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1.
Sci Adv ; 10(15): eadf7001, 2024 Apr 12.
Article in English | MEDLINE | ID: mdl-38608030

ABSTRACT

Genes implicated in translation control have been associated with autism spectrum disorders (ASDs). However, some important genetic causes of autism, including the 16p11.2 microdeletion, bear no obvious connection to translation. Here, we use proteomics, genetics, and translation assays in cultured cells and mouse brain to reveal altered translation mediated by loss of the kinase TAOK2 in 16p11.2 deletion models. We show that TAOK2 associates with the translational machinery and functions as a translational brake by phosphorylating eukaryotic elongation factor 2 (eEF2). Previously, all signal-mediated regulation of translation elongation via eEF2 phosphorylation was believed to be mediated by a single kinase, eEF2K. However, we show that TAOK2 can directly phosphorylate eEF2 on the same regulatory site, but functions independently of eEF2K signaling. Collectively, our results reveal an eEF2K-independent signaling pathway for control of translation elongation and suggest altered translation as a molecular component in the etiology of some forms of ASD.


Subject(s)
Autism Spectrum Disorder , Autistic Disorder , Ursidae , Animals , Mice , Autistic Disorder/genetics , Peptide Elongation Factor 2 , Phosphorylation , Autism Spectrum Disorder/genetics , Biological Assay
2.
STAR Protoc ; 5(1): 102793, 2024 Mar 15.
Article in English | MEDLINE | ID: mdl-38157295

ABSTRACT

Here, we present a protocol for differential multi-omic analyses of distinct cell types in the developing mouse cerebral cortex. We describe steps for in utero electroporation, subsequent flow-cytometry-based isolation of developing mouse cortical cells, bulk RNA sequencing or quantitative liquid chromatography-tandem mass spectrometry, and bioinformatic analyses. This protocol can be applied to compare the proteomes and transcriptomes of developing mouse cortical cell populations after various manipulations (e.g., epigenetic). For complete details on the use and execution of this protocol, please refer to Meka et al. (2022).1.


Subject(s)
Computational Biology , Multiomics , Animals , Mice , Chromatography, Liquid , Electroporation , Cerebral Cortex
3.
Cell Rep ; 41(8): 111678, 2022 11 22.
Article in English | MEDLINE | ID: mdl-36417873

ABSTRACT

There are hundreds of risk genes associated with autism spectrum disorder (ASD), but signaling networks at the protein level remain unexplored. We use neuron-specific proximity-labeling proteomics (BioID2) to identify protein-protein interaction (PPI) networks for 41 ASD risk genes. Neuron-specific PPI networks, including synaptic transmission proteins, are disrupted by de novo missense variants. The PPI network map reveals convergent pathways, including mitochondrial/metabolic processes, Wnt signaling, and MAPK signaling. CRISPR knockout displays an association between mitochondrial activity and ASD risk genes. The PPI network shows an enrichment of 112 additional ASD risk genes and differentially expressed genes from postmortem ASD patients. Clustering of risk genes based on PPI networks identifies gene groups corresponding to clinical behavior score severity. Our data report that cell type-specific PPI networks can identify individual and convergent ASD signaling networks, provide a method to assess patient variants, and highlight biological insight into disease mechanisms and sub-cohorts of ASD.


Subject(s)
Autism Spectrum Disorder , Autistic Disorder , Humans , Autistic Disorder/genetics , Autism Spectrum Disorder/genetics , Protein Interaction Maps/genetics , Neurons , Proteins , Wnt Signaling Pathway
4.
Mol Psychiatry ; 27(11): 4707-4721, 2022 Nov.
Article in English | MEDLINE | ID: mdl-36123424

