Badugu Ramachandram, Kostov Yordan, Rao Govind, Tolosa Leah
Center for Advanced Sensor Technology, Dept. of Chemical and Biochemical Engineering, University of Maryland Baltimore County, Baltimore, MD 21250, USA.
Biotechnol Prog. 2008 Nov-Dec;24(6):1393-401. doi: 10.1002/btpr.66.
The development of a fluorescent excitation ratiometric pH sensor (AHQ-PEG) using a novel allylhydroxyquinolinium (AHQ) derivative copolymerized with polyethylene glycol dimethacrylate (PEG) is described. The AHQ-PEG sensor film is shown to be suitable for real-time, noninvasive, continuous, online pH monitoring of bioprocesses. Optical ratiometric measurements are generally more reliable, robust, inexpensive, and insensitive to experimental errors such as fluctuations in the source intensity and fluorophore photobleaching. The sensor AHQ-PEG in deionized water was shown to exhibit two excitation maxima at 375 and 425 nm with a single emission peak at 520 nm. Excitation spectra of AHQ-PEG show a decrease in emission at the 360 nm excitation and an increase at the 420 nm excitation with increasing pH. Accordingly, the ratio of emission at 420:360 nm excitation showed a maximum change between pH 5 and 8 with an apparent pK(a) of 6.40. The low pK(a) value is suitable for monitoring the fermentation of most industrially important microorganisms. Additionally, the AHQ-PEG sensor was shown to have minimal sensitivity to ionic strength and temperature. Because AHQ is covalently attached to PEG, the film shows no probe leaching and is sterilizable by steam and alcohol. It shows rapid (approximately 2 min) and reversible response to pH over many cycles without any photobleaching. Subsequently, the AHQ-PEG sensor film was tested for its suitability in monitoring the pH of S. cereviseae (yeast) fermentation. The observed pH using AHQ-PEG film is in agreement with a conventional glass pH electrode. However, unlike the glass electrode, the present sensor is easily adaptable to noninvasive monitoring of sterilized, closed bioprocess environments without the awkward wire connections that electrodes require. In addition, the AHQ-PEG sensor is easily miniaturized to fit in microwell plates and microbioreactors for high-throughput cell culture applications.
本文描述了一种荧光激发比率型pH传感器(AHQ-PEG)的研发,该传感器采用了一种新型烯丙基羟基喹啉鎓(AHQ)衍生物与聚乙二醇二甲基丙烯酸酯(PEG)共聚而成。结果表明,AHQ-PEG传感器薄膜适用于生物过程的实时、无创、连续、在线pH监测。光学比率测量通常更可靠、稳健、廉价,并且对诸如光源强度波动和荧光团光漂白等实验误差不敏感。结果表明,去离子水中的传感器AHQ-PEG在375和425nm处有两个激发最大值,在520nm处有一个发射峰。AHQ-PEG的激发光谱显示,随着pH值升高,在360nm激发下发射减少,在420nm激发下发射增加。因此,420:360nm激发下的发射比率在pH 5至8之间变化最大,表观pK(a)为6.40。低pK(a)值适用于监测大多数工业上重要微生物的发酵过程。此外,AHQ-PEG传感器对离子强度和温度的敏感性极小。由于AHQ与PEG共价连接,该薄膜未出现探针渗漏现象,并且可通过蒸汽和酒精进行消毒。它在多个循环中对pH显示出快速(约2分钟)且可逆的响应,且无任何光漂白现象。随后,对AHQ-PEG传感器薄膜在监测酿酒酵母(酵母)发酵pH值方面的适用性进行了测试。使用AHQ-PEG薄膜观察到的pH值与传统玻璃pH电极一致。然而,与玻璃电极不同的是,本传感器易于适应对无菌、封闭生物过程环境的无创监测,无需电极所需的笨拙电线连接。此外,AHQ-PEG传感器易于小型化,以适合微孔板和微生物反应器用于高通量细胞培养应用。