Bone marrow-derived cells contribute to pulmonary vascular remodeling in hypoxia-induced pulmonary hypertension

被引:96
作者
Hayashida, K
Fujita, J
Miyake, Y
Kawada, H
Ando, K
Ogawa, S
Fukuda, K
机构
[1] Keio Univ, Cardiopulm Div, Dept Internal Med, Shinjuku Ku,Sch Med, Tokyo 1608582, Japan
[2] Tokai Univ, Sch Med, Div Hematol & Oncol, Kanagawa 2591100, Japan
关键词
bone marrow transplantation; hypoxia; myofibroblast; progenitor cell; pulmonary hypertension; vascular remodeling;
D O I
10.1378/chest.127.5.1793
中图分类号
R4 [临床医学];
学科分类号
1002 ; 100602 ;
摘要
Study objective: in these days, it was reported that bone marrow (BM) cells might take part in the remodeling of some systemic vascular diseases; however, it remains unknown whether the BM cells were involved in the vascular remodeling of pulmonary arteries and the progression of pulmonary hypertension (PH). The purpose of this study was to investigate whether BM-derived cells contribute to pulmonary vascular remodeling in hypoxia-induced PH. Materials and methods: To investigate the role of BM-derived cells, we transplanted the whole BM of enhanced green fluorescent protein (GFP)-transgenic mice to the lethally irradiated syngeneic mice (n = 30). After S weeks, chimera mice were exposed to consistent hypoxia using a hypoxic chamber (10% O-2) for up to 4 or 8 weeks (10 mice per group). After hemodynamics and the ratio of right ventricular (RV) weight to left ventricle (LV) weight, RV/(LV + septum [S]), were measured, histologic and immunofluorescent staining were performed. Results: BM-transplanted mice showed a high chimerism (mean [+/- SEM], 91 +/- 2.3%). RV systolic pressure and the RV/(LV + S) ratio increased significantly with time in PH mice, indicating RV hypertrophy. Marked vascular remodeling including medial hypertrophy and adventitial proliferation was observed in the pulmonary arteries of PH mice. Strikingly, a number of GFP(+) cells were observed at the pulmonary arterial wall, including the adventitia, in hypoxia-induced PH mice, while very few cells were observed in the control mice. Metaspectrometer measurements using confocal laser scanning microscopy confirmed that this green fluorescence was produced by GFP, suggesting that these GFP(+) cells were mobilized from the BM. Most of them expressed alpha-smooth muscle actin, a smooth muscle cell, or myofibroblast phenotype, and contributed to the pulmonary vascular remodeling. A semiquantitative polymerase chain reaction of the GFP gene revealed that the BM-derived GFP-positive cells in the PH group were observed more than eightfold as often compared with the control mice. Conclusion: The BM-derived cells mobilize to the hypertensive pulmonary arteries and contribute to the pulmonary vascular remodeling in hypoxia-induced PH mice.
引用
收藏
页码:1793 / 1798
页数:6
相关论文
共 26 条
[1]   Primary pulmonary hypertension - A vascular biology and translational research "work in progress" [J].
Archer, S ;
Rich, S .
CIRCULATION, 2000, 102 (22) :2781-2791
[2]   Transplanted adult hematopoietic stems cells differentiate into functional endothelial cells [J].
Bailey, AS ;
Jiang, SG ;
Afentoulis, M ;
Baumann, CI ;
Schroeder, DA ;
Olson, SB ;
Wong, MH ;
Fleming, WH .
BLOOD, 2004, 103 (01) :13-19
[3]   Thrombin differentiates normal lung fibroblasts to a myofibroblast phenotype via the proteolytically activated receptor-1 and a protein kinase C-dependent pathway [J].
Bogatkevich, GS ;
Tourkina, E ;
Silver, RM ;
Ludwicka-Bradley, A .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (48) :45184-45192
[4]   Smooth muscle cells in human coronary atherosclerosis can originate from cells administered at marrow transplantation [J].
Caplice, NM ;
Bunch, TJ ;
Stalboerger, PG ;
Wang, SH ;
Simper, D ;
Miller, DV ;
Russell, SJ ;
Litzow, MR ;
Edwards, WD .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2003, 100 (08) :4754-4759
[5]   Hypoxia-induced pulmonary artery adventitial remodeling and neovascularization: contribution of progenitor cells [J].
Davie, NJ ;
Crossno, JT ;
Frid, MG ;
Hofmeister, SE ;
Reeves, JT ;
Hyde, DM ;
Carpenter, TC ;
Brunetti, JA ;
McNiece, IK ;
Stenmark, KR .
AMERICAN JOURNAL OF PHYSIOLOGY-LUNG CELLULAR AND MOLECULAR PHYSIOLOGY, 2004, 286 (04) :L668-L678
[6]   Bone marrow-derived progenitor cells in pulmonary fibrosis [J].
Hashimoto, N ;
Jin, H ;
Liu, TJ ;
Chensue, SW ;
Phan, SH .
JOURNAL OF CLINICAL INVESTIGATION, 2004, 113 (02) :243-252
[7]   Abundant progenitor cells in the adventitia contribute to atherosclerosis of vein grafts in ApoE-deficient mice [J].
Hu, YH ;
Zhang, ZY ;
Torsney, E ;
Afzal, AR ;
Davison, F ;
Metzler, B ;
Xu, QB .
JOURNAL OF CLINICAL INVESTIGATION, 2004, 113 (09) :1258-1265
[8]   Regeneration of ischemic cardiac muscle and vascular endothelium by adult stem cells [J].
Jackson, KA ;
Majka, SM ;
Wang, HG ;
Pocius, J ;
Hartley, CJ ;
Majesky, MW ;
Entman, ML ;
Michael, LH ;
Hirschi, KK ;
Goodell, MA .
JOURNAL OF CLINICAL INVESTIGATION, 2001, 107 (11) :1395-1402
[9]   Regulation of smooth muscle actin expression and contraction in adult human mesenchymal stem cells [J].
Kinner, B ;
Zaleskas, JM ;
Spector, M .
EXPERIMENTAL CELL RESEARCH, 2002, 278 (01) :72-83
[10]  
KUHN C, 1991, AM J PATHOL, V138, P1257