Stage- and Region-Dependent Proteomic Alterations in a Mouse Model of Creatine Transporter Deficiency

S Shingo Ito Y Yumi Iwata T Tatsuki Uemura M Michihiko Sugimoto H Haruka Kumabe A Ayaka Miyano T Teruya Nakamura (Graduate School of Pharmaceutical Sciences, Kumamoto University) N Naoto Tashiro M Megumu Ieiri M Moeka Umezaki S Shoma Chikamatsu T Takeshi Masuda S Satohiro Nakao N Naomi Nakagata T Toru Takeo K Kimi Araki (Division of Developmental Genetics, Institute of Resource Development and Analysis, Kumamoto University) S Sumio Ohtsuki

Abstract

SLC6A8 encodes the creatine transporter (CRT), which mediates creatine transport across the plasma membrane in the brain, including the blood–brain barrier and neurons. Creatine transporter deficiency (CTD), caused by pathogenic variants in SLC6A8 , leads to cerebral creatine depletion and cognitive impairment. Here, we investigated the developmental molecular mechanisms underlying CTD using the pathogenic c.1681G>C (G561R) variant of Slc6a8 , which corresponds to a variant identified in SLC6A8 in a patient with CTD. In vitro analyses using HEK293 cells expressing mutant mouse CRT carrying the G561R variant demonstrated impaired N-glycan maturation and plasma membrane localization of the transporter, resulting in markedly reduced creatine uptake, consistent with previous reports on the corresponding human CRT variant. To investigate the in vivo effects of this pathogenic variant, we generated CRT-G561R knock-in mice by introducing the c.1681G>C point mutation into the mouse Slc6a8 gene using the CRISPR/Cas9 system. These male mice exhibited severe reductions in brain creatine levels, postnatal growth retardation, and impaired spatial memory, despite preserved gross brain morphology. Quantitative proteomic analyses of the hippocampus and cerebral cortex during postnatal development revealed region-dependent protein alterations in CTD. The hippocampus showed pronounced early postnatal remodeling involving proteins related to actin cytoskeleton organization and vesicle-mediated membrane trafficking, whereas the cerebral cortex exhibited a more gradual response involving creatine biosynthesis-related enzymes and later-emerging mitochondrial pathways, including the mitochondrial translation machinery. These findings demonstrate stage- and region-dependent proteomic remodeling during postnatal brain development in CTD.

Article Details

Volume / Issue Vol. 46, Issue 30
Published July 29, 2026
Pages e2010252026
ISSN 0270-6474
Publisher Society for Neuroscience

Journal Info

Journal of Neuroscience

Society for Neuroscience

ISSN: 0270-6474 Life Sciences

Authors (17)

S

Shingo Ito

Y

Yumi Iwata

T

Tatsuki Uemura

M

Michihiko Sugimoto

H

Haruka Kumabe

A

Ayaka Miyano

T

Teruya Nakamura

Graduate School of Pharmaceutical Sciences, Kumamoto University

N

Naoto Tashiro

M

Megumu Ieiri

M

Moeka Umezaki

S

Shoma Chikamatsu

T

Takeshi Masuda

S

Satohiro Nakao

N

Naomi Nakagata

T

Toru Takeo

K

Kimi Araki

Division of Developmental Genetics, Institute of Resource Development and Analysis, Kumamoto University

S

Sumio Ohtsuki