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ATP9A deficiency causes ADHD and aberrant endosomal recycling via modulating RAB5 and RAB11 activity

ATP9A, a lipid flippase of the class II P4-ATPases, is involved in cellular vesicle trafficking. Its homozygous variants are linked to neurodevelopmental disorders in humans. However, its physiological function, the underlying mechanism as well as its pathophysiological relevance in humans and anima...

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Autores principales: Meng, Tian, Chen, Xiaoting, He, Zhengjie, Huang, Haofeng, Lin, Shiyin, Liu, Kunru, Bai, Guo, Liu, Hao, Xu, Mindong, Zhuang, Haixia, Zhang, Yunlong, Waqas, Ahmed, Liu, Qian, Zhang, Chuan, Sun, Xiang-Dong, Huang, Huansen, Umair, Muhammad, Yan, Yousheng, Feng, Du
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group UK 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9816018/
https://www.ncbi.nlm.nih.gov/pubmed/36604604
http://dx.doi.org/10.1038/s41380-022-01940-w
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author Meng, Tian
Chen, Xiaoting
He, Zhengjie
Huang, Haofeng
Lin, Shiyin
Liu, Kunru
Bai, Guo
Liu, Hao
Xu, Mindong
Zhuang, Haixia
Zhang, Yunlong
Waqas, Ahmed
Liu, Qian
Zhang, Chuan
Sun, Xiang-Dong
Huang, Huansen
Umair, Muhammad
Yan, Yousheng
Feng, Du
author_facet Meng, Tian
Chen, Xiaoting
He, Zhengjie
Huang, Haofeng
Lin, Shiyin
Liu, Kunru
Bai, Guo
Liu, Hao
Xu, Mindong
Zhuang, Haixia
Zhang, Yunlong
Waqas, Ahmed
Liu, Qian
Zhang, Chuan
Sun, Xiang-Dong
Huang, Huansen
Umair, Muhammad
Yan, Yousheng
Feng, Du
author_sort Meng, Tian
collection PubMed
description ATP9A, a lipid flippase of the class II P4-ATPases, is involved in cellular vesicle trafficking. Its homozygous variants are linked to neurodevelopmental disorders in humans. However, its physiological function, the underlying mechanism as well as its pathophysiological relevance in humans and animals are still largely unknown. Here, we report two independent families in which the nonsense mutations c.433C>T/c.658C>T/c.983G>A (p. Arg145*/p. Arg220*/p. Trp328*) in ATP9A (NM_006045.3) cause autosomal recessive hypotonia, intellectual disability (ID) and attention deficit hyperactivity disorder (ADHD). Atp9a null mice show decreased muscle strength, memory deficits and hyperkinetic movement disorder, recapitulating the symptoms observed in patients. Abnormal neurite morphology and impaired synaptic transmission are found in the primary motor cortex and hippocampus of the Atp9a null mice. ATP9A is also required for maintaining neuronal neurite morphology and the viability of neural cells in vitro. It mainly localizes to endosomes and plays a pivotal role in endosomal recycling pathway by modulating small GTPase RAB5 and RAB11 activation. However, ATP9A pathogenic mutants have aberrant subcellular localization and cause abnormal endosomal recycling. These findings provide strong evidence that ATP9A deficiency leads to neurodevelopmental disorders and synaptic dysfunctions in both humans and mice, and establishes novel regulatory roles for ATP9A in RAB5 and RAB11 activity-dependent endosomal recycling pathway and neurological diseases.
