Detection And Regulation Of Radical Production In Plasma Treated Liquids

Q1 Medicine Clinical Plasma Medicine Pub Date : 2018-02-01 DOI:10.1016/j.cpme.2017.12.059
Helena Jablonowski , Ansgar Schmidt-Bleker , Sander Bekeschus , Klaus-Dieter Weltmann , Kristian Wende
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Abstract

The optimization of a plasma source regarding the species production is of high relevance for a tailored therapeutic application [1]. Especially for treatment of cancer versus healthy cells, a selective impact of the plasma is desired [2]. It can be achieved either by varying concentrations of an active species or, in some cases, by different reactive species. In order to regulate the species output, species densities generated in plasma treated liquids have to be determined. Furthermore, the impact of the plasma parameters on the yielded concentrations need to be known. Therefore, the influence of the plasma parameters on ROS and RNS levels in physiologic liquids were investigated for the argon plasma jet kINPen09, which is quite similar to the certified medical product, the kINPen® MED.

For instance, the impact of molecular gas admixtures to the feed gas, treatment distance, treatment time as well as liquid ingredients were analyzed for different reactive oxygen or reactive nitrogen species. As the more stable species such as nitrite, nitrate, and hydrogen peroxide were already investigated in several studies[3-5] the focus was set on the short-lived species: radicals such as hydroxyl radicals (•OH), superoxide anion radicals (O2•-), or nitric oxide (•NO). In addition, also highly reactive non-radicals such as singlet delta oxygen (1O2) or ozone (O3) were analyzed. These species are well known as relevant for biomedical application [6], furthermore, they are also known to be generated during plasma treatment of liquids in primary as well as in secondary and tertiary reactions [5].

By the use of different spin probes and spin traps, these radicals and non-radicals, generated during plasma treatment, were detected by electron paramagnetic resonance spectroscopy (EPR). The results obtained from the EPR, colorimetric and ion chromatographic measurements were compared with gas phase studies of a similar plasma source [7, 8] to determine their origin and potential adjustability.

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等离子体处理液体中自由基产生的检测与调控
等离子体源的优化对于定制治疗应用具有高度相关性[1]。特别是在癌症与健康细胞的治疗中,需要血浆的选择性影响[2]。它可以通过改变活性物质的浓度来实现,或者在某些情况下,通过不同的反应物质来实现。为了调节物质输出,必须确定等离子体处理液体中产生的物质密度。此外,需要知道等离子体参数对产生浓度的影响。因此,研究了等离子体参数对生理液体中ROS和RNS水平的影响,以氩等离子体射流kINPen09为例,该产品与经认证的医疗产品kINPen®med非常相似。例如,分析了分子气体外加剂对原料气、处理距离、处理时间以及液体成分对不同活性氧或活性氮种类的影响。由于一些研究已经对亚硝酸盐、硝酸盐和过氧化氢等更稳定的物种进行了研究[3-5],重点放在了寿命较短的物种上:自由基,如羟基自由基(•OH)、超氧阴离子自由基(O2•-)或一氧化氮(•NO)。此外,还分析了单线态δ氧(1O2)或臭氧(O3)等高活性非自由基。众所周知,这些物质与生物医学应用相关[6],此外,它们也被认为是在初级以及次级和三级反应中对液体进行等离子体处理时产生的[5]。利用不同的自旋探针和自旋阱,利用电子顺磁共振波谱(EPR)对等离子体处理过程中产生的自由基和非自由基进行了检测。将EPR、比色法和离子色谱法测量结果与类似等离子体源的气相研究结果进行比较[7,8],以确定其来源和潜在的可调节性。
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Clinical Plasma Medicine
Clinical Plasma Medicine MEDICINE, RESEARCH & EXPERIMENTAL-
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