Sharifi Amir Reza, Mazzaracchio Vincenzo, Duranti Leonardo, Gullo Ludovica, Brannetti Simone, Peyravian Mohammad, Kiani Mohammad Ali, Arduini Fabiana
Chemistry and Chemical Engineering Research Center of Iran, Tehran 14335-186, Iran.
Department of Chemical Science and Technologies, University of Rome Tor Vergata, Via della Ricerca Scientifica 1, Rome 00133, Italy.
ACS Sens. 2024 Dec 27;9(12):6542-6552. doi: 10.1021/acssensors.4c02000. Epub 2024 Dec 12.
The frequent and excessive use of organophosphorus pesticides in the agriculture industry raises persistent concerns regarding their environmental protection and public health implications. Addressing these issues requires the development of affordable and reliable sensing platforms for on-field monitoring to mitigate their adverse impacts promptly. This study utilizes nanocellulose papers (bacterial and TEMPO-oxidized) combined with butyrylcholinesterase to create a novel reagent-free and orthogonal nanobioplatform featuring smart opto-electrochemical dual outputs. An integrated nano-PAD, preloaded with enzymes and enzymatic substrates, is fabricated using wax-printing and screen-printing technologies. The nano-PAD measures opto-electroactive products, specifically indoxyl and thiocholine, whose concentrations correlate directly with the enzymatic inhibition caused by paraoxon, used as the organophosphate model. To enhance user convenience and meet the requirements for smart real-time point-of-need detection, integration of the nano-PAD with a smartphone-operated miniaturized potentiostat and a self-developed portable smart optical reader is achieved. The developed bioanalytical platform, further supported by a self-developed Android application, enables accurate and efficient quantification of dual signals in real time. The system covers a wide detection range of paraoxon (20-100 ppb) and demonstrates reliable recovery levels (ranging from 98 to 107%) in a real matrix, specifically wastewater. Given these demonstrated capabilities, this innovative biosensing strategy holds substantial potential for practical application in environmental surveillance, facilitating timely and informed environmental management decisions, particularly in resource-limited settings where traditional analytical tools are inaccessible.
农业行业频繁且过量使用有机磷农药引发了人们对其环境保护和公共卫生影响的持续担忧。解决这些问题需要开发经济实惠且可靠的传感平台用于现场监测,以便迅速减轻其不利影响。本研究利用纳米纤维素纸(细菌纳米纤维素和TEMPO氧化纳米纤维素)与丁酰胆碱酯酶相结合,创建了一种新型的无试剂且正交的纳米生物平台,该平台具有智能光电化学双输出功能。使用蜡印和丝网印刷技术制作了一种预先装载酶和酶底物的集成纳米PAD。该纳米PAD可测量光电活性产物,特别是吲哚酚和硫代胆碱,其浓度与对氧磷(用作有机磷模型)引起的酶抑制直接相关。为了提高用户便利性并满足智能实时即时检测的要求,实现了纳米PAD与智能手机操作的微型恒电位仪以及自行开发的便携式智能光学阅读器的集成。所开发的生物分析平台在自行开发的安卓应用程序的进一步支持下,能够实时准确高效地对双信号进行定量。该系统对氧磷的检测范围很广(20 - 100 ppb),并且在实际基质(特别是废水)中显示出可靠的回收率(范围为98%至107%)。鉴于这些已证明的能力,这种创新的生物传感策略在环境监测的实际应用中具有巨大潜力,有助于及时做出明智的环境管理决策,特别是在无法使用传统分析工具的资源有限的环境中。