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spelling pubmed-98160182023-01-06 ATP9A deficiency causes ADHD and aberrant endosomal recycling via modulating RAB5 and RAB11 activity Meng, Tian Chen, Xiaoting He, Zhengjie Huang, Haofeng Lin, Shiyin Liu, Kunru Bai, Guo Liu, Hao Xu, Mindong Zhuang, Haixia Zhang, Yunlong Waqas, Ahmed Liu, Qian Zhang, Chuan Sun, Xiang-Dong Huang, Huansen Umair, Muhammad Yan, Yousheng Feng, Du Mol Psychiatry Article ATP9A, a lipid flippase of the class II P4-ATPases, is involved in cellular vesicle trafficking. Its homozygous variants are linked to neurodevelopmental disorders in humans. However, its physiological function, the underlying mechanism as well as its pathophysiological relevance in humans and animals are still largely unknown. Here, we report two independent families in which the nonsense mutations c.433C>T/c.658C>T/c.983G>A (p. Arg145*/p. Arg220*/p. Trp328*) in ATP9A (NM_006045.3) cause autosomal recessive hypotonia, intellectual disability (ID) and attention deficit hyperactivity disorder (ADHD). Atp9a null mice show decreased muscle strength, memory deficits and hyperkinetic movement disorder, recapitulating the symptoms observed in patients. Abnormal neurite morphology and impaired synaptic transmission are found in the primary motor cortex and hippocampus of the Atp9a null mice. ATP9A is also required for maintaining neuronal neurite morphology and the viability of neural cells in vitro. It mainly localizes to endosomes and plays a pivotal role in endosomal recycling pathway by modulating small GTPase RAB5 and RAB11 activation. However, ATP9A pathogenic mutants have aberrant subcellular localization and cause abnormal endosomal recycling. These findings provide strong evidence that ATP9A deficiency leads to neurodevelopmental disorders and synaptic dysfunctions in both humans and mice, and establishes novel regulatory roles for ATP9A in RAB5 and RAB11 activity-dependent endosomal recycling pathway and neurological diseases. Nature Publishing Group UK 2023-01-06 2023 /pmc/articles/PMC9816018/ /pubmed/36604604 http://dx.doi.org/10.1038/s41380-022-01940-w Text en © The Author(s), under exclusive licence to Springer Nature Limited 2023, Springer Nature or its licensor (e.g. a society or other partner) holds exclusive rights to this article under a publishing agreement with the author(s) or other rightsholder(s); author self-archiving of the accepted manuscript version of this article is solely governed by the terms of such publishing agreement and applicable law. This article is made available via the PMC Open Access Subset for unrestricted research re-use and secondary analysis in any form or by any means with acknowledgement of the original source. These permissions are granted for the duration of the World Health Organization (WHO) declaration of COVID-19 as a global pandemic.
spellingShingle Article
Meng, Tian
Chen, Xiaoting
He, Zhengjie
Huang, Haofeng
Lin, Shiyin
Liu, Kunru
Bai, Guo
Liu, Hao
Xu, Mindong
Zhuang, Haixia
Zhang, Yunlong
Waqas, Ahmed
Liu, Qian
Zhang, Chuan
Sun, Xiang-Dong
Huang, Huansen
Umair, Muhammad
Yan, Yousheng
Feng, Du
ATP9A deficiency causes ADHD and aberrant endosomal recycling via modulating RAB5 and RAB11 activity
title ATP9A deficiency causes ADHD and aberrant endosomal recycling via modulating RAB5 and RAB11 activity
title_full ATP9A deficiency causes ADHD and aberrant endosomal recycling via modulating RAB5 and RAB11 activity
title_fullStr ATP9A deficiency causes ADHD and aberrant endosomal recycling via modulating RAB5 and RAB11 activity
title_full_unstemmed ATP9A deficiency causes ADHD and aberrant endosomal recycling via modulating RAB5 and RAB11 activity
title_short ATP9A deficiency causes ADHD and aberrant endosomal recycling via modulating RAB5 and RAB11 activity
title_sort atp9a deficiency causes adhd and aberrant endosomal recycling via modulating rab5 and rab11 activity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9816018/
https://www.ncbi.nlm.nih.gov/pubmed/36604604
http://dx.doi.org/10.1038/s41380-022-01940-w
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