Literature DB >> 33644004

Application of a Highly Selective Cathepsin S Two-step Activity-Based Probe in Multicolor Bio-Orthogonal Correlative Light-Electron Microscopy.

Floris J van Dalen1, Thomas Bakkum2, Tyrza van Leeuwen2, Mirjam Groenewold2, Edgar Deu3, Abraham J Koster4, Sander I van Kasteren2, Martijn Verdoes1.   

Abstract

Cathepsin S is a lysosomal cysteine protease highly expressed in immune cells such as dendritic cells, B cells and macrophages. Its functions include extracellular matrix breakdown and cleavage of cell adhesion molecules to facilitate immune cell motility, as well as cleavage of the invariant chain during maturation of major histocompatibility complex II. The identification of these diverse specific functions has brought the challenge of delineating cathepsin S activity with great spatial precision, relative to related enzymes and substrates. Here, the development of a potent and highly selective two-step activity-based probe for cathepsin S and the application in multicolor bio-orthogonal correlative light-electron microscopy is presented. LHVS, which has been reported as a selective inhibitor of cathepsin S with nanomolar potency, formed the basis for our probe design. However, in competitive activity-based protein profiling experiments LHVS showed significant cross-reactivity toward Cat L. Introduction of an azide group in the P2 position expanded the selectivity window for cathepsin S, but rendered the probe undetectable, as demonstrated in bio-orthogonal competitive activity-based protein profiling. Incorporation of an additional azide handle for click chemistry on the solvent-exposed P1 position allowed for selective labeling of cathepsin S. This highlights the influence of click handle positioning on probe efficacy. This probe was utilized in multicolor bio-orthogonal confocal and correlative light-electron microscopy to investigate the localization of cathepsin S activity at an ultrastructural level in bone marrow-derived dendritic cells. The tools developed in this study will aid the characterization of the variety of functions of cathepsin S throughout biology.
Copyright © 2021 van Dalen, Bakkum, van Leeuwen, Groenewold, Deu, Koster, van Kasteren and Verdoes.

Entities:  

Keywords:  bio-orthogonal labeling; cathepsin S; cathepsin activity localization; correlative light-electron microscopy; two-step activity-based probe

Year:  2021        PMID: 33644004      PMCID: PMC7903248          DOI: 10.3389/fchem.2020.628433

Source DB:  PubMed          Journal:  Front Chem        ISSN: 2296-2646            Impact factor:   5.221


  33 in total

1.  Important role of cathepsin S in generating peptides for TAP-independent MHC class I crosspresentation in vivo.

Authors:  Lianjun Shen; Luis J Sigal; Marianne Boes; Kenneth L Rock
Journal:  Immunity       Date:  2004-08       Impact factor: 31.745

2.  Endocytosis targets exogenous material selectively to cathepsin S in live human dendritic cells, while cell-penetrating peptides mediate nonselective transport to cysteine cathepsins.

Authors:  Michael Reich; Paul F van Swieten; Vinod Sommandas; Marianne Kraus; Rainer Fischer; Ekkehard Weber; Hubert Kalbacher; Herman S Overkleeft; Christoph Driessen
Journal:  J Leukoc Biol       Date:  2007-01-29       Impact factor: 4.962

Review 3.  Cathepsin S: therapeutic, diagnostic, and prognostic potential.

Authors:  Richard D A Wilkinson; Rich Williams; Christopher J Scott; Roberta E Burden
Journal:  Biol Chem       Date:  2015-08       Impact factor: 3.915

4.  Selective inhibition of peripheral cathepsin S reverses tactile allodynia following peripheral nerve injury in mouse.

Authors:  William A Eckert; John J M Wiener; Hui Cai; Michael K Ameriks; Jian Zhu; Karen Ngo; Steven Nguyen; Wai-Ping Fung-Leung; Robin L Thurmond; Cheryl Grice; James P Edwards; Sandra R Chaplan; Lars Karlsson; Siquan Sun
Journal:  Eur J Pharmacol       Date:  2020-05-11       Impact factor: 4.432

5.  Design and Synthesis of Activity-Based Probes and Inhibitors for Bleomycin Hydrolase.

Authors:  Wouter A van der Linden; Ehud Segal; Matthew A Child; Anna Byzia; Marcin Drąg; Matthew Bogyo
Journal:  Chem Biol       Date:  2015-08-06

6.  Human cathepsin S, but not cathepsin L, degrades efficiently MHC class II-associated invariant chain in nonprofessional APCs.

Authors:  Jacek Bania; Evelina Gatti; Hugues Lelouard; Alexandre David; Fanny Cappello; Ekkehard Weber; Voahirana Camosseto; Philippe Pierre
Journal:  Proc Natl Acad Sci U S A       Date:  2003-05-14       Impact factor: 11.205

7.  Improved quenched fluorescent probe for imaging of cysteine cathepsin activity.

Authors:  Martijn Verdoes; Kristina Oresic Bender; Ehud Segal; Wouter A van der Linden; Salahuddin Syed; Nimali P Withana; Laura E Sanman; Matthew Bogyo
Journal:  J Am Chem Soc       Date:  2013-09-19       Impact factor: 15.419

8.  Bioorthogonal Correlative Light-Electron Microscopy of Mycobacterium tuberculosis in Macrophages Reveals the Effect of Antituberculosis Drugs on Subcellular Bacterial Distribution.

Authors:  Thomas Bakkum; Matthias T Heemskerk; Erik Bos; Mirjam Groenewold; Nikolaos Oikonomeas-Koppasis; Kimberley V Walburg; Suzanne van Veen; Martijn J C van der Lienden; Tyrza van Leeuwen; Marielle C Haks; Tom H M Ottenhoff; Abraham J Koster; Sander I van Kasteren
Journal:  ACS Cent Sci       Date:  2020-10-16       Impact factor: 14.553

Review 9.  Leading the invasion: The role of Cathepsin S in the tumour microenvironment.

Authors:  Sara H McDowell; Samantha A Gallaher; Roberta E Burden; Christopher J Scott
Journal:  Biochim Biophys Acta Mol Cell Res       Date:  2020-06-13       Impact factor: 4.739

10.  Pharmacodynamic Monitoring of RO5459072, a Small Molecule Inhibitor of Cathepsin S.

Authors:  Michel Theron; Darren Bentley; Sandra Nagel; Marianne Manchester; Michael Gerg; Thomas Schindler; Ana Silva; Barbara Ecabert; Priscila Teixeira; Camille Perret; Bernhard Reis
Journal:  Front Immunol       Date:  2017-07-17       Impact factor: 7.561

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