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Sterilisation par plasma a basse pression: Mecanismes et effets sur les polymeres biomedicaux.

机译:低压等离子体灭菌:对生物医学聚合物的作用机理和影响。

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摘要

Two articles present our work on materials alteration induced by commercial plasma-based sterilizers, in comparison with exposure to pure ethylene oxide (EO), currently the most commonly used low-temperature clinical sterilization method. In the first article, we report cumulative surface modifications generated on various polymeric devices; surface oxidation and wettability changes are observed on all samples sterilized by plasma-based techniques, oxidation tending to be more gradual with SterradRTM. In the case of Plazlyte(TM), the maximum level of oxidation is already attained after the first sterilization cycle, and low molecular weight molecules (oxidized molecules created by scission on the polymer surface, or residues from the chemical agent) are released into the water bath during contact angle measurements.; To deepen our analysis and extend it to the case of possible bulk modifications, we have chosen a particular type of device, namely single-use electrophysiology polyurethane catheters used at the Montreal Heart Institute (article 2). Oxidation by plasma sterilization is restricted to the near-surface layer, while EO induces a slight but deeper-penetrating alkylation. Bulk modification is limited to the consumption of an anti-oxidant additive with SterradRTM, and to alteration of oligomers by SterradRTM and Plazlyte(TM) treatments, which lead to the more noticeable release of these products during biostability studies. These are not large changes so that mechanical properties likely remain unchanged, but the observed modifications may have potential toxic effects. We have initiated a biocompatibility study to evaluate these.; For the second part of the thesis, concerning the destruction mechanism of microorganisms by plasma, we used two microwave (MW) plasma reactors developed in the Plasma Processes Laboratory at Ecole Polytechnique, which allow one to control experimental parameters. Microbiological studies were performed using Bacillus subtilis spores, which are very resistant to sterilization processes, and to plasma in particular. Based on literature data about plasma sterilization and plasma treatment of polymers, we have put forward the hypothesis that etching (or volatilization) is the main mechanism of spore destruction (article 3). We have demonstrated, for the first time, the importance of etching in the destruction of bacterial spores.; The numerous experimental parameters which influence plasma efficiency, by determining the types and concentrations of active species reaching microorganisms, are summarized in the general discussion. (Abstract shortened by UMI.)
机译:与暴露于目前最常用的低温临床灭菌方法纯环氧乙烷(EO)相比,有两篇文章介绍了我们对由商用基于等离子体的灭菌器引起的材料变化的研究。在第一篇文章中,我们报告了在各种聚合物器件上产生的累积表面改性;在所有基于等离子技术灭菌的样品上均观察到了表面氧化和润湿性的变化,使用SterradRTM时,氧化趋于逐渐进行。在PlazlyteTM的情况下,在第一个灭菌周期后已经达到最大氧化水平,并且低分子量分子(通过在聚合物表面分裂产生的氧化分子或化学试剂的残留物)释放到容器中。测量接触角时的水浴。为了加深我们的分析并将其扩展到可能进行批量修改的情况,我们选择了一种特殊类型的设备,即蒙特利尔心脏研究所使用的一次性电生理聚氨酯导管(第2条)。等离子体灭菌的氧化作用仅限于近表层,而EO则可引起轻微但更深入的烷基化。大量改性限于使用SterradRTM消耗抗氧化剂,以及通过SterradRTM和PlazlyteTM处理改变低聚物,这导致在生物稳定性研究期间这些产品的释放更加明显。这些变化不是很大,因此机械性能可能保持不变,但是观察到的变化可能具有潜在的毒性作用。我们已经开始了生物相容性研究,以评估它们。对于论文的第二部分,关于血浆对微生物的破坏机理,我们使用了两个由Ecole Polytechnique的等离子体工艺实验室开发的微波(MW)等离子体反应器,它们可以控制一个实验参数。使用枯草芽孢杆菌孢子进行了微生物学研究,这些芽孢杆菌对杀菌过程特别是血浆具有很高的抵抗力。根据有关聚合物的等离子灭菌和等离子处理的文献数据,我们提出了这样的假说,即腐蚀(或挥发)是破坏孢子的主要机理(第3条)。我们已经第一次证明了蚀刻在破坏细菌孢子中的重要性。一般讨论中总结了许多实验参数,这些参数通过确定到达微生物的活性物种的类型和浓度来影响血浆效率。 (摘要由UMI缩短。)

著录项

  • 作者

    Lerouge, Sophie.;

  • 作者单位

    Ecole Polytechnique, Montreal (Canada).;

  • 授予单位 Ecole Polytechnique, Montreal (Canada).;
  • 学科 Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 222 p.
  • 总页数 222
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;
  • 关键词

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