Choi Gihoon, Hassett Daniel J, Choi Seokheun
Bioelectronics & Microsystems Laboratory, Department of Electrical & Computer Engineering, State University of New York-Binghamton, Binghamton, NY 13902, USA.
Analyst. 2015 Jun 21;140(12):4277-83. doi: 10.1039/c5an00492f. Epub 2015 May 5.
There is a large global effort to improve microbial fuel cell (MFC) techniques and advance their translational potential toward practical, real-world applications. Significant boosts in MFC performance can be achieved with the development of new techniques in synthetic biology that can regulate microbial metabolic pathways or control their gene expression. For these new directions, a high-throughput and rapid screening tool for microbial biopower production is needed. In this work, a 48-well, paper-based sensing platform was developed for the high-throughput and rapid characterization of the electricity-producing capability of microbes. 48 spatially distinct wells of a sensor array were prepared by patterning 48 hydrophilic reservoirs on paper with hydrophobic wax boundaries. This paper-based platform exploited the ability of paper to quickly wick fluid and promoted bacterial attachment to the anode pads, resulting in instant current generation upon loading of the bacterial inoculum. We validated the utility of our MFC array by studying how strategic genetic modifications impacted the electrochemical activity of various Pseudomonas aeruginosa mutant strains. Within just 20 minutes, we successfully determined the electricity generation capacity of eight isogenic mutants of P. aeruginosa. These efforts demonstrate that our MFC array displays highly comparable performance characteristics and identifies genes in P. aeruginosa that can trigger a higher power density.
全球正在付出巨大努力来改进微生物燃料电池(MFC)技术,并提升其向实际现实应用转化的潜力。通过合成生物学新技术的发展,能够调节微生物代谢途径或控制其基因表达,从而显著提高MFC的性能。对于这些新方向,需要一种用于微生物生物发电的高通量快速筛选工具。在这项工作中,开发了一种48孔纸质传感平台,用于高通量快速表征微生物的发电能力。通过在纸上用疏水蜡边界图案化48个亲水性储液器,制备了传感器阵列的48个空间上不同的孔。这种基于纸的平台利用了纸快速吸收液体的能力,并促进细菌附着到阳极垫上,在加载细菌接种物时立即产生电流。我们通过研究策略性基因修饰如何影响各种铜绿假单胞菌突变株的电化学活性,验证了我们的MFC阵列的实用性。在短短20分钟内,我们成功测定了铜绿假单胞菌的八个同基因突变体的发电能力。这些成果表明,我们的MFC阵列具有高度可比的性能特征,并能识别出铜绿假单胞菌中可引发更高功率密度的基因。