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    Hiv-1 infection transcriptomics: Meta-analysis of cd4+ t cells gene expression profiles

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    Date
    2021-02-01
    Author
    Coelho, Antonio Victor Campos
    Gratton, Rossella
    de Melo, João Paulo Britto
    Andrade-Santos, José Leandro
    Guimarães, Rafael Lima
    Crovella, Sergio
    Tricarico, Paola Maura
    Brandão, Lucas André Cavalcanti
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    Abstract
    HIV-1 infection elicits a complex dynamic of the expression various host genes. High throughput sequencing added an expressive amount of information regarding HIV-1 infections and pathogenesis. RNA sequencing (RNA-Seq) is currently the tool of choice to investigate gene expression in a several range of experimental setting. This study aims at performing a meta-analysis of RNA-Seq expression profiles in samples of HIV-1 infected CD4+ T cells compared to uninfected cells to assess consistently differentially expressed genes in the context of HIV-1 infection. We selected two studies (22 samples: 15 experimentally infected and 7 mock-infected). We found 208 differentially expressed genes in infected cells when compared to uninfected/mock-infected cells. This result had moderate overlap when compared to previous studies of HIV-1 infection transcriptomics, but we identified 64 genes already known to interact with HIV-1 according to the HIV-1 Human Interaction Database. A gene ontology (GO) analysis revealed enrichment of several pathways involved in immune response, cell adhesion, cell migration, inflammation, apoptosis, Wnt, Notch and ERK/MAPK signaling.
    DOI/handle
    http://dx.doi.org/10.3390/v13020244
    http://hdl.handle.net/10576/25906
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    • Biological & Environmental Sciences [‎931‎ items ]

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