ABSTRACT

The precise development of the neocortex is a prerequisite for higher cognitive and associative functions. Despite numerous advances that have been made in understanding neuronal differentiation and cortex development, our knowledge regarding the impact of specific genes associated with neurodevelopmental disorders on these processes is still limited. Here, we show that Taok2, which is encoded in humans within the autism spectrum disorder (ASD) susceptibility locus 16p11.2, is essential for neuronal migration. Overexpression of de novo mutations or rare variants from ASD patients disrupts neuronal migration in an isoform-specific manner. The mutated TAOK2α variants but not the TAOK2ß variants impaired neuronal migration. Moreover, the TAOK2α isoform colocalizes with microtubules. Consequently, neurons lacking Taok2 have unstable microtubules with reduced levels of acetylated tubulin and phosphorylated JNK1. Mice lacking Taok2 develop gross cortical and cortex layering abnormalities. Moreover, acute Taok2 downregulation or Taok2 knockout delayed the migration of upper-layer cortical neurons in mice, and the expression of a constitutively active form of JNK1 rescued these neuronal migration defects. Finally, we report that the brains of the Taok2 KO and 16p11.2 del Het mouse models show striking anatomical similarities and that the heterozygous 16p11.2 microdeletion mouse model displayed reduced levels of phosphorylated JNK1 and neuronal migration deficits, which were ameliorated upon the introduction of TAOK2α in cortical neurons and in the developing cortex of those mice. These results delineate the critical role of TAOK2 in cortical development and its contribution to neurodevelopmental disorders, including ASD.


Subject(s)
Autism Spectrum Disorder , Autistic Disorder , Neocortex , Protein Serine-Threonine Kinases , Animals , Humans , Mice , Autism Spectrum Disorder/genetics , Autistic Disorder/genetics , Disease Models, Animal , Microtubules/genetics , Microtubules/metabolism , Neocortex/metabolism , Neurogenesis/genetics , Neurogenesis/physiology , Protein Serine-Threonine Kinases/genetics , Protein Serine-Threonine Kinases/metabolism
5.
Cell Rep ; 39(3): 110686, 2022 04 19.
Article in English | MEDLINE | ID: mdl-35443171

ABSTRACT

Microtubule (MT) modifications are critical during axon development, with stable MTs populating the axon. How these modifications are spatially coordinated is unclear. Here, via high-resolution microscopy, we show that early developing neurons have fewer somatic acetylated MTs restricted near the centrosome. At later stages, however, acetylated MTs spread out in soma and concentrate in growing axon. Live imaging in early plated neurons of the MT plus-end protein, EB3, show increased displacement and growth rate near the MTOC, suggesting local differences that might support axon selection. Moreover, F-actin disruption in early developing neurons, which show fewer somatic acetylated MTs, does not induce multiple axons, unlike later stages. Overexpression of centrosomal protein 120 (Cep120), which promotes MT acetylation/stabilization, induces multiple axons, while its knockdown downregulates proteins modulating MT dynamics and stability, hampering axon formation. Collectively, we show how centrosome-dependent MT modifications contribute to axon formation.


Subject(s)
Axons , Microtubules , Actin Cytoskeleton , Axons/metabolism , Centrosome/metabolism , Microtubule-Associated Proteins/metabolism , Microtubules/metabolism , Neurons/metabolism
6.
EMBO Rep ; 20(12): e47743, 2019 12 05.
Article in English | MEDLINE | ID: mdl-31650708

ABSTRACT

The centrosome is thought to be the major neuronal microtubule-organizing center (MTOC) in early neuronal development, producing microtubules with a radial organization. In addition, albeit in vitro, recent work showed that isolated centrosomes could serve as an actin-organizing center, raising the possibility that neuronal development may, in addition, require a centrosome-based actin radial organization. Here, we report, using super-resolution microscopy and live-cell imaging of cultured rodent neurons, F-actin organization around the centrosome with dynamic F-actin aster-like structures with F-actin fibers extending and retracting actively. Photoactivation/photoconversion experiments and molecular manipulations of F-actin stability reveal a robust flux of somatic F-actin toward the cell periphery. Finally, we show that somatic F-actin intermingles with centrosomal PCM-1 (pericentriolar material 1 protein) satellites. Knockdown of PCM-1 and disruption of centrosomal activity not only affect F-actin dynamics near the centrosome but also in distal growth cones. Collectively, the data show a radial F-actin organization during early neuronal development, which might be a cellular mechanism for providing peripheral regions with a fast and continuous source of actin polymers, hence sustaining initial neuronal development.


