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1.
Brain Behav Immun ; 117: 493-509, 2024 03.
Article En | MEDLINE | ID: mdl-38307446

In the last years, the hypothesis that elevated levels of proinflammatory cytokines contribute to the pathogenesis of neurodevelopmental diseases has gained popularity. IL-1 is one of the main cytokines found to be elevated in Autism spectrum disorder (ASD), a complex neurodevelopmental condition characterized by defects in social communication and cognitive impairments. In this study, we demonstrate that mice lacking IL-1 signaling display autistic-like defects associated with an excessive number of synapses. We also show that microglia lacking IL-1 signaling at early neurodevelopmental stages are unable to properly perform the process of synapse engulfment and display excessive activation of mammalian target of rapamycin (mTOR) signaling. Notably, even the acute inhibition of IL-1R1 by IL-1Ra is sufficient to enhance mTOR signaling and reduce synaptosome phagocytosis in WT microglia. Finally, we demonstrate that rapamycin treatment rescues the defects in IL-1R deficient mice. These data unveil an exclusive role of microglial IL-1 in synapse refinement via mTOR signaling and indicate a novel mechanism possibly involved in neurodevelopmental disorders associated with defects in the IL-1 pathway.


Autism Spectrum Disorder , Autistic Disorder , Animals , Mice , Microglia , TOR Serine-Threonine Kinases , Cytokines , Sirolimus/pharmacology , Synapses , Interleukin-1 , Mammals
2.
Immunity ; 57(1): 86-105.e9, 2024 Jan 09.
Article En | MEDLINE | ID: mdl-38159572

Triggering receptor expressed on myeloid cells 2 (Trem2) is a myeloid cell-specific gene expressed in brain microglia, with variants that are associated with neurodegenerative diseases, including Alzheimer's disease. Trem2 is essential for microglia-mediated synaptic refinement, but whether Trem2 contributes to shaping neuronal development remains unclear. Here, we demonstrate that Trem2 plays a key role in controlling the bioenergetic profile of pyramidal neurons during development. In the absence of Trem2, developing neurons in the hippocampal cornus ammonis (CA)1 but not in CA3 subfield displayed compromised energetic metabolism, accompanied by reduced mitochondrial mass and abnormal organelle ultrastructure. This was paralleled by the transcriptional rearrangement of hippocampal pyramidal neurons at birth, with a pervasive alteration of metabolic, oxidative phosphorylation, and mitochondrial gene signatures, accompanied by a delay in the maturation of CA1 neurons. Our results unveil a role of Trem2 in controlling neuronal development by regulating the metabolic fitness of neurons in a region-specific manner.


Alzheimer Disease , Microglia , Alzheimer Disease/genetics , Alzheimer Disease/metabolism , Brain/metabolism , Energy Metabolism , Microglia/metabolism , Neurons/metabolism , Animals , Mice
3.
Immunity ; 54(11): 2611-2631.e8, 2021 11 09.
Article En | MEDLINE | ID: mdl-34758338

Early prenatal inflammatory conditions are thought to be a risk factor for different neurodevelopmental disorders. Maternal interleukin-6 (IL-6) elevation during pregnancy causes abnormal behavior in offspring, but whether these defects result from altered synaptic developmental trajectories remains unclear. Here we showed that transient IL-6 elevation via injection into pregnant mice or developing embryos enhanced glutamatergic synapses and led to overall brain hyperconnectivity in offspring into adulthood. IL-6 activated synaptogenesis gene programs in glutamatergic neurons and required the transcription factor STAT3 and expression of the RGS4 gene. The STAT3-RGS4 pathway was also activated in neonatal brains during poly(I:C)-induced maternal immune activation, which mimics viral infection during pregnancy. These findings indicate that IL-6 elevation at early developmental stages is sufficient to exert a long-lasting effect on glutamatergic synaptogenesis and brain connectivity, providing a mechanistic framework for the association between prenatal inflammatory events and brain neurodevelopmental disorders.


Hippocampus/metabolism , Interleukin-6/biosynthesis , Maternal Exposure , Neurons/metabolism , Prenatal Exposure Delayed Effects , Synapses/metabolism , Animals , Cytokines/biosynthesis , Disease Models, Animal , Disease Susceptibility , Female , Hippocampus/physiopathology , Inflammation Mediators/metabolism , Mice , Pregnancy , Signal Transduction , Synaptic Transmission
4.
Front Immunol ; 12: 640937, 2021.
Article En | MEDLINE | ID: mdl-33708226

