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1.
Genome Biol ; 25(1): 175, 2024 Jul 03.
Article in English | MEDLINE | ID: mdl-38961490

ABSTRACT

BACKGROUND: Transposable elements play a critical role in maintaining genome architecture during neurodevelopment. Short Interspersed Nuclear Elements (SINEs), a major subtype of transposable elements, are known to harbor binding sites for the CCCTC-binding factor (CTCF) and pivotal in orchestrating chromatin organization. However, the regulatory mechanisms controlling the activity of SINEs in the developing brain remains elusive. RESULTS: In our study, we conduct a comprehensive genome-wide epigenetic analysis in mouse neural precursor cells using ATAC-seq, ChIP-seq, whole genome bisulfite sequencing, in situ Hi-C, and RNA-seq. Our findings reveal that the SET domain bifurcated histone lysine methyltransferase 1 (SETDB1)-mediated H3K9me3, in conjunction with DNA methylation, restricts chromatin accessibility on a selective subset of SINEs in neural precursor cells. Mechanistically, loss of Setdb1 increases CTCF access to these SINE elements and contributes to chromatin loop reorganization. Moreover, de novo loop formation contributes to differential gene expression, including the dysregulation of genes enriched in mitotic pathways. This leads to the disruptions of cell proliferation in the embryonic brain after genetic ablation of Setdb1 both in vitro and in vivo. CONCLUSIONS: In summary, our study sheds light on the epigenetic regulation of SINEs in mouse neural precursor cells, suggesting their role in maintaining chromatin organization and cell proliferation during neurodevelopment.


Subject(s)
Chromatin , Histone-Lysine N-Methyltransferase , Neural Stem Cells , Short Interspersed Nucleotide Elements , Animals , Histone-Lysine N-Methyltransferase/genetics , Histone-Lysine N-Methyltransferase/metabolism , Neural Stem Cells/metabolism , Neural Stem Cells/cytology , Mice , Chromatin/metabolism , DNA Methylation , CCCTC-Binding Factor/metabolism , CCCTC-Binding Factor/genetics , Epigenesis, Genetic , Histones/metabolism , Brain/metabolism , Brain/cytology
2.
Bratisl Lek Listy ; 125(7): 414-418, 2024.
Article in English | MEDLINE | ID: mdl-38943501

ABSTRACT

OBJECTIVE: Astrocytes undergo morphological and molecular changes in response to numerous pathological conditions. BACKROUND: Increased expression of glial fibrillary acidic protein (GFAP) has been reported as a characteristic feature of reactive astrocytes. However, GFAP-positive cells occur rarely in adult human brain cultures. These cultures are mostly composed of flat GFAP-negative "glia-like" cells, which remain poorly characterized in relation to reactive astrogliosis. METHODS: We examined the cultures from macroscopically injured and normal brain tissue from patients with brain trauma, gliomas, or brain metastases. Immunofluorescence and immunohistochemical methods were used for reactive astrocytes detection. RESULTS: The intensity of GFAP-positive staining was higher in reactive astrocytes in the brain tissue surrounding gliomas or metastases and lower in brain tissue damaged by traumatic injury. We did not observe any correlation between GFAP-positive reactive astrocytes in cultures and brain tissue. However, we found rapidly proliferating spindle-shaped cells in cultures prepared from injured brain tissue. CONCLUSION: Present data demonstrate the unexplained phenomenon of disparate cell morphologies in cultures when prepared either from macroscopically normal or injured human brain tissue. While normal cultures are mainly comprised of flat cells, the cultures from severely damaged brain tissue may be entirely composed of spindle-shaped cells usually classified as fibroblasts. We suggest that this spindle-shaped cellular morphology is not specific for fibroblasts, but it rather can be interpreted as the most favorable shape for rapid cell proliferation under culture conditions. After brain trauma, unknown processes may be triggered, such as induced cell proliferation which can be revealed under culture condition. Accordingly, we conclude that spindle-shaped cells are activated precursors of glial cells (Fig. 3, Ref. 15).


