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Charaterization Of A Plasma Source Used To Accelerate Wound Healing Of The Tadpole Xenopus Laevis

机译:用于加速X爪蟾伤口愈合的等离子源的表征

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. The indirect application of the plasma to the amputated tail of the tadpole produced a faster rate of growth, elevated reactive oxygen species in the cellular structures, and an increase in antioxidant enzymes in the regenerate compared to that of the untreated control. The plasma exposure accelerated the dynamics of the wound healing and tail regeneration through its effects on cell proliferation and differentiation, as well as, angiogenesis mediated through reactive oxygen signaling. The discharge source operated with high purity Helium gas at a flow rate of 50sccm that passed through a ¼” quartz tube. A copper electrode was attached to the outer surface of the tube at a point 5.0cm from the end of the tube. Attached to the electrode was an AC power supply operating at 32kHz and 12kV. The system was operated in a regime such that the discharge was restricted to the flow region between the electrode and the exit aperture of the tube. The profiles of the emissions features were measured using a high-resolution spectrometer coupled to an CCD detector. The spectra indicated that molecular nitrogen was present within the tube in both the neutral and ionized states. OH emissions, in the wavelength region between 300-315nm, were observed inside the tube and extending outside of the quartz tube. The emission profile of the Second Positive Systems was used to calculate the vibrational temperature and it was found to be 375±50K. The rotational temperature was determined from a fitting of the Second Positive System transition at 337nm to a Boltzmann distribution and it was found to be 375±50K. The current was measured by monitoring the ground connection from a metal plate that was placed adjacent to the exit aperture of the quartz tube using a current transformer. When the system was powered without a plasma the signal consisted of a sinusoidal wave having an amplitude of less than 0.5mA at a frequency that matched the driving voltage (32kHz). When the plasma was “on” the signal consisted of an additional component superimposed on the sinusoidal wave. The additional component was a short duration (1 μs) positive current pulse (0.75mA) that appeared approximately at the time the high voltage reached its maximum value. The height of this current pulse decreased with distance from the exit aperture of the quartz tube.
机译:。与未处理的对照组相比,将血浆间接施加到the的截肢尾部可产生更快的生长速度,细胞结构中活性氧的增加以及再生物中抗氧化酶的增加。血浆暴露通过其对细胞增殖和分化以及通过活性氧信号传导介导的血管生成的作用,加速了伤口愈合和尾巴再生的动力学。放电源使用高纯度氦气,流量为50sccm,并通过1/4英寸石英管。铜电极在距管子末端5.0厘米处连接到管子的外表面。连接到电极的是一个以32kHz和12kV运行的交流电源。该系统以这样的方式操作:将放电限制在电极和管的出口之间的流动区域。使用耦合到CCD检测器的高分辨率光谱仪测量发射特征的轮廓。光谱表明,分子氮以中性和离子化状态存在于试管中。在灯管内部观察到了在300-315nm波长范围内的OH辐射,并向石英管的外部延伸。第二正系统的发射曲线用于计算振动温度,发现为375±50K。旋转温度是根据337nm处第二正系统跃迁与Boltzmann分布的拟合确定的,发现为375±50K。通过使用电流互感器监测来自一块金属板的接地连接来测量电流,该金属板与石英管的出口孔相邻放置。在没有等离子体的情况下为系统供电时,信号由振幅小于0.5mA的正弦波组成,其频率与驱动电压(32kHz)相匹配。当等离子体“打开”时,信号由叠加在正弦波上的附加分量组成。附加组件是持续时间短(1μs)的正电流脉冲(0.75mA),大约在高电压达到最大值时出现。该电流脉冲的高度随着距石英管出口孔的距离而减小。

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