Singapore Institute of Manufacturing Technology (SIMTech) , A*STAR , 2 Fusionopolis Way , Innovis, Singapore 138634.
Department of Chemical Engineering and Biotechnology , University of Cambridge , Tennis Court Road , Cambridge CB2 1QT , United Kingdom.
ACS Sens. 2019 Feb 22;4(2):456-463. doi: 10.1021/acssensors.8b01470. Epub 2019 Jan 31.
Bioreactors have been used both to develop new, and to improve bioprocess yields for, biopharmaceutical products. However, efforts to miniaturize bioreactors, in order to save costs and accelerate process development times, have been limited by the lack of on-site monitoring capabilities available at such scales. In this study, small volume (3 nL) nonconsumptive holographic sensors were integrated into a glass-PDMS microfluidic chip to monitor via a blue-shift in the resultant holographic replay wavelength, the change in pH during microbial growth of Lactobacillus casei ( L. casei) Shirota. Within the optimal growth pH range of L. casei, the accuracy of the miniaturized pH sensors was comparable to that of a conventional pH meter. Conceivably, this approach could be extrapolated to an array of miniaturized holographic sensors sensitive to different analytes, and thereby paving the way for reliable, real-time, noninvasive monitoring of microorganisms in a nanobioreactor.
生物反应器已被用于开发新的生物制药产品,并提高生物工艺产量。然而,为了节省成本和加速工艺开发时间,将生物反应器小型化的努力受到了这种规模下可用的现场监测能力的限制。在这项研究中,小体积(3nL)非消耗性全息传感器被集成到玻璃-PDMS 微流控芯片中,通过全息重放波长的蓝移来监测在微生物生长过程中 pH 的变化。在 L. casei 的最佳生长 pH 范围内,小型化 pH 传感器的准确性可与传统 pH 计相媲美。可以想象,这种方法可以扩展到对不同分析物敏感的一系列小型化全息传感器,从而为在纳米生物反应器中可靠、实时、非侵入性地监测微生物铺平道路。