Abdelhameed Shorok A M, Ly Hong Giang T, Moons Jens, de Azambuja Francisco, Proost Paul, Parac-Vogt Tatjana N
KU Leuven, Department of Chemistry Celestijnenlaan 200F 3001 Leuven Belgium.
Department of Chemistry, College of Natural Sciences, Can Tho University Can Tho Vietnam.
Chem Sci. 2021 Jul 16;12(31):10655-10663. doi: 10.1039/d1sc02760c. eCollection 2021 Aug 11.
The ability of soluble metal-oxo clusters to specifically interact with protein surfaces makes them attractive as potential inorganic drugs and as artificial enzymes. In particular, metal-substituted polyoxometalates (MS-POMs) are remarkably selective in hydrolyzing a range of different proteins. However, the influence of MS-POMs' redox chemistry on their proteolytic activity remains virtually unexplored. Herein we report a highly site-selective hydrolysis of hemoglobin (Hb), a large tetrameric globular protein, by a Ce(iv)-substituted Keggin polyoxometalate (CeK), and evaluate the effect of CeK's redox chemistry on its reactivity and selectivity as an artificial protease. At pH 5.0, incubation of Hb with CeK resulted in strictly selective protein hydrolysis at six Asp-X bonds, two of which were located in the α-chain (α(Asp75-Leu76) and α(Asp94-Pro95)) and five at the β-chain (β(Asp51-Ala52), β(Asp68-Ser69), β(Asp78-Asp79), β(Asp98-Pro99) and β(Asp128-Phe129)). However, increasing the pH of the reaction mixture to 7.4 decreased the CeK hydrolytic reactivity towards Hb, resulting in the cleavage of only one peptide bond (β(Asp128-Phe129)). Combination of UV-Vis, circular dichroism and Trp fluorescence spectroscopy indicated similar interactions between Hb and CeK at both pH conditions; however, P NMR spectroscopy showed faster reduction of CeK into the hydrolytically inactive CeK form in the presence of protein at pH 7.4. In agreement with these results, careful mapping of all hydrolyzed Asp-X bonds on the protein structure revealed that the lower reactivity toward the α-chain was consistent with the presence of more redox-active amino acids (Tyr and His) in this subunit in comparison with the β-chain. This points towards a link between the presence of the redox-active sites on the protein surface and efficiency and selectivity of redox-active MS-POMs as artificial proteases. More importantly, the study provides a way to tune the redox and hydrolytic reactivity of MS-POMs towards proteins through adjustment of reaction parameters like temperature and pH.
可溶性金属氧簇与蛋白质表面特异性相互作用的能力,使其作为潜在的无机药物和人工酶具有吸引力。特别是,金属取代的多金属氧酸盐(MS-POMs)在水解一系列不同蛋白质时具有显著的选择性。然而,MS-POMs的氧化还原化学对其蛋白水解活性的影响实际上仍未被探索。在此,我们报道了一种铈(IV)取代的Keggin多金属氧酸盐(CeK)对血红蛋白(Hb,一种大型四聚体球状蛋白)的高度位点选择性水解,并评估了CeK的氧化还原化学对其作为人工蛋白酶的反应性和选择性的影响。在pH 5.0时,将Hb与CeK孵育导致在六个天冬氨酸-X键处发生严格选择性的蛋白质水解,其中两个位于α链(α(天冬氨酸75-亮氨酸76)和α(天冬氨酸94-脯氨酸95)),五个位于β链(β(天冬氨酸51-丙氨酸52)、β(天冬氨酸68-丝氨酸69)、β(天冬氨酸78-天冬氨酸79)、β(天冬氨酸98-脯氨酸99)和β(天冬氨酸128-苯丙氨酸129))。然而,将反应混合物的pH提高到7.4会降低CeK对Hb的水解反应性,导致仅一个肽键(β(天冬氨酸128-苯丙氨酸129))的裂解。紫外可见光谱、圆二色光谱和色氨酸荧光光谱的结合表明,在两种pH条件下,Hb与CeK之间存在相似的相互作用;然而,磷核磁共振光谱显示,在pH 7.4存在蛋白质的情况下,CeK更快地还原为水解无活性的CeK形式。与这些结果一致,仔细绘制蛋白质结构上所有水解的天冬氨酸-X键表明,与β链相比,α链较低的反应性与该亚基中存在更多氧化还原活性氨基酸(酪氨酸和组氨酸)一致。这表明蛋白质表面氧化还原活性位点的存在与氧化还原活性MS-POMs作为人工蛋白酶的效率和选择性之间存在联系。更重要的是,该研究提供了一种通过调整温度和pH等反应参数来调节MS-POMs对蛋白质的氧化还原和水解反应性的方法。