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1.
Sci Adv ; 9(48): eadh2726, 2023 12.
Article in English | MEDLINE | ID: mdl-38019906

ABSTRACT

Copy number variations at 7q11.23 cause neurodevelopmental disorders with shared and opposite manifestations. Deletion causes Williams-Beuren syndrome featuring hypersociability, while duplication causes 7q11.23 microduplication syndrome (7Dup), frequently exhibiting autism spectrum disorder (ASD). Converging evidence indicates GTF2I as key mediator of the cognitive-behavioral phenotypes, yet its role in cortical development and behavioral hallmarks remains largely unknown. We integrated proteomic and transcriptomic profiling of patient-derived cortical organoids, including longitudinally at single-cell resolution, to dissect 7q11.23 dosage-dependent and GTF2I-specific disease mechanisms. We observed dosage-dependent impaired dynamics of neural progenitor proliferation, transcriptional imbalances, and highly specific alterations in neuronal output, leading to precocious excitatory neuron production in 7Dup, which was rescued by restoring physiological GTF2I levels. Transgenic mice with Gtf2i duplication recapitulated progenitor proliferation and neuronal differentiation defects alongside ASD-like behaviors. Consistently, inhibition of lysine demethylase 1 (LSD1), a GTF2I effector, was sufficient to rescue ASD-like phenotypes in transgenic mice, establishing GTF2I-LSD1 axis as a molecular pathway amenable to therapeutic intervention in ASD.


Subject(s)
Autism Spectrum Disorder , Transcription Factors, TFIII , Transcription Factors, TFII , Mice , Animals , Humans , Autism Spectrum Disorder/genetics , DNA Copy Number Variations , Proteomics , Social Behavior , Phenotype , Mice, Transgenic , Cell Differentiation/genetics , Histone Demethylases/genetics , Transcription Factors, TFIII/genetics , Transcription Factors, TFII/genetics
2.
Transl Psychiatry ; 12(1): 520, 2022 12 20.
Article in English | MEDLINE | ID: mdl-36539399

ABSTRACT

Brain organoids are becoming increasingly relevant to dissect the molecular mechanisms underlying psychiatric and neurological conditions. The in vitro recapitulation of key features of human brain development affords the unique opportunity of investigating the developmental antecedents of neuropsychiatric conditions in the context of the actual patients' genetic backgrounds. Specifically, multiple strategies of brain organoid (BO) differentiation have enabled the investigation of human cerebral corticogenesis in vitro with increasing accuracy. However, the field lacks a systematic investigation of how closely the gene co-expression patterns seen in cultured BO from different protocols match those observed in fetal cortex, a paramount information for ensuring the sensitivity and accuracy of modeling disease trajectories. Here we benchmark BO against fetal corticogenesis by integrating transcriptomes from in-house differentiated cortical BO (CBO), other BO systems, human fetal brain samples processed in-house, and prenatal cortices from the BrainSpan Atlas. We identified co-expression patterns and prioritized hubs of human corticogenesis and CBO differentiation, highlighting both well-preserved and discordant trends across BO protocols. We evaluated the relevance of identified gene modules for neurodevelopmental disorders and psychiatric conditions finding significant enrichment of disease risk genes especially in modules related to neuronal maturation and synapsis development. The longitudinal transcriptomic analysis of CBO revealed a two-step differentiation composed of a fast-evolving phase, corresponding to the appearance of the main cell populations of the cortex, followed by a slow-evolving one characterized by milder transcriptional changes. Finally, we observed heterochronicity of differentiation across BO models compared to fetal cortex. Our approach provides a framework to directly compare the extent of in vivo/in vitro alignment of neurodevelopmentally relevant processes and their attending temporalities, structured as a resource to query for modeling human corticogenesis and the neuropsychiatric outcomes of its alterations.


