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Computational Biology Dynamics of Mps1 Kinase Molecular Interactions with Isoflavones Reveals a Chemical Scaffold with Potential to Develop New Therapeutics for the Treatment of Cancer

The protein kinase Mps1 (monopolar spindle 1) is an important regulator of the Spindle Assembly Checkpoint (SAC), the evolutionary conserved checkpoint system of higher organisms that monitors the proper bipolar attachment of all chromosomes to the mitotic spindle during cell division. Defects in th...

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Autores principales: Pugh, Lauren, Pancholi, Alisha, Purat, Priscila Celeste, Agudo-Alvarez, Sandra, Benito-Arenas, Raúl, Bastida, Agatha, Bolanos-Garcia, Victor M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9692432/
https://www.ncbi.nlm.nih.gov/pubmed/36430712
http://dx.doi.org/10.3390/ijms232214228
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author Pugh, Lauren
Pancholi, Alisha
Purat, Priscila Celeste
Agudo-Alvarez, Sandra
Benito-Arenas, Raúl
Bastida, Agatha
Bolanos-Garcia, Victor M.
author_facet Pugh, Lauren
Pancholi, Alisha
Purat, Priscila Celeste
Agudo-Alvarez, Sandra
Benito-Arenas, Raúl
Bastida, Agatha
Bolanos-Garcia, Victor M.
author_sort Pugh, Lauren
collection PubMed
description The protein kinase Mps1 (monopolar spindle 1) is an important regulator of the Spindle Assembly Checkpoint (SAC), the evolutionary conserved checkpoint system of higher organisms that monitors the proper bipolar attachment of all chromosomes to the mitotic spindle during cell division. Defects in the catalytic activity and the transcription regulation of Mps1 are associated with genome instability, aneuploidy, and cancer. Moreover, multiple Mps1 missense and frameshift mutations have been reported in a wide range of types of cancer of different tissue origin. Due to these features, Mps1 arises as one promising drug target for cancer therapy. In this contribution, we developed a computational biology approach to study the dynamics of human Mps1 kinase interaction with isoflavones, a class of natural flavonoids, and compared their predicted mode of binding with that observed in the crystal structure of Mps1 in complex with reversine, a small-sized inhibitor of Mps1 and Aurora B kinases. We concluded that isoflavones define a chemical scaffold that can be used to develop new Mps1 inhibitors for the treatment of cancer associated with Mps1 amplification and aberrant chromosome segregation. In a broader context, the present report illustrates how modern chemoinformatics approaches can accelerate drug development in oncology.
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spelling pubmed-96924322022-11-26 Computational Biology Dynamics of Mps1 Kinase Molecular Interactions with Isoflavones Reveals a Chemical Scaffold with Potential to Develop New Therapeutics for the Treatment of Cancer Pugh, Lauren Pancholi, Alisha Purat, Priscila Celeste Agudo-Alvarez, Sandra Benito-Arenas, Raúl Bastida, Agatha Bolanos-Garcia, Victor M. Int J Mol Sci Article The protein kinase Mps1 (monopolar spindle 1) is an important regulator of the Spindle Assembly Checkpoint (SAC), the evolutionary conserved checkpoint system of higher organisms that monitors the proper bipolar attachment of all chromosomes to the mitotic spindle during cell division. Defects in the catalytic activity and the transcription regulation of Mps1 are associated with genome instability, aneuploidy, and cancer. Moreover, multiple Mps1 missense and frameshift mutations have been reported in a wide range of types of cancer of different tissue origin. Due to these features, Mps1 arises as one promising drug target for cancer therapy. In this contribution, we developed a computational biology approach to study the dynamics of human Mps1 kinase interaction with isoflavones, a class of natural flavonoids, and compared their predicted mode of binding with that observed in the crystal structure of Mps1 in complex with reversine, a small-sized inhibitor of Mps1 and Aurora B kinases. We concluded that isoflavones define a chemical scaffold that can be used to develop new Mps1 inhibitors for the treatment of cancer associated with Mps1 amplification and aberrant chromosome segregation. In a broader context, the present report illustrates how modern chemoinformatics approaches can accelerate drug development in oncology. MDPI 2022-11-17 /pmc/articles/PMC9692432/ /pubmed/36430712 http://dx.doi.org/10.3390/ijms232214228 Text en © 2022 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
Pugh, Lauren
Pancholi, Alisha
Purat, Priscila Celeste
Agudo-Alvarez, Sandra
Benito-Arenas, Raúl
Bastida, Agatha
Bolanos-Garcia, Victor M.
Computational Biology Dynamics of Mps1 Kinase Molecular Interactions with Isoflavones Reveals a Chemical Scaffold with Potential to Develop New Therapeutics for the Treatment of Cancer
title Computational Biology Dynamics of Mps1 Kinase Molecular Interactions with Isoflavones Reveals a Chemical Scaffold with Potential to Develop New Therapeutics for the Treatment of Cancer
title_full Computational Biology Dynamics of Mps1 Kinase Molecular Interactions with Isoflavones Reveals a Chemical Scaffold with Potential to Develop New Therapeutics for the Treatment of Cancer
title_fullStr Computational Biology Dynamics of Mps1 Kinase Molecular Interactions with Isoflavones Reveals a Chemical Scaffold with Potential to Develop New Therapeutics for the Treatment of Cancer
title_full_unstemmed Computational Biology Dynamics of Mps1 Kinase Molecular Interactions with Isoflavones Reveals a Chemical Scaffold with Potential to Develop New Therapeutics for the Treatment of Cancer
title_short Computational Biology Dynamics of Mps1 Kinase Molecular Interactions with Isoflavones Reveals a Chemical Scaffold with Potential to Develop New Therapeutics for the Treatment of Cancer
title_sort computational biology dynamics of mps1 kinase molecular interactions with isoflavones reveals a chemical scaffold with potential to develop new therapeutics for the treatment of cancer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9692432/
https://www.ncbi.nlm.nih.gov/pubmed/36430712
http://dx.doi.org/10.3390/ijms232214228
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