Small Heat Shock Proteins and Distal Hereditary Neuropathies

被引:0
作者
V. V. Nefedova
L. K. Muranova
M. V. Sudnitsyna
A. S. Ryzhavskaya
N. B. Gusev
机构
[1] Lomonosov Moscow State University,Faculty of Biology
来源
Biochemistry (Moscow) | 2015年 / 80卷
关键词
small heat shock proteins; phosphorylation; chaperone-like activity; cytoskeleton; congenital diseases;
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学科分类号
摘要
Classification of small heat shock proteins (sHsp) is presented and processes regulated by sHsp are described. Symptoms of hereditary distal neuropathy are described and the genes whose mutations are associated with development of this congenital disease are listed. The literature data and our own results concerning physicochemical properties of HspB1 mutants associated with Charcot–Marie–Tooth disease are analyzed. Mutations of HspB1, associated with hereditary motor neuron disease, can be accompanied by change of the size of HspB1 oligomers, by decreased stability under unfavorable conditions, by changes in the interaction with protein partners, and as a rule by decrease of chaperone-like activity. The largest part of these mutations is accompanied by change of oligomer stability (that can be either increased or decreased) or by change of intermonomer interaction inside an oligomer. Data on point mutation of HspB3 associated with axonal neuropathy are presented. Data concerning point mutations of Lys141 of HspB8 and those associated with hereditary neuropathy and different forms of Charcot–Marie–Tooth disease are analyzed. It is supposed that point mutations of sHsp associated with distal neuropathies lead either to loss of function (for instance, decrease of chaperone-like activity) or to gain of harmful functions (for instance, increase of interaction with certain protein partners).
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页码:1734 / 1747
页数:13
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[1]  
Maaroufi H.(2013)Analysis and phy-logeny of small heat shock proteins from marine viruses and their cyanobacteria host PLoS One 8 e81207-3642
[2]  
Tanguay R. M.(2010)Independent evolu-tion of the core domain and its flanking sequences in small heat shock proteins FASEB J. 24 3633-461
[3]  
Kriehuber T.(2010)Why proteins without an α-crystallin domain should not be included in the human small heat shock protein family HSPB Cell Stress Chaperones 15 457-1159
[4]  
Rattei T.(2011)Large potentials of small heat shock proteins Physiol. Rev. 91 1123-117
[5]  
Weinmaier T.(2012)Small heat shock proteins and α-crystallins: dynamic proteins with flexible functions Trends Biochem. Sci. 37 106-451
[6]  
Bepperling A.(2014)Small heat-shock proteins: important players in regulating cellular proteostasis Cell. Mol. Life Sci. 72 429-13277
[7]  
Haslbeck M.(2009)The eye lens chaperone α-crystallin forms defined globular assemblies Proc. Natl. Acad. Sci. USA 106 13272-3789
[8]  
Buchner J.(2013)Regulated structural transitions unleash the chaperone activity of αB-crystallin Proc. Natl. Acad. Sci. USA 110 3780-20
[9]  
Kappe G.(2014)Dynamical structure of αB-crystallin Prog. Biophys. Mol. Biol. 115 11-169
[10]  
Boelens W. C.(2012)Heterooligomeric complexes of human small heat shock proteins Cell Stress Chaperones 17 157-1969