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1.
Nitric Oxide ; 107: 11-18, 2021 02 01.
Artigo em Inglês | MEDLINE | ID: mdl-33271226

RESUMO

Nitric oxide, NO, has been explored as a therapeutic agent to treat thrombosis. In particular, NO has potential in treating mechanical device-associated thrombosis due to its ability to reduce platelet activation and due to the central role of platelet activation and adhesion in device thrombosis. Nitrite is a unique NO donor that reduces platelet activation in that it's activity requires the presence of red blood cells whereas NO activity of other NO donors is blunted by red blood cells. Interestingly, we have previously shown that red blood cell mediated inhibition of platelet activation by adenosine diphosophate (ADP) is dramatically enhanced by illumination with far-red light that is likely due to photolysis of red cell surface bound NO congeners. We now report the effects of nitrite, far-red light, and their combination on several measure of blood coagulation using a variety of agonists. We employed turbidity assays in platelet rich plasma, platelet activation using flow cytometry analysis of a fluorescently labeled antibody to the activated platelet fibrinogen binding site, multiplate impedance-based platelet aggregometry, and assessment of platelet adhesion to collagen coated flow-through microslides. In all cases, the combination of far-red light and nitrite treatment decreased measures of coagulation, but in some cases mono-treatment with nitrite or light alone had no effect. Perhaps most relevant to device thrombosis, we observed that platelet adhesions was inhibited by the combination of nitrite and light treatment while nitrite alone and far-red light alone trended to decrease adhesion, but the results were mixed. These results support the potential of combined far-red light and nitrite treatment for preventing thrombosis in extra-corporeal or shallow-tissue depth devices where the far-red light can penetrate. Such a combined treatment could be advantageous due to the localized treatment afforded by far-red light illumination with minimal systemic effects. Given the role of thrombosis in COVID 19, application to treatment of patients infected with SARS Cov-2 might also be considered.


Assuntos
Coagulação Sanguínea/efeitos dos fármacos , Coagulação Sanguínea/efeitos da radiação , Doadores de Óxido Nítrico/farmacologia , Nitritos/farmacologia , Plaquetas/efeitos dos fármacos , Plaquetas/efeitos da radiação , COVID-19/radioterapia , Humanos , Luz , Óxido Nítrico/metabolismo , Ativação Plaquetária/efeitos dos fármacos , Ativação Plaquetária/efeitos da radiação , Adesividade Plaquetária/efeitos dos fármacos , Adesividade Plaquetária/efeitos da radiação , Agregação Plaquetária/efeitos dos fármacos , Agregação Plaquetária/efeitos da radiação , SARS-CoV-2/efeitos dos fármacos , Tratamento Farmacológico da COVID-19
2.
Redox Biol ; 20: 442-450, 2019 01.
Artigo em Inglês | MEDLINE | ID: mdl-30423533

RESUMO

BACKGROUND: Nitrite is reduced by heme-proteins and molybdenum-containing enzymes to form the important signaling molecule nitric oxide (NO), mediating NO signaling. Substantial evidence suggests that deoxygenated hemoglobin within red blood cells (RBCs) is the main erythrocytic protein responsible for mediating nitrite-dependent NO signaling. In other work, infrared and far red light have been shown to have therapeutic potential that some attribute to production of NO. Here we explore whether a combination of nitrite and far red light treatment has an additive effect in NO-dependent processes, and whether this effect is mediated by RBCs. METHODS AND RESULTS: Using photoacoustic imaging in a rat model as a function of varying inspired oxygen, we found that far red light (660 nm, five min. exposure) and nitrite feeding (three weeks in drinking water at 100 mg/L) each separately increased tissue oxygenation and vessel diameter, and the combined treatment was additive. We also employed inhibition of human platelet activation measured by flow cytometry to assess RBC-dependent nitrite bioactivation and found that far red light dramatically potentiates platelet inhibition by nitrite. Blocking RBC-surface thiols abrogated these effects of nitrite and far-red light. RBC-dependent production of NO was also shown to be enhanced by far red light using a chemiluminescence-based nitric oxide analyzer. In addition, RBC-dependent bioactivation of nitrite led to prolonged lag times for clotting in platelet poor plasma that was enhanced by exposure to far red light. CONCLUSIONS: Our results suggest that nitrite leads to the formation of a photolabile RBC surface thiol-bound species such as an S-nitrosothiol or heme-nitrosyl (NO-bound heme) for which far red light enhances NO signaling. These findings expand our understanding of RBC-mediated NO production from nitrite. This pathway of NO production may have therapeutic potential in several applications including thrombosis, and, thus, warrants further study.


Assuntos
Eritrócitos/metabolismo , Eritrócitos/efeitos da radiação , Luz , Nitritos/metabolismo , Animais , Plaquetas/metabolismo , Plaquetas/efeitos da radiação , Membrana Eritrocítica/metabolismo , Heme/metabolismo , Microvasos/metabolismo , Modelos Biológicos , Óxido Nítrico/metabolismo , Oxigênio/metabolismo , Ativação Plaquetária/efeitos da radiação , Ratos , Compostos de Sulfidrila/metabolismo
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