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Multiplexing of injury codes for the parallel operation of enzyme logic gates

机译:酶代码逻辑门并行操作的伤害代码复用

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摘要

The development of a highly parallel enzyme logic sensing concept employing a novel encoding scheme for the determination of multiple pathophysiological conditions is reported. The new concept multiplexes a contingent of enzyme -based logic gates to yield a distinct ‘injury code’ corresponding to a unique pathophysiological state as prescribed by a truth table. The new concept is illustrated using an array of NAND and AND gates to assess the biomedical significance of numerous biomarker inputs including creatine kinase , lactate dehydrogenase , norepinephrine, glutamate, alanine transaminase, lactate, glucose, glutathione disulfide, and glutathione reductase to assess soft-tissue injury, traumatic brain injury, liver injury, abdominal trauma, hemorrhagic shock, and oxidative stress. Under the optimal conditions, physiological and pathological levels of these biomarkers were detected through either optical or electrochemical techniques by monitoring the level of the outputs generated by each of the six logic gates. By establishing a pathologically meaningful threshold for each logic gate, the absorbance and amperometric assays tendered the diagnosis in a digitally encoded 6-bit word, defined as an ‘injury code’. This binary ‘injury code’ enabled the effective discrimination of 64 unique pathological conditions to offer a comprehensive high-fidelity diagnosis of multiple injury conditions. Such processing of relevant biomarker inputs and the subsequent multiplexing of the logic gate outputs to yield a comprehensive ‘injury code’ offer significant potential for the rapid and reliable assessment of varied and complex forms of injury in circumstances where access to a clinical laboratory is not viable. While the new concept of parallel and multiplexed enzyme logic gates is illustrated here in connection to multi-injury diagnosis, it could be readily extended to a wide range of practical medical, industrial, security and environmental applications.
机译:报告了高度并行的酶逻辑传感概念的发展,该概念采用新颖的编码方案来确定多种病理生理状况。新概念将多种基于酶的逻辑门进行复用,以产生与真值表所规定的独特病理生理状态相对应的独特“伤害代码”。使用一系列NAND和AND门评估了许多生物标志物输入的生物医学意义,包括肌酸激酶,乳酸脱氢酶,去甲肾上腺素,谷氨酸,丙氨酸转氨酶,乳酸,葡萄糖,谷胱甘肽二硫化物和谷胱甘肽还原酶对新概念进行了说明。组织损伤,脑外伤,肝损伤,腹部外伤,失血性休克和氧化应激。在最佳条件下,通过监测六个逻辑门各自产生的输出水平,通过光学或电化学技术检测这些生物标志物的生理和病理水平。通过为每个逻辑门建立病理学上有意义的阈值,吸光度和电流分析法将诊断结果以数字编码的6位字(定义为“伤害代码”)进行诊断。这种二进制的“伤害代码”可以有效区分64种独特的病理状况,从而为多种伤害状况提供全面的高保真诊断。对相关生物标记物输入的这种处理以及随后的逻辑门输出的多路复用以产生全面的“伤害代码”,为在无法进入临床实验室的情况下快速可靠地评估各种复杂形式的伤害提供了巨大潜力。 。虽然在此说明了与多重伤害诊断相关的并行和多重酶逻辑门的新概念,但它可以很容易地扩展到广泛的实际医疗,工业,安全和环境应用中。

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