Structural characterisation of inhibitory and non-inhibitory MMP-9–TIMP-1 complexes and implications for regulatory mechanisms of MMP-9
Abstract MMP-9 plays a number of important physiological functions but is also responsible for many pathological processes, including cancer invasion, metastasis, and angiogenesis. It is, therefore, crucial to understand its enzymatic activity, including activation and inhibition mechanisms. This en...
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doaj-31d6a2a981a641369c72f07ab98789092021-07-04T11:27:17ZengNature Publishing GroupScientific Reports2045-23222021-06-0111111210.1038/s41598-021-92881-xStructural characterisation of inhibitory and non-inhibitory MMP-9–TIMP-1 complexes and implications for regulatory mechanisms of MMP-9Łukasz Charzewski0Krystiana A. Krzyśko1Bogdan Lesyng2Department of Biophysics, Faculty of Physics, University of WarsawDepartment of Biophysics, Faculty of Physics, University of WarsawDepartment of Biophysics, Faculty of Physics, University of WarsawAbstract MMP-9 plays a number of important physiological functions but is also responsible for many pathological processes, including cancer invasion, metastasis, and angiogenesis. It is, therefore, crucial to understand its enzymatic activity, including activation and inhibition mechanisms. This enzyme may also be partially involved in the “cytokine storm” that is characteristic of COVID-19 disease (SARS-CoV-2), as well as in the molecular mechanisms responsible for lung fibrosis. Due to the variety of processing pathways involving MMP-9 in biological systems and its uniqueness due to the O-glycosylated domain (OGD) and fibronectin-like (FBN) domain, specific interactions with its natural TIMP-1 inhibitor should be carefully studied, because they differ significantly from other homologous systems. In particular, earlier experimental studies have indicated that the newly characterised circular form of a proMMP-9 homotrimer exhibits stronger binding properties to TIMP-1 compared to its monomeric form. However, molecular structures of the complexes and the binding mechanisms remain unknown. The purpose of this study is to fill in the gaps in knowledge. Molecular modelling methods are applied to build the inhibitory and non-inhibitory MMP-9–TIMP-1 complexes, which allows for a detailed description of these structures and should allow for a better understanding of the regulatory processes in which MMP-9 is involved.https://doi.org/10.1038/s41598-021-92881-x |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Łukasz Charzewski Krystiana A. Krzyśko Bogdan Lesyng |
spellingShingle |
Łukasz Charzewski Krystiana A. Krzyśko Bogdan Lesyng Structural characterisation of inhibitory and non-inhibitory MMP-9–TIMP-1 complexes and implications for regulatory mechanisms of MMP-9 Scientific Reports |
author_facet |
Łukasz Charzewski Krystiana A. Krzyśko Bogdan Lesyng |
author_sort |
Łukasz Charzewski |
title |
Structural characterisation of inhibitory and non-inhibitory MMP-9–TIMP-1 complexes and implications for regulatory mechanisms of MMP-9 |
title_short |
Structural characterisation of inhibitory and non-inhibitory MMP-9–TIMP-1 complexes and implications for regulatory mechanisms of MMP-9 |
title_full |
Structural characterisation of inhibitory and non-inhibitory MMP-9–TIMP-1 complexes and implications for regulatory mechanisms of MMP-9 |
title_fullStr |
Structural characterisation of inhibitory and non-inhibitory MMP-9–TIMP-1 complexes and implications for regulatory mechanisms of MMP-9 |
title_full_unstemmed |
Structural characterisation of inhibitory and non-inhibitory MMP-9–TIMP-1 complexes and implications for regulatory mechanisms of MMP-9 |
title_sort |
structural characterisation of inhibitory and non-inhibitory mmp-9–timp-1 complexes and implications for regulatory mechanisms of mmp-9 |
publisher |
Nature Publishing Group |
series |
Scientific Reports |
issn |
2045-2322 |
publishDate |
2021-06-01 |
description |
Abstract MMP-9 plays a number of important physiological functions but is also responsible for many pathological processes, including cancer invasion, metastasis, and angiogenesis. It is, therefore, crucial to understand its enzymatic activity, including activation and inhibition mechanisms. This enzyme may also be partially involved in the “cytokine storm” that is characteristic of COVID-19 disease (SARS-CoV-2), as well as in the molecular mechanisms responsible for lung fibrosis. Due to the variety of processing pathways involving MMP-9 in biological systems and its uniqueness due to the O-glycosylated domain (OGD) and fibronectin-like (FBN) domain, specific interactions with its natural TIMP-1 inhibitor should be carefully studied, because they differ significantly from other homologous systems. In particular, earlier experimental studies have indicated that the newly characterised circular form of a proMMP-9 homotrimer exhibits stronger binding properties to TIMP-1 compared to its monomeric form. However, molecular structures of the complexes and the binding mechanisms remain unknown. The purpose of this study is to fill in the gaps in knowledge. Molecular modelling methods are applied to build the inhibitory and non-inhibitory MMP-9–TIMP-1 complexes, which allows for a detailed description of these structures and should allow for a better understanding of the regulatory processes in which MMP-9 is involved. |
url |
https://doi.org/10.1038/s41598-021-92881-x |
work_keys_str_mv |
AT łukaszcharzewski structuralcharacterisationofinhibitoryandnoninhibitorymmp9timp1complexesandimplicationsforregulatorymechanismsofmmp9 AT krystianaakrzysko structuralcharacterisationofinhibitoryandnoninhibitorymmp9timp1complexesandimplicationsforregulatorymechanismsofmmp9 AT bogdanlesyng structuralcharacterisationofinhibitoryandnoninhibitorymmp9timp1complexesandimplicationsforregulatorymechanismsofmmp9 |
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