Dysregulation of ribosome-associated quality control elicits cognitive disorders via overaccumulation of TTC3

Author:

Endo Ryo1,Chen Yi-Kai1,Burke John1,Takashima Noriko1,Suryawanshi Nayan1ORCID,Hui Kelvin K.1ORCID,Miyazaki Tatsuhiko2,Tanaka Motomasa1ORCID

Affiliation:

1. Laboratory for Protein Conformation Diseases, RIKEN Center for Brain Science, Wako, Saitama 351-0198, Japan

2. Department of Pathology, Gifu University Hospital, Gifu 501-1194, Japan

Abstract

Ribosome-associated quality control (RQC) pathway is responsible for degradation of nascent polypeptides in aberrantly stalled ribosomes, and its defects may lead to neurological diseases. However, the underlying molecular mechanism of how RQC dysfunction elicits neurological disorders remains poorly understood. Here we revealed that neurons with knockout (KO) of ubiquitin ligase LTN1, a key gene in the RQC pathway, show developmental defects in neurons via upregulation of TTC3 and UFMylation signaling proteins. The abnormally enhanced TTC3 protein in Ltn1 KO neurons reduced further accumulation of translationally arrested products by preventing translation initiation of selective genes. However, the overaccumulated TTC3 protein in turn caused dendritic abnormalities and reduced surface-localized GABA A receptors during neuronal development. Ltn1 KO mice showed behavioral deficits associated with cognitive disorders, a subset of which were restored by TTC3 knockdown in medial prefrontal cortex. Together, the overactivated cellular compensatory mechanism against defective RQC through TTC3 overaccumulation induced synaptic and cognitive deficits. More broadly, these findings represent a novel cellular mechanism underlying neuronal dysfunctions triggered by exaggerated cellular stress response to accumulated abnormal translation products in neurons.

Funder

Grants-in-Aid for Scientific Research for Innovative Area

AdAMS from the Ministry of Education, Culture, Sports, Science and Technology, Japan

Transformative Research Area (A) from the Ministry of Education, Culture, Sports, Science and Technology, Japan

RIKEN Pioneering Project (Biology of Intracellular Environments

RIKEN Aging project

AMED Brain/MINDS Project

AMED-CREST

AMED Pioneering Brain Research Project

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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