Subject(s)
Benchmarking , Cerebral Cortex , Humans , Brain , Neurogenesis , Organoids
3.
Front Neurosci ; 16: 814144, 2022.
Article in English | MEDLINE | ID: mdl-35645710

ABSTRACT

The Polycomb Repressive Complex 2 (PRC2) plays important roles in the epigenetic regulation of cellular development and differentiation through H3K27me3-dependent transcriptional repression. Aberrant PRC2 activity has been associated with cancer and neurodevelopmental disorders, particularly with respect to the malfunction of sits catalytic subunit EZH2. Here, we investigated the role of the EZH2-mediated H3K27me3 apposition in neuronal differentiation. We made use of a transgenic mouse model harboring Ezh2 conditional KO alleles to derive embryonic stem cells and differentiate them into glutamatergic neurons. Time course transcriptomics and epigenomic analyses of H3K27me3 in absence of EZH2 revealed a significant dysregulation of molecular networks affecting the glutamatergic differentiation trajectory that resulted in: (i) the deregulation of transcriptional circuitries related to neuronal differentiation and synaptic plasticity, in particular LTD, as a direct effect of EZH2 loss and (ii) the appearance of a GABAergic gene expression signature during glutamatergic neuron differentiation. These results expand the knowledge about the molecular pathways targeted by Polycomb during glutamatergic neuron differentiation.

4.
Science ; 375(6582): eabe8244, 2022 02 18.
Article in English | MEDLINE | ID: mdl-35175820

ABSTRACT

Convergent evidence associates exposure to endocrine disrupting chemicals (EDCs) with major human diseases, even at regulation-compliant concentrations. This might be because humans are exposed to EDC mixtures, whereas chemical regulation is based on a risk assessment of individual compounds. Here, we developed a mixture-centered risk assessment strategy that integrates epidemiological and experimental evidence. We identified that exposure to an EDC mixture in early pregnancy is associated with language delay in offspring. At human-relevant concentrations, this mixture disrupted hormone-regulated and disease-relevant regulatory networks in human brain organoids and in the model organisms Xenopus leavis and Danio rerio, as well as behavioral responses. Reinterrogating epidemiological data, we found that up to 54% of the children had prenatal exposures above experimentally derived levels of concern, reaching, for the upper decile compared with the lowest decile of exposure, a 3.3 times higher risk of language delay.


Subject(s)
Endocrine Disruptors/toxicity , Language Development Disorders/epidemiology , Neurodevelopmental Disorders/epidemiology , Prenatal Exposure Delayed Effects , Transcriptome/drug effects , Animals , Autism Spectrum Disorder/epidemiology , Autism Spectrum Disorder/genetics , Brain/drug effects , Brain/embryology , Child, Preschool , Estrogens/metabolism , Female , Fluorocarbons/analysis , Fluorocarbons/toxicity , Gene Expression Profiling , Gene Expression Regulation , Gene Ontology , Humans , Locomotion/drug effects , Neural Stem Cells/drug effects , Neurodevelopmental Disorders/genetics , Organoids , Phenols/analysis , Phenols/toxicity , Phthalic Acids/analysis , Phthalic Acids/toxicity , Pregnancy , Risk Assessment , Thyroid Hormones/metabolism , Xenopus laevis , Zebrafish
5.
Trends Mol Med ; 28(1): 67-78, 2022 01.
Article in English | MEDLINE | ID: mdl-34865984

ABSTRACT

Thymic epithelial tumors (TETs) have been characterized at the molecular level through bioptic sections and cell lines. Despite these advances, there is a need for a more thorough characterization of the thymic stroma in thymoma, particularly because of the diversity of cell types that populate the tumor and the absence of a healthy thymic counterpart. Recent work on healthy pediatric thymi - both in vitro and at the single-cell level - now sets the stage for new studies on their neoplastic counterparts. Furthermore, general transcription factor IIi (GTF2I), a thymoma-specific oncogene, as well as some of its SNPs, are increasingly associated with autoimmune disease, a significant feature of thymomas. We summarize recent discoveries in the field and discuss the development of new targeted therapies.


Subject(s)
Neoplasms, Glandular and Epithelial , Thymoma , Thymus Neoplasms , Transcription Factors, TFII , Cell Line , Child , Humans , Thymoma/metabolism , Thymoma/pathology , Thymus Neoplasms/metabolism , Thymus Neoplasms/pathology , Thymus Neoplasms/therapy
6.
Mol Autism ; 11(1): 88, 2020 11 19.
Article in English | MEDLINE | ID: mdl-33208191

