Skeletal Dysplasia Mutations Effect on Human Filamins’ Structure and Mechanosensing

Abstract Cells’ ability to sense mechanical cues in their environment is crucial for fundamental cellular processes, leading defects in mechanosensing to be linked to many diseases. The actin cross-linking protein Filamin has an important role in the conversion of mechanical forces into biochemical...

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Main Authors: Jonne Seppälä, Rafael C. Bernardi, Tatu J. K. Haataja, Maarit Hellman, Olli T. Pentikäinen, Klaus Schulten, Perttu Permi, Jari Ylänne, Ulla Pentikäinen
Format: Article
Language:English
Published: Nature Publishing Group 2017-06-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-017-04441-x
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spelling doaj-19baf53cadc947c297dabc4e0149c6e82020-12-08T01:45:54ZengNature Publishing GroupScientific Reports2045-23222017-06-017111410.1038/s41598-017-04441-xSkeletal Dysplasia Mutations Effect on Human Filamins’ Structure and MechanosensingJonne Seppälä0Rafael C. Bernardi1Tatu J. K. Haataja2Maarit Hellman3Olli T. Pentikäinen4Klaus Schulten5Perttu Permi6Jari Ylänne7Ulla Pentikäinen8Department of Biological and Environmental Science and Nanoscience Center, University of JyvaskylaBeckman Institute for Advanced Science and Technology, University of Illinois at Urbana-ChampaignDepartment of Biological and Environmental Science and Nanoscience Center, University of JyvaskylaDepartment of Chemistry, University of JyvaskylaDepartment of Biological and Environmental Science and Nanoscience Center, University of JyvaskylaBeckman Institute for Advanced Science and Technology, University of Illinois at Urbana-ChampaignDepartment of Biological and Environmental Science and Nanoscience Center, University of JyvaskylaDepartment of Biological and Environmental Science and Nanoscience Center, University of JyvaskylaDepartment of Biological and Environmental Science and Nanoscience Center, University of JyvaskylaAbstract Cells’ ability to sense mechanical cues in their environment is crucial for fundamental cellular processes, leading defects in mechanosensing to be linked to many diseases. The actin cross-linking protein Filamin has an important role in the conversion of mechanical forces into biochemical signals. Here, we reveal how mutations in Filamin genes known to cause Larsen syndrome and Frontometaphyseal dysplasia can affect the structure and therefore function of Filamin domains 16 and 17. Employing X-ray crystallography, the structure of these domains was first solved for the human Filamin B. The interaction seen between domains 16 and 17 is broken by shear force as revealed by steered molecular dynamics simulations. The effects of skeletal dysplasia associated mutations of the structure and mechanosensing properties of Filamin were studied by combining various experimental and theoretical techniques. The results showed that Larsen syndrome associated mutations destabilize or even unfold domain 17. Interestingly, those Filamin functions that are mediated via domain 17 interactions with other proteins are not necessarily affected as strongly interacting peptide binding to mutated domain 17 induces at least partial domain folding. Mutation associated to Frontometaphyseal dysplasia, in turn, transforms 16–17 fragment from compact to an elongated form destroying the force-regulated domain pair.https://doi.org/10.1038/s41598-017-04441-x
collection DOAJ
language English
format Article
sources DOAJ
author Jonne Seppälä
Rafael C. Bernardi
Tatu J. K. Haataja
Maarit Hellman
Olli T. Pentikäinen
Klaus Schulten
Perttu Permi
Jari Ylänne
Ulla Pentikäinen
spellingShingle Jonne Seppälä
Rafael C. Bernardi
Tatu J. K. Haataja
Maarit Hellman
Olli T. Pentikäinen
Klaus Schulten
Perttu Permi
Jari Ylänne
Ulla Pentikäinen
Skeletal Dysplasia Mutations Effect on Human Filamins’ Structure and Mechanosensing
Scientific Reports
author_facet Jonne Seppälä
Rafael C. Bernardi
Tatu J. K. Haataja
Maarit Hellman
Olli T. Pentikäinen
Klaus Schulten
Perttu Permi
Jari Ylänne
Ulla Pentikäinen
author_sort Jonne Seppälä
title Skeletal Dysplasia Mutations Effect on Human Filamins’ Structure and Mechanosensing
title_short Skeletal Dysplasia Mutations Effect on Human Filamins’ Structure and Mechanosensing
title_full Skeletal Dysplasia Mutations Effect on Human Filamins’ Structure and Mechanosensing
title_fullStr Skeletal Dysplasia Mutations Effect on Human Filamins’ Structure and Mechanosensing
title_full_unstemmed Skeletal Dysplasia Mutations Effect on Human Filamins’ Structure and Mechanosensing
title_sort skeletal dysplasia mutations effect on human filamins’ structure and mechanosensing
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2017-06-01
description Abstract Cells’ ability to sense mechanical cues in their environment is crucial for fundamental cellular processes, leading defects in mechanosensing to be linked to many diseases. The actin cross-linking protein Filamin has an important role in the conversion of mechanical forces into biochemical signals. Here, we reveal how mutations in Filamin genes known to cause Larsen syndrome and Frontometaphyseal dysplasia can affect the structure and therefore function of Filamin domains 16 and 17. Employing X-ray crystallography, the structure of these domains was first solved for the human Filamin B. The interaction seen between domains 16 and 17 is broken by shear force as revealed by steered molecular dynamics simulations. The effects of skeletal dysplasia associated mutations of the structure and mechanosensing properties of Filamin were studied by combining various experimental and theoretical techniques. The results showed that Larsen syndrome associated mutations destabilize or even unfold domain 17. Interestingly, those Filamin functions that are mediated via domain 17 interactions with other proteins are not necessarily affected as strongly interacting peptide binding to mutated domain 17 induces at least partial domain folding. Mutation associated to Frontometaphyseal dysplasia, in turn, transforms 16–17 fragment from compact to an elongated form destroying the force-regulated domain pair.
url https://doi.org/10.1038/s41598-017-04441-x
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