Search bioRxiv⌕ Search

Biology subjects

Kusejko, K.

Publications and source records attributed to Kusejko, K..

3 recordsLinked to original sources

c-Myc inhibits macrophage antimycobacterial response in Mycobacterium tuberculosis infection

Mycobacterium tuberculosis (MTB) is a major global cause of mortality worldwide, responsible for over a million deaths annually. Despite this burden, natural immunity prevents disease in more than 90% of exposed individuals. Previous studies have identified interferon-gamma (IFN-{gamma}) as a key regulator of innate immune defense against MTB. Here, we investigate the impact of IFN-{gamma} timing on macrophage-mediated control of MTB infection. We demonstrate that IFN-{gamma} exposure before infection enhances macrophage antibacterial activity, whereas post-infection exposure does not. Further investigation into this phenotype revealed a strong association between c-Myc signaling and macrophage function in MTB control, as identified using unbiased in vitro systems approaches. Given the challenge of perturbing c-Myc in primary cells, we developed a lentiviral system for c-Myc inhibition and overexpression. Using a tetracycline-inducible Omomyc system - a small peptide inhibitor of c-Myc - we show that c-Myc inhibition promotes a pro-inflammatory macrophage phenotype with enhanced antimycobacterial activity. Mechanistically, c-Myc inhibition induces metabolic reprogramming via increased mTORC1 activity, leading to upregulated inducible nitric oxide synthase and improved bacterial control. In vivo analyses, including murine models and human clinical histopathology, reveal a strong correlation between c-Myc expression and MTB persistence, as well as active tuberculosis (TB), suggesting a role for c-Myc in immune evasion. These findings reveal c-Myc as a potential mediator of immune privilege in MTB infection and highlight its role as a promising target for novel TB therapies aimed at enhancing macrophage function.

immunology↗

The XbnAb Cohort: 304 people with broadly neutralizing antibody activity to HIV-1

Broadly neutralizing antibodies (bnAbs) recognizing a diversity of HIV-1 strains are widely thought to be essential for an HIV-1 vaccine. Extensive knowledge on bnAbs has been gained from studying natural HIV infection by following bnAb evolution in individual people with HIV (PWH). However, it remains essential to increase knowledge of bnAb responses in large PWH cohorts to assess the feasibility of inducing bnAb activity by vaccination. To allow systematic analysis, we created the XbnAb cohort, a large bnAb-inducer cohort selected by screening plasma of PWH enrolled in the Swiss HIV Cohort Study (SHCS) and the Zurich Primary HIV Infection Study (ZPHI). The XbnAb cohort represents a retrospective, biobank-based cohort comprising data of 305 PWH who developed bnAb activity during HIV-1 infection. Here, we report on the characteristics of the XbnAb cohort and its potential for HIV vaccine research.

immunology↗

Mycobacterium tuberculosis infection associated immune perturbations correlate with antiretroviral immunity

Infection with Mycobacterium tuberculosis (MTB) remains one of the most important opportunistic infections in people with HIV-1 (PWH). While active Tuberculosis (TB) leads to rapid progression of immunodeficiency in PWH, the interaction between MTB and HIV-1 during the asymptomatic phase of both infections remains poorly understood. In a cohort of individuals with HIV (PWH) with and without suppressed HIV-1 viral load, the transcriptomic profiles of peripheral blood mononuclear cells (PBMC) clustered in individuals infected with Mycobacterium tuberculosis (MTB) compared to carefully matched controls. Subsequent functional annotation analysis disclosed alterations in the IL-6, TNF, and KRAS pathways. Notably, MTB-associated genes demonstrated an inverse correlation with HIV-1 viremia, evident at both on individual gene level and when employed as a gene score. In sum, our data show that MTB infection in PWH is associated with a shift in the activation state of the immune system, displaying an inverse relationship with HIV-1 viral load. These results could provide an explanation for the observed increased antiretroviral control associated with MTB infection in PWH.

immunology↗