The role of microglia in controlling synapse homeostasis is becoming increasingly recognized by the scientific community. In particular, the microglia-mediated elimination of supernumerary synapses during development lays the basis for the correct formation of neuronal circuits in adulthood, while the possible reactivation of this process in pathological conditions, such as schizophrenia or Alzheimer's Disease, provides a promising target for future therapeutic strategies. The methodological approaches to investigate microglial synaptic engulfment include different in vitro and in vivo settings. Basic in vitro assays, employing isolated microglia and microbeads, apoptotic membranes, liposomes or synaptosomes allow the quantification of the microglia phagocytic abilities, while co-cultures of microglia and neurons, deriving from either WT or genetically modified mice models, provide a relatively manageable setting to investigate the involvement of specific molecular pathways. Further detailed analysis in mice brain is then mandatory to validate the in vitro assays as representative for the in vivo situation. The present review aims to dissect the main technical approaches to investigate microglia-mediated phagocytosis of neuronal and synaptic substrates in critical developmental time windows.


Microglia , Neuronal Plasticity , Neurosciences/methods , Synapses , Animals , Humans , Neurogenesis/physiology , Phagocytosis/physiology
6.
PLoS Pathog ; 16(7): e1008654, 2020 07.
Article En | MEDLINE | ID: mdl-32673372

Prion protein (PrP) mutations are linked to genetic prion diseases, a class of phenotypically heterogeneous neurodegenerative disorders with invariably fatal outcome. How mutant PrP triggers neurodegeneration is not known. Synaptic dysfunction precedes neuronal loss but it is not clear whether, and through which mechanisms, disruption of synaptic activity ultimately leads to neuronal death. Here we show that mutant PrP impairs the secretory trafficking of AMPA receptors (AMPARs). Specifically, intracellular retention of the GluA2 subunit results in synaptic exposure of GluA2-lacking, calcium-permeable AMPARs, leading to increased calcium permeability and enhanced sensitivity to excitotoxic cell death. Mutant PrPs linked to different genetic prion diseases affect AMPAR trafficking and function in different ways. Our findings identify AMPARs as pathogenic targets in genetic prion diseases, and support the involvement of excitotoxicity in neurodegeneration. They also suggest a mechanistic explanation for how different mutant PrPs may cause distinct disease phenotypes.


Calcium/metabolism , Neurons/metabolism , PrPSc Proteins/metabolism , Receptors, AMPA/metabolism , Synapses/metabolism , Animals , Cell Death/physiology , Mice , Permeability , Protein Transport/physiology
7.
EMBO J ; 39(16): e105380, 2020 08 17.
Article En | MEDLINE | ID: mdl-32657463

Neuronal circuit assembly requires the fine balance between synapse formation and elimination. Microglia, through the elimination of supernumerary synapses, have an established role in this process. While the microglial receptor TREM2 and the soluble complement proteins C1q and C3 are recognized as key players, the neuronal molecular components that specify synapses to be eliminated are still undefined. Here, we show that exposed phosphatidylserine (PS) represents a neuronal "eat-me" signal involved in microglial-mediated pruning. In hippocampal neuron and microglia co-cultures, synapse elimination can be partially prevented by blocking accessibility of exposed PS using Annexin V or through microglial loss of TREM2. In vivo, PS exposure at both hippocampal and retinogeniculate synapses and engulfment of PS-labeled material by microglia occurs during established developmental periods of microglial-mediated synapse elimination. Mice deficient in C1q, which fail to properly refine retinogeniculate connections, have elevated presynaptic PS exposure and reduced PS engulfment by microglia. These data provide mechanistic insight into microglial-mediated synapse pruning and identify a novel role of developmentally regulated neuronal PS exposure that is common among developing brain structures.


Hippocampus/metabolism , Microglia/metabolism , Neurons/metabolism , Phosphatidylserines/metabolism , Synapses/metabolism , Animals , Coculture Techniques , Complement C1q/genetics , Complement C1q/metabolism , Complement C3/genetics , Complement C3/metabolism , Membrane Glycoproteins/genetics , Membrane Glycoproteins/metabolism , Mice , Mice, Knockout , Phosphatidylserines/genetics , Receptors, Immunologic/genetics , Receptors, Immunologic/metabolism , Synapses/genetics
8.
EMBO J ; 38(1)2019 01 03.
Article En | MEDLINE | ID: mdl-30396995

Control of synapse number and function in the developing central nervous system is critical to the formation of neural circuits. Astrocytes play a key role in this process by releasing factors that promote the formation of excitatory synapses. Astrocyte-secreted thrombospondins (TSPs) induce the formation of structural synapses, which however remain post-synaptically silent, suggesting that completion of early synaptogenesis may require a two-step mechanism. Here, we show that the humoral innate immune molecule Pentraxin 3 (PTX3) is expressed in the developing rodent brain. PTX3 plays a key role in promoting functionally-active CNS synapses, by increasing the surface levels and synaptic clustering of AMPA glutamate receptors. This process involves tumor necrosis factor-induced protein 6 (TSG6), remodeling of the perineuronal network, and a ß1-integrin/ERK pathway. Furthermore, PTX3 activity is regulated by TSP1, which directly interacts with the N-terminal region of PTX3. These data unveil a fundamental role of PTX3 in promoting the first wave of synaptogenesis, and show that interplay of TSP1 and PTX3 sets the proper balance between synaptic growth and synapse function in the developing brain.


