Muscle-specific lack of Gfpt1 triggers ER stress to alleviate misfolded protein accumulation

Author:

Zhang Ruchen1,Farshadyeganeh Paniz1,Ohkawara Bisei1,Nakajima Kazuki2,Takeda Jun-ichi1,Ito Mikako1,Zhang Shaochuan1,Miyasaka Yuki3,Ohno Tamio3,Mori-Yoshimura Madoka4,Masuda Akio1ORCID,Ohno Kinji15ORCID

Affiliation:

1. Center for Neurological Diseases and Cancer, Nagoya University Graduate School of Medicine 1 Division of Neurogenetics , , Nagoya 466-8550 , Japan

2. Institute for Glyco-core Research (iGCORE), Gifu University 2 , Gifu 501-1193 , Japan

3. Nagoya University Graduate School of Medicine 3 Division of Experimental Animals , , Nagoya 466-8550 , Japan

4. National Center Hospital, National Center of Neurology and Psychiatry 4 Department of Neurology , , Kodaira 187-8775 , Japan

5. Graduate School of Nutritional Sciences, Nagoya University of Arts and Sciences 5 , Nisshin 470-0196 , Japan

Abstract

ABSTRACT Pathogenic variants in GFPT1, encoding a key enzyme to synthesize UDP-N-acetylglucosamine (UDP-GlcNAc), cause congenital myasthenic syndrome (CMS). We made a knock-in (KI) mouse model carrying a frameshift variant in Gfpt1 exon 9, simulating that found in a patient with CMS. As Gfpt1 exon 9 is exclusively expressed in striated muscles, Gfpt1-KI mice were deficient for Gfpt1 only in skeletal muscles. In Gfpt1-KI mice, (1) UDP-HexNAc, CMP-NeuAc and protein O-GlcNAcylation were reduced in skeletal muscles; (2) aged Gfpt1-KI mice showed poor exercise performance and abnormal neuromuscular junction structures; and (3) markers of the unfolded protein response (UPR) were elevated in skeletal muscles. Denervation-mediated enhancement of endoplasmic reticulum (ER) stress in Gfpt1-KI mice facilitated protein folding, ubiquitin-proteasome degradation and apoptosis, whereas autophagy was not induced and protein aggregates were markedly increased. Lack of autophagy was accounted for by enhanced degradation of FoxO1 by increased Xbp1-s/u proteins. Similarly, in Gfpt1-silenced C2C12 myotubes, ER stress exacerbated protein aggregates and activated apoptosis, but autophagy was attenuated. In both skeletal muscles in Gfpt1-KI mice and Gfpt1-silenced C2C12 myotubes, maladaptive UPR failed to eliminate protein aggregates and provoked apoptosis.

Funder

Japan Agency for Medical Research and Development

Japan Society for the Promotion of Science

Ministry of Health, Labour and Welfare

National Center of Neurology and Psychiatry

THERS Interdisciplinary Frontier Next Generation Researcher Project

Nagoya University

Publisher

The Company of Biologists

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