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Barbosa Bomfim, C. C.

Publications and source records attributed to Barbosa Bomfim, C. C..

3 recordsLinked to original sources

Cannabidiol prevents mucosal HIV-1 transmission by targeting Langerhans cells, dendritic cells, macrophages and T-cells

HIV-1 transmission depends on the structure and immune cell composition of mucosal epithelia. Transmission mechanisms involve direct infection of CD4+ T-cells or macrophages, and indirect viral transfer to CD4+ T-cells from Langerhans cells (LCs) or dendritic cells (DCs). LCs-mediated HIV-1 transfer is inhibited by the neuropeptide calcitonin gene-related peptide (CGRP), due to upstream activation in LCs of the transient receptor potential vanilloid 1 (TRPV1) ion channel. Herein, we investigated the potential anti-HIV-1 roles of cannabidiol (CBD), the non-psychoactive compound in Cannabis sativa, which has well-described immunosuppressive functions and principally activates TRPV1 over its cognate CB1 and CB2 receptors. We found that via TRPV1 activation, CBD inhibits in-vitro infection of mucosal HIV-1 cellular targets. Specifically, CBD inhibits macrophages HIV-1 direct infection, and CD4+ T-cells HIV-1 direct infection or upon viral transfer from LCs and DCs. Moreover, inhibition of macrophages infection and LCs-mediated HIV-1 transfer involves secreted CGRP. Importantly, CBD also blocks early events of HIV-1 transmission ex-vivo in human inner foreskin tissues, namely formation of epidermal LC-T-cell conjugates and resulting CD4+ T-cells infection. Altogether, CBD inhibits infection of all HIV-1 cellular targets, and commercial CBD products might be repositioned as novel HIV-1 pre-exposure prophylaxis, namely CBD PrEP.

microbiology↗

Dual human lung models reveal compartment-specific activity of anti-tuberculosis drugs and host-directed therapies

Tuberculosis (TB) remains a major global health challenge that requires new therapeutic strategies to improve drug efficacy, shorten treatment duration, prevent drug resistance, and limit Mycobacterium tuberculosis (Mtb) persistence. Here, we established complementary in vitro human lung models integrating alveolar macrophage-like (AML) cells and airway air-liquid interface (ALI) cultures to evaluate standard-of-care antibiotics, host-directed therapies, and virulence-targeting agents. AMLs recapitulated key morphological, transcriptional, and functional features of primary alveolar macrophages, including a CD16+ immunoregulatory phenotype highly permissive to Mtb infection. In parallel, ALI cultures maintained epithelial barrier integrity and secretory functions, allowing apical Mtb infection, drug penetration analysis, and inflammatory profiling. Benchmarking of standard-of-care antibiotics revealed compartment-specific activity: isoniazid, rifampicin, and moxifloxacin were effective in both systems, while pyrazinamide was active only in AMLs. Anti-inflammatory host-directed therapies such as ibuprofen and doramapimod selectively reduced cytokine production without affecting bacterial load. Together, this dual-platform system offers a physiologically relevant and scalable model to assess antimicrobial efficacy and host modulation across distinct pulmonary niches, bridging the gap between conventional macrophage assays and the complex human lung.

immunology↗

CGRP inhibits SARS-CoV-2 infection of bronchial epithelial cells and its pulmonary levels correlate with viral clearance in critical COVID-19 patients

Upon infection with severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2), patients with critical coronavirus disease 2019 (COVID-19) present with life-threatening respiratory distress, pulmonary damage and cytokine storm. One unexplored hub in COVID-19 is the neuropeptide calcitonin gene-related peptide (CGRP), which is highly abundant in the airways and could converge in multiple aspects of COVID-19-related pulmonary pathophysiology. Whether CGRP affects SARS-CoV-2 infection directly remains elusive. We show that in critical COVID-19 patients, CGRP is increased in both plasma and lungs. Importantly, CGRP pulmonary levels are elevated in early SARS-CoV-2-positive patients, and restore to baseline upon subsequent viral clearance in SARS-CoV-2-negative patients. We further show that CGRP and its stable analogue SAX directly inhibit infection of bronchial Calu-3 epithelial cells with SARS-CoV-2 Omicron and Alpha variants in a dose-dependent manner. Both pre- and post-infection treatment with GRRP and/or SAX is enough to block SARS-CoV-2 productive infection of Calu3 cells. CGRP-mediated inhibition occurs via activation of the CGRP receptor and involves down-regulation of SARS-CoV-2 entry receptors at the surface of Calu-3 cells. Together, we propose that increased pulmonary CGRP mediates beneficial viral clearance in critical COVID-19 patients, by directly inhibiting SARS-CoV-2 infection. Hence, CGRP-based interventions could be harnessed for management of COVID-19. Brief summaryPulmonary levels of the neuropeptide CGRP are increased in critical COVID-19 patients, and could clear virus by directly inhibiting SRAS-CoV-2 infection of bronchial epithelia cells.

microbiology↗