Your browser doesn't support javascript.
loading
Mostrar: 20 | 50 | 100
Resultados 1 - 7 de 7
Filtrar
Más filtros










Base de datos
Intervalo de año de publicación
1.
PLoS Pathog ; 19(10): e1011496, 2023 Oct.
Artículo en Inglés | MEDLINE | ID: mdl-37871122

RESUMEN

Clostridioides difficile is a leading cause of antibiotic-associated diarrhea and nosocomial infection in the United States. The symptoms of C. difficile infection (CDI) are associated with the production of two homologous protein toxins, TcdA and TcdB. The toxins are considered bona fide targets for clinical diagnosis as well as the development of novel prevention and therapeutic strategies. While there are extensive studies that document these efforts, there are several gaps in knowledge that could benefit from the creation of new research tools. First, we now appreciate that while TcdA sequences are conserved, TcdB sequences can vary across the span of circulating clinical isolates. An understanding of the TcdA and TcdB epitopes that drive broadly neutralizing antibody responses could advance the effort to identify safe and effective toxin-protein chimeras and fragments for vaccine development. Further, an understanding of TcdA and TcdB concentration changes in vivo can guide research into how host and microbiome-focused interventions affect the virulence potential of C. difficile. We have developed a panel of alpaca-derived nanobodies that bind specific structural and functional domains of TcdA and TcdB. We note that many of the potent neutralizers of TcdA bind epitopes within the delivery domain, a finding that could reflect roles of the delivery domain in receptor binding and/or the conserved role of pore-formation in the delivery of the toxin enzyme domains to the cytosol. In contrast, neutralizing epitopes for TcdB were found in multiple domains. The nanobodies were also used for the creation of sandwich ELISA assays that allow for quantitation of TcdA and/or TcdB in vitro and in the cecal and fecal contents of infected mice. We anticipate these reagents and assays will allow researchers to monitor the dynamics of TcdA and TcdB production over time, and the impact of various experimental interventions on toxin production in vivo.


Asunto(s)
Toxinas Bacterianas , Clostridioides difficile , Anticuerpos de Dominio Único , Animales , Ratones , Toxinas Bacterianas/genética , Toxinas Bacterianas/química , Enterotoxinas/genética , Clostridioides difficile/genética , Clostridioides difficile/metabolismo , Epítopos/metabolismo , Proteínas Bacterianas/metabolismo
3.
Nat Rev Microbiol ; 20(5): 285-298, 2022 05.
Artículo en Inglés | MEDLINE | ID: mdl-34837014

RESUMEN

Clostridioides difficile is a Gram-positive anaerobe that can cause a spectrum of disorders that range in severity from mild diarrhoea to fulminant colitis and/or death. The bacterium produces up to three toxins, which are considered the major virulence factors in C. difficile infection. These toxins promote inflammation, tissue damage and diarrhoea. In this Review, we highlight recent biochemical and structural advances in our understanding of the mechanisms that govern host-toxin interactions. Understanding how C. difficile toxins affect the host forms a foundation for developing novel strategies for treatment and prevention of C. difficile infection.


Asunto(s)
Antitoxinas , Toxinas Bacterianas , Clostridioides difficile , Antitoxinas/uso terapéutico , Proteínas Bacterianas , Diarrea/tratamiento farmacológico , Humanos
4.
Artículo en Inglés | MEDLINE | ID: mdl-30483484

RESUMEN

para-Aminosalicylic acid (PAS) is a second-line anti-tubercular drug that is used for the treatment of drug-resistant tuberculosis (TB). PAS efficacy in the treatment of TB is limited by its lower potency against Mycobacterium tuberculosis relative to many other drugs in the TB treatment arsenal. It is known that intrinsic metabolites, such as, para-aminobenzoic acid (PABA) and methionine, antagonize PAS and structurally related anti-folate drugs. While the basis for PABA-mediated antagonism of anti-folates is understood, the mechanism for methionine-based antagonism remains undefined. In the present study, we used both targeted and untargeted approaches to identify factors associated with methionine-mediated antagonism of PAS activity. We found that synthesis of folate precursors as well as a putative amino acid transporter, designated MetM, play crucial roles in this process. Disruption of metM by transposon insertion resulted in a ≥30-fold decrease in uptake of methionine in M. bovis BCG, indicating that metM is the major facilitator of methionine transport. We also discovered that intracellular biotin confers intrinsic PAS resistance in a methionine-independent manner. Collectively, our results demonstrate that methionine-mediated antagonism of anti-folate drugs occurs through sustained production of folate precursors.


