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Tracking mutation and drug-driven alterations of oncokinase conformations

Numerous kinases act as central nodes of cellular signaling networks. As such, many of these enzymes function as molecular switches for coordinating spatiotemporal signal transmission. Typically, it is the compartmentalized phosphorylation of protein substrates which relays the transient input signa...

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Autores principales: Feichtner, Andreas, Kugler, Valentina, Schwaighofer, Selina, Nuener, Thomas, Fleischmann, Jakob, Stefan, Eduard
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7612828/
https://www.ncbi.nlm.nih.gov/pubmed/35677701
http://dx.doi.org/10.1007/s12254-021-00790-6
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author Feichtner, Andreas
Kugler, Valentina
Schwaighofer, Selina
Nuener, Thomas
Fleischmann, Jakob
Stefan, Eduard
author_facet Feichtner, Andreas
Kugler, Valentina
Schwaighofer, Selina
Nuener, Thomas
Fleischmann, Jakob
Stefan, Eduard
author_sort Feichtner, Andreas
collection PubMed
description Numerous kinases act as central nodes of cellular signaling networks. As such, many of these enzymes function as molecular switches for coordinating spatiotemporal signal transmission. Typically, it is the compartmentalized phosphorylation of protein substrates which relays the transient input signal to determine decisive physiological cell responses. Genomic alterations affect kinase abundance and/or their activities which contribute to the malignant transformation, progression, and metastasis of human cancers. Thus, major drug discovery efforts have been made to identify lead molecules targeting clinically relevant oncokinases. The concept of personalized medicine aims to apply the therapeutic agent with the highest efficacy towards a patient-specific mutation. Here, we discuss the implementation of a cell-based reporter system which may foster the decision-making process to identify the most promising lead-molecules. We present a modular kinase conformation (KinCon) biosensor platform for live-cell analyses of kinase activity states. This biosensor facilitates the recording of kinase activity conformations of the wild-type and the respective mutated kinase upon lead molecule exposure. We reflect proof-of-principle studies demonstrating how this technology has been extended to profile drug properties of the full-length kinases BRAF and MEK1 in intact cells. Further, we pinpoint how this technology may open new avenues for systematic and patient-tailored drug discovery efforts. Overall, this precision-medicineoriented biosensor concept aims to determine kinase inhibitor specificity and anticipate their drug efficacies.
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spelling pubmed-76128282022-06-07 Tracking mutation and drug-driven alterations of oncokinase conformations Feichtner, Andreas Kugler, Valentina Schwaighofer, Selina Nuener, Thomas Fleischmann, Jakob Stefan, Eduard Memo Article Numerous kinases act as central nodes of cellular signaling networks. As such, many of these enzymes function as molecular switches for coordinating spatiotemporal signal transmission. Typically, it is the compartmentalized phosphorylation of protein substrates which relays the transient input signal to determine decisive physiological cell responses. Genomic alterations affect kinase abundance and/or their activities which contribute to the malignant transformation, progression, and metastasis of human cancers. Thus, major drug discovery efforts have been made to identify lead molecules targeting clinically relevant oncokinases. The concept of personalized medicine aims to apply the therapeutic agent with the highest efficacy towards a patient-specific mutation. Here, we discuss the implementation of a cell-based reporter system which may foster the decision-making process to identify the most promising lead-molecules. We present a modular kinase conformation (KinCon) biosensor platform for live-cell analyses of kinase activity states. This biosensor facilitates the recording of kinase activity conformations of the wild-type and the respective mutated kinase upon lead molecule exposure. We reflect proof-of-principle studies demonstrating how this technology has been extended to profile drug properties of the full-length kinases BRAF and MEK1 in intact cells. Further, we pinpoint how this technology may open new avenues for systematic and patient-tailored drug discovery efforts. Overall, this precision-medicineoriented biosensor concept aims to determine kinase inhibitor specificity and anticipate their drug efficacies. 2022-06 2022-01-21 /pmc/articles/PMC7612828/ /pubmed/35677701 http://dx.doi.org/10.1007/s12254-021-00790-6 Text en https://creativecommons.org/licenses/by/4.0/This work is licensed under a CC BY 4.0 (https://creativecommons.org/licenses/by/4.0/) International license.
spellingShingle Article
Feichtner, Andreas
Kugler, Valentina
Schwaighofer, Selina
Nuener, Thomas
Fleischmann, Jakob
Stefan, Eduard
Tracking mutation and drug-driven alterations of oncokinase conformations
title Tracking mutation and drug-driven alterations of oncokinase conformations
title_full Tracking mutation and drug-driven alterations of oncokinase conformations
title_fullStr Tracking mutation and drug-driven alterations of oncokinase conformations
title_full_unstemmed Tracking mutation and drug-driven alterations of oncokinase conformations
title_short Tracking mutation and drug-driven alterations of oncokinase conformations
title_sort tracking mutation and drug-driven alterations of oncokinase conformations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7612828/
https://www.ncbi.nlm.nih.gov/pubmed/35677701
http://dx.doi.org/10.1007/s12254-021-00790-6
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