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Disrupted structure and aberrant function of CHIP mediates the loss of motor and cognitive function in preclinical models of SCAR16

CHIP (carboxyl terminus of heat shock 70-interacting protein) has long been recognized as an active member of the cellular protein quality control system given the ability of CHIP to function as both a co-chaperone and ubiquitin ligase. We discovered a genetic disease, now known as spinocerebellar a...

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Autores principales: Shi, Chang-he, Rubel, Carrie, Soss, Sarah E., Sanchez-Hodge, Rebekah, Zhang, Shuo, Madrigal, Sabrina C., Ravi, Saranya, McDonough, Holly, Page, Richard C., Chazin, Walter J., Patterson, Cam, Mao, Cheng-yuan, Willis, Monte S., Luo, Hai-Yang, Li, Yu-sheng, Stevens, Donte A., Tang, Mi-bo, Du, Pan, Wang, Yao-he, Hu, Zheng-wei, Xu, Yu-ming, Schisler, Jonathan C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6160236/
https://www.ncbi.nlm.nih.gov/pubmed/30222779
http://dx.doi.org/10.1371/journal.pgen.1007664
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author Shi, Chang-he
Rubel, Carrie
Soss, Sarah E.
Sanchez-Hodge, Rebekah
Zhang, Shuo
Madrigal, Sabrina C.
Ravi, Saranya
McDonough, Holly
Page, Richard C.
Chazin, Walter J.
Patterson, Cam
Mao, Cheng-yuan
Willis, Monte S.
Luo, Hai-Yang
Li, Yu-sheng
Stevens, Donte A.
Tang, Mi-bo
Du, Pan
Wang, Yao-he
Hu, Zheng-wei
Xu, Yu-ming
Schisler, Jonathan C.
author_facet Shi, Chang-he
Rubel, Carrie
Soss, Sarah E.
Sanchez-Hodge, Rebekah
Zhang, Shuo
Madrigal, Sabrina C.
Ravi, Saranya
McDonough, Holly
Page, Richard C.
Chazin, Walter J.
Patterson, Cam
Mao, Cheng-yuan
Willis, Monte S.
Luo, Hai-Yang
Li, Yu-sheng
Stevens, Donte A.
Tang, Mi-bo
Du, Pan
Wang, Yao-he
Hu, Zheng-wei
Xu, Yu-ming
Schisler, Jonathan C.
author_sort Shi, Chang-he
collection PubMed
description CHIP (carboxyl terminus of heat shock 70-interacting protein) has long been recognized as an active member of the cellular protein quality control system given the ability of CHIP to function as both a co-chaperone and ubiquitin ligase. We discovered a genetic disease, now known as spinocerebellar autosomal recessive 16 (SCAR16), resulting from a coding mutation that caused a loss of CHIP ubiquitin ligase function. The initial mutation describing SCAR16 was a missense mutation in the ubiquitin ligase domain of CHIP (p.T246M). Using multiple biophysical and cellular approaches, we demonstrated that T246M mutation results in structural disorganization and misfolding of the CHIP U-box domain, promoting oligomerization, and increased proteasome-dependent turnover. CHIP-T246M has no ligase activity, but maintains interactions with chaperones and chaperone-related functions. To establish preclinical models of SCAR16, we engineered T246M at the endogenous locus in both mice and rats. Animals homozygous for T246M had both cognitive and motor cerebellar dysfunction distinct from those observed in the CHIP null animal model, as well as deficits in learning and memory, reflective of the cognitive deficits reported in SCAR16 patients. We conclude that the T246M mutation is not equivalent to the total loss of CHIP, supporting the concept that disease-causing CHIP mutations have different biophysical and functional repercussions on CHIP function that may directly correlate to the spectrum of clinical phenotypes observed in SCAR16 patients. Our findings both further expand our basic understanding of CHIP biology and provide meaningful mechanistic insight underlying the molecular drivers of SCAR16 disease pathology, which may be used to inform the development of novel therapeutics for this devastating disease.
