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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Probing the transport of plasma-generated RONS in an agarose target as surrogate for real tissue: dependency on time, distance and material composition
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Probing the transport of plasma-generated RONS in an agarose target as surrogate for real tissue: dependency on time, distance and material composition

机译:探测血浆产生的RONS在琼脂糖靶中作为真实组织的替代物的运输:取决于时间,距离和材料成分

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摘要

We report a simple experimental approach to follow the transport of helium (He) plasma-generated reactive oxygen and nitrogen species (RONS) through millimetre thick agarose targets. These RONS may be either primary RONS, generated directly by the plasma jet, or secondary RONS generated for example at the surface of, or within, the material. Our experiment involves placing an agarose film over a quartz cuvette filled with deionized water. The agarose film is exposed to a He plasma jet and the UV absorption profile (of the deionized water) is recorded in real-time. Plasma exposure time, source-target distance and agarose film thickness and composition are varied to explore their effects on the depth of RONS delivery by the plasma jet. We conclude that plasma UV plays a minor role in the transport of RONS; whereas direct plasma contact and the He gas flow promote the transport of RONS into tissue. Our data indicate an accumulation of RONS within the agarose film (during plasma exposure) and a subsequent (time-lagged) release into the deionized water. Our approach can be readily adapted to other plasma sources; it can accommodate more complex biological materials, and has the potential to provide new insights into plasma-induced phenomena within real tissues.
机译:我们报告了一个简单的实验方法,以跟踪通过毫米厚的琼脂糖靶标运输氦(He)等离子体产生的反应性氧和氮物质(RONS)。这些RONS可以是直接由等离子流生成的初级RONS,也可以是例如在材料表面或内部生成的次级RONS。我们的实验包括将琼脂糖膜放在充满去离子水的石英比色皿上。将琼脂糖膜暴露于He等离子流,并实时记录(去离子水的)UV吸收曲线。改变血浆暴露时间,源到靶的距离以及琼脂糖膜的厚度和组成,以探讨它们对血浆喷射对RONS输送深度的影响。我们得出结论,血浆紫外线在RONS的运输中起次要作用。而直接的血浆接触和He气流促进RONS进入组织。我们的数据表明RONS在琼脂糖膜中的积累(在血浆暴露期间)以及随后的(时滞)释放到去离子水中。我们的方法可以很容易地适应其他等离子体源。它可以容纳更复杂的生物材料,并有潜力为真实组织中血浆诱导的现象提供新的见解。

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