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Biology subjects

Flagg, M.

Publications and source records attributed to Flagg, M..

3 recordsLinked to original sources

Colon resident CD8+ T cells from people with HIV on antiretroviral therapy exhibit mitochondrial dysfunction and impaired responses

CD8+ tissue-resident memory T cells (CD8+ TRM) play an important role in mediating immune responses against HIV in the gastrointestinal (GI) mucosa. Antiretroviral therapy (ART) successfully supresses HIV replication in the blood, but fails to restore GI homeostasis, particularly within gut associated lymphoid tissue (GALT). The importance of cellular metabolism in shaping CD8+ TRM antiviral function has emerged as a crucial aspect of general immunoregulation. To gain better insight into the immunoregulation of CD8+ TRM during HIV, we characterized the function of blood and colon CD8+ T cells in people with HIV (PWH) on ART and HIV-uninfected individuals. We show that a higher proportion of activated CD8+ TRM persisted in the colon of PWH on ART, and these cells exhibited weaker immune response and compromised mitochondrial function compared to their peripheral counterparts. We also observed decreased mitochondrial function in CD8+ T cell in the colon compared to peripheral blood in PWH on ART. The study indicates that mitochondrial bioenergetic properties may be an indicator of colonic CD8+ TRM dysfunction in PWH on ART and highlights the importance of understanding cellular metabolism in shaping CD8+ TRM function to develop targeted immunotherapies for PWH.

immunology↗

Age-related differences in immune dynamics during SARS-CoV-2 infection in rhesus macaques

Advanced age is a key predictor of severe COVID-19. To gain insight into this relationship, particularly with respect to immune responses, we utilized the rhesus macaque model of SARS-CoV-2 infection. Two cohorts of eight older (16-23 years) and eight younger (3-5 years) rhesus macaques were inoculated with SARS-CoV-2. Animals were evaluated using viral RNA quantification, clinical observations, thoracic radiographs, single-cell transcriptomics, multiparameter flow cytometry, multiplex immunohistochemistry, cytokine detection, and lipidomics analysis at pre-defined timepoints in various tissues. Differences in clinical signs, pulmonary infiltrates, and virus replication dynamics were limited between age cohorts. Transcriptional signatures of inflammation-associated genes in cells isolated from bronchoalveolar lavage fluid at 3 dpi revealed efficient mounting of innate immune defenses in both younger and older animals. These findings suggested that age did not substantially skew major facets of acute disease in this model. However, age-specific divergence of immune responses emerged during the post-acute phase of infection (7-21 dpi). Older animals exhibited sustained local inflammatory innate responses while local effector T-cell responses were induced earlier in the younger animals. Circulating lipid mediator and cytokine levels highlighted increased repair-associated signals in the younger animals, in contrast to persistent pro-inflammatory responses in the older animals. In summary, despite similar disease outcomes, multi-omics profiling in SARS-CoV-2-infected rhesus macaques suggests that age may delay or impair the induction of anti-viral cellular immune responses and delay efficient return to immune homeostasis following acute infection.

immunology↗

Subtle differences in the pathogenicity of SARS-CoV-2 variants of concern B.1.1.7 and B.1.351 in rhesus macaques

The emergence of several SARS-CoV-2 variants has caused global concerns about increased transmissibility, increased pathogenicity, and decreased efficacy of medical countermeasures. Animal models can be used to assess phenotypical changes in the absence of confounding factors that affect observed pathogenicity and transmissibility data in the human population. Here, we studied the pathogenicity of variants of concern (VOC) B.1.1.7 and B.1.351 in rhesus macaques and compared it to a recent clade B.1 SARS-CoV-2 isolate containing the D614G substitution in the spike protein. The B.1.1.7 VOC behaved similarly to the D614G with respect to clinical disease, virus shedding and virus replication in the respiratory tract. Inoculation with the B.1.351 isolate resulted in lower clinical scores in rhesus macaques that correlated with lower virus titers in the lungs, less severe histologic lung lesions and less viral antigen detected in the lungs. We observed differences in the local innate immune response to infection. In bronchoalveolar lavages, cytokines and chemokines were upregulated on day 4 in animals inoculated with D614G and B.1.1.7 but not in those inoculated with B.1.351. In nasal samples, we did not detect upregulation of cytokines and chemokines in D614G or B.1.351-inoculated animals. However, cytokines and chemokines were upregulated in the noses of B.1.1.7-inoculated animals. Taken together, our comparative pathogenicity study suggests that ongoing circulation under diverse evolutionary pressure favors transmissibility and immune evasion rather than an increase in intrinsic pathogenicity.

microbiology↗