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Energy Landscape of Alginate-Epimerase Interactions Assessed by Optical Tweezers and Atomic Force Microscopy

机译:镊子和原子力显微镜评估的藻酸盐-表异构酶相互作用的能级图

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摘要

Mannuronan C-5 epimerases are a family of enzymes that catalyze epimerization of alginates at the polymer level. This group of enzymes thus enables the tailor-making of various alginate residue sequences to attain various functional properties, e.g. viscosity, gelation and ion binding. Here, the interactions between epimerases AlgE4 and AlgE6 and alginate substrates as well as epimerization products were determined. The interactions of the various epimerase–polysaccharide pairs were determined over an extended range of force loading rates by the combined use of optical tweezers and atomic force microscopy. When studying systems that in nature are not subjected to external forces the access to observations obtained at low loading rates, as provided by optical tweezers, is a great advantage since the low loading rate region for these systems reflect the properties of the rate limiting energy barrier. The AlgE epimerases have a modular structure comprising both A and R modules, and the role of each of these modules in the epimerization process were examined through studies of the A- module of AlgE6, AlgE6A. Dynamic strength spectra obtained through combination of atomic force microscopy and the optical tweezers revealed the existence of two energy barriers in the alginate-epimerase complexes, of which one was not revealed in previous AFM based studies of these complexes. Furthermore, based on these spectra estimates of the locations of energy transition states (x β), lifetimes in the absence of external perturbation (τ 0) and free energies (ΔG #) were determined for the different epimerase–alginate complexes. This is the first determination of ΔG # for these complexes. The values determined were up to 8 kBT for the outer barrier, and smaller values for the inner barriers. The size of the free energies determined are consistent with the interpretation that the enzyme and substrate are thus not tightly locked at all times but are able to relocate. Together with the observed different affinities determined for AlgE4-polymannuronic acid (poly-M) and AlgE4-polyalternating alginate (poly-MG) macromolecular pairs these data give important contribution to the growing understanding of the mechanisms underlying the processive mode of these enzymes.
机译:曼努罗南C-5差向异构酶是在聚合物水平上催化藻酸盐差向异构化的酶家族。因此,这组酶使得能够定制各种藻酸盐残基序列以获得各种功能特性,例如氨基酸序列。粘度,凝胶化和离子结合。在这里,确定了差向异构酶AlgE4和AlgE6与藻酸盐底物以及差向异构化产物之间的相互作用。通过结合使用光镊和原子力显微镜,在扩展的力加载速率范围内确定了各种差向异构酶-多糖对的相互作用。当研究本质上不受外力作用的系统时,使用光镊提供的以低负载率获得的观测值是一个巨大的优势,因为这些系统的低负载率区域反映了速率限制能垒的特性。 。 AlgE差向异构酶具有包含A和R模块的模块结构,并且通过研究AlgE6,AlgE6A的A-模块检查了这些模块在差向异构化过程中的作用。通过原子力显微镜和光学镊子组合获得的动态强度光谱揭示了藻酸盐-表异构酶复合物中存在两个能垒,而在以前基于AFM的对这些复合物的研究中并未发现其中一个。此外,基于这些光谱估计的能量跃迁状态(xβ),没有外部扰动(τ 0 )和自由能(ΔG确定了不同的差向异构酶-海藻酸盐复合物。这是这些配合物的ΔG的首次确定。所确定的值对于外部势垒最高为8 kBT,对于内部势垒较小的值。所确定的自由能的大小与以下解释一致:酶和底物因此并非始终紧密地锁定,而是能够重新定位。连同观察到的对AlgE4-聚甘露糖醛酸(poly-M)和AlgE4-聚交替藻酸盐(poly-MG)大分子对确定的不同亲和力,这些数据为对这些酶的加工模式基础的机理的日益深入的理解做出了重要贡献。

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