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首页> 外文期刊>The Journal of Thoracic and Cardiovascular Surgery >Evaluation of new Forcefield technology: reducing platelet adhesion and cell coverage of pyrolytic carbon surfaces.
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Evaluation of new Forcefield technology: reducing platelet adhesion and cell coverage of pyrolytic carbon surfaces.

机译:新Forcefield技术的评估:减少血小板粘附和热解碳表面的细胞覆盖。

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摘要

INTRODUCTION: Platelet adhesion and activation are a significant source of clinical complications. Preventing foreign surface-platelet interaction may improve biocompatibility of implantable medical devices. This study evaluated efficacy of novel technique for electrically modifying surface of conductive biomaterial and attaching blood components to prevent thrombogenesis. Specifically, this new surface modification technology, Forcefield (ATS Medical, Inc, Minneapolis, Minn), was designed to prevent platelet adhesion on pyrolytic carbon. A modulated low-voltage current is directly applied to pyrolytic carbon surfaces to stimulate adherence of a layer of charged proteins from circulating blood components that is resistive to platelet deposition. METHODS: Feasibility of Forcefield technology was tested in line with cardiopulmonary bypass circuit in patients undergoing standard cardiac surgery (n = 6). Forcefield treatment was applied to segment of pyrolytic carbon with 15 minutes (n = 3) and 30 minutes (n = 3) of electrically stimulated exposure time, and resulting segments were compared with untreated pyrolytic carbon segment. Platelet adhesion confluence was then quantified by scanning electron microscopy. RESULTS: Confluence of the Forcefield-treated pyrolytic carbon segments (3.3% +/- 2.2%) was significantly reduced relative to untreated pyrolytic carbon control segments (81.7% +/- 24%, P < .001). There were no discernible differences in cell confluence with Forcefield-treated segments as function of exposure time (15 or 30 minutes). CONCLUSIONS: Forcefield technology may enable modification of pyrolytic carbon surfaces to prevent platelet adhesion and thrombogenesis of implanted medical devices, including heart valves, stents, catheters, and ventricular assist devices, and may eliminate the need for anticoagulant and antiplatelet therapies.
机译:简介:血小板粘附和激活是临床并发症的重要来源。防止外来表面-血小板相互作用可以改善植入式医疗设备的生物相容性。这项研究评估了新技术对导电生物材料表面进行电修饰并附着血液成分以防止血栓形成的功效。特别是,这种新的表面改性技术Forcefield(明尼苏达州明尼阿波利斯的ATS Medical,Inc)旨在防止血小板粘附在热解碳上。将调制的低压电流直接施加到热解碳表面,以刺激循环血液成分中的一层有电荷的蛋白质粘附,从而抵抗血小板沉积。方法:在接受标准心脏手术(n = 6)的患者中,结合体外循环回路测试了Forcefield技术的可行性。将力场处理应用于具有15分钟(n = 3)和30分钟(n = 3)的电刺激暴露时间的热解碳段,并将所得的段与未处理的热解碳段进行比较。然后通过扫描电子显微镜定量血小板粘附汇合。结果:与未处理的热解碳控制段(81.7%+/- 24%,P <.001)相比,用Forcefield处理的热解碳段的融合度(3.3%+/- 2.2%)显着降低。用Forcefield处理的细胞段在细胞汇合上没有明显的差异,这与暴露时间(15或30分钟)有关。结论:力场技术可以使热解碳表面改性,以防止植入的医疗设备(包括心脏瓣膜,支架,导管和心室辅助设备)的血小板粘附和血栓形成,并且可以消除对抗凝剂和抗血小板疗法的需求。

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