Harnessing the Dynamic Nature of a Zirconium‐Oxo Nanocluster for Reversible Protein Capture and Proteolysis

K Kilian Declerck (Department of Chemistry KU Leuven Celestijnenlaan 200F 3001 Leuven Belgium) N Nada D. Savić (Department of Chemistry KU Leuven Celestijnenlaan 200F Leuven 3001 Belgium) M Muhammed Jibin Parammal (Department of Chemistry University of Basel Basel Switzerland) C Carlotta Seno (Department of Chemistry University of Basel Mattenstrasse 22 Basel 4058 Switzerland) G Gilles Bruylants (Faculty of Applied Sciences Université Libre de Bruxelles Avenue FD Roosevelt 50 Brussels 1050 Belgium) J Jonathan De Roo (Department of Chemistry University of Basel Basel Switzerland) T Tatjana N. Parac‐Vogt (Department of Chemistry KU Leuven Leuven Belgium)

Abstract

AbstractSelective proteolysis remains a significant challenge with relevance to industrial and pharmaceutical applications, motivating development of chemical strategies emulating the specificity of natural proteases. Here, we report that the discrete Zr‐oxo nanocluster‐based solid, [Zr17O8(OH)24(OH2)12(HCO2)12(SO4)8] · 6 HCl · 30 H2O (Zr17) serves as an efficient, recyclable heterogeneous catalyst for site‐selective proteolysis with tunable fragment selectivity. A combination of solution‐ and solid‐state NMR spectroscopy highlighted the importance of the ligand environment of solid Zr17 for enabling efficient protein‐cluster interaction and controlling reactivity. We demonstrate that Zr17 achieves a proteolytic performance comparable to natural enzymes while allowing fine modulation of peptide product profiles by adjusting reaction parameters. Substrate adsorption and product desorption were found to be governed by the net charge of both catalyst and substrate, as well as rapid reorganization of the cluster's capping ligands, according to UV‐Vis/IR spectroscopy and isothermal titration calorimetry. Crucially, the insoluble nature and excellent stability of Zr17, evidenced by pair distribution function analysis, allowed reuse across multiple catalytic cycles, overcoming a major limitation of proteolytic systems. This study reveals how cluster surface chemistry governs substrate interaction and catalysis, guiding rational design of next‐generation cluster‐based catalysts, including hybrid materials such as metal‐organic frameworks.

Article Details

Volume / Issue Vol. 64, Issue 40
Published September 26, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

K

Kilian Declerck

Department of Chemistry KU Leuven Celestijnenlaan 200F 3001 Leuven Belgium

N

Nada D. Savić

Department of Chemistry KU Leuven Celestijnenlaan 200F Leuven 3001 Belgium

M

Muhammed Jibin Parammal

Department of Chemistry University of Basel Basel Switzerland

C

Carlotta Seno

Department of Chemistry University of Basel Mattenstrasse 22 Basel 4058 Switzerland

G

Gilles Bruylants

Faculty of Applied Sciences Université Libre de Bruxelles Avenue FD Roosevelt 50 Brussels 1050 Belgium

J

Jonathan De Roo

Department of Chemistry University of Basel Basel Switzerland

T

Tatjana N. Parac‐Vogt

Department of Chemistry KU Leuven Leuven Belgium