Asunto(s)
Ácido Aminosalicílico/farmacología , Antituberculosos/farmacología , Antagonismo de Drogas , Metionina/farmacología , Mycobacterium tuberculosis/efectos de los fármacos , Mycobacterium tuberculosis/metabolismo , Ácido 4-Aminobenzoico/metabolismo , Ácido 4-Aminobenzoico/farmacología , Proteínas Bacterianas/metabolismo , Biotina/metabolismo , Farmacorresistencia Bacteriana/genética , Ácido Fólico/farmacología , Metionina/metabolismo , Pruebas de Sensibilidad Microbiana , Mycobacterium/efectos de los fármacos , Mycobacterium/genética , Mycobacterium/crecimiento & desarrollo , Mycobacterium tuberculosis/crecimiento & desarrollo
5.
Nat Commun ; 9(1): 1003, 2018 03 08.
Artículo en Inglés | MEDLINE | ID: mdl-29520101

RESUMEN

Trimethoprim (TMP)-sulfamethoxazole (SMX) is a widely used synergistic antimicrobial combination to treat a variety of bacterial and certain fungal infections. These drugs act by targeting sequential steps in the biosynthetic pathway for tetrahydrofolate (THF), where SMX inhibits production of the THF precursor dihydropteroate, and TMP inhibits conversion of dihydrofolate (DHF) to THF. Consequently, SMX potentiates TMP by limiting de novo DHF production and this mono-potentiation mechanism is the current explanation for their synergistic action. Here, we demonstrate that this model is insufficient to explain the potent synergy of TMP-SMX. Using genetic and biochemical approaches, we characterize a metabolic feedback loop in which THF is critical for production of the folate precursor dihydropterin pyrophosphate (DHPPP). We reveal that TMP potentiates SMX activity through inhibition of DHPPP synthesis. Our study demonstrates that the TMP-SMX synergy is driven by mutual potentiation of the action of each drug on the other.


Asunto(s)
Combinación Trimetoprim y Sulfametoxazol/farmacología , Sinergismo Farmacológico , Escherichia coli , Retroalimentación Fisiológica , Pruebas de Sensibilidad Microbiana , Pterinas/metabolismo , Tetrahidrofolatos/biosíntesis
6.
Org Lett ; 19(19): 5220-5223, 2017 10 06.
Artículo en Inglés | MEDLINE | ID: mdl-28926267

RESUMEN

The mechanism of action of para-aminosalicylic acid (PAS), a drug used to treat drug-resistant tuberculosis (TB), has been confirmed through the first synthesis and biochemical characterization of its active metabolite 7. The synthesis features the coupling of N2-acetyl-6-formylpterin obtained from the degradation of folic acid and appropriately functionalized arylamines to form Schiff bases. The sequential chemoselective reduction of the imine and pterin ring led to the formation of dihydrofolate analogue 7 and two other dihydropteroate species.


Asunto(s)
Ácido Fólico/química , Ácido Aminosalicílico , Antituberculosos , Farmacorresistencia Bacteriana , Antagonistas del Ácido Fólico , Cinética , Estructura Molecular , Mutación , Mycobacterium tuberculosis
7.
Sci Rep ; 6: 38083, 2016 12 01.
Artículo en Inglés | MEDLINE | ID: mdl-27905500

RESUMEN

The ability to revitalize and re-purpose existing drugs offers a powerful approach for novel treatment options against Mycobacterium tuberculosis and other infectious agents. Antifolates are an underutilized drug class in tuberculosis (TB) therapy, capable of disrupting the biosynthesis of tetrahydrofolate, an essential cellular cofactor. Based on the observation that exogenously supplied p-aminobenzoic acid (PABA) can antagonize the action of antifolates that interact with dihydropteroate synthase (DHPS), such as sulfonamides and p-aminosalicylic acid (PAS), we hypothesized that bacterial PABA biosynthesis contributes to intrinsic antifolate resistance. Herein, we demonstrate that disruption of PABA biosynthesis potentiates the anti-tubercular action of DHPS inhibitors and PAS by up to 1000 fold. Disruption of PABA biosynthesis is also demonstrated to lead to loss of viability over time. Further, we demonstrate that this strategy restores the wild type level of PAS susceptibility in a previously characterized PAS resistant strain of M. tuberculosis. Finally, we demonstrate selective inhibition of PABA biosynthesis in M. tuberculosis using the small molecule MAC173979. This study reveals that the M. tuberculosis PABA biosynthetic pathway is responsible for intrinsic resistance to various antifolates and this pathway is a chemically vulnerable target whose disruption could potentiate the tuberculocidal activity of an underutilized class of antimicrobial agents.


Asunto(s)
Vías Biosintéticas/efectos de los fármacos , Farmacorresistencia Bacteriana/efectos de los fármacos , Antagonistas del Ácido Fólico/farmacología , Mycobacterium tuberculosis/genética , Bibliotecas de Moléculas Pequeñas/farmacología , Ácido 4-Aminobenzoico/metabolismo , Proteínas Bacterianas/genética , Vías Biosintéticas/genética , Clonación Molecular , Reposicionamiento de Medicamentos , Sinergismo Farmacológico , Regulación Bacteriana de la Expresión Génica/efectos de los fármacos , Mycobacterium tuberculosis/efectos de los fármacos , Bibliotecas de Moléculas Pequeñas/síntesis química
SELECCIÓN DE REFERENCIAS
DETALLE DE LA BÚSQUEDA
...