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嵌入金属有机框架中的铪氧簇对肽键水解的异质纳米酶活性。

Heterogeneous nanozymatic activity of Hf oxo-clusters embedded in a metal-organic framework towards peptide bond hydrolysis.

作者信息

Moons Jens, Loosen Alexandra, Simms Charlotte, de Azambuja Francisco, Parac-Vogt Tatjana N

机构信息

Department of Chemistry, KU Leuven, Celestijnenlaan 200F, 3001 Leuven, Belgium.

出版信息

Nanoscale. 2021 Jul 28;13(28):12298-12305. doi: 10.1039/d1nr01790j. Epub 2021 Jul 13.

DOI:10.1039/d1nr01790j
PMID:34254101
Abstract

Materials with enzyme-like activities and proteolytic potential are emerging as a robust and effective alternative to natural enzymes. Herein, a HfO-based NU-1000 metal organic framework (Hf-MOF) is shown to act as a heterogeneous catalyst for the hydrolysis of peptide bonds under mild conditions. In the presence of Hf-MOF, a glycylglycine model dipeptide was hydrolysed with a rate constant of k = 8.33 × 10 s (half-life (t) of 231 h) at 60 °C and pD 7.4, which is significantly faster than the uncatalyzed reaction. Other Gly-X peptides (X = Ser, Asp, Ile, Ala, and His) were also smoothly hydrolysed under the same conditions with similar rates, except for the faster reactions observed for Gly-His and Gly-Ser. Moreover, the HfO-based NU-1000 MOF also exhibits a high selectivity in the cleavage of a protein substrate, hen egg white lysozyme (HEWL). Our results suggest that embedding HfO oxo-clusters is an efficient strategy to conserve the hydrolytic activity while smoothing the strong substrate adsorption previously observed for a discrete Hf oxo-cluster that hindered further development of its proteolytic potential. Furthermore, comparison with isostructural Zr-NU-1000 shows that although the Hf variant afforded the same cleavage pattern towards HEWL but slightly slower reaction rates, it exhibited a larger stability window and a better recyclability profile. The results suggest that these differences originate from the intrinsic differences between Hf and Zr centers, and from the lower surface area of Hf-NU-1000 in comparison to Zr-NU-1000.

摘要

具有类酶活性和蛋白水解潜力的材料正成为天然酶强有力的有效替代品。在此,一种基于HfO的NU-1000金属有机框架(Hf-MOF)被证明在温和条件下可作为肽键水解的多相催化剂。在Hf-MOF存在下,甘氨酰甘氨酸模型二肽在60℃和pD 7.4条件下以k = 8.33×10⁻⁵ s⁻¹的速率常数水解(半衰期(t₁/₂)为231小时),这明显快于无催化反应。其他Gly-X肽(X = Ser、Asp、Ile、Ala和His)在相同条件下也能顺利水解,速率相似,除了Gly-His和Gly-Ser的反应更快。此外,基于HfO的NU-1000 MOF在蛋白质底物鸡蛋清溶菌酶(HEWL)的裂解中也表现出高选择性。我们的结果表明,嵌入HfO氧簇是一种有效的策略,既能保留水解活性,又能消除先前在离散Hf氧簇中观察到的强烈底物吸附,而这种吸附阻碍了其蛋白水解潜力的进一步发展。此外,与同结构的Zr-NU-1000比较表明,尽管Hf变体对HEWL的裂解模式相同,但反应速率稍慢,但其具有更大的稳定性窗口和更好的可回收性。结果表明,这些差异源于Hf和Zr中心的内在差异,以及与Zr-NU-1000相比Hf-NU-1000较低的表面积。

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