ABSTRACT

BACKGROUND: Autism spectrum disorder (ASD) is a highly prevalent neurodevelopmental condition affecting almost 1% of children, and represents a major unmet medical need with no effective drug treatment available. Duplication at 7q11.23 (7Dup), encompassing 26-28 genes, is one of the best characterized ASD-causing copy number variations and offers unique translational opportunities, because the hemideletion of the same interval causes Williams-Beuren syndrome (WBS), a condition defined by hypersociability and language strengths, thereby providing a unique reference to validate treatments for the ASD symptoms. In the above-indicated interval at 7q11.23, defined as WBS critical region, several genes, such as GTF2I, BAZ1B, CLIP2 and EIF4H, emerged as critical for their role in the pathogenesis of WBS and 7Dup both from mouse models and human studies. METHODS: We performed a high-throughput screening of 1478 compounds, including central nervous system agents, epigenetic modulators and experimental substances, on patient-derived cortical glutamatergic neurons differentiated from our cohort of induced pluripotent stem cell lines (iPSCs), monitoring the transcriptional modulation of WBS interval genes, with a special focus on GTF2I, in light of its overriding pathogenic role. The hits identified were validated by measuring gene expression by qRT-PCR and the results were confirmed by western blotting. RESULTS: We identified and selected three histone deacetylase inhibitors (HDACi) that decreased the abnormal expression level of GTF2I in 7Dup cortical glutamatergic neurons differentiated from four genetically different iPSC lines. We confirmed this effect also at the protein level. LIMITATIONS: In this study, we did not address the molecular mechanisms whereby HDAC inhibitors act on GTF2I. The lead compounds identified will now need to be advanced to further testing in additional models, including patient-derived brain organoids and mouse models recapitulating the gene imbalances of the 7q11.23 microduplication, in order to validate their efficacy in rescuing phenotypes across multiple functional layers within a translational pipeline towards clinical use. CONCLUSIONS: These results represent a unique opportunity for the development of a specific class of compounds for treating 7Dup and other forms of intellectual disability and autism.


Subject(s)
Autism Spectrum Disorder/pathology , Cerebral Cortex/pathology , Chromosome Duplication/genetics , Chromosomes, Human, Pair 7/genetics , High-Throughput Screening Assays , Histone Deacetylase Inhibitors/pharmacology , Neurons/pathology , Transcription Factors, TFII/genetics , Autism Spectrum Disorder/genetics , Chromosomes, Human, Pair 7/metabolism , DNA Copy Number Variations/genetics , Drug Evaluation, Preclinical , Gene Expression Regulation/drug effects , Humans , Induced Pluripotent Stem Cells/drug effects , Induced Pluripotent Stem Cells/metabolism , Neurogenesis/drug effects , Neurons/drug effects , Neurons/metabolism , RNA, Messenger/genetics , RNA, Messenger/metabolism , Transcription Factors, TFII/metabolism , Transcription, Genetic/drug effects
7.
Mol Autism ; 11(1): 42, 2020 06 01.
Article in English | MEDLINE | ID: mdl-32487215

ABSTRACT

Patients diagnosed with chromosome microdeletions or duplications, known as copy number variants (CNVs), present a unique opportunity to investigate the relationship between patient genotype and cell phenotype. CNVs have high genetic penetrance and give a good correlation between gene locus and patient clinical phenotype. This is especially effective for the study of patients with neurodevelopmental disorders (NDD), including those falling within the autism spectrum disorders (ASD). A key question is whether this correlation between genetics and clinical presentation at the level of the patient can be translated to the cell phenotypes arising from the neurodevelopment of patient induced pluripotent stem cells (iPSCs).Here, we examine how iPSCs derived from ASD patients with an associated CNV inform our understanding of the genetic and biological mechanisms underlying the aetiology of ASD. We consider selection of genetically characterised patient iPSCs; use of appropriate control lines; aspects of human neurocellular biology that can capture in vitro the patient clinical phenotype; and current limitations of patient iPSC-based studies. Finally, we consider how future research may be enhanced to maximise the utility of CNV patients for research of pathological mechanisms or therapeutic targets.


