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1.
Cell Stress Chaperones ; 22(4): 613-626, 2017 07.
Article in English | MEDLINE | ID: mdl-28470624

ABSTRACT

Mutations in the small heat shock protein chaperone CRYAB (αB-crystallin/HSPB5) and the intermediate filament protein desmin, phenocopy each other causing cardiomyopathies. Whilst the binding sites for desmin on CRYAB have been determined, desmin epitopes responsible for CRYAB binding and also the parameters that determine CRYAB binding to desmin filaments are unknown. Using a combination of co-sedimentation centrifugation, viscometric assays and electron microscopy of negatively stained filaments to analyse the in vitro assembly of desmin filaments, we show that the binding of CRYAB to desmin is subject to its assembly status, to the subunit organization within filaments formed and to the integrity of the C-terminal tail domain of desmin. Our in vitro studies using a rapid assembly protocol, C-terminally truncated desmin and two disease-causing mutants (I451M and R454W) suggest that CRYAB is a sensor for the surface topology of the desmin filament. Our data also suggest that CRYAB performs an assembly chaperone role because the assembling filaments have different CRYAB-binding properties during the maturation process. We suggest that the capability of CRYAB to distinguish between filaments with different surface topologies due either to mutation (R454W) or assembly protocol is important to understanding the pathomechanism(s) of desmin-CRYAB myopathies.


Subject(s)
Desmin/metabolism , Intermediate Filaments/metabolism , alpha-Crystallin B Chain/metabolism , Amino Acid Sequence , Binding Sites , Desmin/chemistry , Desmin/genetics , Desmin/ultrastructure , Humans , Intermediate Filaments/chemistry , Intermediate Filaments/genetics , Intermediate Filaments/ultrastructure , Point Mutation , Protein Binding , Protein Domains
2.
Philos Trans R Soc Lond B Biol Sci ; 368(1617): 20120375, 2013 May 05.
Article in English | MEDLINE | ID: mdl-23530264

ABSTRACT

CRYAB (αB-crystallin) is expressed in many tissues and yet the R120G mutation in CRYAB causes tissue-specific pathologies, namely cardiomyopathy and cataract. Here, we present evidence to demonstrate that there is a specific functional interaction of CRYAB with desmin intermediate filaments that predisposes myocytes to disease caused by the R120G mutation. We use a variety of biochemical and biophysical techniques to show that plant, animal and ascidian small heat-shock proteins (sHSPs) can interact with intermediate filaments. Nevertheless, the mutation R120G in CRYAB does specifically change that interaction when compared with equivalent substitutions in HSP27 (R140G) and into the Caenorhabditis elegans HSP16.2 (R95G). By transient transfection, we show that R120G CRYAB specifically promotes intermediate filament aggregation in MCF7 cells. The transient transfection of R120G CRYAB alone has no significant effect upon cell viability, although bundling of the endogenous intermediate filament network occurs and the mitochondria are concentrated into the perinuclear region. The combination of R120G CRYAB co-transfected with wild-type desmin, however, causes a significant reduction in cell viability. Therefore, we suggest that while there is an innate ability of sHSPs to interact with and to bind to intermediate filaments, it is the specific combination of desmin and CRYAB that compromises cell viability and this is potentially the key to the muscle pathology caused by the R120G CRYAB.


Subject(s)
Desmin/metabolism , alpha-Crystallin B Chain/metabolism , Animals , Cell Line , Cell Survival/physiology , Cricetinae , Desmin/chemistry , Desmin/genetics , Glial Fibrillary Acidic Protein/genetics , Glial Fibrillary Acidic Protein/metabolism , Heat-Shock Proteins, Small , Humans , Hydrogen-Ion Concentration , Mice , Mutation , Protein Binding , Protein Conformation , Temperature , Vimentin/genetics , Vimentin/metabolism , alpha-Crystallin B Chain/genetics
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