Literature DB >> 26342832

Myofibrillar myopathies: State of the art, present and future challenges.

A Béhin1, E Salort-Campana2, K Wahbi3, P Richard4, R-Y Carlier5, P Carlier6, P Laforêt7, T Stojkovic7, T Maisonobe8, A Verschueren2, J Franques2, S Attarian2, A Maues de Paula9, D Figarella-Branger9, H-M Bécane3, I Nelson10, D Duboc3, G Bonne10, P Vicart11, B Udd12, N Romero13, J Pouget2, B Eymard7.   

Abstract

Myofibrillar myopathies (MFM) have been described in the mid-1990s as a group of diseases sharing common histological features, including an abnormal accumulation of intrasarcoplasmic proteins, the presence of vacuoles and a disorganization of the intermyofibrillar network beginning at the Z-disk. The boundaries of this concept are still uncertain, and whereas six genes (DES, CRYAB, LDB3/ZASP, MYOT, FLNC and BAG3) are now classically considered as responsible for MFM, other entities such as FHL1 myopathy or Hereditary Myopathy with Early Respiratory Failure linked to mutations of titin can now as well be included in this group. The diagnosis of MFM is not always easy; as histological lesions can be focal, and muscle biopsy may be disappointing; this has led to a growing importance of muscle imaging, and the selectivity of muscle involvement has now been described in several disorders. Due to the rarity of these myopathies, if some clinical patterns (such as distal myopathy associated with cardiomyopathy due to desmin mutations) are now well known, surprises remain possible and should lead to systematic testing of the known genes in case of a typical histological presentation. In this paper, we aim at reviewing the data acquired on the six main genes listed above as well as presenting the experience from two French reference centres, Paris and Marseilles.
Copyright © 2015 Elsevier Masson SAS. All rights reserved.

Entities:  

Keywords:  Biopsie musculaire; Cardiomyopathie; Cardiomyopathy; Distal myopathy; Dystrophie musculaire; Muscle biopsy; Muscular dystrophy; Myofibrillar myopathy; Myopathie distale; Myopathie myofibrillaire

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Year:  2015        PMID: 26342832     DOI: 10.1016/j.neurol.2015.06.002

Source DB:  PubMed          Journal:  Rev Neurol (Paris)        ISSN: 0035-3787            Impact factor:   2.607


  5 in total

1.  A novel dominant D109A CRYAB mutation in a family with myofibrillar myopathy affects αB-crystallin structure.

Authors:  Jakub P Fichna; Anna Potulska-Chromik; Przemysław Miszta; Maria Jolanta Redowicz; Anna M Kaminska; Cezary Zekanowski; Sławomir Filipek
Journal:  BBA Clin       Date:  2016-11-11

2.  Drosophila NUAK functions with Starvin/BAG3 in autophagic protein turnover.

Authors:  David Brooks; Fawwaz Naeem; Marta Stetsiv; Samantha C Goetting; Simranjot Bawa; Nicole Green; Cheryl Clark; Arash Bashirullah; Erika R Geisbrecht
Journal:  PLoS Genet       Date:  2020-04-22       Impact factor: 5.917

3.  Panorama of the distal myopathies.

Authors:  Marco Savarese; Jaakko Sarparanta; Anna Vihola; Per Harald Jonson; Mridul Johari; Salla Rusanen; Peter Hackman; Bjarne Udd
Journal:  Acta Myol       Date:  2020-12-01

4.  Case report: An unusual case of desmin myopathy associated with heart failure and arrhythmia.

Authors:  Xuhan Liu; Yuan Liu; Bo Li; Lin Wang; Weihua Zhang
Journal:  Front Cardiovasc Med       Date:  2022-07-25

5.  Commercial genetic testing for type 2 polysaccharide storage myopathy and myofibrillar myopathy does not correspond to a histopathological diagnosis.

Authors:  Stephanie J Valberg; Carrie J Finno; Marisa L Henry; Melissa Schott; Deborah Velez-Irizarry; Sichong Peng; Erica C McKenzie; Jessica L Petersen
Journal:  Equine Vet J       Date:  2020-10-29       Impact factor: 2.888

  5 in total

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