标题: | “固定化酵素动力参数量测平台”之模型建构与计算 A Systematic and Standardized Approach to Modeling and Measuring Immobilized Enzyme Kinetics |
作者: | 李政哲 Lee, Cheng-Che 杨裕雄 Yang, Yuh-Shyong 生物科技学系 |
关键字: | 固定化酵素;酵素动力学;微流体反应器;表面反应速率限制;immobilized enzyme;enzyme kinetics;microfluidic reactor;surface reaction limited |
公开日期: | 2008 |
摘要: | 有效整合top-down与bottom up制程技术于前瞻跨领域“奈米生医电子”至为关键;其中如何评估局部固定化在元件无机介面上生物分子的工作性能就显得十分重要,这些生物分子可以是DNA、RNA、蛋白质(特别是具有辨识与催化的酵素分子)。在先期测试中施以扫描电压于固定化酵素,虽然其活性调控的现象可以被清楚地观测到,然而却无法量测固定化酵素动力参数的即时改变趋势。因此,本研究团队在执行94年度奈米国家型科技计画学术卓越计画─“生化感测与仿生调控功能的奈米结构与生物分子混成系统之研究”时,也规划了生物调控器的研究子题;因应评估将酵素嵌入标准积体电路和微机电系统的平面化技术,我们着手开发了一套可靠合理的即时侦测与分析固定化酵素动力的量测平台。 在本研究中固定化于二氧化矽基材表面的酵素共有三株,它们分别是老鼠酚亚硫酸基转移酵素(E.C.2.8.2.1)、醯亚胺水解酵素(E.C.3.5.2.2)、假丝酵母菌脂肪分解酵素(E.C.3.1.1.3)。两项主要的贡献与理论特征是:(1)针对符合Michaelis-Menten动力学模式的酵素催化反应并考量质量传送效应,以系统化、标准化建立表面反应限制的模型用以量测固定化于平面基材的酵素视动力参数值 K*m 和 V*max;(2)根据上述数学模型建构标准流程化的实验操作方式,并对Michaelis-Menten参数估算提出新的线性图解法,其斜率即为视参数K*m值,且纵座标与横座标分别具有直观的物理意义─纵轴表示在两个极端基质浓度下反应产率的差值,横轴在低基质浓度下则近似于基质浓度;此图解法亦有利于数值分析求解。 我们以流道高度167微米的微流体反应器为实验平台,成功地量测了老鼠酚亚硫酸基转移酵素与假丝酵母菌脂肪分解酵素固定化在二氧化矽基材的及时视动力参数值 K*m 和 V*max;同时本研究也针对固定化酵素失活与基质溶解度限制的实务问题,提出对应的解决方法。整套量测系统将使我们有能力观察到电讯号调控固定化酵素活性的动力参数改变的量值,进而研究相应的调控机制。 How to efficiently combine top-down and bottom-up approaches has become essential in the interdisciplinary field of nano-bio-electronics. It is also important to be able to evaluate the performance of working bio-molecules, like DNA, RNA, proteins (especially for enzymes), immobilized and localized onto the surface of inorganic devices. Although a response of modulated activity was clearly observed via applying a voltage scan onto immobilized enzymes in previous pilot testing, there was no available scheme used to characterize the intrinsic properties of the immobilized enzymes and the corresponding effect of in-situ stresses for further analyzing the modulated mechanism. For developing “ An Artificial-Bio Hybrid Nano-System Capable of Sensing and Regulation,” a reliable and reasonable analysis of immobilized enzyme in situ became a crucial step to embed enzyme onto the planar technology of standard IC and MEMS for the bioregulator subprogram, which belonged to National Research Program for Nanoscience and Technology in the period 2005-2008. In this study, we have successfully immobilized three enzymes, rat-phenol-sulfotransferase (rat-PST, E.C. 2.8.2.1), D-hydantoinase (E.C. 3.5.2.2), and Candida rugosa lipase (CRL, E.C. 3.1.1.3) onto the silicon dioxide surface. The main contributions and theoretical characteristics should be: (1) A surface reaction limited model, based on systematic and standardized approach, mathematically derived from mass transfer dynamics and Michaelis-Menten equation for measuring apparent K*m and V*max of immobilized enzyme on planar surface was developed. (2) A new linear plot proposed with a slope K*m, of which axes containing straightforward, meaningful parameter groups - the difference in reaction yield between two extreme substrate levels (y-axis) versus the reaction conversion fraction (x-axis), is simple to apply either graphically or numerically. The K*m and V*max of rat-PST and CRL immobilized on silicon oxide surface were successfully determined in situ. The issues of enzyme inactivation during activity assays and limit of substrate solubility were both concerned in developing measurement approach in this study. Based on this platform, we will be able to make quantitative analysis of electric signal regulation on enzyme activity, and to study its related fundamental mechanisms. |
URI: | http://140.113.39.130/cdrfb3/record/nctu/#GT009228801 http://hdl.handle.net/11536/76952 |
显示于类别: | Thesis |
文件中的档案:
If it is a zip file, please download the file and unzip it, then open index.html in a browser to view the full text content.