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Hydrolytic enzymes conjugated to quantum dots mostly retain whole catalytic activity

机译:与量子点结合的水解酶大部分保留了整个催化活性

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Background Tagging a luminescent quantum dot (QD) with a biological like enzyme (Enz) creates value-added entities like quantum dot-enzyme bioconjugates (QDEnzBio) that find utility as sensors to detect glucose or beacons to track enzymes in vivo. For such applications, it is imperative that the enzyme remains catalytically active while the quantum dot is luminescent in the bioconjugate. A critical feature that dictates this is the quantum dot-enzyme linkage chemistry. Previously such linkages have put constraints on polypeptide chain dynamics or hindered substrate diffusion to active site, seriously undermining enzyme catalytic activity. In this work we address this issue using avidin-biotin linkage chemistry together with a flexible spacer to conjugate enzyme to quantum dot. Methods The catalytic activity of three biotinylated hydrolytic enzymes, namely, hen egg white lysozyme (HEWL), alkaline phosphatase (ALP) and acetylcholinesterase (AChE) was investigated post-conjugation to streptavidin linked quantum dot for multiple substrate concentrations and varying degrees of biotinylation. Results We demonstrate that all enzymes retain full catalytic activity in the quantum dot-enzyme bioconjugates in comparison to biotinylated enzyme alone. However, unlike alkaline phosphatase and acetylcholinesterase, the catalytic activity of hen egg white lysozyme was observed to be increasingly susceptible to ionic strength of medium with rising level of biotinylation. This susceptibility was attributed to arise from depletion of positive charge from lysine amino groups after biotinylation. Conclusions We reasoned that avidin-biotin linkage in the presence of a flexible seven atom spacer between biotin and enzyme poses no constraints to enzyme structure/dynamics enabling retention of full enzyme activity. General significance Overall our results demonstrate for the first time that streptavidin-biotin chemistry can yield quantum dot enzyme bioconjugates that retain full catalytic activity as native enzyme.
机译:背景技术用生物类似酶(Enz)标记发光量子点(QD)会创建增值实体,例如量子点-酶生物共轭物(QDEnzBio),它们可作为传感器来检测葡萄糖或信标以在体内追踪酶。对于此类应用,当量子点在生物结合物中发光时,酶必须保持催化活性。决定这一点的关键特征是量子点-酶连接化学。以前,这样的连接已经限制了多肽链动力学或阻碍了底物向活性位点的扩散,从而严重破坏了酶的催化活性。在这项工作中,我们使用抗生物素蛋白-生物素键合化学以及灵活的间隔子将酶缀合到量子点上,从而解决了这个问题。方法研究了与链霉亲和素连接的量子点缀合后的三种生物素化水解酶(鸡蛋清溶菌酶(HEWL),碱性磷酸酶(ALP)和乙酰胆碱酯酶(AChE))的催化活性,以了解多种底物浓度和不同程度的生物素化程度。结果我们证明,与单独的生物素化酶相比,所有酶在量子点酶生物共轭物中均保留全部催化活性。但是,与碱性磷酸酶和乙酰胆碱酯酶不同,随着生物素化水平的提高,蛋清溶菌酶的催化活性越来越容易受到培养基离子强度的影响。这种敏感性归因于生物素化后赖氨酸氨基的正电荷耗竭。结论我们认为,在生物素和酶之间存在灵活的7原子间隔基的情况下,抗生物素蛋白与生物素的连接对酶的结构/动力学没有任何限制,可以保留完整的酶活性。一般意义总的来说,我们的结果首次证明链霉亲和素-生物素化学可以产生量子点酶生物结合物,该结合物保留了作为天然酶的全部催化活性。

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