细胞外基质来源的血管生成因子(s)抑制内皮细胞增殖,增强分化,并刺激血管生成在体内。

N. Akhta, S. Carlso, A. Pesarini, N. Ambulos, A. Passaniti
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引用次数: 9

摘要

为了分离出具有血管生成活性的基质分子,我们分析了基底膜制剂Matrigel中肿瘤细胞外基质(ECM)组分对内皮细胞(EC)增殖、分化和血管形成的影响。在包括条件培养基(MGCM)在内的几种可溶性基质组分处理后,人类和牛EC DNA合成的抑制是明显的。MGCM粒度分级后,EC生长阻滞被小于3000道尔顿(3KF)的因子激活。在两种不同的模型中,MGCM和3KF组分均促进牛EC分化(管形成),使用基质凝胶或胶原凝胶刺激管形成。3KF因子在小鼠角膜或皮下植入后可刺激血管生成。3KF因子存在时,fgf诱导的血管生成和血流增加,这种作用被抗血管生成分子内皮抑素抑制。通过反相高效液相色谱进一步表征低分子量3KF样品,发现几个部分具有EC生长抑制活性。这些结果表明,ECM制剂诱导EC生长停滞和管形成的能力可能至少部分地存在于以前未检测到的低分子量分子中。这些ecm相关抑制剂的表征可能会导致新的抗血管生成和抗肿瘤化合物的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Extracellular matrix-derived angiogenic factor(s) inhibit endothelial cell proliferation, enhance differentiation, and stimulate angiogenesis in vivo.
To isolate matrix molecules with angiogenic activity, tumor extracellular matrix (ECM) fractions from the basement membrane preparation Matrigel were analyzed for effects on endothelial cell (EC) proliferation, differentiation, and vessel formation in vivo. Inhibition of human and bovine EC DNA synthesis was evident upon treatment with several soluble Matrigel fractions including conditioned media (MGCM). After size fractionation of MGCM, EC growth arrest was activated by factor(s) smaller than 3,000 daltons (3KF). Bovine EC differentiation (tube formation) was promoted by both MGCM and 3KF fractions in two different models using matrigel or collagen gels to stimulate tube formation. The 3KF factor(s) stimulated angiogenesis when implanted in the cornea or subcutaneously in mice. FGF-induced angiogenesis and blood flow were increased in the presence of 3KF factor(s), an effect that was inhibited by the anti-angiogenic molecule endostatin. Further characterization of the low molecular weight 3KF samples by RP-HPLC revealed several fractions exhibiting EC growth arrest activity. These results suggest that the ability of ECM preparations to induce EC growth arrest and tube formation may reside, at least partially, in previously undetected low molecular weight molecules. Characterization of these ECM-associated inhibitors may lead to the development of novel anti-angiogenic and anti-tumor compounds.
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