Folding within Frameworks: Confinement in Zr-MOFs Reshapes Enzyme Structure and Catalytic Activity

化学 生物物理学 蛋白质折叠 离子强度 酶催化 蛋白质结构 吸附 蛋白质吸附 催化作用 蛋白酶 蛋白质功能 离子键合 蛋白质工程 折叠(DSP实现) 催化效率 蛋白质-蛋白质相互作用 原位 功能(生物学) 生物化学 活动站点 蛋白质设计 化学物理 静电学 蛋白质聚集 合理设计 球状蛋白 红外光谱学
作者
Siene Swinnen,Maxim Lox,Marika Di Berto Mancini,Kilian Declerck,Francisco de Azambuja,Tatjana N. Parac‐Vogt,Bettina Baumgartner
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
标识
DOI:10.1021/jacs.6c11124
摘要

Abstract Enhancing the robustness of functional proteins remains a central challenge in biotechnology, with implications for catalysis, pharmaceuticals, and industrial synthesis. Enzyme immobilization in porous materials such as metal–organic frameworks (MOFs) is widely used to enhance enzyme stability; however, the structural state of proteins within these environments is poorly understood and is often assumed to remain largely unchanged. Since enzyme functionality is closely linked to its 3D conformation, the lack of detailed structural information makes the design of enzyme@porous systems largely empirical. In this work, we demonstrate that in situ attenuated total reflectance infrared spectroscopy is a powerful tool for monitoring protein adsorption and confinement in the Zr-based MOF NU-1000. By tracking characteristic amide bands, we monitor changes in protein vibrational signatures that reflect alterations in protein structure and local environment during interaction with the framework. Our results reveal that MOFs are not passive hosts but can induce pronounced perturbations in the protein structure upon adsorption and confinement. We identified a framework-sensitive spectroscopic signature associated with protein uptake into the MOF pore environment and support this assignment through uptake kinetics, diffusion analysis, pore-size controls, and protease accessibility experiments. Protein uptake is governed not only by size compatibility but also by electrostatic interactions, ionic strength, and protein conformational state. Importantly, these immobilization- and confinement-associated structural perturbations correlate with changes in catalytic activity: enhanced catalytic activity for dynamically perturbed proteins and reduced activity for structurally constrained systems. These findings support a relationship between protein–MOF interactions, structural perturbation, and enzymatic function and provide guidelines for tuning protein behavior in MOF-based biocatalysis, separations, and sensing applications.
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