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Heterogeneous nanozymatic activity of Hf oxo-clusters embedded in a metal-organic framework towards peptide bond hydrolysis.
- Source :
-
Nanoscale [Nanoscale] 2021 Jul 28; Vol. 13 (28), pp. 12298-12305. Date of Electronic Publication: 2021 Jul 13. - Publication Year :
- 2021
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Abstract
- Materials with enzyme-like activities and proteolytic potential are emerging as a robust and effective alternative to natural enzymes. Herein, a Hf <subscript>6</subscript> O <subscript>8</subscript> -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 <subscript>obs</subscript> = 8.33 × 10 <superscript>-7</superscript> s <superscript>-1</superscript> (half-life (t <subscript>1/2</subscript> ) 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 Hf <subscript>6</subscript> O <subscript>8</subscript> -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 Hf <subscript>6</subscript> O <subscript>8</subscript> 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 <superscript>IV</superscript> and Zr <superscript>IV</superscript> centers, and from the lower surface area of Hf-NU-1000 in comparison to Zr-NU-1000.
- Subjects :
- Catalysis
Hydrolysis
Peptides metabolism
Proteolysis
Metal-Organic Frameworks
Subjects
Details
- Language :
- English
- ISSN :
- 2040-3372
- Volume :
- 13
- Issue :
- 28
- Database :
- MEDLINE
- Journal :
- Nanoscale
- Publication Type :
- Academic Journal
- Accession number :
- 34254101
- Full Text :
- https://doi.org/10.1039/d1nr01790j