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Flow Mediated Dilation in Association With Hyperuricemia

18 de julio de 2022 actualizado por: Lobna Ahmed Hassan, Assiut University

Flow Mediated Dilation in Association With Hyperuricemia as Predictors of Cardiovascular Affection in Patients With Systemic Lupus

Assess cardiovascular affection and subclinical atherosclerosis in patients with systemic lupus using the non invasive flow mediated dilation.

evaluate the role of uric acid as independent marker of cardiovascular risk in systemic lupus patient

Descripción general del estudio

Estado

Reclutamiento

Descripción detallada

Systemic lupus erythematosus (SLE) is a complex autoimmune disease that is characterized by multiple end-organ damage and predominantly affects premenopausal women.

Cardiovascular disease is a major cause of morbidity and mortality in systemic lupus erythematosus (SLE) patients. These patients have a higher incidence and an earlier age of onset of ischemic heart disease, carotid atherosclerosis, cerebrovascular stroke, and peripheral vascular Disease. Traditional cardiovascular risk factors, including hypertension, diabetes mellitus, dyslipidemia, and physical inactivity, only account partially for the elevated vascular risk in SLE patients .

Vascular stiffness proven to have better predictive value for fatal and non-fatal cardiovascular events than traditional risk factors in hypertensives and patients with end-stage renal disease or coronary artery disease . Endothelial dysfunction represents the initial step of atherosclerosis and correlates with arterial stiffness which is associated with incident cardiovascular events.

Brachial artery reactivity testing (BART) is used to noninvasively assess responsiveness to reactive hyperemia (flow-mediated dilation [FMD]) and evaluate nitric oxide [NO]-dependent large vessel endothelial function. Reduced FMD reflects impaired endothelial-dependent vasodilation indicative of vascular dysfunction.

Uric acid (UA), the final product of purine degradation, is formed in the liver from precursor proteins and is excreted by the kidneys and intestines. At physiologic concentrations, UA exhibits excellent antioxidant activity; however, when UA exceeds its physiologic levels, it can propagate oxidative damage. Furthermore, chronic elevation of UA constitutes a risk factor for many diseases, as it can promote inflammation and endothelial dysfunction .

Higher prevalence of hyperuricemia in patients with SLE might be owing to several endogenous and exogenous mechanisms such as inflammation, hypertension, and renal involvement, which are prevalent in patients with SLE and have been identified as provoking hyperuricemia through different mechanisms. On the contrary, increased levels of UA can aggravate inflammation, hypertension, and renal disease, thus creating a vicious cycle. Hyperactivity of the xanthine oxidase enzyme in patients with SLE and some of the drugs used in the treatment of SLE are among the other possible reasons for the higher prevalence of hyperuricemia in patients with SLE.

Studies have shown that increases in serum uric acid levels may be tied to an increased risk of cardiovascular disease and mortality. In addition, hyperuricemia has been shown to be associated with endothelial dysfunction as well as the oxidation of lipoproteins within atherosclerotic plaques (contributors to cardiovascular disease risk).

Several studies have highlighted the role of uric acid as an independent biomarker of cardiovascular disease risk. . The link between hyperuricemia and the risk of atherosclerotic cardiovascular and cerebrovascular disease has been well-established. .

In an observational cohort study testing the association between hyperuricemia and coronary artery calcification, the results showed that hyperuricemia is an independent risk factor for sub-clinical atherosclerosis in young adults .

Depending on the microenvironment, uric acid may act as an antioxidant or an oxidant. Under ischemic conditions, xanthine oxidase uses oxygen as an electron acceptor instead of nicotinamide adenine dinucleotide (NAD+) resulting in the formation of superoxide anion and hydrogen peroxide. Oxidants cause endothelial dysfunction by reacting with and removing nitric oxide (NO), which prevents vasodilation of the endothelium. This promotes a pro-inflammatory state that causes endothelial dysfunction and contributes to atherosclerosis and cardiovascular disease .Uric acid can also induce vascular smooth muscle cell proliferation in vitro by producing pro-inflammatory, pro-oxidative, and vasoconstrictive substances. Uric acid stimulates the production of monocyte chemoattractant protein-1 (MCP-1), a chemokine involved in atherosclerosis. Increased production of MCP-1 increases cell proliferation and production of pro-inflammatory mediators. Uric acid stimulates monocyte chemoattractant protein-1 production in vascular smooth muscle cells via mitogen-activated protein kinase and cyclooxygenase-2 .

This study aims to emphasize the role of flow mediated dilation in the detection of endothelial dysfunction in SLE patients and linking it to hyperuricemia as a predictor and contributor of cardiovascular affection which can be useful to guide therapeutic decisions in these patients in the future.

