Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 5 de 5
Filter
Add more filters










Database
Language
Publication year range
1.
Life Sci Alliance ; 7(7)2024 07.
Article in English | MEDLINE | ID: mdl-38744470

ABSTRACT

Developing effective tuberculosis drugs is hindered by mycobacteria's intrinsic antibiotic resistance because of their impermeable cell envelope. Using benzothiazole compounds, we aimed to increase mycobacterial cell envelope permeability and weaken the defenses of Mycobacterium marinum, serving as a model for Mycobacterium tuberculosis Initial hit, BT-08, significantly boosted ethidium bromide uptake, indicating enhanced membrane permeability. It also demonstrated efficacy in the M. marinum-zebrafish embryo infection model and M. tuberculosis-infected macrophages. Notably, BT-08 synergized with established antibiotics, including vancomycin and rifampicin. Subsequent medicinal chemistry optimization led to BT-37, a non-toxic and more potent derivative, also enhancing ethidium bromide uptake and maintaining synergy with rifampicin in infected zebrafish embryos. Mutants of M. marinum resistant to BT-37 revealed that MMAR_0407 (Rv0164) is the molecular target and that this target plays a role in the observed synergy and permeability. This study introduces novel compounds targeting a new mycobacterial vulnerability and highlights their cooperative and synergistic interactions with existing antibiotics.


Subject(s)
Benzothiazoles , Drug Synergism , Mycobacterium marinum , Zebrafish , Animals , Benzothiazoles/pharmacology , Mycobacterium marinum/drug effects , Antitubercular Agents/pharmacology , Microbial Sensitivity Tests , Mycobacterium tuberculosis/drug effects , Humans , Anti-Bacterial Agents/pharmacology , Cell Membrane Permeability/drug effects , Macrophages/drug effects , Macrophages/microbiology , Macrophages/metabolism , Mycobacterium Infections, Nontuberculous/drug therapy , Mycobacterium Infections, Nontuberculous/microbiology , Cell Membrane/metabolism , Cell Membrane/drug effects , Rifampin/pharmacology
2.
FEMS Microbiol Rev ; 48(3)2024 May 08.
Article in English | MEDLINE | ID: mdl-38684467

ABSTRACT

The rise of multidrug-resistant bacteria underlines the need for innovative treatments, yet the introduction of new drugs has stagnated despite numerous antimicrobial discoveries. A major hurdle is a poor correlation between promising in vitro data and in vivo efficacy in animal models, which is essential for clinical development. Early in vivo testing is hindered by the expense and complexity of existing animal models. Therefore, there is a pressing need for cost-effective, rapid preclinical models with high translational value. To overcome these challenges, zebrafish embryos have emerged as an attractive model for infectious disease studies, offering advantages such as ethical alignment, rapid development, ease of maintenance, and genetic manipulability. The zebrafish embryo infection model, involving microinjection or immersion of pathogens and potential antibiotic hit compounds, provides a promising solution for early-stage drug screening. It offers a cost-effective and rapid means of assessing the efficacy, toxicity and mechanism of action of compounds in a whole-organism context. This review discusses the experimental design of this model, but also its benefits and challenges. Additionally, it highlights recently identified compounds in the zebrafish embryo infection model and discusses the relevance of the model in predicting the compound's clinical potential.


Subject(s)
Drug Discovery , Drug Evaluation, Preclinical , Embryo, Nonmammalian , Zebrafish , Zebrafish/embryology , Animals , Drug Discovery/methods , Embryo, Nonmammalian/drug effects , Anti-Bacterial Agents/pharmacology , Disease Models, Animal , Anti-Infective Agents/pharmacology
3.
Biomolecules ; 13(2)2023 01 21.
Article in English | MEDLINE | ID: mdl-36830581

ABSTRACT

The ESX-5 secretion system is essential for the viability and virulence of slow-growing pathogenic mycobacterial species. In this study, we identified a 1,2,4-oxadiazole derivative as a putative effector of the ESX-5 secretion system. We confirmed that this 1,2,4-oxadiazole and several newly synthesized derivatives inhibited the ESX-5-dependent secretion of active lipase LipY by Mycobacterium marinum (M. marinum). Despite reduced lipase activity, we did not observe a defect in LipY secretion itself. Moreover, we found that several other ESX-5 substrates, especially the high molecular-weight PE_PGRS MMAR_5294, were even more abundantly secreted by M. marinum treated with several 1,2,4-oxadiazoles. Analysis of M. marinum grown in the presence of different oxadiazole derivatives revealed that the secretion of LipY and the induction of PE_PGRS secretion were, in fact, two independent phenotypes, as we were able to identify structural features in the compounds that specifically induced only one of these phenotypes. Whereas the three most potent 1,2,4-oxadiazoles displayed only a mild effect on the growth of M. marinum or M. tuberculosis in culture, these compounds significantly reduced bacterial burden in M. marinum-infected zebrafish models. In conclusion, we report a 1,2,4-oxadiazole scaffold that dysregulates ESX-5 protein secretion.


