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Regan, J. M.

Publications and source records attributed to Regan, J. M..

2 recordsLinked to original sources

Therapeutic CD8+T cell tissue retention and immunomodulation during ART interruption fails to prevent SIV rebound

A primary obstacle for HIV elimination is the long-term viral reservoir in lymphoid tissues (LT) that can cause rebound viremia if therapy is stopped. Cytotoxic CD8+ T cells are critical for control of HIV and SIV viremia; however, CD8+ T cells that migrate to LT are primarily non-cytotoxic, calling into question whether these cells could reduce the viral reservoir on ART or control viral replication when therapy is halted. To determine if CD8+ T cells can inhibit viral replication when retained in lymphoid tissues, we inhibited lymphocyte egress from LTs in antiretroviral therapy (ART)-treated SIV-infected rhesus macaques (RM) during analytic treatment interruption (ATI) using the S1PR modulator FTY720 alone or in combination with anti-PD1 and the IL-15 receptor superagonist N-803 to increase cytolytic function. FTY720 retained migrating CD4+ and CD8+ T cells in LT, whereas cytotoxic CD8+ T cells remained in the vasculature. After ATI and viral rebound, activated SIV-specific CD8+ T cells increased in frequency in LT of FTY720-treated RM but failed to become cytotoxic or control plasma viremia compared to controls, even when combined with anti-PD1 and N-803. These findings indicate that LT-localized CD8+ T cells alone are insufficient to delay or prevent plasma viral rebound during ATI. Significance StatementHIV therapeutic and cure strategies have all operated under the assumption that CD8+ T cells can become cytotoxic in lymph nodes to eliminate infected cells from reservoir repositories. Using FTY720 to prevent lymphocyte egress from lymph nodes, we demonstrated that lymphoid tissue-restricted CD8+ T cells are insufficient to prevent SIV rebound during antiretroviral treatment interruption, even in the presence of immunomodulators such as IL-15 receptor superagonist and PD-1 blockade. These findings call into question the ability of lymph node CD8+ T cells to control or eliminate SIV/HIV infection from lymphoid tissues without substantial immunomodulation, a notion contrary to current efforts to engage CD8+ T cells for therapeutic elimination of HIV viral reservoirs during ART.

immunology↗

Merkel cell polyomavirus protein ALTO modulates TBK1 activity to support persistent infection

While Merkel cell polyomavirus (MCPyV or MCV) is an abundant virus frequently shed from healthy skin, it is one of the most lethal tumor viruses in immunocompromised individuals, highlighting the crucial role of host immunity in controlling MCPyV oncogenic potential. Despite its prevalence, very little is known about how MCPyV interfaces with the host immune response to maintain asymptomatic persistent infection and how inadequate control of MCPyV infection triggers MCC tumorigenesis. In this study, we discovered that the MCPyV protein, known as the Alternative Large Tumor Open Reading Frame (ALTO), effectively primes and activates the STING signaling pathway. It recruits Src kinase into the complex of STING downstream kinase TBK1 to trigger its autophosphorylation, which ultimately activates the subsequent antiviral immune response. Combining single-cell analysis with both loss- and gain-of-function studies of MCPyV infection, we demonstrated that the activity of ALTO leads to a decrease in MCPyV replication. Thus, we have identified ALTO as a crucial viral factor that modulates the STING-TBK1 pathway, creating a negative-feedback loop that limits viral infection and maintains a delicate balance with the host immune system. Our study reveals a novel mechanism by which a tumorigenic virus-encoded protein can link Src function in cell proliferation to the activation of innate immune signaling, thereby controlling viral spread and sustaining persistent infection. Our previous findings suggest that STING also functions as a tumor suppressor in MCPyV-driven oncogenesis. This research provides a foundation for investigating how disruptions in the finely tuned virus-host balance, maintained by STING, could alter the fate of MCPyV infection, potentially encouraging malignancy. Author summaryMerkel cell polyomavirus (MCPyV) is a small DNA virus responsible for the majority cases of Merkel Cell Carcinoma (MCC), a rare yet highly aggressive form of cancer. While MCPyV latently infects a vast majority of individuals, the mechanisms governing its control, persistence, and oncogenic triggers remain obscure. Our research reveals that the MCPyV-derived Alternative Large Tumor Open Reading Frame (ALTO) protein primes and activates the cGAS-STING- TBK1 innate immune pathway within cells. Such activation elicits an antiviral response, effectively curbing MCPyV replication. This phenomenon illustrates the viruss cunning strategy to exploit cellular mechanisms, ensuring low viral presence while facilitating long-term infection. Consequently, our study sheds light on a novel tactic utilized by MCPyV to maintain a persistent infection in its host.

microbiology↗