Roles for Vasoconstriction and Gene Expression in Hypoxia-induced Pulmonary Vascular Remodeling

Author(s):  
Bernadette Raffestin ◽  
Serge Adnot ◽  
Saadia Eddahibi
2011 ◽  
Vol 43 (2) ◽  
pp. 87-98 ◽  
Author(s):  
Jing Tian ◽  
Sohrab Fratz ◽  
Yali Hou ◽  
Qing Lu ◽  
Agnes Görlach ◽  
...  

Disordered angiogenesis is implicated in pulmonary vascular remodeling secondary to congenital heart diseases (CHD). However, the underlying genes are not well delineated. We showed previously that an ovine model of CHD with increased pulmonary blood flow (PBF, Shunt) has an “angiogenesis burst” between 1 and 4 wk of age. Thus we hypothesized that the increased PBF elicited a proangiogenic gene expression profile before onset of vessel growth. To test this we utilized microarray analysis to identify genes that could be responsible for the angiogenic response. Total RNA was isolated from lungs of Shunt and control lambs at 3 days of age and hybridized to Affymetrix gene chips for microarray analyses ( n = 8/group). Eighty-nine angiogenesis-related genes were found to be upregulated and 26 angiogenesis-related genes downregulated in Shunt compared with control lungs (cutting at 1.2-fold difference, P < 0.05). We then confirmed upregulation of proangiogenic genes FGF2, Angiopoietin2 (Angpt2), and Birc5 at mRNA and protein levels and upregulation of ccl2 at mRNA level in 3-day Shunt lungs. Furthermore, we found that pulmonary arterial endothelial cells (PAEC) isolated from fetal lambs exhibited increased expression of FGF2, Angpt2, Birc5, and ccl2 and enhanced angiogenesis when exposed to elevated shear stress (35 dyn/cm2) compared with cells exposed to more physiological shear stress (20 dyn/cm2). Finally, we demonstrated that blocking FGF2, Angpt2, Birc5, or ccl2 signaling with neutralizing antibodies or small interfering RNA (siRNA) significantly decreased the angiogenic response induced by shear stress. In conclusion, we have identified a “proangiogenic” gene expression profile in a lamb model of CHD with increased PBF that precedes onset of pulmonary vascular remodeling. Our data indicate that FGF2, Angpt2, Birc5, and ccl2 may play important roles in the angiogenic response.


2003 ◽  
Vol 12 (3) ◽  
pp. 209-219 ◽  
Author(s):  
Yasushi Hoshikawa ◽  
Patrick Nana-Sinkam ◽  
Mark D. Moore ◽  
Sylk Sotto-Santiago ◽  
Tzulip Phang ◽  
...  

Different animal species have a varying response to hypoxia. Mice develop less pulmonary artery thickening after chronic hypoxia exposure than rats. We hypothesized that the lung tissue gene expression pattern displayed in hypoxic rats would differ from that of hypoxic mice. We exposed Sprague-Dawley rats and C57BL/6 mice to both 1 and 3 wk of hypobaric hypoxia. Although both species developed pulmonary hypertension, mice showed less pulmonary vascular remodeling than rats. Microarray gene analysis demonstrated a distinct pattern of gene expression between mice and rats when exposed to hypoxic conditions. In addition, some genes appeared to be more responsive at an earlier time point of 1 wk of hypoxia. Hypoxic conditions in the rat induce genes involved in endothelial cell proliferation, repression of apoptosis, and vasodilation. Mice exposed to hypoxic conditions decrease the expression of genes involved in vasodilation and in endothelial cell proliferation. Although we cannot determine whether the differential expression of genes during chronic hypoxia is cause or consequence of the differential pulmonary vascular remodeling, we propose that a balance between over- and under-expression of a selective group of genes may be responsible for lung vascular remodeling and vascular tone control.


2012 ◽  
Vol 13 (1) ◽  
pp. 103 ◽  
Author(s):  
Kayoko Shimodaira ◽  
Yoichiro Okubo ◽  
Eri Ochiai ◽  
Haruo Nakayama ◽  
Harutaka Katano ◽  
...  

2011 ◽  
Vol 25 (S1) ◽  
Author(s):  
Marilee J. Wick ◽  
Zoe L. Loomis ◽  
Erica J. Buesing ◽  
Carol A. Wehling ◽  
Carlyne D. Cool ◽  
...  

Pneumologie ◽  
2009 ◽  
Vol 63 (02) ◽  
Author(s):  
T Medebach ◽  
N Weissmann ◽  
HA Ghofrani ◽  
W Seeger ◽  
F Grimminger

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