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The Impact of N(ε)-Acryloyllysine Piperazides on the Conformational Dynamics of Transglutaminase 2

In addition to the classic functions of proteins, such as acting as a biocatalyst or binding partner, the conformational states of proteins and their remodeling upon stimulation need to be considered. A prominent example of a protein that undergoes comprehensive conformational remodeling is transglu...

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Autores principales: Heerwig, Andreas, Kick, Alfred, Sommerfeld, Paul, Eimermacher, Sophia, Hartung, Frederick, Laube, Markus, Fischer, Dietmar, Pietzsch, Hans-Jürgen, Pietzsch, Jens, Löser, Reik, Mertig, Michael, Pietsch, Markus, Wodtke, Robert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9865645/
https://www.ncbi.nlm.nih.gov/pubmed/36675164
http://dx.doi.org/10.3390/ijms24021650
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author Heerwig, Andreas
Kick, Alfred
Sommerfeld, Paul
Eimermacher, Sophia
Hartung, Frederick
Laube, Markus
Fischer, Dietmar
Pietzsch, Hans-Jürgen
Pietzsch, Jens
Löser, Reik
Mertig, Michael
Pietsch, Markus
Wodtke, Robert
author_facet Heerwig, Andreas
Kick, Alfred
Sommerfeld, Paul
Eimermacher, Sophia
Hartung, Frederick
Laube, Markus
Fischer, Dietmar
Pietzsch, Hans-Jürgen
Pietzsch, Jens
Löser, Reik
Mertig, Michael
Pietsch, Markus
Wodtke, Robert
author_sort Heerwig, Andreas
collection PubMed
description In addition to the classic functions of proteins, such as acting as a biocatalyst or binding partner, the conformational states of proteins and their remodeling upon stimulation need to be considered. A prominent example of a protein that undergoes comprehensive conformational remodeling is transglutaminase 2 (TGase 2), the distinct conformational states of which are closely related to particular functions. Its involvement in various pathophysiological processes, including fibrosis and cancer, motivates the development of theranostic agents, particularly based on inhibitors that are directed toward the transamidase activity. In this context, the ability of such inhibitors to control the conformational dynamics of TGase 2 emerges as an important parameter, and methods to assess this property are in great demand. Herein, we describe the application of the switchSENSE(®) principle to detect conformational changes caused by three irreversibly binding N(ε)-acryloyllysine piperazides, which are suitable radiotracer candidates of TGase 2. The switchSENSE(®) technique is based on DNA levers actuated by alternating electric fields. These levers are immobilized on gold electrodes with one end, and at the other end of the lever, the TGase 2 is covalently bound. A novel computational method is introduced for describing the resulting lever motion to quantify the extent of stimulated conformational TGase 2 changes. Moreover, as a complementary biophysical method, native polyacrylamide gel electrophoresis was performed under similar conditions to validate the results. Both methods prove the occurrence of an irreversible shift in the conformational equilibrium of TGase 2, caused by the binding of the three studied N(ε)-acryloyllysine piperazides.
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spelling pubmed-98656452023-01-22 The Impact of N(ε)-Acryloyllysine Piperazides on the Conformational Dynamics of Transglutaminase 2 Heerwig, Andreas Kick, Alfred Sommerfeld, Paul Eimermacher, Sophia Hartung, Frederick Laube, Markus Fischer, Dietmar Pietzsch, Hans-Jürgen Pietzsch, Jens Löser, Reik Mertig, Michael Pietsch, Markus Wodtke, Robert Int J Mol Sci Article In addition to the classic functions of proteins, such as acting as a biocatalyst or binding partner, the conformational states of proteins and their remodeling upon stimulation need to be considered. A prominent example of a protein that undergoes comprehensive conformational remodeling is transglutaminase 2 (TGase 2), the distinct conformational states of which are closely related to particular functions. Its involvement in various pathophysiological processes, including fibrosis and cancer, motivates the development of theranostic agents, particularly based on inhibitors that are directed toward the transamidase activity. In this context, the ability of such inhibitors to control the conformational dynamics of TGase 2 emerges as an important parameter, and methods to assess this property are in great demand. Herein, we describe the application of the switchSENSE(®) principle to detect conformational changes caused by three irreversibly binding N(ε)-acryloyllysine piperazides, which are suitable radiotracer candidates of TGase 2. The switchSENSE(®) technique is based on DNA levers actuated by alternating electric fields. These levers are immobilized on gold electrodes with one end, and at the other end of the lever, the TGase 2 is covalently bound. A novel computational method is introduced for describing the resulting lever motion to quantify the extent of stimulated conformational TGase 2 changes. Moreover, as a complementary biophysical method, native polyacrylamide gel electrophoresis was performed under similar conditions to validate the results. Both methods prove the occurrence of an irreversible shift in the conformational equilibrium of TGase 2, caused by the binding of the three studied N(ε)-acryloyllysine piperazides. MDPI 2023-01-13 /pmc/articles/PMC9865645/ /pubmed/36675164 http://dx.doi.org/10.3390/ijms24021650 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Heerwig, Andreas
Kick, Alfred
Sommerfeld, Paul
Eimermacher, Sophia
Hartung, Frederick
Laube, Markus
Fischer, Dietmar
Pietzsch, Hans-Jürgen
Pietzsch, Jens
Löser, Reik
Mertig, Michael
Pietsch, Markus
Wodtke, Robert
The Impact of N(ε)-Acryloyllysine Piperazides on the Conformational Dynamics of Transglutaminase 2
title The Impact of N(ε)-Acryloyllysine Piperazides on the Conformational Dynamics of Transglutaminase 2
title_full The Impact of N(ε)-Acryloyllysine Piperazides on the Conformational Dynamics of Transglutaminase 2
title_fullStr The Impact of N(ε)-Acryloyllysine Piperazides on the Conformational Dynamics of Transglutaminase 2
title_full_unstemmed The Impact of N(ε)-Acryloyllysine Piperazides on the Conformational Dynamics of Transglutaminase 2
title_short The Impact of N(ε)-Acryloyllysine Piperazides on the Conformational Dynamics of Transglutaminase 2
title_sort impact of n(ε)-acryloyllysine piperazides on the conformational dynamics of transglutaminase 2
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9865645/
https://www.ncbi.nlm.nih.gov/pubmed/36675164
http://dx.doi.org/10.3390/ijms24021650
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