Literature DB >> 2478055

Regulation of collagen production by medial smooth muscle cells in hypoxic pulmonary hypertension.

E C Crouch1, W C Parks, J L Rosenbaum, D Chang, L Whitehouse, L J Wu, K R Stenmark, E C Orton, R P Mecham.   

Abstract

Pulmonary hypertension is associated with abnormal connective tissue deposition in the media of pulmonary arteries. Lobar arteries from calves maintained for up to 15 days at simulated high altitude showed a 35% increase in collagen and a greater than 40% increase in crosslinked elastin per microgram protein. Labeling of artery tissue with [14C]proline revealed a nearly twofold increase in relative collagen synthesis. There was increased incorporation into Types I, III, IV, and V collagen with an increase in the proportion of newly synthesized Type IV collagen. Quantitation of collagen mRNA by slot-blot assay demonstrated increased levels of Types I and IV collagen message. In addition, medial smooth muscle cells isolated from the hypertensive calves demonstrated a nearly twofold increase in relative collagen synthesis, a twofold increase in the accumulation of newly synthesized collagen per microgram DNA, and increased levels of Types I and IV collagen mRNA. Exposure of pulmonary artery smooth muscle cells, adventitial cells, and fetal calf ligament fibroblasts to conditioned calf serum harvested from cultures of medial cells from hypertensive animals increased their levels of collagen as well as elastin mRNA. These studies suggest that the increased production of collagen in hypertensive arteries is mediated at a pre-translational level by soluble factor(s) generated by medial smooth muscle cells.

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Year:  1989        PMID: 2478055     DOI: 10.1164/ajrccm/140.4.1045

Source DB:  PubMed          Journal:  Am Rev Respir Dis        ISSN: 0003-0805


  10 in total

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3.  Type I collagen gene expression in human atherosclerosis. Localization to specific plaque regions.

Authors:  M D Rekhter; K Zhang; A S Narayanan; S Phan; M A Schork; D Gordon
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4.  Extracellular matrix protein gene expression in atherosclerotic hypertensive pulmonary arteries.

Authors:  M D Botney; L R Kaiser; J D Cooper; R P Mecham; D Parghi; J Roby; W C Parks
Journal:  Am J Pathol       Date:  1992-02       Impact factor: 4.307

5.  Analysis of the structure of the muscular pulmonary arteries in patients with pulmonary hypertension and COPD: National Institutes of Health nocturnal oxygen therapy trial.

Authors:  J L Wright; T Petty; W M Thurlbeck
Journal:  Lung       Date:  1992       Impact factor: 2.584

6.  Persistence of the fetal pattern of tropoelastin gene expression in severe neonatal bovine pulmonary hypertension.

Authors:  K R Stenmark; A G Durmowicz; J D Roby; R P Mecham; W C Parks
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7.  Basement Membrane Extracellular Matrix Proteins in Pulmonary Vascular and Right Ventricular Remodeling in Pulmonary Hypertension.

Authors:  Anjira S Ambade; Paul M Hassoun; Rachel L Damico
Journal:  Am J Respir Cell Mol Biol       Date:  2021-09       Impact factor: 6.914

8.  Lung damage created by high tidal volume ventilation in rats with monocrotaline-induced pulmonary hypertension.

Authors:  Masako Kawai; Erquan Zhang; Jane Chanda Kabwe; Amphone Okada; Junko Maruyama; Hirofumi Sawada; Kazuo Maruyama
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Authors:  Sayyed Mohammad Hossein Ghaderian; Zohreh Khodaii
Journal:  Int J Mol Cell Med       Date:  2012

10.  Megakaryocytic leukemia 1 (MKL1) regulates hypoxia induced pulmonary hypertension in rats.

Authors:  Zhibin Yuan; Jian Chen; Dewei Chen; Gang Xu; Minjie Xia; Yong Xu; Yuqi Gao
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  10 in total

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