Subject(s)
Actins/metabolism , Growth Cones/metabolism , Neurogenesis , Animals , Cell Cycle Proteins/metabolism , Cells, Cultured , Centrosome/metabolism , Hippocampus/cytology , Hippocampus/embryology , Mice , Mice, Inbred C57BL , Microtubules/metabolism , Rats
7.
Mol Psychiatry ; 24(9): 1329-1350, 2019 09.
Article in English | MEDLINE | ID: mdl-29467497

ABSTRACT

Atypical brain connectivity is a major contributor to the pathophysiology of neurodevelopmental disorders (NDDs) including autism spectrum disorders (ASDs). TAOK2 is one of several genes in the 16p11.2 microdeletion region, but whether it contributes to NDDs is unknown. We performed behavioral analysis on Taok2 heterozygous (Het) and knockout (KO) mice and found gene dosage-dependent impairments in cognition, anxiety, and social interaction. Taok2 Het and KO mice also have dosage-dependent abnormalities in brain size and neural connectivity in multiple regions, deficits in cortical layering, dendrite and synapse formation, and reduced excitatory neurotransmission. Whole-genome and -exome sequencing of ASD families identified three de novo mutations in TAOK2 and functional analysis in mice and human cells revealed that all the mutations impair protein stability, but they differentially impact kinase activity, dendrite growth, and spine/synapse development. Mechanistically, loss of Taok2 activity causes a reduction in RhoA activation, and pharmacological enhancement of RhoA activity rescues synaptic phenotypes. Together, these data provide evidence that TAOK2 is a neurodevelopmental disorder risk gene and identify RhoA signaling as a mediator of TAOK2-dependent synaptic development.


Subject(s)
Autism Spectrum Disorder/metabolism , Neurodevelopmental Disorders/metabolism , Protein Serine-Threonine Kinases/metabolism , rhoA GTP-Binding Protein/metabolism , Adult , Animals , Anxiety/genetics , Autism Spectrum Disorder/genetics , Autism Spectrum Disorder/pathology , Autism Spectrum Disorder/psychology , Child , Cognitive Dysfunction/genetics , Cognitive Dysfunction/metabolism , Cognitive Dysfunction/pathology , Cognitive Dysfunction/psychology , Dendrites/metabolism , Dendrites/pathology , Female , Humans , Interpersonal Relations , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Neurodevelopmental Disorders/genetics , Neurodevelopmental Disorders/pathology , Neurodevelopmental Disorders/psychology , Neurogenesis , Phenotype , Phosphorylation , Protein Serine-Threonine Kinases/genetics , Signal Transduction , Synaptic Transmission , Exome Sequencing
8.
Sci Rep ; 7(1): 9583, 2017 08 29.
Article in English | MEDLINE | ID: mdl-28851982

ABSTRACT

Neuronal polarization is reflected by different dynamics of microtubule and filamentous actin (F-actin). Axonal microtubules are more stable than those in the remaining neurites, while dynamics of F-actin in axonal growth cones clearly exceed those in their dendritic counterparts. However, whether a functional interplay exists between the microtubule network and F-actin dynamics in growing axons and whether this interplay is instrumental for breaking cellular symmetry is currently unknown. Here, we show that an increment on microtubule stability or number of microtubules is associated with increased F-actin dynamics. Moreover, we show that Drebrin E, an F-actin and microtubule plus-end binding protein, mediates this cross talk. Drebrin E segregates preferentially to growth cones with a higher F-actin treadmilling rate, where more microtubule plus-ends are found. Interruption of the interaction of Drebrin E with microtubules decreases F-actin dynamics and arrests neuronal polarization. Collectively the data show that microtubules modulate F-actin dynamics for initial axon extension during neuronal development.


