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LED Excitation and Photomultiplier Tube Biasing and Gating Circuitry for Fluorescence Instrumentation

机译:用于荧光仪器的LED激励和光电倍增管偏置和门控电路

摘要

Fluorescence technologies have only begun exploiting the transient recording of lifetime-based signals and images for low nanosecond lifetimes, but the method has tremendous potential for scientific and medical applications. Low nanosecond lifetime recording in real-time can enable the tracking of metabolite concentrations in cells and tissues (e.g. cancerous tissues) without introducing foreign substances. It will also enable the tracking of reactive species (e.g. ozone) and intermediate/short-lived states in chemical reactions in the atmosphere. Current techniques all employ laser excitation, but LEDs can also be used which cause considerably less damage to live tissue. We have developed a high speed fluorescence prototype using high intensity LED pulses and novel PMT gating technology. Precision timing circuitry generates tunable width pulse signals which are driven through the LED using a comparator-based push-pull architecture. The timing circuitry also generates PMT gating pulses which are applied to the dynode chain via high voltage operational amplifiers. LED pulses with fall times (99%) as short as 2ns and PMT gating times (10% to 90%) of 3.6ns have been achieved. The prototype has been used to successfully measure the fluorescent lifetimes of Alexa Fluor 610X dye (1.7ns and 4.7ns) and riboflavin (4.5ns). Lifetimes of acridine orange were measured as follows: alone (2ns), in solution with ssDNA (3.7ns), in solution with dsDNA (5.8ns), and in solution with dsRNA (5.9ns). Finally, dsRNA was heated and allowed to cool revealing lifetimes that started at 3.7ns when hot and increased to nearly 5ns when cool.
机译:荧光技术才刚刚开始利用基于生命的信号和图像的瞬态记录来实现低纳秒寿命,但是该方法在科学和医学应用中具有巨大的潜力。实时的低纳秒寿命记录可以跟踪细胞和组织(例如癌组织)中的代谢物浓度,而不会引入异物。它还将能够跟踪大气中化学反应中的反应性物种(例如臭氧)和中间/短寿命状态。当前的技术都采用激光激发,但是也可以使用LED,其对活组织的损害要小得多。我们已经开发出了使用高强度LED脉冲和新颖的PMT门控技术的高速荧光原型。精密定时电路生成可调宽度的脉冲信号,并使用基于比较器的推挽式架构通过LED驱动。定时电路还生成PMT门控脉冲,该脉冲通过高压运算放大器施加到倍增极链上。 LED脉冲的下降时间(99%)短至2ns,PMT门控时间(10%至90%)为3.6ns。该原型已成功用于测量Alexa Fluor 610X染料(1.7ns和4.7ns)和核黄素(4.5ns)的荧光寿命。 cr啶橙的寿命测量如下:单独(2ns),在ssDNA溶液中(3.7ns),在dsDNA溶液中(5.8ns),在dsRNA溶液中(5.9ns)。最后,将dsRNA加热并冷却以显示其寿命,该寿命从热时开始于3.7ns,冷却时延长至近5ns。

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    Fairbanks Jerrie Vincent;

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  • 年度 2015
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