Subject(s)
Autism Spectrum Disorder/etiology , Autism Spectrum Disorder/metabolism , DNA Copy Number Variations , Disease Susceptibility , Induced Pluripotent Stem Cells/metabolism , Animals , Gene Expression Regulation , Genetic Predisposition to Disease , Genomics/methods , Humans , Neurodevelopmental Disorders/etiology , Neurodevelopmental Disorders/metabolism , Neurons/metabolism , Synapses/metabolism
8.
Mol Autism ; 11(1): 50, 2020 06 16.
Article in English | MEDLINE | ID: mdl-32546261

ABSTRACT

Sociability entails some of the most complex behaviors processed by the central nervous system. It includes the detection, integration, and interpretation of social cues and elaboration of context-specific responses that are quintessentially species-specific. There is an ever-growing accumulation of molecular associations to autism spectrum disorders (ASD), from causative genes to endophenotypes across multiple functional layers; these however, have rarely been put in context with the opposite manifestation featured in hypersociability syndromes. Genetic copy number variations (CNVs) allow to investigate the relationships between gene dosage and its corresponding phenotypes. In particular, CNVs of the 7q11.23 locus, which manifest diametrically opposite social behaviors, offer a privileged window to look into the molecular substrates underlying the developmental trajectories of the social brain. As by definition sociability is studied in humans postnatally, the developmental fluctuations causing social impairments have thus far remained a black box. Here, we review key evidence of molecular players involved at both ends of the sociability spectrum, focusing on genetic and functional associations of neuroendocrine regulators and synaptic transmission pathways. We then proceed to propose the existence of a molecular axis centered around the paradigmatic dosage imbalances at the 7q11.23 locus, regulating networks responsible for the development of social behavior in humans and highlight the key role that neurodevelopmental models from reprogrammed pluripotent cells will play for its understanding.


Subject(s)
DNA Copy Number Variations/genetics , Social Behavior , Chromosomes, Human/genetics , Gene Dosage , Humans , Neurosecretory Systems/metabolism , Synaptic Transmission/physiology
9.
Sci Adv ; 5(12): eaaw7908, 2019 12.
Article in English | MEDLINE | ID: mdl-31840056

ABSTRACT

We undertook a functional dissection of chromatin remodeler BAZ1B in neural crest (NC) stem cells (NCSCs) from a uniquely informative cohort of typical and atypical patients harboring 7q11.23 copy number variants. Our results reveal a key contribution of BAZ1B to NCSC in vitro induction and migration, coupled with a crucial involvement in NC-specific transcriptional circuits and distal regulation. By intersecting our experimental data with new paleogenetic analyses comparing modern and archaic humans, we found a modern-specific enrichment for regulatory changes both in BAZ1B and its experimentally defined downstream targets, thereby providing the first empirical validation of the human self-domestication hypothesis and positioning BAZ1B as a master regulator of the modern human face. In so doing, we provide experimental evidence that the craniofacial and cognitive/behavioral phenotypes caused by alterations of the Williams-Beuren syndrome critical region can serve as a powerful entry point into the evolution of the modern human face and prosociality.


Subject(s)
Chromosomes, Human, Pair 7/genetics , Domestication , Gene Dosage , Transcription Factors/genetics , Williams Syndrome/genetics , Cell Line , Cell Movement , Databases, Genetic , Epigenome , Evolution, Molecular , Face , Gene Regulatory Networks , Histone Code , Humans , Induced Pluripotent Stem Cells/metabolism , Neural Stem Cells/metabolism
10.
Stem Cell Reports ; 13(5): 847-861, 2019 11 12.
Article in English | MEDLINE | ID: mdl-31607568

ABSTRACT

The regulation of the proliferation and polarity of neural progenitors is crucial for the development of the brain cortex. Animal studies have implicated glycogen synthase kinase 3 (GSK3) as a pivotal regulator of both proliferation and polarity, yet the functional relevance of its signaling for the unique features of human corticogenesis remains to be elucidated. We harnessed human cortical brain organoids to probe the longitudinal impact of GSK3 inhibition through multiple developmental stages. Chronic GSK3 inhibition increased the proliferation of neural progenitors and caused massive derangement of cortical tissue architecture. Single-cell transcriptome profiling revealed a direct impact on early neurogenesis and uncovered a selective role of GSK3 in the regulation of glutamatergic lineages and outer radial glia output. Our dissection of the GSK3-dependent transcriptional network in human corticogenesis underscores the robustness of the programs determining neuronal identity independent of tissue architecture.


Subject(s)
Cerebral Cortex/cytology , Glycogen Synthase Kinase 3/metabolism , Neurogenesis , Neurons/cytology , Organoids/cytology , Cell Line , Cell Proliferation , Cerebral Cortex/metabolism , Gene Deletion , Glycogen Synthase Kinase 3/genetics , Humans , Neurons/metabolism , Organoids/metabolism , Transcriptome
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