Subject(s)
Astrocytes , Fibroblasts , Glial Fibrillary Acidic Protein , Humans , Fibroblasts/pathology , Fibroblasts/metabolism , Glial Fibrillary Acidic Protein/metabolism , Astrocytes/pathology , Astrocytes/metabolism , Brain Injuries/pathology , Brain Injuries/metabolism , Female , Middle Aged , Male , Adult , Cells, Cultured , Aged , Brain Neoplasms/pathology , Brain Neoplasms/metabolism , Brain/pathology , Brain/cytology , Glioma/pathology , Glioma/metabolism , Neuroglia/pathology , Neuroglia/metabolism
3.
Nat Commun ; 15(1): 5270, 2024 Jun 20.
Article in English | MEDLINE | ID: mdl-38902233

ABSTRACT

Regulation of codon optimality is an increasingly appreciated layer of cell- and tissue-specific protein expression control. Here, we use codon-modified reporters to show that differentiation of Drosophila neural stem cells into neurons enables protein expression from rare-codon-enriched genes. From a candidate screen, we identify the cytoplasmic polyadenylation element binding (CPEB) protein Orb2 as a positive regulator of rare-codon-dependent mRNA stability in neurons. Using RNA sequencing, we reveal that Orb2-upregulated mRNAs in the brain with abundant Orb2 binding sites have a rare-codon bias. From these Orb2-regulated mRNAs, we demonstrate that rare-codon enrichment is important for mRNA stability and social behavior function of the metabotropic glutamate receptor (mGluR). Our findings reveal a molecular mechanism by which neural stem cell differentiation shifts genetic code regulation to enable critical mRNA stability and protein expression.


Subject(s)
Cell Differentiation , Drosophila Proteins , Neural Stem Cells , Neurons , RNA Stability , RNA, Messenger , Animals , Drosophila Proteins/metabolism , Drosophila Proteins/genetics , Neurons/metabolism , Neurons/cytology , RNA, Messenger/metabolism , RNA, Messenger/genetics , Cell Differentiation/genetics , Neural Stem Cells/metabolism , Neural Stem Cells/cytology , Codon/genetics , Drosophila melanogaster/genetics , Drosophila melanogaster/cytology , Drosophila melanogaster/metabolism , Receptors, Metabotropic Glutamate/metabolism , Receptors, Metabotropic Glutamate/genetics , mRNA Cleavage and Polyadenylation Factors/metabolism , mRNA Cleavage and Polyadenylation Factors/genetics , Drosophila/genetics , Drosophila/metabolism , Brain/metabolism , Brain/cytology , Transcription Factors
4.
Nature ; 630(8017): 587-595, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38898291

ABSTRACT

Advances in large-scale single-unit human neurophysiology, single-cell RNA sequencing, spatial transcriptomics and long-term ex vivo tissue culture of surgically resected human brain tissue have provided an unprecedented opportunity to study human neuroscience. In this Perspective, we describe the development of these paradigms, including Neuropixels and recent brain-cell atlas efforts, and discuss how their convergence will further investigations into the cellular underpinnings of network-level activity in the human brain. Specifically, we introduce a workflow in which functionally mapped samples of human brain tissue resected during awake brain surgery can be cultured ex vivo for multi-modal cellular and functional profiling. We then explore how advances in human neuroscience will affect clinical practice, and conclude by discussing societal and ethical implications to consider. Potential findings from the field of human neuroscience will be vast, ranging from insights into human neurodiversity and evolution to providing cell-type-specific access to study and manipulate diseased circuits in pathology. This Perspective aims to provide a unifying framework for the field of human neuroscience as we welcome an exciting era for understanding the functional cytoarchitecture of the human brain.


