman4
1Department of Microbiology and Immunology, LSU Health Sciences Center Shreveport, Shreveport Louisiana, USA.
Abstract:
The phosphoinositide 3-kinase (PI3K)/AKT pathway plays crucial roles in cell viability and protein synthesis and is frequently co-opted by viruses to support their replication. Although many viruses maintain high levels of AKT activity during infection, other viruses, such as vesicular stomatitis virus and human cytomegalovirus (HCMV), cause AKT to accumulate in an inactive state. To efficiently replicate, HCMV requires FoxO transcription factors to localize to the infected cell nucleus (Zhang et. al. mBio 2022), a process directly antagonized by AKT. Therefore, we sought to investigate how HCMV inactivates AKT to achieve this. Subcellular fractionation and live cell imaging studies indicated that AKT failed to recruit to membranes upon serum-stimulation of infected cells. However, UV-inactivated virions were unable to render AKT non-responsive to serum, indicating a requirement for de novo viral gene expression. Interestingly, we were able to identify that UL38 (pUL38), a viral activator of mTORC1, is required to diminish AKT responsiveness to serum. mTORC1 contributes to insulin resistance by causing proteasomal degradation of insulin receptor substrate (IRS) proteins, such as IRS1, which are necessary for the recruitment of PI3K to growth factor receptors. In cells infected with a recombinant HCMV disrupted for UL38 , AKT responsiveness to serum is retained and IRS1 is not degraded. Furthermore, ectopic expression of UL38 in uninfected cells induces IRS1 degradation, inactivating AKT. These effects of UL38 were reversed by the mTORC1 inhibitor, rapamycin. Collectively, our results demonstrate that HCMV relies upon a cell-intrinsic negative feedback loop to render AKT inactive during productive infection.
Insights
Human cytomegalovirus (HCMV) inactivates the AKT pathway by using its UL38 protein to degrade IRS1 via mTORC1. This viral strategy ensures efficient HCMV replication by preventing AKT-mediated inhibition of FoxO nuclear localization.
Area of Science:
- Virology
- Cellular Biology
- Molecular Biology
Background:
- The phosphoinositide 3-kinase (PI3K)/AKT pathway is vital for cell survival and protein synthesis, often manipulated by viruses for replication.
- Human cytomegalovirus (HCMV) infection leads to inactive AKT, which is necessary for viral replication by allowing FoxO transcription factors to enter the nucleus.
Approach:
- Investigated HCMV's mechanism for inactivating AKT during infection using subcellular fractionation and live-cell imaging.
- Determined the role of viral gene expression and specific viral proteins in AKT inactivation.
- Utilized recombinant HCMV and ectopic UL38 expression to study AKT pathway regulation.
Key Points:
- HCMV infection prevents AKT membrane recruitment upon serum stimulation, indicating a requirement for active viral gene expression.
- The viral protein UL38 is essential for diminishing AKT responsiveness to serum by activating mTORC1.
- UL38 induces proteasomal degradation of insulin receptor substrate 1 (IRS1), a key component for PI3K recruitment, thereby inactivating AKT.
Conclusions:
- HCMV employs a UL38-mediated, mTORC1-dependent negative feedback loop to inactivate AKT during productive infection.
- This viral mechanism ensures efficient replication by preventing AKT from antagonizing the nuclear localization of FoxO transcription factors.
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