Hypoxia-induced pulmonary vascular remodeling - Cellular and molecular mechanisms

被引:820
作者
Stenmark, Kurt R.
Fagan, Karen A.
Frid, Maria G.
机构
[1] Univ Colorado, Dept Pediat, Dev Lung Biol Lab, Denver, CO 80262 USA
[2] Univ Colorado, Dept Med, Cardiovasc Pulm Res Lab, Denver, CO 80262 USA
关键词
pulmonary hypertension; pulmonary vasoconstriction; fibrocyte; inflammation; progenitor cell; adventitia;
D O I
10.1161/01.RES.0000243584.45145.3f
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Chronic hypoxic exposure induces changes in the structure of pulmonary arteries, as well as in the biochemical and functional phenotypes of each of the vascular cell types, from the hilum of the lung to the most peripheral vessels in the alveolar wall. The magnitude and the specific profile of the changes depend on the species, sex, and the developmental stage at which the exposure to hypoxia occurred. Further, hypoxia-induced changes are site specific, such that the remodeling process in the large vessels differs from that in the smallest vessels. The cellular and molecular mechanisms vary and depend on the cellular composition of vessels at particular sites along the longitudinal axis of the pulmonary vasculature, as well as on local environmental factors. Each of the resident vascular cell types (ie, endothelial, smooth muscle, adventitial fibroblast) undergo site- and time-dependent alterations in proliferation, matrix protein production, expression of growth factors, cytokines, and receptors, and each resident cell type plays a specific role in the overall remodeling response. In addition, hypoxic exposure induces an inflammatory response within the vessel wall, and the recruited circulating progenitor cells contribute significantly to the structural remodeling and persistent vasoconstriction of the pulmonary circulation. The possibility exists that the lung or lung vessels also contain resident progenitor cells that participate in the remodeling process. Thus the hypoxia-induced remodeling of the pulmonary circulation is a highly complex process where numerous interactive events must be taken into account as we search for newer, more effective therapeutic interventions. This review provides perspectives on each of the aforementioned areas.
引用
收藏
页码:675 / 691
页数:17
相关论文
共 193 条
[1]   Endothelium-derived mediators and hypoxic pulmonary vasoconstriction [J].
Aaronson, PI ;
Robertson, TP ;
Ward, JPT .
RESPIRATORY PHYSIOLOGY & NEUROBIOLOGY, 2002, 132 (01) :107-120
[2]   NIFEDIPINE REDUCES PULMONARY PRESSURE AND VASCULAR TONE DURING SHORT-TERM BUT NOT LONG-TERM TREATMENT OF PULMONARY-HYPERTENSION IN PATIENTS WITH CHRONIC OBSTRUCTIVE PULMONARY-DISEASE [J].
AGOSTONI, P ;
DORIA, E ;
GALLI, C ;
TAMBORINI, G ;
GUAZZI, MD .
AMERICAN REVIEW OF RESPIRATORY DISEASE, 1989, 139 (01) :120-125
[3]   Endothelial permeability and IL-6 production during hypoxia: role of ROS in signal transduction [J].
Ali, MH ;
Schlidt, SA ;
Chandel, NS ;
Hynes, KL ;
Schumacker, PT ;
Gewertz, BL .
AMERICAN JOURNAL OF PHYSIOLOGY-LUNG CELLULAR AND MOLECULAR PHYSIOLOGY, 1999, 277 (05) :L1057-L1065
[5]   Diversity of phenotype and function of vascular smooth muscle cells [J].
Archer, SL .
JOURNAL OF LABORATORY AND CLINICAL MEDICINE, 1996, 127 (06) :524-529
[6]   Endothelial-mesenchymal transition occurs during embryonic pulmonary artery development [J].
Arciniegas, E ;
Neves, CY ;
Carrillo, LM ;
Zambrano, EA ;
Ramírez, R .
ENDOTHELIUM-JOURNAL OF ENDOTHELIAL CELL RESEARCH, 2005, 12 (04) :193-200
[7]   TERMINAL PORTION OF PULMONARY ARTERIAL TREE IN PEOPLE NATIVE TO HIGH ALTITUDES [J].
ARIASSTELLA, J ;
SALDANA, M .
CIRCULATION, 1963, 28 (05) :915-+
[8]   DECREASED ARTERIAL-WALL PROSTAGLANDIN PRODUCTION IN NEONATAL CALVES WITH SEVERE CHRONIC PULMONARY-HYPERTENSION [J].
BADESCH, DB ;
ORTON, EC ;
ZAPP, LM ;
WESTCOTT, JY ;
HESTER, J ;
VOELKEL, NF ;
STENMARK, KR .
AMERICAN JOURNAL OF RESPIRATORY CELL AND MOLECULAR BIOLOGY, 1989, 1 (06) :489-498
[9]   ET-1 receptor gene expression and distribution in L1 and L2 cells from hypertensive sheep pulmonary artery [J].
Balyakina, EV ;
Chen, DH ;
Lawrence, ML ;
Manning, S ;
Parker, RE ;
Shappell, SB ;
Meyrick, B .
AMERICAN JOURNAL OF PHYSIOLOGY-LUNG CELLULAR AND MOLECULAR PHYSIOLOGY, 2002, 283 (01) :L42-L51
[10]   Egr-1 antisense oligonucleotides inhibit hypoxia-induced proliferation of pulmonary artery adventitial fibroblasts [J].
Banks, MF ;
Gerasimovskaya, EV ;
Tucker, DA ;
Frid, MG ;
Carpenter, TC ;
Stenmark, KR .
JOURNAL OF APPLIED PHYSIOLOGY, 2005, 98 (02) :732-738