Subject(s)
Brain , Neurophysiology , Neurosciences , Single-Cell Analysis , Humans , Neurosciences/methods , Brain/cytology , Brain/physiology , Neurophysiology/methods , Workflow , Brain Mapping/methods , Transcriptome
6.
J Neurosci ; 44(27)2024 Jul 03.
Article in English | MEDLINE | ID: mdl-38830762

ABSTRACT

Neurons are highly polarized cells that are composed of a single axon and multiple dendrites. Axon-dendrite polarity is essential for proper tissue formation and brain functions. Intracellular protein transport plays an important role in the establishment of neuronal polarity. However, the regulatory mechanism of polarized transport remains unclear. Here, we show that Rab6, a small GTPase that acts on the regulation of intracellular vesicular trafficking, plays key roles in neuronal polarization and brain development. Central nervous system-specific Rab6a/b double knock-out (Rab6 DKO) mice of both sexes exhibit severe dysplasia of the neocortex and the cerebellum. In the Rab6 DKO neocortex, impaired axonal extension of neurons results in hypoplasia of the intermediate zone. In vitro, deletion of Rab6a and Rab6b in cultured neurons from both sexes causes the abnormal accumulation of synaptic vesicle precursors (SVPs) adjacent to the Golgi apparatus, which leads to defects in axonal extension and the loss of axon-dendrite polarity. Moreover, Rab6 DKO causes significant expansion of lysosomes in the soma in neurons. Overall, our results reveal that Rab6-mediated polarized transport of SVPs is crucial for neuronal polarization and subsequent brain formation.


Subject(s)
Brain , Cell Polarity , Mice, Knockout , Neurons , Synaptic Vesicles , rab GTP-Binding Proteins , Animals , Cell Polarity/physiology , Mice , rab GTP-Binding Proteins/metabolism , rab GTP-Binding Proteins/genetics , Neurons/metabolism , Female , Male , Synaptic Vesicles/metabolism , Brain/metabolism , Brain/embryology , Brain/cytology , Cells, Cultured
8.
Nature ; 631(8019): 142-149, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38926573

ABSTRACT

Interindividual genetic variation affects the susceptibility to and progression of many diseases1,2. However, efforts to study how individual human brains differ in normal development and disease phenotypes are limited by the paucity of faithful cellular human models, and the difficulty of scaling current systems to represent multiple people. Here we present human brain Chimeroids, a highly reproducible, multidonor human brain cortical organoid model generated by the co-development of cells from a panel of individual donors in a single organoid. By reaggregating cells from multiple single-donor organoids at the neural stem cell or neural progenitor cell stage, we generate Chimeroids in which each donor produces all cell lineages of the cerebral cortex, even when using pluripotent stem cell lines with notable growth biases. We used Chimeroids to investigate interindividual variation in the susceptibility to neurotoxic triggers that exhibit high clinical phenotypic variability: ethanol and the antiepileptic drug valproic acid. Individual donors varied in both the penetrance of the effect on target cell types, and the molecular phenotype within each affected cell type. Our results suggest that human genetic background may be an important mediator of neurotoxin susceptibility and introduce Chimeroids as a scalable system for high-throughput investigation of interindividual variation in processes of brain development and disease.


Subject(s)
Neural Stem Cells , Organoids , Humans , Organoids/drug effects , Organoids/cytology , Neural Stem Cells/drug effects , Neural Stem Cells/cytology , Neural Stem Cells/metabolism , Male , Cell Lineage/drug effects , Brain/drug effects , Brain/cytology , Cerebral Cortex/drug effects , Cerebral Cortex/cytology , Neurotoxins/toxicity , Phenotype , Female , Disease Susceptibility , Pluripotent Stem Cells/cytology , Pluripotent Stem Cells/drug effects , Pluripotent Stem Cells/metabolism , Tissue Donors , Cell Line
9.
Philos Trans R Soc Lond B Biol Sci ; 379(1906): 20230231, 2024 Jul 29.
Article in English | MEDLINE | ID: mdl-38853566

ABSTRACT

Neurons are plastic. That is, they change their activity according to different behavioural conditions. This endows pyramidal neurons with an incredible computational power for the integration and processing of synaptic inputs. Plasticity can be investigated at different levels of investigation within a single neuron, from spines to dendrites, to synaptic input. Although most of our knowledge stems from the in vitro brain slice preparation, plasticity plays a vital role during behaviour by providing a flexible substrate for the execution of appropriate actions in our ever-changing environment. Owing to advances in recording techniques, the plasticity of neurons and the neural networks in which they are embedded is now beginning to be realized in the in vivo intact brain. This review focuses on the structural and functional synaptic plasticity of pyramidal neurons, with a specific focus on the latest developments from in vivo studies. This article is part of a discussion meeting issue 'Long-term potentiation: 50 years on'.


