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'Non-destructive' biocomputing security system based on gas-controlled biofuel cell and potentially used for intelligent medical diagnostics

机译:基于气体控制生物燃料电池的“无损”生物计算安全系统,可能用于智能医疗诊断

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Motivation: Biofuel cells (BFCs) based on enzymes and microbes are the promising future alternative sources of sustainable electrical energy under mild conditions (i.e. ambient temperature and neutral pH). By combining the adaptive behavior of BFCs self-regulating energy release with the versatility of biocomputing, we construct a novel gas-controlled biocomputing security system, which could be used as the potential implantable self-powered and 'smart' medical system with the logic diagnosis aim.Results: We have demonstrated a biocomputing security system based on BFCs. Due to the unique 'RESET' reagent of N-2 applied in this work, the prepared biocomputing security system can be reset and cycled for a large number of times with no 'RESET' reagent-based 'waste'. This would be advantageous for the potential practical applications of such keypad lock as well as the development of biocomputing security devices. In order to validate the universality of the system and also to harvest energy directly from biofuels with enhanced power output, we replace the glucose with orange juice as the biofuel to operate BFCs-based biocomputing system, which also possesses the function of keypad lock. In addition, by introducing BFCs into the biocomputing security system, the adaptive behavior of the BFCs self-regulating the power release would be an immense advantage of such security keypad lock devices in potential self-powered implantable medical systems.The designed sequence gives the maximum power output and discriminate itself from the rest of the sequences. From this, we find that maximizing the dimensionless ratio of gap versus SD of the power output spectrum (a funnel in power outputs) gives the quantitative optimal design criterion. Therefore, our construction here may also provide a practical example and microscopic structural basis for mimicking the real biological network systems and bridge the gaps between the theoretical concepts and experiments important for biomolecular systems and synthetic biology.
机译:动机:基于酶和微生物的生物燃料电池(BFC)是未来在温和条件下(即环境温度和中性pH)的可持续电能的有前途的替代能源。通过将BFCs自我调节能量释放的自适应行为与生物计算的多功能性相结合,我们构建了一种新型的气体控制生物计算安全系统,该系统可以用作具有逻辑诊断功能的潜在植入式自供电和“智能”医疗系统目标。结果:我们已经展示了一种基于BFC的生物计算安全系统。由于这项工作中使用了独特的N-2“重置”试剂,因此可以在不使用基于“重置”试剂的“废物”的情况下,对准备好的生物计算安全系统进行重置和循环多次。这对于这种键盘锁的潜在实际应用以及生物计算安全设备的开发将是有利的。为了验证系统的通用性并从具有更高输出功率的生物燃料中直接获取能量,我们用橙汁代替葡萄糖作为生物燃料来运行基于BFC的生物计算系统,该系统还具有键盘锁功能。此外,通过将BFC引入生物计算安全系统中,BFC自我调节功率释放的自适应行为将是这种安全键盘锁设备在潜在的自供电植入式医疗系统中的巨大优势。输出功率,并与其余序列区分开。由此,我们发现,使功率输出频谱(功率输出中的漏斗)的间隙与SD的无因次比最大化可提供定量的最佳设计准则。因此,我们在这里的构建也可能为模仿真实的生物网络系统提供实际的实例和微观结构基础,并弥合对生物分子系统和合成生物学重要的理论概念和实验之间的差距。

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