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Two Autism/Dyslexia Linked Variations of DOCK4 Disrupt the Gene Function on Rac1/Rap1 Activation, Neurite Outgrowth, and Synapse Development

Autism spectrum disorder (ASD) and dyslexia are both neurodevelopmental disorders with high prevalence in children. Both disorders have strong genetic basis, and share similar social communication deficits co-occurring with impairments of reading or language. However, whether these two disorders sha...

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Autores principales: Huang, Miaoqi, Liang, Chunmei, Li, Shengnan, Zhang, Jifeng, Guo, Daji, Zhao, Bo, Liu, Yuyang, Peng, Yinghui, Xu, Junyu, Liu, Wei, Guo, Guoqing, Shi, Lei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6974517/
https://www.ncbi.nlm.nih.gov/pubmed/32009906
http://dx.doi.org/10.3389/fncel.2019.00577
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author Huang, Miaoqi
Liang, Chunmei
Li, Shengnan
Zhang, Jifeng
Guo, Daji
Zhao, Bo
Liu, Yuyang
Peng, Yinghui
Xu, Junyu
Liu, Wei
Guo, Guoqing
Shi, Lei
author_facet Huang, Miaoqi
Liang, Chunmei
Li, Shengnan
Zhang, Jifeng
Guo, Daji
Zhao, Bo
Liu, Yuyang
Peng, Yinghui
Xu, Junyu
Liu, Wei
Guo, Guoqing
Shi, Lei
author_sort Huang, Miaoqi
collection PubMed
description Autism spectrum disorder (ASD) and dyslexia are both neurodevelopmental disorders with high prevalence in children. Both disorders have strong genetic basis, and share similar social communication deficits co-occurring with impairments of reading or language. However, whether these two disorders share common genetic risks remain elusive. DOCK4 (dedicator for cytokinesis 4), a guanine nucleotide exchange factor (GEF) for the small GTPase Rac1, is one of few genes that are associated with both ASD and dyslexia. Dock4 is important for neuronal development and social behaviors. Two DOCK4 variations, Exon27-52 deletion (protein product: Dock4-945VS) and a missense mutation at rs2074130 (protein product: Dock4-R853H), are associated with dyslexia and/or ASD with reading difficulties. The present study explores the molecular and cellular functions of these two DOCK4 variants on neuronal development, by comparing them with the wild-type Dock4 protein. Notably, it is revealed that both mutants of Dock4 showed decreased ability to activate not only Rac1, but also another small GTPase Rap1. Consistently, both mutants were dysfunctional for regulation of cell morphology and cytoskeleton. Using Neuro-2a cells and hippocampus neurons as models, we found that both mutants had compromised function in promoting neurite outgrowth and dendritic spine formation. Electrophysiological recordings further showed that R853H partially lost the ability to promote excitatory synaptic transmission, whereas 945VS totally lost the ability. Together, we identified R853 as a previously uncharacterized site for the regulation of the integrity of Dock4 function, and provides insights in understanding the common molecular pathophysiology of ASD and dyslexia.
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spelling pubmed-69745172020-01-31 Two Autism/Dyslexia Linked Variations of DOCK4 Disrupt the Gene Function on Rac1/Rap1 Activation, Neurite Outgrowth, and Synapse Development Huang, Miaoqi Liang, Chunmei Li, Shengnan Zhang, Jifeng Guo, Daji Zhao, Bo Liu, Yuyang Peng, Yinghui Xu, Junyu Liu, Wei Guo, Guoqing Shi, Lei Front Cell Neurosci Neuroscience Autism spectrum disorder (ASD) and dyslexia are both neurodevelopmental disorders with high prevalence in children. Both disorders have strong genetic basis, and share similar social communication deficits co-occurring with impairments of reading or language. However, whether these two disorders share common genetic risks remain elusive. DOCK4 (dedicator for cytokinesis 4), a guanine nucleotide exchange factor (GEF) for the small GTPase Rac1, is one of few genes that are associated with both ASD and dyslexia. Dock4 is important for neuronal development and social behaviors. Two DOCK4 variations, Exon27-52 deletion (protein product: Dock4-945VS) and a missense mutation at rs2074130 (protein product: Dock4-R853H), are associated with dyslexia and/or ASD with reading difficulties. The present study explores the molecular and cellular functions of these two DOCK4 variants on neuronal development, by comparing them with the wild-type Dock4 protein. Notably, it is revealed that both mutants of Dock4 showed decreased ability to activate not only Rac1, but also another small GTPase Rap1. Consistently, both mutants were dysfunctional for regulation of cell morphology and cytoskeleton. Using Neuro-2a cells and hippocampus neurons as models, we found that both mutants had compromised function in promoting neurite outgrowth and dendritic spine formation. Electrophysiological recordings further showed that R853H partially lost the ability to promote excitatory synaptic transmission, whereas 945VS totally lost the ability. Together, we identified R853 as a previously uncharacterized site for the regulation of the integrity of Dock4 function, and provides insights in understanding the common molecular pathophysiology of ASD and dyslexia. Frontiers Media S.A. 2020-01-15 /pmc/articles/PMC6974517/ /pubmed/32009906 http://dx.doi.org/10.3389/fncel.2019.00577 Text en Copyright © 2020 Huang, Liang, Li, Zhang, Guo, Zhao, Liu, Peng, Xu, Liu, Guo and Shi. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Neuroscience
Huang, Miaoqi
Liang, Chunmei
Li, Shengnan
Zhang, Jifeng
Guo, Daji
Zhao, Bo
Liu, Yuyang
Peng, Yinghui
Xu, Junyu
Liu, Wei
Guo, Guoqing
Shi, Lei
Two Autism/Dyslexia Linked Variations of DOCK4 Disrupt the Gene Function on Rac1/Rap1 Activation, Neurite Outgrowth, and Synapse Development
title Two Autism/Dyslexia Linked Variations of DOCK4 Disrupt the Gene Function on Rac1/Rap1 Activation, Neurite Outgrowth, and Synapse Development
title_full Two Autism/Dyslexia Linked Variations of DOCK4 Disrupt the Gene Function on Rac1/Rap1 Activation, Neurite Outgrowth, and Synapse Development
title_fullStr Two Autism/Dyslexia Linked Variations of DOCK4 Disrupt the Gene Function on Rac1/Rap1 Activation, Neurite Outgrowth, and Synapse Development
title_full_unstemmed Two Autism/Dyslexia Linked Variations of DOCK4 Disrupt the Gene Function on Rac1/Rap1 Activation, Neurite Outgrowth, and Synapse Development
title_short Two Autism/Dyslexia Linked Variations of DOCK4 Disrupt the Gene Function on Rac1/Rap1 Activation, Neurite Outgrowth, and Synapse Development
title_sort two autism/dyslexia linked variations of dock4 disrupt the gene function on rac1/rap1 activation, neurite outgrowth, and synapse development
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6974517/
https://www.ncbi.nlm.nih.gov/pubmed/32009906
http://dx.doi.org/10.3389/fncel.2019.00577
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