Subject(s)
Neuronal Plasticity , Pyramidal Cells , Pyramidal Cells/physiology , Neuronal Plasticity/physiology , Animals , Brain/physiology , Brain/cytology , Long-Term Potentiation/physiology , Synapses/physiology , Humans
10.
J Vis Exp ; (207)2024 May 31.
Article in English | MEDLINE | ID: mdl-38884489

ABSTRACT

Microglia play a pivotal role in synaptic refinement in the brain. Analysis of microglial engulfment of synapses is essential for comprehending this process; however, currently available methods for identifying microglial engulfment of synapses, such as immunohistochemistry (IHC) and imaging, are laborious and time-intensive. To address this challenge, herein we present in vitro and in vivo* assays that allow fast and high-throughput quantification of microglial engulfment of synapses using flow cytometry. In the in vivo* approach, we performed intracellular vGLUT1 staining following fresh cell isolation from adult mouse brains to quantify engulfment of vGLUT1+ synapses by microglia. In the in vitro synaptosome engulfment assay, we used freshly isolated cells from the adult mouse brain to quantify the engulfment of pHrodo Red-labeled synaptosomes by microglia. These protocols together provide a time-efficient approach to quantifying microglial engulfment of synapses and represent promising alternatives to labor-intensive image analysis-based methods. By streamlining the analysis, these assays can contribute to a better understanding of the role of microglia in synaptic refinement in different disease models.


Subject(s)
Flow Cytometry , Microglia , Synapses , Animals , Microglia/cytology , Microglia/metabolism , Mice , Synapses/physiology , Synapses/chemistry , Flow Cytometry/methods , Vesicular Glutamate Transport Protein 1/metabolism , Vesicular Glutamate Transport Protein 1/analysis , Synaptosomes/metabolism , Brain/cytology
11.
Fly (Austin) ; 18(1): 2368336, 2024 Dec.
Article in English | MEDLINE | ID: mdl-38884422

ABSTRACT

The Drosophila melanogaster brain is a complex organ with various cell types, orchestrating the development, physiology, and behaviors of the fly. While each cell type in Drosophila brain is known to express a unique gene set, their complete genetic profile is still unknown. Advances in the RNA sequencing techniques at single-cell resolution facilitate identifying novel cell type markers and/or re-examining the specificity of the available ones. In this study, exploiting a single-cell RNA sequencing data of Drosophila optic lobe, we categorized the cells based on their expression pattern for known markers, then the genes with enriched expression in astrocytes were identified. CG11000 was identified as a gene with a comparable expression profile to the Eaat1 gene, an astrocyte marker, in every individual cell inside the Drosophila optic lobe and midbrain, as well as in the entire Drosophila brain throughout its development. Consistent with our bioinformatics data, immunostaining of the brains dissected from transgenic adult flies showed co-expression of CG11000 with Eaat1 in a set of single cells corresponding to the astrocytes in the Drosophila brain. Physiologically, inhibiting CG11000 through RNA interference disrupted the normal development of male D. melanogaster, while having no impact on females. Expression suppression of CG11000 in adult flies led to decreased locomotion activity and also shortened lifespan specifically in astrocytes, indicating the gene's significance in astrocytes. We designated this gene as 'deathstar' due to its crucial role in maintaining the star-like shape of glial cells, astrocytes, throughout their development into adult stage.


