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      High-altitude Pulmonary Hypertension: an Update on Disease Pathogenesis and Management

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          Abstract

          High-altitude pulmonary hypertension (HAPH) affects individuals residing at altitudes of 2,500 meters and higher. Numerous pathogenic variables play a role in disease inception and progression and include low oxygen concentration in inspired air, vasculopathy, and metabolic abnormalities. Since HAPH affects only some people living at high altitude genetic factors play a significant role in its pathogenesis.

          The clinical presentation of HAPH is nonspecific and includes fatigue, shortness of breath, cognitive deficits, cough, and in advanced cases hepatosplenomegaly and overt right-sided heart failure. A thorough history is important and should include a search for additional risk factors for lung disease and pulmonary hypertension (PH) such as smoking, indoor air pollution, left-sided cardiac disease and sleep disordered breathing. Twelve-lead electrocardiogram, chest X-ray and echocardiography can be used as screening tools. A definitive diagnosis should be made with right-sided heart catheterization using a modified mean pulmonary artery pressure of at least 30 mm Hg, differing from the 25 mm Hg used for other types of PH.

          Treatment of HAPH includes descent to a lower altitude whenever possible, oxygen therapy and the use of medications such as endothelin receptor antagonists, phosphodiesterase 5 blockers, fasudil and acetazolamide. Some recent evidence suggests that iron supplementation may also be beneficial. However, it is important to note that the scientific literature lacks long-term randomized controlled data on the pharmacologic treatment of HAPH. Thus, an individualized approach to treatment and informing the patients regarding the benefits and risks of the selected treatment regimen are essential.

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          Most cited references44

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          Consensus statement on chronic and subacute high altitude diseases.

          This is an international consensus statement of an ad hoc committee formed by the International Society for Mountain Medicine (ISMM) at the VI World Congress on Mountain Medicine and High Altitude Physiology (Xining, China; 2004) and represents the committee's interpretation of the current knowledge with regard to the most common chronic and subacute high altitude diseases. It has been developed by medical and scientific authorities from the committee experienced in the recognition and prevention of high altitude diseases and is based mainly on published, peer-reviewed articles. It is intended to include all legitimate criteria for choosing to use a specific method or procedure to diagnose or manage high altitude diseases. However, the ISMM recognizes that specific patient care decisions depend on the different geographic circumstances involved in the development of each chronic high altitude disease. These guidelines are established to inform the medical services on site who are directed to solve high altitude health problems about the definition, diagnosis, treatment, and prevention of the most common chronic high altitude diseases. The health problems associated with life at high altitude are well documented, but health policies and procedures often do not reflect current state-of-the-art knowledge. Most of the cases of high altitude diseases are preventable if on-site personnel identify the condition and implement appropriate care.
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            Prognostic factors in COPD patients receiving long-term oxygen therapy. Importance of pulmonary artery pressure.

            Prognostic factors in COPD patients receiving long-term oxygen (LTO) therapy were recently analyzed, but very few studies considered the prognostic value of pulmonary artery pressure (PAP) in these patients. We investigated 84 patients who had undergone a right heart catheterization just before the onset of LTO. There were 75 men and 9 women, with a mean age of 63.0 +/- 9.9 (SD) years, at the onset of LTO. When PaO2 was persistently less than 55 mm Hg, LTO was initiated. This therapy was started in some patients with PaO2 in the range of 55 to 60 mm Hg if they had signs of cor pulmonale or a resting PAP of 25 mm Hg or greater at right heart catheterization. The daily duration of LTO was 16 h/d or more. Oxygen flow was adapted to achieve a PaO2 of 65 mm Hg or more. The patients were subdivided into subgroups according to the median value of age (cutoff value = 63 years); vital capacity (2,250 mL); FEV1 (800 mL); residual volume-total lung capacity ratio (58%); PaO2 value (52 mm Hg), PaCO2 level (45 mm Hg); and PAP (25 mm Hg). The cumulative 5-year survival rate was 48% for the group as a whole. Actuarial survival curves were plotted for the two subgroups of patients subdivided according to the initial median value of the variables just listed. There was no significant difference in survival rate between subgroups except when taking into account the level of PAP and age. In patients with an initial PAP of 25 mm Hg or less (n = 44), the 5-year survival was of 62.2 vs 36.3% in the remainder (n = 40) [p < 0.001]. We performed a multivariate analysis of survival using Cox's model of the proportional hazards regression including sex and the variables with the same categorization in the stepwise procedure: PAP and age were the only variables included in the final model. We conclude that the best prognostic factor in COPD patients receiving LTO is not the FEV1, nor the degree of hypoxemia or hypercapnia, but the level of PAP.
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              Nitric oxide deficiency and endothelial dysfunction in pulmonary arterial hypertension.

              Nitric oxide (NO) signaling plays a major role in modulating vascular tone and remodeling in the pulmonary circulation, but its role in the pathogenesis of pulmonary vascular diseases is still not completely understood. Numerous abnormalities of NO synthesis and signaling have been identified in animal models of pulmonary vascular disease and in humans with pulmonary hypertension. Many of these abnormalities have become targets of new therapies for the treatment of pulmonary hypertension. However, it is unclear to what extent alterations in NO signaling contribute to pulmonary hypertensive responses or merely reflect abnormalities induced by the underlying disease. This perspective examines the current understanding of altered NO signaling in pulmonary hypertensive diseases and discusses how these alterations may contribute to the pathogenesis of pulmonary hypertension. The efficacy and limitations of presently available therapies for pulmonary hypertension that target NO signaling are reviewed along with an update on investigational therapies that use this pathway to reverse pulmonary hypertensive changes.
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                Author and article information

                Journal
                Open Cardiovasc Med J
                Open Cardiovasc Med J
                TOCMJ
                The Open Cardiovascular Medicine Journal
                Bentham Open
                1874-1924
                08 February 2016
                2016
                : 10
                : 19-27
                Affiliations
                [1 ]University of Kentucky College of Medicine, Department of Medicine, Lexington, Kentucky, 40508, USA
                [2 ]Case Western Reserve University, Division of Pulmonary, Critical Care and Sleep Medicine, 11100 Euclid Ave, Cleve-land, Ohio 44106, USA
                Author notes
                [* ] Address correspondence to this author at the Case Western Reserve University, Division of Pulmonary, Critical Care and Sleep Medicine, 11100 Euclid Ave, Cleveland, Ohio 44106, USA; E-mail: Kingman.Strohl@ 123456case.edu-KPS
                Article
                TOCMJ-10-19
                10.2174/1874192401610010019
                4780514
                27014374
                c64b5742-aea9-41be-b237-531f49dec5a7
                © Mirrakhimov and Strohl; Licensee Bentham Open.

                This is an open access article licensed under the terms of the Creative Commons Attribution-Non-Commercial 4.0 International Public License (CC BY-NC 4.0) ( https://creativecommons.org/licenses/by-nc/4.0/legalcode), which permits unrestricted, non-commercial use, distribution and reproduction in any medium, provided the work is properly cited.

                History
                : 22 August 2015
                : 20 September 2015
                : 22 October 2015
                Categories
                Article

                Cardiovascular Medicine
                altitude physiology,cardiac failure,epidemiology,treatment
                Cardiovascular Medicine
                altitude physiology, cardiac failure, epidemiology, treatment

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