Hypoxia Promotes Efficient Differentiation of Human Embryonic Stem Cells to Functional Endothelium

被引:88
作者
Prado-Lopez, Sonia [1 ]
Conesa, Ana [2 ]
Arminan, Ana [3 ]
Martinez-Losa, Magdalena [6 ]
Escobedo-Lucea, Carmen [1 ]
Gandia, Carolina [3 ]
Tarazona, Sonia [2 ]
Melguizo, Dario [1 ]
Blesa, David [7 ]
Montaner, David [2 ]
Sanz-Gonzalez, Silvia [4 ,5 ]
Sepulveda, Pilar [3 ]
Goetz, Stefan [2 ]
Enrique O'Connor, Jose [6 ]
Moreno, Ruben [1 ]
Dopazo, Joaquin [2 ]
Burks, Deborah J. [4 ,5 ]
Stojkovic, Miodrag [1 ]
机构
[1] Principe Felipe Res Ctr CIPF, Cellular Reprogramming Lab, Valencia 46013, Spain
[2] Principe Felipe Res Ctr CIPF, Bioinformat Dept, Valencia 46013, Spain
[3] Principe Felipe Res Ctr CIPF, Cardioregenerat Unit, Valencia 46013, Spain
[4] Principe Felipe Res Ctr CIPF, CIBERDEM, Valencia 46013, Spain
[5] Principe Felipe Res Ctr CIPF, Mol Endocrinol Lab, Valencia 46013, Spain
[6] Principe Felipe Res Ctr CIPF, Cyt Lab, Valencia 46013, Spain
[7] Principe Felipe Res Ctr CIPF, Microarray Anal Serv, Valencia 46013, Spain
关键词
Angiogenesis; Vasculature; Hypoxia; Embryonic stem cells; Development; VASCULAR DISORDERS; PROGENITOR CELLS; GROWTH-FACTOR; ANGIOGENESIS; OXYGEN; IDENTIFICATION; VEGF; INHIBITION; ISCHEMIA; PROTEINS;
D O I
10.1002/stem.295
中图分类号
Q813 [细胞工程];
学科分类号
100113 [医学细胞生物学];
摘要
Early development of mammalian embryos occurs in an environment of relative hypoxia. Nevertheless, human embryonic stem cells (hESC), which are derived from the inner cell mass of blastocyst, are routinely cultured under the same atmospheric conditions (21% O-2) as somatic cells. We hypothesized that O2 levels modulate gene expression and differentiation potential of hESC, and thus, we performed gene profiling of hESC maintained under normoxic or hypoxic (1% or 5% O-2) conditions. Our analysis revealed that hypoxia downregulates expression of pluripotency markers in hESC but increases significantly the expression of genes associated with angio-and vasculogenesis including vascular endothelial growth factor and angiopoitein-like proteins. Consequently, we were able to efficiently differentiate hESC to functional endothelial cells (EC) by varying O-2 levels; after 24 hours at 5% O-2, more than 50% of cells were CD34+. Transplantation of resulting endothelial-like cells improved both systolic function and fractional shortening in a rodent model of myocardial infarction. Moreover, analysis of the infarcted zone revealed that transplanted EC reduced the area of fibrous scar tissue by 50%. Thus, use of hypoxic conditions to specify the endothelial lineage suggests a novel strategy for cellular therapies aimed at repair of damaged vasculature in pathologies such as cerebral ischemia and myocardial infarction. STEM CELLS 2010; 28: 407-418
引用
收藏
页码:407 / 418
页数:12
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