Subject(s)
Mycobacterium marinum , Mycobacterium tuberculosis , Type VII Secretion Systems , Animals , Bacterial Proteins/metabolism , Mycobacterium marinum/genetics , Mycobacterium marinum/metabolism , Zebrafish/metabolism , Virulence , Mycobacterium tuberculosis/metabolism , Type VII Secretion Systems/genetics , Type VII Secretion Systems/metabolism , Lipase/metabolism
4.
Dis Model Mech ; 14(12)2021 12 01.
Article in English | MEDLINE | ID: mdl-34643222

ABSTRACT

Finding new anti-tuberculosis compounds with convincing in vivo activity is an ongoing global challenge to fight the emergence of multidrug-resistant Mycobacterium tuberculosis isolates. In this study, we exploited the medium-throughput capabilities of the zebrafish embryo infection model with Mycobacterium marinum as a surrogate for M. tuberculosis. Using a representative set of clinically established drugs, we demonstrate that this model could be predictive and selective for antibiotics that can be administered orally. We further used the zebrafish infection model to screen 240 compounds from an anti-tuberculosis hit library for their in vivo activity and identified 14 highly active compounds. One of the most active compounds was the tetracyclic compound TBA161, which was studied in more detail. Analysis of resistant mutants revealed point mutations in aspS (rv2572c), encoding an aspartyl-tRNA synthetase. The target was genetically confirmed, and molecular docking studies propose the possible binding of TBA161 in a pocket adjacent to the catalytic site. This study shows that the zebrafish infection model is suitable for rapidly identifying promising scaffolds with in vivo activity.


Subject(s)
Aspartate-tRNA Ligase , Mycobacterium tuberculosis , Tuberculosis , Animals , Molecular Docking Simulation , Tuberculosis/drug therapy , Tuberculosis/microbiology , Zebrafish
5.
Article in English | MEDLINE | ID: mdl-33495223

ABSTRACT

Screening strategies for antituberculosis compounds using Mycobacterium tuberculosis are time consuming and require biosafety level 3 (BSL3) facilities, which makes the development of high-throughput assays difficult and expensive. Mycobacterium marinum, a close genetic relative of M. tuberculosis, possesses several advantages as a suitable model for tuberculosis drug screening. However, despite the high genetic similarity, there are some obvious differences in susceptibility to some tuberculosis drugs between these two species, especially for the prodrugs ethionamide and isoniazid. In this study, we aimed to improve M. marinum as a model for antituberculosis drug identification by heterologous expression of two common drug activators, EthA and KatG. These two activators were overexpressed in M. marinum, and the strains were tested against ethionamide, isoniazid, and a library of established antimycobacterial compounds from TB Alliance to compare drug susceptibility. Both in vitro and in vivo using zebrafish larvae, these genetically modified M. marinum strains showed significantly higher susceptibility against ethionamide and isoniazid, which require activation by EthA and KatG. More importantly, a strain overexpressing both ethA and katG was potentially more susceptible to approximately 20% of the antituberculosis hit compounds from the TB Alliance library. Most of these compounds were activated by EthA in M. marinum Four of these compounds were selected for further analysis, and three of them showed obvious EthA-dependent activity against M. tuberculosis Overall, our developed M. marinum strains are valuable tools for high-throughput discovery of potential novel antituberculosis prodrugs.


Subject(s)
Mycobacterium marinum , Mycobacterium tuberculosis , Prodrugs , Tuberculosis, Multidrug-Resistant , Animals , Antitubercular Agents/pharmacology , Bacterial Proteins/genetics , Isoniazid/pharmacology , Mutation , Mycobacterium marinum/genetics , Mycobacterium tuberculosis/genetics , Prodrugs/pharmacology , Zebrafish
SELECTION OF CITATIONS
SEARCH DETAIL
...