Subject(s)
Astrocytes , Drosophila Proteins , Drosophila melanogaster , Locomotion , Longevity , Animals , Drosophila melanogaster/genetics , Drosophila melanogaster/metabolism , Drosophila melanogaster/growth & development , Drosophila melanogaster/physiology , Astrocytes/metabolism , Astrocytes/cytology , Drosophila Proteins/metabolism , Drosophila Proteins/genetics , Longevity/genetics , Excitatory Amino Acid Transporter 1/metabolism , Excitatory Amino Acid Transporter 1/genetics , Male , Female , Brain/metabolism , Brain/cytology , Brain/growth & development
12.
Curr Protoc ; 4(6): e1067, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38857108

ABSTRACT

The blood-brain barrier (BBB) constitutes a crucial protective anatomical layer with a microenvironment that tightly controls material transit. Constructing an in vitro BBB model to replicate in vivo features requires the sequential layering of constituent cell types. Maintaining heightened integrity in the observed tight junctions during both the establishment and post-experiment phases is crucial to the success of these models. We have developed an in vitro BBB model that replicates the cellular composition and spatial orientation of in vivo BBB observed in humans. The experiment includes comprehensive procedures and steps aimed at enhancing the integration of the four-cell model. Departing from conventional in vitro BBB models, our methodology eliminates the necessity for pre-coated plates to facilitate cell adhesion, thereby improving cell visualization throughout the procedure. An in-house coating strategy and a simple yet effective approach significantly reduce costs and provides superior imaging of cells and corresponding tight junction protein expression. Also, our BBB model includes all four primary cell types that are structural parts of the human BBB. With its innovative and user-friendly features, our in-house optimized in vitro four-cell-based BBB model showcases novel methodology and provides a promising experimental platform for drug screening processes. © 2024 The Authors. Current Protocols published by Wiley Periodicals LLC. Basic Protocol 1: Coating and culture system Basic Protocol 2: Cell seeding and Transwell insert handling Basic Protocol 3: Assessment of model functionality.


Subject(s)
Blood-Brain Barrier , Humans , Blood-Brain Barrier/metabolism , Tight Junctions/metabolism , Cell Culture Techniques/methods , Models, Biological , Brain/cytology , Cells, Cultured , Endothelial Cells/cytology , Endothelial Cells/metabolism
13.
Nat Commun ; 15(1): 4822, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38844769

ABSTRACT

We introduce Ultra-Flexible Tentacle Electrodes (UFTEs), packing many independent fibers with the smallest possible footprint without limitation in recording depth using a combination of mechanical and chemical tethering for insertion. We demonstrate a scheme to implant UFTEs simultaneously into many brain areas at arbitrary locations without angle-of-insertion limitations, and a 512-channel wireless logger. Immunostaining reveals no detectable chronic tissue damage even after several months. Mean spike signal-to-noise ratios are 1.5-3x compared to the state-of-the-art, while the highest signal-to-noise ratios reach 89, and average cortical unit yields are ~1.75/channel. UFTEs can track the same neurons across sessions for at least 10 months (longest duration tested). We tracked inter- and intra-areal neuronal ensembles (neurons repeatedly co-activated within 25 ms) simultaneously from hippocampus, retrosplenial cortex, and medial prefrontal cortex in freely moving rodents. Average ensemble lifetimes were shorter than the durations over which we can track individual neurons. We identify two distinct classes of ensembles. Those tuned to sharp-wave ripples display the shortest lifetimes, and the ensemble members are mostly hippocampal. Yet, inter-areal ensembles with members from both hippocampus and cortex have weak tuning to sharp wave ripples, and some have unusual months-long lifetimes. Such inter-areal ensembles occasionally remain inactive for weeks before re-emerging.


Subject(s)
Brain , Electrodes, Implanted , Hippocampus , Neurons , Animals , Neurons/physiology , Brain/physiology , Brain/cytology , Hippocampus/physiology , Hippocampus/cytology , Male , Rats , Signal-To-Noise Ratio , Action Potentials/physiology , Mice , Prefrontal Cortex/physiology , Prefrontal Cortex/cytology
14.
Nature ; 630(8017): 596-608, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38898293

