Glucose-Sensitive Biohybrid Roots for Supercapacitive Bioanodes.

IF 4.7 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-12-16 Epub Date: 2024-12-03 DOI:10.1021/acsabm.4c01425
Gwennaël Dufil, Julie Pham, Chiara Diacci, Yohann Daguerre, Daniele Mantione, Samia Zrig, Torgny Näsholm, Mary J Donahue, Vasileios K Oikonomou, Vincent Noël, Benoit Piro, Eleni Stavrinidou
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Abstract

Plants as living organisms, as well as their material-structural components and physiological processes, offer promising elements for developing more sustainable technologies. Previously, we demonstrated that plants could acquire electronic functionality, as their enzymatic activity catalyzes the in vivo polymerization of water-soluble conjugated oligomers. We then leveraged plant-integrated conductors to develop biohybrid energy storage devices and circuits. Here, we extend the concept of plant biohybrids to develop plant-based energy-harvesting devices. We demonstrate plant biohybrids with modified roots that can convert common root exudates, such as glucose, to electricity. To do so, we developed a simple one-step approach to convert living roots to glucose-sensitive electrodes by dipping the root in a solution of the conjugated trimer ETE-S and the enzyme glucose dehydrogenase flavin adenine dinucleotide. The biohybrid device responds to glucose concentrations down to 100 μM while it saturates at 100 mM. The performance of our approach was compared with a classic mediator-based glucose biosensor functionalization method. While the latter method increases the stability of the sensor, it results in less sensitivity and damages the root structure. Finally, we show that glucose oxidation can be combined with the volumetric capacitance of p(ETE-S)-forming devices that generate current in the presence of glucose and store it in the same biohybrid root electrodes. The plant biohybrid devices open a pathway to biologically integrated technology that finds application in low-power devices, for example, sensors for agriculture or the environment.

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用于超级电容生物阳极的葡萄糖敏感生物杂交根。
植物作为有生命的有机体,以及它们的物质结构成分和生理过程,为开发更可持续的技术提供了有希望的元素。之前,我们证明了植物可以获得电子功能,因为它们的酶活性催化水溶性共轭低聚物的体内聚合。然后,我们利用植物集成导体来开发生物混合储能设备和电路。在这里,我们将植物生物杂交的概念扩展到开发基于植物的能量收集装置。我们展示了具有改良根的植物生物杂交种,可以将普通根渗出物(如葡萄糖)转化为电能。为此,我们开发了一种简单的一步方法,通过将活根浸入共轭三聚体et -s和葡萄糖脱氢酶黄嘌呤二核苷酸的溶液中,将活根转化为葡萄糖敏感电极。该生物杂化装置对低至100 μM的葡萄糖浓度有响应,而在100 mM时达到饱和。我们的方法的性能与经典的基于介质的葡萄糖生物传感器功能化方法进行了比较。后一种方法虽然增加了传感器的稳定性,但灵敏度较低,并且会破坏根结构。最后,我们表明葡萄糖氧化可以与p(et - s)形成装置的体积电容相结合,该装置在葡萄糖存在的情况下产生电流并将其存储在相同的生物杂交根电极中。这种植物生物杂交装置为生物集成技术开辟了一条道路,可以应用于低功耗设备,例如农业或环境传感器。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
期刊介绍: ACS Applied Bio Materials is an interdisciplinary journal publishing original research covering all aspects of biomaterials and biointerfaces including and beyond the traditional biosensing, biomedical and therapeutic applications. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrates knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important bio applications. The journal is specifically interested in work that addresses the relationship between structure and function and assesses the stability and degradation of materials under relevant environmental and biological conditions.
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