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Rinaldo, C. R.

Publications and source records attributed to Rinaldo, C. R..

3 recordsLinked to original sources

Adoptive transfer of allogeneic gamma delta T cells promotes HIV replication in a humanized mouse model

Gamma-delta ({gamma}{delta}) T cells recognize antigens in an MHC-independent manner, with demonstrable cytotoxicity against cancer and virally infected cells. Human immunodeficiency virus (HIV) infection severely depletes the V{gamma}9V{delta}2 (V{delta}2) subset of these T cells in most infected individuals, with the exception of elite controllers. The capacity of V{delta}2 cells to kill HIV-infected targets has been demonstrated in vitro, but this has not been verified in vivo. Here, we examined the immunotherapeutic potential of V{delta}2 cells in controlling HIV replication in vivo and provide the first characterization of reconstituted {gamma}{delta} T cell subsets in the peripheral blood and lymphoid tissue in a humanized mouse model. We demonstrate the depletion of V{delta}2 cells and increase in V{delta}1 cells in the blood following HIV infection, similar to that observed in HIV-infected humans. The functionality of human V{delta}2 cells isolated from humanized mice was confirmed via ex vivo expansion in response to zoledronate and IL-2 treatment. The adoptive transfer of activated V{delta}2 cells failed to control HIV infection in vivo but instead exacerbated viremia by serving as early targets for HIV infection. Our findings suggest that V{delta}2 cells play a critical and unappreciated role as early HIV targets of infection to promote viral dissemination.

immunology

B LYMPHOCYTES, BUT NOT DENDRITIC CELLS, EFFICIENTLY HIV-1 TRANS-INFECT NAÏVE CD4+ T CELLS: IMPLICATIONS FOR THE VIRAL RESERVOIR

Insight into the establishment and maintenance of HIV-1 infection in resting CD4+ T cell subsets is critical for the development of therapeutics targeting the HIV-1 reservoir. Although the frequency of HIV-1 infection, as quantified by the frequency of HIV-1 DNA, is lower in CD4+ naive T cells (TN) compared to the memory T cell subsets, recent studies have shown that TN cells harbor a large pool of replication-competent virus. Interestingly, however, TN cells are highly resistant to direct (cis) HIV-1 infection in vitro, in particular to R5-tropic HIV-1, as TN cells do not express CCR5. In this study, we investigated whether TN cells could be efficiently HIV-1 trans-infected by professional antigen-presenting B lymphocytes and myeloid dendritic cells (DC) in the absence of global T cell activation. We found that B cells, but not DC, have a unique ability to efficiently trans infect TN cells in vitro. In contrast, both B cells and DC mediated HIV-1 trans infection of memory and activated CD4+ T cells. Moreover, we found that TN isolated from HIV-1-infected nonprogressors (NP) harbor significantly disproportionately lower levels of HIV-1 DNA compared to TN isolated from progressors. This is consistent with our previous finding that APC derived from NP do not efficiently trans-infect CD4+ T cells due to alterations in APC cholesterol metabolism and cell membrane lipid raft organization. These findings support that B cell-mediated trans infection of TN cells with HIV-1 has a more profound role than previously considered in establishing the viral reservoir and control of HIV-1 disease progression. ImportanceThe latent human immunodeficiency virus type 1 (HIV-1) reservoir in persons on antiretroviral therapy represents a major barrier to a cure. Although most studies have focused on the HIV-1 reservoir in the memory T cell subset, replication competent HIV-1 has been isolated from naive T cells, and CCR5-tropic HIV-1 has been recovered from CCR5negTN cells from ART-suppressed HIV-1-infected individuals. In this study, we showed that CCR5negTN cells are efficiently trans infected with R-5 tropic HIV-1 by B lymphocytes, but not by myeloid dendritic cells. Furthermore, we found that TN isolated from NP harbor no or significantly less copies of HIV-1 DNA compared to ART-suppressed progressors. These findings support that B cell-mediated trans infection of TN cells with HIV-1 has a more profound role than previously considered in establishing the viral reservoir and control of HIV-1 disease progression. Understanding the establishment and maintenance of the HIV-1 latent reservoir is fundamental for the design of effective treatments for viral eradication.

microbiology

Dendritic cells focus CTL responses toward highly conserved and topologically important HIV epitopes

During early HIV Infection, immunodominant T cell responses to highly variable epitopes lead to the selection and expansion of immune escape variants. As a potential therapeutic strategy, we assessed a specialized type 1-polarized monocyte-derived DC dendritic cell (MDC1)-based approach to selectively elicit functional CD8+ cytotoxic T lymphocyte (CTL) responses against highly conserved and topologically important HIV epitopes. Cells were obtained from 10 HIV-infected individuals in the Thailand RV254/SEARH010 cohort who initiated suppressive anti-retroviral therapy (ART) during Fiebig stages I to IV of early infection. Autologous MDC1 were generated for use as peptide antigen presenting cells to induce ex vivo CTL responses against HIV Gag, Pol, Env and Nef. Ultra-conserved (Epigraph) or topologically important (Network) antigens were respectively identified using the Epigraph tool and a structure-based network analysis approach, and each compared to overlapping peptides spanning the entire Gag proteome. MDC1 loaded with either overlapping Gag, Epigraph, or Network 14-21mer peptide pools were consistently capable of activating and expanding HIV-specific T cells to epitopes identified at the 9-13mer peptide level. Some CTL responses occurred outside of known or expected HLA associations, providing evidence of new HLA-associated CTL epitopes. Comparative analyses of peptide pools demonstrated more sequence conservation among the Epigraph antigens, but statistically higher magnitude of CTL responses to Network and Gag peptide groups. Importantly, when select Gag antigens used to initiate the cultures were part of the Network peptide pool, CTL responses directed against these topologically important epitopes were enhanced as compared to when they were included within the complete pool of overlapping Gag peptides. Our study supports that MDC1 can be used to effectively focus CTL responses toward potentially fitness-constrained regions of HIV as a therapeutic strategy to prevent HIV immune escape and control viral replication. Author summaryA major hurdle in the development of a successful HIV immunotherapy is the capacity of the virus to evade the immune response by efficiently establishing epitope variants in response to selective pressure. While effective at suppressing viremia, current regimens of antiretroviral therapy (ART) are not curative. Therefore, achieving immune control of HIV upon cessation of ART as a functional cure, similar to that observed in elite controllers (EC), has been a major therapeutic goal. Such immune control is realized through the actions of antigen-specific cytotoxic T cell lymphocytes (CTL) capable of specifically targeting sequence-conserved epitopes in HIV. In this study, a specialized, antigen presenting, dendritic cell (DC)-based vaccine strategy was used to elicit HIV specific CTL responses in vitro against carefully selected, ultra-conserved and topologically important epitopes. This DC-based approach yielded broad responses against peptide epitopes of both known and unknown HLA-associations, the latter of which implies the uncovering of potentially novel epitopes. Importantly, we demonstrate that CTL responses can be re-directed or focused toward potentially more fitness-constrained regions of the virus, thus highlighting the potential for DC-based therapies to induce immune responses that circumvent the issue of viral escape.

immunology