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Development of a thiol-ene based screening platform for enzyme immobilization demonstrated using horseradish peroxidase

机译:使用辣根过氧化物酶证明了用于酶固定的基于硫醇烯的筛选平台的开发

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摘要

Efficient immobilization of enzymes on support surfaces requires an exact match between the surface chemistry and the specific enzyme. A successful match would normally be identified through time consuming screening of conventional resins in multiple experiments testing individual immobilization strategies. In this study we present a versatile strategy that largely expands the number of possible surface functionalities for enzyme immobilization in a single, generic platform. The combination of many individual surface chemistries and thus immobilization methods in one modular system permits faster and more efficient screening, which we believe will result in a higher chance of discovery of optimal surface/enzyme interactions. The proposed system consists of a thiol-functional microplate prepared through fast photochemical curing of an off-stoichiometric thiol-ene (OSTE) mixture. Surface functionalization by thiol-ene chemistry (TEC) resulted in the formation of a functional monolayer in each well, whereas, polymer surface grafts were introduced through surface chain transfer free radical polymerization (SCT-FRP). Enzyme immobilization on the modified surfaces was evaluated by using a rhodamine labeled horseradish peroxidase (Rho-HRP) as a model enzyme, and the amount of immobilized enzyme was qualitatively assessed by fluorescence intensity (FI) measurements. Subsequently, Rho-HRP activity was measured directly on the surface. The broad range of utilized surface chemistries permits direct correlation of enzymatic activity to the surface functionality and improves the determination of promising enzyme-surface candidates. The results underline the high potential of this system as a screening platform for synergistic immobilization of enzymes onto thiol-ene polymer surfaces. This article is protected by copyright. All rights reserved.
机译:将酶有效地固定在支持物表面上需要在表面化学性质和特定酶之间精确匹配。通常,通过在测试单个固定策略的多个实验中对常规树脂进行耗时的筛选,才能确定成功的匹配。在这项研究中,我们提出了一种通用的策略,该策略大大扩展了在单个通用平台上固定酶的可能表面功能的数量。许多单独的表面化学方法以及固定方法在一个模块系统中的组合可以实现更快,更有效的筛选,我们相信这将导致发现最佳表面/酶相互作用的机会更高。拟议的系统由巯基功能的微孔板组成,该酶板通过化学计量外的硫醇-烯(OSTE)混合物的快速光化学固化制备。通过硫醇-烯化学(TEC)进行的表面功能化导致在每个孔中形成功能性单层,而通过表面链转移自由基聚合(SCT-FRP)引入了聚合物表面接枝。通过使用罗丹明标记的辣根过氧化物酶(Rho-HRP)作为模型酶来评估修饰表面上的酶固定化,并通过荧光强度(FI)测量定性评估固定化酶的量。随后,直接在表面上测量Rho-HRP活性。广泛使用的表面化学性质允许酶活性与表面功能性直接相关,并改善了有前途的酶表面候选物的测定。结果强调了该系统作为将酶协同固定在硫醇-烯聚合物表面上的筛选平台的巨大潜力。本文受版权保护。版权所有。

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