C-Reactive Protein/physiology , Extracellular Matrix/metabolism , Integrin beta1/metabolism , Nerve Tissue Proteins/physiology , Receptors, AMPA/metabolism , Synapses/physiology , Animals , Astrocytes/metabolism , Brain/growth & development , Brain/metabolism , C-Reactive Protein/genetics , CHO Cells , Cells, Cultured , Cricetinae , Cricetulus , Extracellular Matrix/genetics , Mice , Mice, Inbred C57BL , Nerve Tissue Proteins/genetics , Neuronal Plasticity/genetics , Protein Transport/genetics , Thrombospondin 1/metabolism
9.
Front Mol Neurosci ; 11: 313, 2018.
Article En | MEDLINE | ID: mdl-30233314

Actin-based remodeling underlines spine morphogenesis and plasticity and is crucially involved in the processes that constantly reshape the circuitry of the adult brain in response to external stimuli, leading to learning and memory formation and supporting cognitive functions. Hence spine morphology and synaptic strength are tightly linked and indeed abnormalities in spine number and morphology have been described in a number of neurological disorders such as autism spectrum disorders (ASDs), schizophrenia and intellectual disabilities. We have recently demonstrated that the actin regulating protein, Epidermal growth factor receptor pathway substrate 8 (Eps8), is essential for spine growth and long term potentiation. Indeed, mice lacking Eps8 display immature filopodia-like spines, which are unable to undergo potentiation, and are impaired in cognitive functions. Furthermore, reduced levels of Eps8 have been found in the brain of a cohort of patients affected by ASD compared to controls. Here we investigated whether the lack of Eps8, which is also part of the N-methyl-d-aspartate (NMDA) receptor complex, affects the functional maturation of the postsynaptic compartment. Our results demonstrate that Eps8 knock out mice (Eps8 KO) neurons display altered synaptic expression and subunit composition of NMDA receptors (i.e., increased GluN2B-, decreased GluN2A-containing receptors) and impaired GluN2B to GluN2A subunit shift. Indeed Eps8 KO neurons display increased content of GluN2B containing NMDA receptors both at the synaptic and extrasynaptic level. Furthermore, Eps8 KO neurons display an increased content of extra-synaptic GluN2B-containing receptors, suggesting that also the synaptic targeting of NMDA receptors is affected by the lack of Eps8. These data demonstrate that, besides regulation of spine morphogenesis, Eps8 also regulates the synaptic balance of NMDA receptors subunits GluN2A and GluN2B.

10.
Immunity ; 48(5): 979-991.e8, 2018 05 15.
Article En | MEDLINE | ID: mdl-29752066

The triggering receptor expressed on myeloid cells 2 (TREM2) is a microglial innate immune receptor associated with a lethal form of early, progressive dementia, Nasu-Hakola disease, and with an increased risk of Alzheimer's disease. Microglial defects in phagocytosis of toxic aggregates or apoptotic membranes were proposed to be at the origin of the pathological processes in the presence of Trem2 inactivating mutations. Here, we show that TREM2 is essential for microglia-mediated synaptic refinement during the early stages of brain development. The absence of Trem2 resulted in impaired synapse elimination, accompanied by enhanced excitatory neurotransmission and reduced long-range functional connectivity. Trem2-/- mice displayed repetitive behavior and altered sociability. TREM2 protein levels were also negatively correlated with the severity of symptoms in humans affected by autism. These data unveil the role of TREM2 in neuronal circuit sculpting and provide the evidence for the receptor's involvement in neurodevelopmental diseases.


Brain/immunology , Membrane Glycoproteins/immunology , Microglia/immunology , Neurons/immunology , Receptors, Immunologic/immunology , Synapses/immunology , Animals , Autistic Disorder/genetics , Autistic Disorder/immunology , Autistic Disorder/metabolism , Brain/cytology , Brain/metabolism , Cells, Cultured , Humans , Membrane Glycoproteins/genetics , Membrane Glycoproteins/metabolism , Mice, Inbred C57BL , Mice, Knockout , Microglia/cytology , Microglia/metabolism , Neurons/metabolism , Receptors, Immunologic/genetics , Receptors, Immunologic/metabolism , Synapses/metabolism , Synaptic Transmission/genetics , Synaptic Transmission/immunology
11.
Biol Psychiatry ; 83(8): 680-691, 2018 04 15.
Article En | MEDLINE | ID: mdl-29146047