Subject(s)
Actins/metabolism , Cell Polarity , Microtubules/metabolism , Neurons/metabolism , Animals , Axons/metabolism , Biomarkers , Female , Growth Cones/metabolism , Immunohistochemistry , Mice , Neuropeptides/metabolism , Pregnancy , Protein Binding , Rats
9.
Cell Rep ; 17(7): 1892-1904, 2016 11 08.
Article in English | MEDLINE | ID: mdl-27829159

ABSTRACT

The development of neural connectivity is essential for brain function, and disruption of this process is associated with autism spectrum disorders (ASDs). DIX domain containing 1 (DIXDC1) has previously been implicated in neurodevelopmental disorders, but its role in postnatal brain function remains unknown. Using a knockout mouse model, we determined that DIXDC1 is a regulator of excitatory neuron dendrite development and synapse function in the cortex. We discovered that MARK1, previously linked to ASDs, phosphorylates DIXDC1 to regulate dendrite and spine development through modulation of the cytoskeletal network in an isoform-specific manner. Finally, rare missense variants in DIXDC1 were identified in ASD patient cohorts via genetic sequencing. Interestingly, the variants inhibit DIXDC1 isoform 1 phosphorylation, causing impairment to dendrite and spine growth. These data reveal that DIXDC1 is a regulator of cortical dendrite and synaptic development and provide mechanistic insight into morphological defects associated with neurodevelopmental disorders.


Subject(s)
Dendrites/metabolism , Intracellular Signaling Peptides and Proteins/metabolism , Mutation/genetics , Animals , Autistic Disorder/metabolism , Autistic Disorder/pathology , Brain/metabolism , Dendritic Spines/metabolism , Intracellular Signaling Peptides and Proteins/deficiency , Mice, Inbred C57BL , Mice, Knockout , Microtubules/metabolism , Mutation, Missense/genetics , Phosphorylation , Protein Isoforms/metabolism , Protein Serine-Threonine Kinases/metabolism , Synapses/metabolism
10.
Cell Res ; 26(9): 1033-47, 2016 09.
Article in English | MEDLINE | ID: mdl-27325298

ABSTRACT

Once generated, neurons are thought to permanently exit the cell cycle and become irreversibly differentiated. However, neither the precise point at which this post-mitotic state is attained nor the extent of its irreversibility is clearly defined. Here we report that newly born neurons from the upper layers of the mouse cortex, despite initiating axon and dendrite elongation, continue to drive gene expression from the neural progenitor tubulin α1 promoter (Tα1p). These observations suggest an ambiguous post-mitotic neuronal state. Whole transcriptome analysis of sorted upper cortical neurons further revealed that neurons continue to express genes related to cell cycle progression long after mitotic exit until at least post-natal day 3 (P3). These genes are however down-regulated thereafter, associated with a concomitant up-regulation of tumor suppressors at P5. Interestingly, newly born neurons located in the cortical plate (CP) at embryonic day 18-19 (E18-E19) and P3 challenged with calcium influx are found in S/G2/M phases of the cell cycle, and still able to undergo division at E18-E19 but not at P3. At P5 however, calcium influx becomes neurotoxic and leads instead to neuronal loss. Our data delineate an unexpected flexibility of cell cycle control in early born neurons, and describe how neurons transit to a post-mitotic state.


Subject(s)
Cerebral Cortex/cytology , Mitosis , Neurons/cytology , Animals , Axons/drug effects , Axons/metabolism , Calcium/pharmacology , Cell Differentiation/drug effects , Cell Nucleus/drug effects , Cell Nucleus/metabolism , Cell Proliferation/drug effects , Cell Shape/drug effects , Dendrites/drug effects , Dendrites/metabolism , Mice , Mitosis/drug effects , Neurogenesis/drug effects , Neurons/drug effects , Neurons/metabolism , Transcription, Genetic/drug effects
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