Functional Linkers Support Targeting of Multivalent Tweezers to Taspase1

Author:

Hommel Katrin1ORCID,Kauth Alisa‐Maite A.2,Kirupakaran Abbna3ORCID,Theisen Sebastian3ORCID,Hayduk Matthias4,Niemeyer Felix C.3ORCID,Beuck Christine5ORCID,Zadmard Reza6ORCID,Bayer Peter5ORCID,Jan Ravoo Bart2ORCID,Voskuhl Jens4ORCID,Schrader Thomas3ORCID,Knauer Shirley K.1ORCID

Affiliation:

1. Molecular Biology II, Center of Medical Biotechnology (ZMB) and Center for Nanointegration (CENIDE) University of Duisburg-Essen Universitätsstrasse 5 45141 Essen Germany

2. Organic Chemistry Institute and Center for Soft Nanoscience University of Münster Busso-Peus-Straße 10 48149 Münster Germany

3. Institute of Organic Chemistry I, Biosupramolecular Chemistry University of Duisburg-Essen Universitätsstrasse 7 45141 Essen Germany

4. Faculty of Chemistry (Organic Chemistry II), Center of Medical Biotechnology (ZMB) and Center for Nanointegration (CENIDE) University of Duisburg-Essen Universitätsstrasse 7 45117 Essen Germany

5. Structural and Medicinal Biochemistry, Center of Medical Biotechnology (ZMB) University of Duisburg-Essen Universitätsstrasse 5 45141 Essen Germany

6. Department of Organic Chemistry Chemistry and Chemical Engineering Research Center of Iran (CCERCI) P. O. Box 14335–186 Tehran Iran

Abstract

AbstractTaspase 1 is a unique protease not only pivotal for embryonic development but also implicated in leukemias and solid tumors. As such, this enzyme is a promising while still challenging therapeutic target, and with its protein structure featuring a flexible loop preceding the active site a versatile model system for drug development. Supramolecular ligands provide a promising complementary approach to traditional small‐molecule inhibitors. Recently, the multivalent arrangement of molecular tweezers allowed the successful targeting of Taspase 1’s surface loop. With this study we now want to take the next logic step und utilize functional linker systems that not only allow the implementation of novel properties but also engage in protein surface binding. Consequently, we chose two different linker types differing from the original divalent assembly: a backbone with aggregation‐induced emission (AIE) properties to enable monitoring of binding and a calix[4]arene scaffold initially pre‐positioning the supramolecular binding units. With a series of four AIE‐equipped ligands with stepwise increased valency we demonstrated that the functionalized AIE linkers approach ligand binding affinities in the nanomolar range and allow efficient proteolytic inhibition of Taspase 1. Moreover, implementation of the calix[4]arene backbone further enhanced the ligands’ inhibitory potential, pointing to a specific linker contribution.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

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