bioRxiv Science⌕ Search

Biology subjects

Wee, D.

Publications and source records attributed to Wee, D..

3 recordsLinked to original sources

A bioluminescence-based chemical screen identifies a bactericidal naphthalene scaffold targeting MmpL3 in Mycobacterium abscessus

Mycobacterium abscessus pulmonary disease (Mabs-PD) presents a significant and growing global health threat, particularly in individuals with underlying lung conditions like cystic fibrosis and chronic obstructive pulmonary disease. A key challenge in treating Mabs-PD is the lack of bactericidal antibiotics effective at therapeutically relevant concentrations, underscoring an urgent need for drug discovery. Targeting cell-wall synthesis is a promising approach, as evidenced by the success of broad-spectrum {beta}-lactam antibiotics and the frontline antituberculosis drug isoniazid. However, these agents exhibit limited efficacy against Mabs, often requiring concentrations unachievable in lung tissues. Here, we used a bioluminescence-based whole-cell assay optimized to identify drugs targeting both cell-wall synthesis and the oxidative phosphorylation pathway. Screening a small drug library against Mabs revealed multiple hits, including {beta}-lactam antibiotics, validating the effectiveness of this approach to identify cell wall-targeting agents. Among these, we identified a chemically tractable naphthalene scaffold with potent bactericidal activity. The optimized derivative GM47-1 targets MmpL3, disrupting cell wall integrity, inducing ATP leakage into the extracellular milieu, and uncoupling respiration, predominantly through the cytochrome bcc:aa3 branch. Further chemical optimization resulted in a new derivative exhibiting a nanomolar minimum inhibitory concentration, with potent activity against intracellular Mabs and in a zebrafish model of infection. This study offers a promising scaffold for future therapeutic development and highlights the utility of this approach as a rapid assay platform for identifying bactericidal compounds against Mabs.

microbiology↗

Telomerase reverse transcriptase is required for resistance to mycobacterial infection

Age is an important risk factor for infections such as tuberculosis (TB). Telomerase is expressed in immune cells yet leukocyte telomere length declines during ageing suggesting an age-dependent loss of telomerase activity in the immune system. Leukocyte telomere length has been correlated with worse outcomes in TB patients, however the mechanisms linking telomere biology to TB susceptibility and response to therapy are unexplored. Here we use the zebrafish-Mycobacterium marinum model to investigate the role of telomerase in TB resistance. We find depletion and inhibition of Tert, the catalytic subunit of telomerase, increases bacterial burden in zebrafish embryos. The Tert depletion infection susceptibility phenotype could not be rescued by p53 or STING depletion suggesting a non-canonical role for Tert in controlling mycobacterial infection. Consistent with a previously described role for Tert in developmental hematopoiesis, we find Tert is necessary for demand-driven emergency myelopoiesis to support containment of extended mycobacterial infection. Our findings establish a previously undescribed role for host telomerase in supporting infection demand-driven hematopoiesis to control infection.

immunology↗

Primary tuberculous mycobacterial granulomas provide a niche for superinfecting Mycobacterium abscessus

Prior and concurrent tuberculosis infection are among the most important susceptibility factors for nontuberculous mycobacterial infection in Asia. Here we model this process in zebrafish with a primary Mycobacterium marinum infection followed by a secondary M. abscessus infection. We demonstrate preferential growth of secondary M. abscessus infection inside primary M. marinum granulomas. Granuloma-resident secondary M. abscessus is protected from macrophage-mediated immune control and antibiotic therapy. Successful colonization is driven by expansion of M. abscessus feeding on caseum produced by the primary M. marinum ESX-1 virulence program in a nutritionally separate niche from M. marinum. Our data suggest tuberculous granulomas may provide a long-lasting niche for the growth of the opportunistic pathogen Mycobacterium abscessus.

microbiology↗