ABSTRACT

The evolution of the modern human brain was accompanied by distinct molecular and cellular specializations, which underpin our diverse cognitive abilities but also increase our susceptibility to neurological diseases. These features, some specific to humans and others shared with related species, manifest during different stages of brain development. In this multi-stage process, neural stem cells proliferate to produce a large and diverse progenitor pool, giving rise to excitatory or inhibitory neurons that integrate into circuits during further maturation. This process unfolds over varying time scales across species and has progressively become slower in the human lineage, with differences in tempo correlating with differences in brain size, cell number and diversity, and connectivity. Here we introduce the terms 'bradychrony' and 'tachycrony' to describe slowed and accelerated developmental tempos, respectively. We review how recent technical advances across disciplines, including advanced engineering of in vitro models, functional comparative genetics and high-throughput single-cell profiling, are leading to a deeper understanding of how specializations of the human brain arise during bradychronic neurodevelopment. Emerging insights point to a central role for genetics, gene-regulatory networks, cellular innovations and developmental tempo, which together contribute to the establishment of human specializations during various stages of neurodevelopment and at different points in evolution.


Subject(s)
Biological Evolution , Brain , Humans , Brain/cytology , Brain/physiology , Brain/growth & development , Animals , Neural Stem Cells/cytology , Neural Stem Cells/metabolism , Neurogenesis , Time Factors , Neurons/cytology , Neurons/physiology , Single-Cell Analysis , Gene Regulatory Networks
16.
Nature ; 630(8016): 475-483, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38839958

ABSTRACT

Senescence is a cellular state linked to ageing and age-onset disease across many mammalian species1,2. Acutely, senescent cells promote wound healing3,4 and prevent tumour formation5; but they are also pro-inflammatory, thus chronically exacerbate tissue decline. Whereas senescent cells are active targets for anti-ageing therapy6-11, why these cells form in vivo, how they affect tissue ageing and the effect of their elimination remain unclear12,13. Here we identify naturally occurring senescent glia in ageing Drosophila brains and decipher their origin and influence. Using Activator protein 1 (AP1) activity to screen for senescence14,15, we determine that senescent glia can appear in response to neuronal mitochondrial dysfunction. In turn, senescent glia promote lipid accumulation in non-senescent glia; similar effects are seen in senescent human fibroblasts in culture. Targeting AP1 activity in senescent glia mitigates senescence biomarkers, extends fly lifespan and health span, and prevents lipid accumulation. However, these benefits come at the cost of increased oxidative damage in the brain, and neuronal mitochondrial function remains poor. Altogether, our results map the trajectory of naturally occurring senescent glia in vivo and indicate that these cells link key ageing phenomena: mitochondrial dysfunction and lipid accumulation.


Subject(s)
Aging , Brain , Cellular Senescence , Drosophila melanogaster , Lipid Metabolism , Mitochondria , Neuroglia , Animals , Female , Humans , Male , Aging/metabolism , Aging/pathology , Brain/metabolism , Brain/pathology , Brain/cytology , Drosophila melanogaster/metabolism , Drosophila melanogaster/cytology , Fibroblasts/metabolism , Fibroblasts/pathology , Longevity , Mitochondria/metabolism , Mitochondria/pathology , Neuroglia/metabolism , Neuroglia/pathology , Neurons/metabolism , Neurons/pathology , Oxidative Stress , Transcription Factor AP-1/metabolism , Lipids , Inflammation/metabolism , Inflammation/pathology
17.
Cell Genom ; 4(6): 100581, 2024 Jun 12.
Article in English | MEDLINE | ID: mdl-38823397

ABSTRACT

Cell atlases serve as vital references for automating cell labeling in new samples, yet existing classification algorithms struggle with accuracy. Here we introduce SIMS (scalable, interpretable machine learning for single cell), a low-code data-efficient pipeline for single-cell RNA classification. We benchmark SIMS against datasets from different tissues and species. We demonstrate SIMS's efficacy in classifying cells in the brain, achieving high accuracy even with small training sets (<3,500 cells) and across different samples. SIMS accurately predicts neuronal subtypes in the developing brain, shedding light on genetic changes during neuronal differentiation and postmitotic fate refinement. Finally, we apply SIMS to single-cell RNA datasets of cortical organoids to predict cell identities and uncover genetic variations between cell lines. SIMS identifies cell-line differences and misannotated cell lineages in human cortical organoids derived from different pluripotent stem cell lines. Altogether, we show that SIMS is a versatile and robust tool for cell-type classification from single-cell datasets.