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spelling pubmed-61602362018-10-19 Disrupted structure and aberrant function of CHIP mediates the loss of motor and cognitive function in preclinical models of SCAR16 Shi, Chang-he Rubel, Carrie Soss, Sarah E. Sanchez-Hodge, Rebekah Zhang, Shuo Madrigal, Sabrina C. Ravi, Saranya McDonough, Holly Page, Richard C. Chazin, Walter J. Patterson, Cam Mao, Cheng-yuan Willis, Monte S. Luo, Hai-Yang Li, Yu-sheng Stevens, Donte A. Tang, Mi-bo Du, Pan Wang, Yao-he Hu, Zheng-wei Xu, Yu-ming Schisler, Jonathan C. PLoS Genet Research Article CHIP (carboxyl terminus of heat shock 70-interacting protein) has long been recognized as an active member of the cellular protein quality control system given the ability of CHIP to function as both a co-chaperone and ubiquitin ligase. We discovered a genetic disease, now known as spinocerebellar autosomal recessive 16 (SCAR16), resulting from a coding mutation that caused a loss of CHIP ubiquitin ligase function. The initial mutation describing SCAR16 was a missense mutation in the ubiquitin ligase domain of CHIP (p.T246M). Using multiple biophysical and cellular approaches, we demonstrated that T246M mutation results in structural disorganization and misfolding of the CHIP U-box domain, promoting oligomerization, and increased proteasome-dependent turnover. CHIP-T246M has no ligase activity, but maintains interactions with chaperones and chaperone-related functions. To establish preclinical models of SCAR16, we engineered T246M at the endogenous locus in both mice and rats. Animals homozygous for T246M had both cognitive and motor cerebellar dysfunction distinct from those observed in the CHIP null animal model, as well as deficits in learning and memory, reflective of the cognitive deficits reported in SCAR16 patients. We conclude that the T246M mutation is not equivalent to the total loss of CHIP, supporting the concept that disease-causing CHIP mutations have different biophysical and functional repercussions on CHIP function that may directly correlate to the spectrum of clinical phenotypes observed in SCAR16 patients. Our findings both further expand our basic understanding of CHIP biology and provide meaningful mechanistic insight underlying the molecular drivers of SCAR16 disease pathology, which may be used to inform the development of novel therapeutics for this devastating disease. Public Library of Science 2018-09-17 /pmc/articles/PMC6160236/ /pubmed/30222779 http://dx.doi.org/10.1371/journal.pgen.1007664 Text en © 2018 Shi et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Shi, Chang-he
Rubel, Carrie
Soss, Sarah E.
Sanchez-Hodge, Rebekah
Zhang, Shuo
Madrigal, Sabrina C.
Ravi, Saranya
McDonough, Holly
Page, Richard C.
Chazin, Walter J.
Patterson, Cam
Mao, Cheng-yuan
Willis, Monte S.
Luo, Hai-Yang
Li, Yu-sheng
Stevens, Donte A.
Tang, Mi-bo
Du, Pan
Wang, Yao-he
Hu, Zheng-wei
Xu, Yu-ming
Schisler, Jonathan C.
Disrupted structure and aberrant function of CHIP mediates the loss of motor and cognitive function in preclinical models of SCAR16
title Disrupted structure and aberrant function of CHIP mediates the loss of motor and cognitive function in preclinical models of SCAR16
title_full Disrupted structure and aberrant function of CHIP mediates the loss of motor and cognitive function in preclinical models of SCAR16
title_fullStr Disrupted structure and aberrant function of CHIP mediates the loss of motor and cognitive function in preclinical models of SCAR16
title_full_unstemmed Disrupted structure and aberrant function of CHIP mediates the loss of motor and cognitive function in preclinical models of SCAR16
title_short Disrupted structure and aberrant function of CHIP mediates the loss of motor and cognitive function in preclinical models of SCAR16
title_sort disrupted structure and aberrant function of chip mediates the loss of motor and cognitive function in preclinical models of scar16
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6160236/
https://www.ncbi.nlm.nih.gov/pubmed/30222779
http://dx.doi.org/10.1371/journal.pgen.1007664
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