Department of Chemistry, Beckman Institute for Advanced Science and Technology, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, USA.
Angew Chem Int Ed Engl. 2018 Jul 26;57(31):9702-9706. doi: 10.1002/anie.201804292. Epub 2018 Jul 9.
It is recognized that biocomputing can provide intelligent solutions to complex biosensing projects. However, it remains challenging to transform biomolecular logic gates into convenient, portable, resettable and quantitative sensing systems for point-of-care (POC) diagnostics in a low-resource setting. To overcome these limitations, the first design of biocomputing on personal glucose meters (PGMs) is reported, which utilizes glucose and the reduced form of nicotinamide adenine dinucleotide as signal outputs, DNAzymes and protein enzymes as building blocks, and demonstrates a general platform for installing logic-gate responses (YES, NOT, INHIBIT, NOR, NAND, and OR) to a variety of biological species, such as cations (Na ), anions (citrate), organic metabolites (adenosine diphosphate and adenosine triphosphate) and enzymes (pyruvate kinase, alkaline phosphatase, and alcohol dehydrogenases). A concatenated logical gate platform that is resettable is also demonstrated. The system is highly modular and can be generally applied to POC diagnostics of many diseases, such as hyponatremia, hypernatremia, and hemolytic anemia. In addition to broadening the clinical applications of the PGM, the method reported opens a new avenue in biomolecular logic gates for the development of intelligent POC devices for on-site applications.
人们认识到,生物计算可以为复杂的生物传感项目提供智能解决方案。然而,将生物分子逻辑门转化为用于在低资源环境中进行即时(POC)诊断的方便、便携、可重置和定量传感系统仍然具有挑战性。为了克服这些限制,首次在个人血糖仪(PGM)上设计了生物计算,该设计利用葡萄糖和烟酰胺腺嘌呤二核苷酸的还原形式作为信号输出,DNA 酶和蛋白质酶作为构建块,并展示了一个通用平台,可将逻辑门响应(是、否、抑制、或非、与非和或)安装到各种生物物种,如阳离子(Na+)、阴离子(柠檬酸盐)、有机代谢物(二磷酸腺苷和三磷酸腺苷)和酶(丙酮酸激酶、碱性磷酸酶和醇脱氢酶)上。还展示了可重置的串联逻辑门平台。该系统具有高度的模块化,可以广泛应用于许多疾病的即时诊断,如低钠血症、高钠血症和溶血性贫血。除了拓宽 PGM 的临床应用外,所报道的方法还为现场应用的智能即时诊断设备的生物分子逻辑门的发展开辟了新途径。