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1.
Int J Biol Macromol ; 185: 494-512, 2021 Aug 31.
Artigo em Inglês | MEDLINE | ID: mdl-34197854

RESUMO

Snakebite envenoming is the cause of an ongoing health crisis in several regions of the world, particularly in tropical and neotropical countries. This scenario creates an urgent necessity for new practical solutions to address the limitations of current therapies. The current study investigated the isolation, phytochemical characterization, and myotoxicity inhibition mechanism of gallic acid (GA), a myotoxin inhibitor obtained from Anacardium humile. The identification and isolation of GA was achieved by employing analytical chromatographic separation, which exhibited a compound with retention time and nuclear magnetic resonance spectra compatible with GA's commercial standard and data from the literature. GA alone was able to inhibit the myotoxic activity induced by the crude venom of Bothrops jararacussu and its two main myotoxins, BthTX-I and BthTX-II. Circular dichroism (CD), fluorescence spectroscopy (FS), dynamic light scattering (DLS), and interaction studies by molecular docking suggested that GA forms a complex with BthTX-I and II. Surface plasmon resonance (SPR) kinetics assays showed that GA has a high affinity for BthTX-I with a KD of 9.146 × 10-7 M. Taken together, the two-state reaction mode of GA binding to BthTX-I, and CD, FS and DLS assays, suggest that GA is able to induce oligomerization and secondary structure changes for BthTX-I and -II. GA and other tannins have been shown to be effective inhibitors of snake venoms' toxic effects, and herein we demonstrated GA's ability to bind to and inhibit a snake venom PLA2, thus proposing a new mechanism of PLA2 inhibition, and presenting more evidence of GA's potential as an antivenom compound.


Assuntos
Anacardium/química , Ácido Gálico/farmacologia , Miotoxicidade/tratamento farmacológico , Inibidores de Fosfolipase A2/farmacologia , Fosfolipases A2/metabolismo , Venenos de Serpentes/enzimologia , Animais , Modelos Animais de Doenças , Ácido Gálico/química , Regulação Enzimológica da Expressão Gênica/efeitos dos fármacos , Masculino , Camundongos , Miotoxicidade/enzimologia , Miotoxicidade/etiologia , Inibidores de Fosfolipase A2/química , Fosfolipases A2/química , Caules de Planta/química , Proteínas de Répteis/química , Proteínas de Répteis/metabolismo , Ressonância de Plasmônio de Superfície
2.
Front Immunol ; 11: 655, 2020.
Artigo em Inglês | MEDLINE | ID: mdl-32457735

RESUMO

Snake envenoming is a globally neglected public health problem. Antivenoms produced using animal hyperimmune plasma remain the standard therapy for snakebites. Although effective against systemic effects, conventional antivenoms have limited efficacy against local tissue damage. In addition, potential hypersensitivity reactions, high costs for animal maintenance, and difficulties in obtaining batch-to-batch homogeneity are some of the factors that have motivated the search for innovative and improved therapeutic products against such envenoming. In this study, we have developed a set of nanobodies (recombinant single-domain antigen-binding fragments from camelid heavy chain-only antibodies) against Bothrops atrox snake venom hemorrhagic and myotoxic components. An immune library was constructed after immunizing a Lama glama with whole venom of B. atrox, from which nanobodies were selected by phage display using partially purified hemorrhagic and myotoxic proteins. Biopanning selections retrieved 18 and eight different nanobodies against the hemorrhagic and the myotoxic proteins, respectively. In vivo assays in mice showed that five nanobodies inhibited the hemorrhagic activity of the proteins; three neutralized the hemorrhagic activity of whole B. atrox venom, while four nanobodies inhibited the myotoxic protein. A mixture of the anti-hemorrhagic and anti-myotoxic nanobodies neutralized the local tissue hemorrhage and myonecrosis induced by the whole venom, although the nanobody mixture failed to prevent the venom lethality. Nevertheless, our results demonstrate the efficacy and usefulness of these nanobodies to neutralize important pathologies of the venom, highlighting their potential as innovative therapeutic agents against envenoming by B. atrox, a viperid species causing many casualties in South America.


Assuntos
Antivenenos/uso terapêutico , Bothrops/metabolismo , Venenos de Crotalídeos/química , Venenos de Crotalídeos/imunologia , Hemorragia/tratamento farmacológico , Fatores Imunológicos/uso terapêutico , Miotoxicidade/tratamento farmacológico , Anticorpos de Domínio Único/uso terapêutico , Mordeduras de Serpentes/tratamento farmacológico , Animais , Camelídeos Americanos/imunologia , Imunização/métodos , Masculino , Camundongos , Resultado do Tratamento
3.
Biochimie ; 170: 163-172, 2020 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-31978419

RESUMO

Envenoming by snakebite is an important global health issue that has received little attention, leading the World Health Organization to naming it as neglected tropical disease. Several snakebites present serious local symptoms manifested on victims that may not be efficiently neutralized by serum therapy. Phospholipase A2-like (PLA2-like) toxins are present in Viperidae venoms and are responsible for local myotoxic activity. Herein, we investigated the association between BthTX-I toxin and caftaric acid (CFT), a molecule present in plants. CFT neutralized neuromuscular blocking and muscle-damaging activities promoted by BthTX-I. Calorimetric and light-scattering assays demonstrated that CFT inhibitor interacted with dimeric BthTX-I. Bioinformatics simulations indicated that CFT inhibitor binds to the toxin's hydrophobic channel (HCh). According to the current myotoxic mechanism, three different regions of PLA2-like toxins have specific tasks: protein allosteric activation (HCh), membrane dockage (MDoS), and membrane rupture (MDiS). We propose CFT inhibitor interferes with the allosteric activation, which is related to the conformation change leading to the exposure/alignment of MDoS/MDiS region. This is the first report of a PLA2-like toxin fully inhibited by a compound that interacts only with its HCh region. Thus, CFT is a novel candidate to complement serum therapy and improve the treatment of snakebite.


Assuntos
Venenos de Crotalídeos/toxicidade , Miotoxicidade/tratamento farmacológico , Bloqueadores Neuromusculares/toxicidade , Fenóis/farmacologia , Fosfolipases A2/química , Animais , Masculino , Camundongos , Miotoxicidade/etiologia , Fosfolipases A2/metabolismo , Conformação Proteica
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