用于癌症治疗的大气压多射流等离子体源

Q1 Medicine
Thomas Maho, Xavier Damany, Sébastien Dozias, Jean-Michel Pouvesle, Eric Robert
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引用次数: 7

摘要

单等离子体射流在体内或直接在人体实验中取得了重大进展(例如[1],[2])。结果特别有希望,但最终可能在未来受到限制,因为处理时间相当长,因为产生的等离子体产生的处理表面积非常小。开发一种既能在更大范围内进行治疗,又能保持实用性和合理成本的来源,这是一个真正的挑战。目前已经有柔性或刚性表面dbd,但要求反应器与处理组织之间的距离非常小,这限制了它们在许多情况下的使用,特别是当处理表面表现出很大的表面形态变化导致拖缆附着点,因此处理非常不均匀时。射流在这种情况下非常有用,因为它们适应所有类型的表面,无论是光滑的还是高度结构化的,甚至在表面等离子体的情况下,即使它们有难以到达的洞或空腔。另一方面,浮动dbd对处理过的基材的性质非常敏感,渗漏的存在会阻止它们的操作。因此,“理想”源是具有射流灵活性和与大型dbd相当的表面的源。正是本着这种精神,我们开发了基于单一等离子枪系统的新一代涂抹器,从初级等离子射流产生大量射流(从几十到几百),如下图所示。在进行体内处理之前,我们通过在传统培养皿中琼脂板上生长的两个菌落的体外净化实验来鉴定来源,以检查产生的每个射流的等效性,以及用我们的系统扫描的在非常大的琼脂上生长的菌落,以简单的方式处理非常大的表面。结果非常令人鼓舞,并证明了多喷气机系统的有效性,该系统既可以处理大型目标,又可以缩短单喷气机系统难以处理的处理时间。在获得不同类型的多喷嘴的实验结果的同时,我们将介绍从住院患者样本中培养的多重耐药细菌菌落的去污结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Atmospheric Pressure Multijet Plasma Sources For Cancer Treatments

Single plasma jets have allowed significant advances in in vivo or directly on human experiments (e.g. [1],[2]). The results are particularly promising, but ultimately likely to be limited in the future due to the fact that the treatment times are rather long due to the very small treated surface area resulting from the produced plasma. There is a real challenge to develop sources that allow treatment over larger areas while remaining practical and at a reasonable cost. There are already flexible or rigid surface DBDs but that require an extremely small distance between the reactor and the treated tissues, which limits their use in many situations, particularly when the treated surfaces exhibit large variations in the surface morphology leading to points of attachment of streamers and therefore very inhomogeneous treatment. The jets are very useful in this type of situation because they adapt to all types of surfaces whether they are smooth or highly structured, or even if they have holes or cavities difficult to reach in the case of a surface plasma. On the other hand, floating DBDs are very sensitive to the nature of the treated substrate and the presence of seeps can prevent their operation. "Ideal" sources are therefore sources with the flexibility of a jet and surfaces comparable to large DBDs.

It is in this spirit that we have developed a new generation of applicators based on a single Plasma Gun system to generate a multitude of jets (from tens up to few hundreds) from a primary plasma jet, as shown in the photos below.

  1. Download : Download high-res image (263KB)
  2. Download : Download full-size image

Before proceeding to in vivo treatments, we qualified the sources through in vitro experiments of decontamination on both colonies grown on agar plates in traditional Petri dishes, to check the equivalence of each of the jets generated, and colonies grown on very large agars scanned with our systems to treat very large surfaces in an easy way. The results are extremely encouraging and demonstrated the effectiveness of the multijet system, which allows both large-scale targets to be processed, as well as reducing processing times that can quickly become prohibitive with single-jet systems. At the same time as experimental results obtained on generation of different types of multijets, we will present results obtained with those on the decontamination of multi-resistant bacterial colonies grown from inpatient samples.

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Clinical Plasma Medicine
Clinical Plasma Medicine MEDICINE, RESEARCH & EXPERIMENTAL-
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