Tipo de estudio

De observación

Inscripción (Anticipado)

60

Contactos y Ubicaciones

Esta sección proporciona los datos de contacto de quienes realizan el estudio e información sobre dónde se lleva a cabo este estudio.

Estudio Contacto

  • Nombre: lobna ahmed hassan mohamed, resident doctor
  • Número de teléfono: 01063919340
  • Correo electrónico: lolo0559@gmail.com

Copia de seguridad de contactos de estudio

Ubicaciones de estudio

      • Assiut, Egipto
        • Reclutamiento
        • Assuit university
        • Contacto:
          • lobna ahmed
        • Contacto:
          • eman ibrahem

Criterios de participación

Los investigadores buscan personas que se ajusten a una determinada descripción, denominada criterio de elegibilidad. Algunos ejemplos de estos criterios son el estado de salud general de una persona o tratamientos previos.

Criterio de elegibilidad

Edades elegibles para estudiar

18 años a 45 años (Adulto)

Acepta Voluntarios Saludables

Géneros elegibles para el estudio

Femenino

Método de muestreo

Muestra de probabilidad

Población de estudio

femals patient whose age from 18 to 45yrs old

Descripción

Inclusion Criteria:

  • female patient with SLE aged more than 18

Exclusion Criteria:

  • male patients
  • patient with established cardiovascular disease, patients with end stage renal disease

Plan de estudios

Esta sección proporciona detalles del plan de estudio, incluido cómo está diseñado el estudio y qué mide el estudio.

¿Cómo está diseñado el estudio?

Detalles de diseño

Cohortes e Intervenciones

Grupo / Cohorte
Intervención / Tratamiento
normal FMD
SLE femals patientd with normal flow mediated whose ages from 18 to 45yrs
flow mediated dilation in brachial artery
abnormal FMD
SLE femals with abnormal flow mediated dikation ages between 18 to 45yrs old
flow mediated dilation in brachial artery
Normal female
normal femals whise ages from 18 to 45yrs old
flow mediated dilation in brachial artery

¿Qué mide el estudio?

Medidas de resultado primarias

Medida de resultado
Periodo de tiempo
percentage of SLE patients who have premature atherosclerosis based on abnormal flow mediated dilation FMD in assiciation with hyperuricemia as predictors of cardiovascular affection in SLE patient
Periodo de tiempo: about 1 yrs
about 1 yrs
percentage of hyperuricemic patients wh have premature atherosclerosis based on flow mediated dilation
Periodo de tiempo: about 1 yrs
about 1 yrs

Colaboradores e Investigadores

Aquí es donde encontrará personas y organizaciones involucradas en este estudio.

Patrocinador

Investigadores

  • Investigador principal: Rafaat fathy, Rafaatfathy@yahoo.com

Publicaciones y enlaces útiles

La persona responsable de ingresar información sobre el estudio proporciona voluntariamente estas publicaciones. Estos pueden ser sobre cualquier cosa relacionada con el estudio.

Fechas de registro del estudio

Estas fechas rastrean el progreso del registro del estudio y los envíos de resultados resumidos a ClinicalTrials.gov. Los registros del estudio y los resultados informados son revisados ​​por la Biblioteca Nacional de Medicina (NLM) para asegurarse de que cumplan con los estándares de control de calidad específicos antes de publicarlos en el sitio web público.

Fechas importantes del estudio

Inicio del estudio (Anticipado)

30 de julio de 2022

Finalización primaria (Anticipado)

27 de diciembre de 2022

Finalización del estudio (Anticipado)

27 de diciembre de 2023

Fechas de registro del estudio

Enviado por primera vez

21 de marzo de 2022

Primero enviado que cumplió con los criterios de control de calidad

16 de abril de 2022

Publicado por primera vez (Actual)

22 de abril de 2022

Actualizaciones de registros de estudio

Última actualización publicada (Actual)

20 de julio de 2022

Última actualización enviada que cumplió con los criterios de control de calidad

18 de julio de 2022

Última verificación

1 de julio de 2022

Más información

Términos relacionados con este estudio

Plan de datos de participantes individuales (IPD)

¿Planea compartir datos de participantes individuales (IPD)?

NO

Esta información se obtuvo directamente del sitio web clinicaltrials.gov sin cambios. Si tiene alguna solicitud para cambiar, eliminar o actualizar los detalles de su estudio, comuníquese con register@clinicaltrials.gov. Tan pronto como se implemente un cambio en clinicaltrials.gov, también se actualizará automáticamente en nuestro sitio web. .

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