首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Restoration of blood flow by using continuous perimuscular infiltration of plasmid DNA encoding subterranean mole rat Spalax ehrenbergi VEGF.
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Restoration of blood flow by using continuous perimuscular infiltration of plasmid DNA encoding subterranean mole rat Spalax ehrenbergi VEGF.

机译:通过使用连续地下肌浸润编码地下痣大鼠Spalax ehrenbergi VEGF的质粒DNA来恢复血流。

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The optimal vector, regulatory sequences, and method of delivery of angiogenic gene therapy are of considerable interest. The Spalax ehrenbergi superspecies live in subterranean burrows at low oxygen tensions and its tissues are highly vascularized. We tested whether continuous perimuscular administration of Spalax vascular endothelial growth factor (VEGF) DNA could increase tissue perfusion in a murine hindlimb ischemia model. Placebo or VEGF +/- internal ribosome entry site (IRES) was continuously administrated perimuscularly in the ischemic zone by using an infusion pump. None of the mice in the VEGF-treated group (>50 microg) developed visible necrosis vs. 33% of the placebo group. Microscopic necrosis was observed only in the placebo group. Spalax VEGF muscular infiltration resulted in a faster and more complete restoration of blood flow. The restoration of blood flow by VEGF was dose-dependent and more robust and rapid when using the VEGF-IRES elements. The flow restoration using continuous perimuscular infiltration was faster than single i.m. injections. Vessel density was higher in the VEGF and VEGF-IRES (-) groups compared with the placebo. Continuous perimuscular administration of angiogenic gene therapy offers a new approach to restore blood flow to an ischemic limb. Incorporation of an IRES element may assist in the expression of transgenes delivered to ischemic tissues. Further studies are needed to determine whether VEGF from the subterranean mole rat Spalax VEGF is superior to VEGF from other species. If so, 40 million years of Spalax evolution underground, including adaptive hypoxia tolerance, may prove important to human angiogenic gene therapy.
机译:最佳的载体,调节序列和血管生成基因治疗的递送方法引起了极大的兴趣。 Spalax ehrenbergi超级物种生活在地下洞穴中,氧分压低,并且其组织高度血管化。我们测试了连续肌肉注射Spalax血管内皮生长因子(VEGF)DNA是否可以增加鼠后肢缺血模型的组织灌注。使用输注泵在缺血区域通过肌注连续施用安慰剂或VEGF +/-内部核糖体进入位点(IRES)。与安慰剂组的33%相比,VEGF治疗组(> 50 microg)中没有小鼠出现可见的坏死。仅在安慰剂组中观察到微观坏死。 Spalax VEGF肌肉浸润导致更快,更完全的血流恢复。当使用VEGF-IRES元件时,通过VEGF的血流恢复是剂量依赖性的,并且更加稳定和快速。使用连续肌周浸润的血流恢复比单次i.m更快。注射。与安慰剂相比,VEGF和VEGF-IRES(-)组的血管密度更高。连续肌注血管生成基因治疗提供了一种恢复缺血肢体血流的新方法。掺入IRES元件可有助于表达递送至缺血组织的转基因。需要进一步的研究以确定来自地下黑痣大鼠Spalax VEGF的VEGF是否优于其他物种的VEGF。如果这样的话,包括适应性低氧耐受性在内的4000万年Spalax在地下的进化可能证明对人类血管生成基因治疗至关重要。

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