Mouse bone marrow-derived endothelial progenitor cells do not restore radiation-induced microvascular damage.

ISRN cardiology Pub Date : 2014-03-27 eCollection Date: 2014-01-01 DOI:10.1155/2014/506348
Ingar Seemann, Johannes A M Te Poele, Saske Hoving, Fiona A Stewart
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Abstract

Background. Radiotherapy is commonly used to treat breast and thoracic cancers but it also causes delayed microvascular damage and increases the risk of cardiac mortality. Endothelial cell proliferation and revascularization are crucial to restore microvasculature damage and maintain function of the irradiated heart. We have therefore examined the potential of bone marrow-derived endothelial progenitor cells (BM-derived EPCs) for restoration of radiation-induced microvascular damage. Material & Methods. 16 Gy was delivered to the heart of adult C57BL/6 mice. Mice were injected with BM-derived EPCs, obtained from Eng(+/+) or Eng(+/-) mice, 16 weeks and 28 weeks after irradiation. Morphological damage was evaluated at 40 weeks in transplanted mice, relative to radiation only and age-matched controls. Results. Cardiac irradiation decreased microvascular density and increased endothelial damage in surviving capillaries (decrease alkaline phosphatase expression and increased von Willebrand factor). Microvascular damage was not diminished by treatment with BM-derived EPCs. However, BM-derived EPCs from both Eng(+/+) and Eng(+/-) mice diminished radiation-induced collagen deposition. Conclusion. Treatment with BM-derived EPCs did not restore radiation-induced microvascular damage but it did inhibit fibrosis. Endoglin deficiency did not impair this process.

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小鼠骨髓来源的内皮祖细胞不能恢复辐射引起的微血管损伤。
背景。放疗常用于治疗乳腺癌和胸腺癌,但它也会造成延迟性微血管损伤,增加心脏死亡风险。内皮细胞增殖和血管再通对于恢复微血管损伤和维持受照射心脏的功能至关重要。因此,我们研究了骨髓来源的内皮祖细胞(BM-derived EPCs)在恢复辐射引起的微血管损伤方面的潜力。材料与方法。对成年 C57BL/6 小鼠的心脏注射 16 Gy。在辐照 16 周和 28 周后,给小鼠注射从 Eng(+/+) 或 Eng(+/-) 小鼠体内获得的 BM源性 EPCs。40周时,对移植小鼠的形态损伤进行评估,并与只接受辐射的对照组和年龄匹配的对照组进行比较。结果心脏辐照降低了微血管密度,增加了存活毛细血管的内皮损伤(碱性磷酸酶表达减少,von Willebrand因子增加)。使用来源于骨髓的EPCs并不能减轻微血管损伤。但是,来自 Eng(+/+)和 Eng(+/-)小鼠的 BM源性 EPCs 可减少辐射诱导的胶原沉积。结论用来源于骨髓的EPCs治疗并不能恢复辐射诱导的微血管损伤,但却能抑制纤维化。Endoglin缺乏并不影响这一过程。
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