Cargando…

Transcriptional upregulation of Bag3, a chaperone-assisted selective autophagy factor, in animal models of KY-deficient hereditary myopathy

The importance of kyphoscoliosis peptidase (KY) in skeletal muscle physiology has recently been emphasised by the identification of novel human myopathies associated with KY deficiency. Neither the pathogenic mechanism of KY deficiency nor a specific role for KY in muscle function have been establis...

Descripción completa

Detalles Bibliográficos
Autores principales: Jokl, Elliot J., Hughes, Gideon L., Cracknell, Tobias, Pownall, Mary E., Blanco, Gonzalo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists Ltd 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6078408/
https://www.ncbi.nlm.nih.gov/pubmed/29914939
http://dx.doi.org/10.1242/dmm.033225
_version_ 1783345087797788672
author Jokl, Elliot J.
Hughes, Gideon L.
Cracknell, Tobias
Pownall, Mary E.
Blanco, Gonzalo
author_facet Jokl, Elliot J.
Hughes, Gideon L.
Cracknell, Tobias
Pownall, Mary E.
Blanco, Gonzalo
author_sort Jokl, Elliot J.
collection PubMed
description The importance of kyphoscoliosis peptidase (KY) in skeletal muscle physiology has recently been emphasised by the identification of novel human myopathies associated with KY deficiency. Neither the pathogenic mechanism of KY deficiency nor a specific role for KY in muscle function have been established. However, aberrant localisation of filamin C (FLNC) in muscle fibres has been shown in humans and mice with loss-of-function mutations in the KY gene. FLNC turnover has been proposed to be controlled by chaperone-assisted selective autophagy (CASA), a client-specific and tension-induced pathway that is required for muscle maintenance. Here, we have generated new C2C12 myoblast and zebrafish models of KY deficiency by CRISPR/Cas9 mutagenesis. To obtain insights into the pathogenic mechanism caused by KY deficiency, expression of the co-chaperone BAG3 and other CASA factors was analyzed in the cellular, zebrafish and ky/ky mouse models. Ky-deficient C2C12-derived clones show trends of higher transcription of CASA factors in differentiated myotubes. The ky-deficient zebrafish model (ky(yo1)/ky(yo1)) lacks overt signs of pathology, but shows significantly increased bag3 and flnca/b expression in embryos and adult muscle. Additionally, ky(yo1)/ky(yo1) embryos challenged by swimming in viscous media show an inability to further increase expression of these factors in contrast with wild-type controls. The ky/ky mouse shows elevated expression of Bag3 in the non-pathological exterior digitorum longus (EDL) and evidence of impaired BAG3 turnover in the pathological soleus. Thus, upregulation of CASA factors appears to be an early and primary molecular hallmark of KY deficiency.
format Online
Article
Text
id pubmed-6078408
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher The Company of Biologists Ltd
record_format MEDLINE/PubMed
spelling pubmed-60784082018-08-07 Transcriptional upregulation of Bag3, a chaperone-assisted selective autophagy factor, in animal models of KY-deficient hereditary myopathy Jokl, Elliot J. Hughes, Gideon L. Cracknell, Tobias Pownall, Mary E. Blanco, Gonzalo Dis Model Mech Research Article The importance of kyphoscoliosis peptidase (KY) in skeletal muscle physiology has recently been emphasised by the identification of novel human myopathies associated with KY deficiency. Neither the pathogenic mechanism of KY deficiency nor a specific role for KY in muscle function have been established. However, aberrant localisation of filamin C (FLNC) in muscle fibres has been shown in humans and mice with loss-of-function mutations in the KY gene. FLNC turnover has been proposed to be controlled by chaperone-assisted selective autophagy (CASA), a client-specific and tension-induced pathway that is required for muscle maintenance. Here, we have generated new C2C12 myoblast and zebrafish models of KY deficiency by CRISPR/Cas9 mutagenesis. To obtain insights into the pathogenic mechanism caused by KY deficiency, expression of the co-chaperone BAG3 and other CASA factors was analyzed in the cellular, zebrafish and ky/ky mouse models. Ky-deficient C2C12-derived clones show trends of higher transcription of CASA factors in differentiated myotubes. The ky-deficient zebrafish model (ky(yo1)/ky(yo1)) lacks overt signs of pathology, but shows significantly increased bag3 and flnca/b expression in embryos and adult muscle. Additionally, ky(yo1)/ky(yo1) embryos challenged by swimming in viscous media show an inability to further increase expression of these factors in contrast with wild-type controls. The ky/ky mouse shows elevated expression of Bag3 in the non-pathological exterior digitorum longus (EDL) and evidence of impaired BAG3 turnover in the pathological soleus. Thus, upregulation of CASA factors appears to be an early and primary molecular hallmark of KY deficiency. The Company of Biologists Ltd 2018-07-01 2018-07-06 /pmc/articles/PMC6078408/ /pubmed/29914939 http://dx.doi.org/10.1242/dmm.033225 Text en © 2018. Published by The Company of Biologists Ltd http://creativecommons.org/licenses/by/3.0This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0), which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Article
Jokl, Elliot J.
Hughes, Gideon L.
Cracknell, Tobias
Pownall, Mary E.
Blanco, Gonzalo
Transcriptional upregulation of Bag3, a chaperone-assisted selective autophagy factor, in animal models of KY-deficient hereditary myopathy
title Transcriptional upregulation of Bag3, a chaperone-assisted selective autophagy factor, in animal models of KY-deficient hereditary myopathy
title_full Transcriptional upregulation of Bag3, a chaperone-assisted selective autophagy factor, in animal models of KY-deficient hereditary myopathy
title_fullStr Transcriptional upregulation of Bag3, a chaperone-assisted selective autophagy factor, in animal models of KY-deficient hereditary myopathy
title_full_unstemmed Transcriptional upregulation of Bag3, a chaperone-assisted selective autophagy factor, in animal models of KY-deficient hereditary myopathy
title_short Transcriptional upregulation of Bag3, a chaperone-assisted selective autophagy factor, in animal models of KY-deficient hereditary myopathy
title_sort transcriptional upregulation of bag3, a chaperone-assisted selective autophagy factor, in animal models of ky-deficient hereditary myopathy
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6078408/
https://www.ncbi.nlm.nih.gov/pubmed/29914939
http://dx.doi.org/10.1242/dmm.033225
work_keys_str_mv AT joklelliotj transcriptionalupregulationofbag3achaperoneassistedselectiveautophagyfactorinanimalmodelsofkydeficienthereditarymyopathy
AT hughesgideonl transcriptionalupregulationofbag3achaperoneassistedselectiveautophagyfactorinanimalmodelsofkydeficienthereditarymyopathy
AT cracknelltobias transcriptionalupregulationofbag3achaperoneassistedselectiveautophagyfactorinanimalmodelsofkydeficienthereditarymyopathy
AT pownallmarye transcriptionalupregulationofbag3achaperoneassistedselectiveautophagyfactorinanimalmodelsofkydeficienthereditarymyopathy
AT blancogonzalo transcriptionalupregulationofbag3achaperoneassistedselectiveautophagyfactorinanimalmodelsofkydeficienthereditarymyopathy