Laskowski inhibitors regulate serine proteases by an intriguing mode of action that involves deceiving the protease into synthesizing a peptide bond. Studies exploring naturally occurring Laskowski inhibitors have uncovered several structural features that convey the inhibitor's resistance to hydrolysis and exceptional binding affinity. However, in the context of Laskowski inhibitor engineering, the way that various modifications intended to fine-tune an inhibitor's potency and selectivity impact on its association and dissociation rates remains unclear. This information is important as Laskowski inhibitors are becoming increasingly used as design templates to develop new protease inhibitors for pharmaceutical applications. In this study, we used the cyclic peptide, sunflower trypsin inhibitor-1 (SFTI-1), as a model system to explore how the inhibitor's sequence and structure relate to its binding kinetics and function. Using enzyme assays, MD simulations and NMR spectroscopy to study SFTI variants with diverse sequence and backbone modifications, we show that the geometry of the binding loop mainly influences the inhibitor's potency by modulating the association rate, such that variants lacking a favourable conformation show dramatic losses in activity. Additionally, we show that the inhibitor's sequence (including both the binding loop and its scaffolding) influences its potency and selectivity by modulating both the association and the dissociation rates. These findings provide new insights into protease inhibitor function and design that we apply by engineering novel inhibitors for classical serine proteases, trypsin and chymotrypsin and two kallikrein-related peptidases (KLK5 and KLK14) that are implicated in various cancers and skin diseases.
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Research Article|
July 06 2015
Engineered protease inhibitors based on sunflower trypsin inhibitor-1 (SFTI-1) provide insights into the role of sequence and conformation in Laskowski mechanism inhibition
Simon J. de Veer;
Simon J. de Veer
1
*Institute of Health and Biomedical Innovation, Queensland University of Technology, Brisbane, QLD 4059, Australia
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Joakim E. Swedberg;
Joakim E. Swedberg
1
†Institute for Molecular Bioscience, The University of Queensland, Brisbane, QLD 4072, Australia
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Muharrem Akcan;
Muharrem Akcan
2
†Institute for Molecular Bioscience, The University of Queensland, Brisbane, QLD 4072, Australia
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K. Johan Rosengren;
K. Johan Rosengren
‡School of Biomedical Sciences, The University of Queensland, Brisbane, QLD 4072, Australia
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Maria Brattsand;
Maria Brattsand
§Department of Medical Biosciences, Umeå University, 901 87 Umeå, Sweden
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David J. Craik;
David J. Craik
†Institute for Molecular Bioscience, The University of Queensland, Brisbane, QLD 4072, Australia
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Jonathan M. Harris
Jonathan M. Harris
3
*Institute of Health and Biomedical Innovation, Queensland University of Technology, Brisbane, QLD 4059, Australia
3To whom correspondence should be addressed (email [email protected]).
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Publisher: Portland Press Ltd
Received:
April 02 2015
Revision Received:
May 05 2015
Accepted:
May 18 2015
Accepted Manuscript online:
May 18 2015
Online ISSN: 1470-8728
Print ISSN: 0264-6021
© 2015 Authors; published by Portland Press Limited
2015
Biochem J (2015) 469 (2): 243–253.
Article history
Received:
April 02 2015
Revision Received:
May 05 2015
Accepted:
May 18 2015
Accepted Manuscript online:
May 18 2015
Citation
Simon J. de Veer, Joakim E. Swedberg, Muharrem Akcan, K. Johan Rosengren, Maria Brattsand, David J. Craik, Jonathan M. Harris; Engineered protease inhibitors based on sunflower trypsin inhibitor-1 (SFTI-1) provide insights into the role of sequence and conformation in Laskowski mechanism inhibition. Biochem J 15 July 2015; 469 (2): 243–253. doi: https://doi.org/10.1042/BJ20150412
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