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Valencia, C. C.

Publications and source records attributed to Valencia, C. C..

2 recordsLinked to original sources

CD8α+ cells suppress SIV replication without evidence of viral immune escape during post treatment control

Post-treatment control (PTC) is a rare phenomenon in which people living with HIV (PLWH) maintain viral control following ART interruption. Characterizing virus populations present in PTCs may help elucidate mechanisms of immunologic control, but this is challenging without detectable plasma viremia. To model PTC, eight Mauritian cynomolgus macaques (MCM) were infected with barcoded SIVmac239M and began an 8-month ART regimen two weeks post-infection (wpi). Six months following ART interruption, all MCM were rechallenged with non-barcoded SIVmac239 followed by CD8[a]+ cell depletion two months later. Animals were grouped as viremic (n=5) or aviremic (n=3) based on the detection of plasma viremia between ART interruption and CD8[a]+ cell depletion; all animals became viremic post-depletion. Barcode sequencing of plasma virus revealed that lineages with high pre-ART viral loads dominated the rebounding populations post-depletion and detectable rechallenge virus in two animals post-depletion. Additional sequencing of three CD8+ T cell epitopes within plasma viruses identified point mutations only in viruses isolated from the viremic group post-depletion. A second cohort of 5 MCM who initiated ART 8 wpi was examined to identify the impact of the timing of ART initiation on viral epitope diversity and showed increased diversity prior to ART initiation and following ART interruption. These results suggest that early ART initiation is associated with reduced diversity within cytotoxic T lymphocyte (CTL) epitopes and a longer time to rebound, as well as highlight an important role of restricting the emergence of CTL immune escape variants in increasing the likelihood of PTC. ImportanceWhile rare, a subset of PLWH, termed post-treatment controllers (PTCs), can maintain viral control following ART interruption. However, little is known about whether this control reflects a complete absence of viral replication or continual, subclinical replication. Here we address a key knowledge gap regarding how viral populations change during CD8[a]+ cell-mediated PTC of SIV. We utilized our Mauritian cynomolgus macaque model of HIV infection, in combination with the barcoded SIVmac239M and deep sequencing, to characterize viral lineages and MHC-I-restricted CD8+ T cell epitopes throughout the study. Our findings demonstrate that early ART initiation limits viral diversity, that pre-ART replication predicts post-ART reactivation, and that CD8[a]+ cells can suppress viral replication without evidence of immune escape. These insights establish MCMs as a valuable model for dissecting mechanisms of durable ART-free viral control and highlight the potential of CD8-mediated immune control as a therapeutic target for HIV cure strategies.

microbiology↗

Wolbachia-mediated resistance to Zika virus infection in Aedes aegypti is dominated by diverse transcriptional regulation and weak evolutionary pressures

A promising candidate for arbovirus control and prevention relies on replacing arbovirus-susceptible Aedes aegypti populations with mosquitoes that have been colonized by the intracellular bacterium Wolbachia and thus have a reduced capacity to transmit arboviruses. This reduced capacity to transmit arboviruses is mediated through a phenomenon referred to as pathogen blocking. Pathogen blocking has primarily been proposed as a tool to control dengue virus (DENV) transmission, however it works against a range of viruses, including Zika virus (ZIKV). Despite years of research, the molecular mechanisms underlying pathogen blocking still need to be better understood. Here, we used RNA-seq to characterize mosquito gene transcription dynamics in Ae. aegypti infected with the wMel strain of Wolbachia that are being released by the World Mosquito Program in Medellin, Colombia. Comparative analyses using ZIKV-infected, uninfected tissues, and mosquitoes without Wolbachia revealed that the influence of wMel on mosquito gene transcription is multifactorial. Importantly, because Wolbachia limits, but does not completely prevent, replication of ZIKV and other viruses in coinfected mosquitoes, there is a possibility that these viruses could evolve resistance to pathogen blocking. Therefore, to understand the influence of Wolbachia on within-host ZIKV evolution, we characterized the genetic diversity of molecularly barcoded ZIKV virus populations replicating in Wolbachia-infected mosquitoes and found that within-host ZIKV evolution was subject to weak purifying selection and, unexpectedly, loose anatomical bottlenecks in the presence and absence of Wolbachia. Together, these findings suggest that there is no clear transcriptional profile associated with Wolbachia-mediated ZIKV restriction, and that there is no evidence for ZIKV escape from this restriction in our system. Author SummaryWhen Wolbachia bacteria infect Aedes aegypti mosquitoes, they dramatically reduce the mosquitoes susceptibility to infection with a range of arthropod-borne viruses, including Zika virus (ZIKV). Although this pathogen-blocking effect has been widely recognized, its mechanisms remain unclear. Furthermore, because Wolbachia limits, but does not completely prevent, replication of ZIKV and other viruses in coinfected mosquitoes, there is a possibility that these viruses could evolve resistance to Wolbachia-mediated blocking. Here, we use host transcriptomics and viral genome sequencing to examine the mechanisms of ZIKV pathogen blocking by Wolbachia and viral evolutionary dynamics in Ae. aegypti mosquitoes. We find complex transcriptome patterns that do not suggest a single clear mechanism for pathogen blocking. We also find no evidence that Wolbachia exerts detectable selective pressures on ZIKV in coinfected mosquitoes. Together our data suggest that it may be difficult for ZIKV to evolve Wolbachia resistance, perhaps due to the complexity of the pathogen blockade mechanism.

molecular biology↗