Literature DB >> 17541026

Nitric oxide in the pulmonary vasculature.

Matthew P Coggins1, Kenneth D Bloch.   

Abstract

Homeostasis in the pulmonary vasculature is maintained by the actions of vasoactive compounds, including nitric oxide (NO). NO is critical for normal development of the pulmonary vasculature and continues to mediate normal vasoregulation in adulthood. Loss of NO bioavailability is one component of the endothelial dysfunction and vascular pathology found in pulmonary hypertension (PH). A broad research effort continues to expand our understanding of the control of NO production and NO signaling and has generated novel theories on the importance of pulmonary NO production in the control of the systemic vasculature. This understanding has led to exciting developments in our ability to treat PH, including inhaled NO and phosphodiesterase inhibitors, and to several promising directions for future therapies using nitric oxide-donor compounds, stimulators of soluble guanylate cyclase, progenitor cells expressing NO synthase (NOS), and NOS gene manipulation.

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Year:  2007        PMID: 17541026     DOI: 10.1161/ATVBAHA.107.142943

Source DB:  PubMed          Journal:  Arterioscler Thromb Vasc Biol        ISSN: 1079-5642            Impact factor:   8.311


  53 in total

Review 1.  Reactive oxygen and nitrogen species in pulmonary hypertension.

Authors:  Diana M Tabima; Sheila Frizzell; Mark T Gladwin
Journal:  Free Radic Biol Med       Date:  2012-03-06       Impact factor: 7.376

2.  Motion of proximal histidine and structural allosteric transition in soluble guanylate cyclase.

Authors:  Byung-Kuk Yoo; Isabelle Lamarre; Jean-Louis Martin; Fabrice Rappaport; Michel Negrerie
Journal:  Proc Natl Acad Sci U S A       Date:  2015-03-23       Impact factor: 11.205

3.  Metabolism and Redox in Pulmonary Vascular Physiology and Pathophysiology.

Authors:  Norah Alruwaili; Sharath Kandhi; Dong Sun; Michael S Wolin
Journal:  Antioxid Redox Signal       Date:  2018-12-21       Impact factor: 8.401

4.  Prevention of pulmonary hypertension by Angiotensin-converting enzyme 2 gene transfer.

Authors:  Yoriko Yamazato; Anderson J Ferreira; Kwon-Ho Hong; Srinivas Sriramula; Joseph Francis; Masanobu Yamazato; Lihui Yuan; Chastity N Bradford; Vinayak Shenoy; Suk P Oh; Michael J Katovich; Mohan K Raizada
Journal:  Hypertension       Date:  2009-06-29       Impact factor: 10.190

5.  Inducible nitric oxide synthase inhibition reverses pulmonary arterial dysfunction in lung transplantation.

Authors:  Jing-Xiang Wu; Hong-Wei Zhu; Xu Chen; Jiong-Lin Wei; Xiao-Feng Zhang; Mei-Ying Xu
Journal:  Inflamm Res       Date:  2014-04-24       Impact factor: 4.575

6.  YC-1 binding to the β subunit of soluble guanylyl cyclase overcomes allosteric inhibition by the α subunit.

Authors:  Rahul Purohit; Bradley G Fritz; Juliana The; Aaron Issaian; Andrzej Weichsel; Cynthia L David; Eric Campbell; Andrew C Hausrath; Leida Rassouli-Taylor; Elsa D Garcin; Matthew J Gage; William R Montfort
Journal:  Biochemistry       Date:  2013-12-30       Impact factor: 3.162

Review 7.  Pharmacotherapy for pulmonary hypertension.

Authors:  Robin H Steinhorn
Journal:  Pediatr Clin North Am       Date:  2012-08-26       Impact factor: 3.278

8.  Functional pharmacological characterization of SER100 in cardiovascular health and disease.

Authors:  Inmaculada C Villar; Kristen J Bubb; Amie J Moyes; Eva Steiness; Trygve Gulbrandsen; Finn Olav Levy; Adrian J Hobbs
Journal:  Br J Pharmacol       Date:  2016-11-01       Impact factor: 8.739

Review 9.  Can we improve outcome of congenital diaphragmatic hernia?

Authors:  L van den Hout; I Sluiter; S Gischler; A De Klein; R Rottier; H Ijsselstijn; I Reiss; D Tibboel
Journal:  Pediatr Surg Int       Date:  2009-09       Impact factor: 1.827

Review 10.  Bench-to-bedside review: Inhaled nitric oxide therapy in adults.

Authors:  Benedict C Creagh-Brown; Mark J D Griffiths; Timothy W Evans
Journal:  Crit Care       Date:  2009-05-29       Impact factor: 9.097

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