Subject(s)
Deep Learning , Sequence Analysis, RNA , Single-Cell Analysis , Single-Cell Analysis/methods , Humans , Sequence Analysis, RNA/methods , Animals , Brain/cytology , Brain/metabolism , Neurons/metabolism , Neurons/cytology , Organoids/metabolism , Organoids/cytology , Cell Differentiation/genetics , Mice
18.
Int J Mol Sci ; 25(12)2024 Jun 14.
Article in English | MEDLINE | ID: mdl-38928255

ABSTRACT

Activation of neural stem cells (NSCs) correlates with improved functional outcomes in mouse models of injury. In the murine brain, NSCs have been extensively characterized and comprise (1) primitive NSCs (pNSCs) and (2) definitive NSCs (dNSCs). pNSCs are the earliest cells in the NSC lineage giving rise to dNSCs in the embryonic and adult mouse brain. pNSCs are quiescent under baseline conditions and can be activated upon injury. Herein, we asked whether human pNSCs and dNSCs can be isolated during the maturation of human cerebral organoids (COs) and activated by drugs known to regulate mouse NSC behavior. We demonstrate that self-renewing, multipotent pNSC and dNSC populations are present in human COs and express genes previously characterized in mouse NSCs. The drug NWL283, an inhibitor of apoptosis, reduced cell death in COs but did not improve NSC survival. Metformin, a drug used to treat type II diabetes that is known to promote NSC activation in mice, was found to expand human NSC pools. Together, these findings are the first to identify and characterize human pNSCs, advancing our understanding of the human NSC lineage and highlighting drugs that enhance their activity.


Subject(s)
Neural Stem Cells , Organoids , Humans , Neural Stem Cells/metabolism , Neural Stem Cells/cytology , Neural Stem Cells/drug effects , Organoids/metabolism , Organoids/cytology , Organoids/drug effects , Animals , Mice , Cell Differentiation , Metformin/pharmacology , Cells, Cultured , Brain/metabolism , Brain/cytology
19.
Methods Mol Biol ; 2799: 139-150, 2024.
Article in English | MEDLINE | ID: mdl-38727906

ABSTRACT

Epilepsy is one of the most represented neurological diseases worldwide. However, in many cases, the precise molecular mechanisms of epileptogenesis and ictiogenesis are unknown. Because of their important role in synaptic function and neuronal excitability, NMDA receptors are implicated in various epileptogenic mechanisms. Most of these are subunit specific and require a precise analysis of the subunit composition of the NMDARs implicated. Here, we describe an express electrophysiological method to analyze the contribution of NMDAR subunits to spontaneous postsynaptic activity in identified cells in brain slices using patch clamp whole cell recordings.


Subject(s)
Patch-Clamp Techniques , Receptors, N-Methyl-D-Aspartate , Synapses , Receptors, N-Methyl-D-Aspartate/metabolism , Animals , Patch-Clamp Techniques/methods , Synapses/metabolism , Synapses/physiology , Brain/metabolism , Brain/cytology , Neurons/metabolism , Mice , Rats , Protein Subunits/metabolism
20.
Adv Drug Deliv Rev ; 210: 115344, 2024 07.
Article in English | MEDLINE | ID: mdl-38810702

ABSTRACT

Brain organoids hold great potential for modeling human brain development and pathogenesis. They recapitulate certain aspects of the transcriptional trajectory, cellular diversity, tissue architecture and functions of the developing brain. In this review, we explore the engineering strategies to control the molecular-, cellular- and tissue-level inputs to achieve high-fidelity brain organoids. We review the application of brain organoids in neural disorder modeling and emerging bioengineering methods to improve data collection and feature extraction at multiscale. The integration of multiscale engineering strategies and analytical methods has significant potential to advance insight into neurological disorders and accelerate drug development.


Subject(s)
Brain , Organoids , Humans , Brain/metabolism , Brain/cytology , Animals , Models, Biological , Nervous System Diseases/pathology , Tissue Engineering/methods , Bioengineering/methods
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