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Showing posts with label Nitric oxide. Show all posts
Showing posts with label Nitric oxide. Show all posts

Tuesday, July 20, 2010

Supplementation With Fatty Acids Influences the Airway Nitric Oxide and Inflammatory Markers in Patients With Cystic Fibrosis.

J Pediatr Gastroenterol Nutr. 2010 May;50(5):537-544.

Supplementation With Fatty Acids Influences the Airway Nitric Oxide and Inflammatory Markers in Patients With Cystic Fibrosis.

Keen C, Olin AC, Eriksson S, Ekman A, Lindblad A, Basu S, Beermann C, Strandvik B.

*Departments of Pediatrics, Sweden daggerOccupational and Environmental Medicine, Sahlgrenska Academy, University of Gothenburg, Gothenburg, Sweden double daggerDepartment of Public Health and Caring Sciences, Faculty of Medicine, Uppsala University, Uppsala, Sweden section signDanone Research, Centre for Specialized Nutrition, Friedrichsdorf, Germany.

Abstract

OBJECTIVES:: To obtain a balance in the fatty acid (FA) metabolism is important for the inflammatory response and of special importance in cystic fibrosis (CF), which is characterized by impaired FA metabolism, chronic inflammation, and infection in the airways. Nitric oxide (NO) has antimicrobial properties and low nasal (nNO) and exhaled NO (FENO), commonly reported in CF that may affect bacterial status. The present study investigates the effect of different FA blends on nNO and FENO and immunological markers in patients with CF.

PATIENTS AND METHODS:: Forty-three patients with CF and "severe" mutations were consecutively enrolled in a randomized double-blind placebo-controlled study with 3 FA blends containing mainly n-3 or n-6 FA or saturated FA acting as placebo. FENO, nNO, serum phospholipid concentrations of FA, and biomarkers of inflammation were measured before and after 3 months of supplementation.

RESULTS:: Thirty-five patients in clinically stable condition completed the study. The serum phospholipid FA pattern changed significantly in all 3 groups. An increase of the n-6 FA, arachidonic acid, was associated with a decrease of FENO and nNO. The inflammatory biomarkers, erythrocyte sedimentation rate, and interleukin-8 decreased after supplementation with n-3 FA and erythrocyte sedimentation rate increased after supplementation with n-6 FA.

CONCLUSIONS:: This small pilot study indicated that the composition of dietary n-3 and n-6 FA influenced the inflammatory markers in CF. FENO and nNO were influenced by changes in the arachidonic acid concentration, supporting previous studies suggesting that both the lipid abnormality and the colonization with Pseudomonas influenced NO in the airways.

Saturday, May 16, 2009

Effects of inhaled nitric oxide following lung transplantation.


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Effects of inhaled nitric oxide following lung transplantation.

Yerebakan C, Ugurlucan M, Bayraktar S, Bethea BT, Conte JV.

Division of Cardiac Surgery, The Johns Hopkins Medical Institutions, Baltimore, Maryland, USA. canyerebakan@hotmail.com

BACKGROUND: Lung transplantation offers an established therapeutic option for end-stage lung disease. It is associated with several complications, and early allograft failure is one of the most devastating among all. Different studies are focused on an attempt to minimize these complications, especially transplant failure. We aimed to evaluate the effects of inhaled nitric oxide (iNO) treatment in patients receiving lung transplantation.

METHODS: Nine patients (six female, three male; mean age 42.9 +/- 15.8) requiring lung transplantation for end-stage pulmonary disease--chronic obstructive pulmonary disease (three patients), cystic fibrosis (three patients), scleroderma and systemic sclerosis (two patients), Eisenmenger's syndrome (one patient), and treated with iNO were included in this retrospective study. Hemodynamic data (mean arterial pressure, mean pulmonary arterial pressure, heart rate) and respiratory parameters were analyzed. Pretreatment data were compared with the post-iNO treatment data at 6-8 hours and 12-14 hours.

RESULTS: The inhalation of nitric oxide was started with an initial dose of 40 parts per million (ppm) and the dose was gradually decreased until hemodynamic and pulmonary stability was achieved. Six patients underwent double-lung transplantation and three single-lung transplantations were performed. Cardiopulmonary bypass was used in seven patients. The iNO therapy was started before transplantation in five patients, after the procedure in four patients. Mean iNO therapy duration was 83.2 +/- 74.4 hours. The administration of iNO resulted in a significant reduction in mean pulmonary arterial pressure (36.8 +/- 15.8 mm Hg to 22 +/- 6.8 mm Hg at 6-8 hours and 22.8 +/- 7.96 mm Hg at 12-14 hours). Mean systemic arterial pressure slightly increased at 6-8 hours and significantly increased at 12-14 hours (70.2 +/- 6.3 mm Hg to 90.1 +/- 11.96 mm Hg). Heart rate was not significantly affected with the treatment. Arterial oxygenation improved with the treatment. All patients except one showed improvement of overall respiratory functions. The mean duration of mechanical ventilation was 12.8 +/- 10.9 days. Mortality occurred in one patient due to neurologic injury. NO(2) and methemoglobin levels were closely monitored during the treatment. Methemoglobinemia did not occur and NO(2) levels remained between 0.1 and 0.4 ppm.

CONCLUSION: Nitric oxide inhalation for the prevention and treatment of early allograft failure in lung transplant recipients is encouraging. It is superior to other vasodilators with its selectivity to the pulmonary vasculature, while having no significant side effects on systemic circulation. It appears to improve gas exchange and oxygenation properties. Further prospective randomized studies will aid to standardize inhalation nitric oxide therapy.