BACKGROUND: The association between maternal infection and neurodevelopmental defects in progeny is well established, although the biological mechanisms and the pathogenic trajectories involved have not been defined. METHODS: Pregnant dams were injected intraperitoneally at gestational day 9 with polyinosinic:polycytidylic acid. Neuronal development was assessed by means of electrophysiological, optical, and biochemical analyses. RESULTS: Prenatal exposure to polyinosinic:polycytidylic acid causes an imbalanced expression of the Na+-K+-2Cl- cotransporter 1 and the K+-Cl- cotransporter 2 (KCC2). This results in delayed gamma-aminobutyric acid switch and higher susceptibility to seizures, which endures up to adulthood. Chromatin immunoprecipitation experiments reveal increased binding of the repressor factor RE1-silencing transcription (also known as neuron-restrictive silencer factor) to position 509 of the KCC2 promoter that leads to downregulation of KCC2 transcription in prenatally exposed offspring. Interleukin-1 receptor type I knockout mice, which display braked immune response and no brain cytokine elevation upon maternal immune activation, do not display KCC2/Na+-K+-2Cl- cotransporter 1 imbalance when implanted in a wild-type dam and prenatally exposed. Notably, pretreatment of pregnant dams with magnesium sulfate is sufficient to prevent the early inflammatory state and the delay in excitatory-to-inhibitory switch associated to maternal immune activation. CONCLUSIONS: We provide evidence that maternal immune activation hits a key neurodevelopmental process, the excitatory-to-inhibitory gamma-aminobutyric acid switch; defects in this switch have been unequivocally linked to diseases such as autism spectrum disorder or epilepsy. These data open the avenue for a safe pharmacological treatment that may prevent the neurodevelopmental defects caused by prenatal immune activation in a specific pregnancy time window.


Cerebral Cortex/physiology , Epilepsy/etiology , Excitatory Postsynaptic Potentials/physiology , Inhibitory Postsynaptic Potentials/physiology , Pregnancy Complications/immunology , Prenatal Exposure Delayed Effects/etiology , gamma-Aminobutyric Acid , Animals , Cell Culture Techniques , Disease Models, Animal , Embryo, Mammalian , Female , Mice, Inbred C57BL , Mice, Knockout , Patch-Clamp Techniques , Pregnancy , Receptors, Interleukin-1 Type I , Symporters , K Cl- Cotransporters
12.
Elife ; 62017 03 28.
Article En | MEDLINE | ID: mdl-28347403

Inflammation modifies risk and/or severity of a variety of brain diseases through still elusive molecular mechanisms. Here we show that hyperactivation of the interleukin 1 pathway, through either ablation of the interleukin 1 receptor 8 (IL-1R8, also known as SIGIRR or Tir8) or activation of IL-1R, leads to up-regulation of the mTOR pathway and increased levels of the epigenetic regulator MeCP2, bringing to disruption of dendritic spine morphology, synaptic plasticity and plasticity-related gene expression. Genetic correction of MeCP2 levels in IL-1R8 KO neurons rescues the synaptic defects. Pharmacological inhibition of IL-1R activation by Anakinra corrects transcriptional changes, restores MeCP2 levels and spine plasticity and ameliorates cognitive defects in IL-1R8 KO mice. By linking for the first time neuronal MeCP2, a key player in brain development, to immune activation and demonstrating that synaptic defects can be pharmacologically reversed, these data open the possibility for novel treatments of neurological diseases through the immune system modulation.


Methyl-CpG-Binding Protein 2/metabolism , Neurons/physiology , Receptors, Interleukin-1/metabolism , Signal Transduction , TOR Serine-Threonine Kinases/metabolism , Animals , Mice , Mice, Knockout , Receptors, Interleukin-1/deficiency , Receptors, Interleukin-1/genetics
13.
Stem Cell Res Ther ; 6: 166, 2015 Sep 07.
Article En | MEDLINE | ID: mdl-26345473

INTRODUCTION: Tumor necrosis factor alpha (TNFα) plays a physiological role in controlling synaptic transmission and plasticity in the healthy central nervous system by modulating glutamate receptor trafficking to the plasma membrane. TNFα expression is also rapidly induced in response to tissue injury and infection. By promoting the insertion of Ca(2+) permeable-AMPA receptors into the neuronal plasma membrane, this cytokine may cause excessive Ca(2+) influx into neurons, thus enhancing neuronal death. METHODS: Primary cultures of cortical neurons were obtained from E18 foetal mice and incubated for 24 h with adult neural stem cells (aNPCs) either stimulated with lipopolysaccharide (LPS(+)aNPCs) or not (aNPCs). Cultures were treated with TNFα (100 ng/ml), and electrophysiological recordings were performed in different conditions to evaluate the effect of the cytokine on neuronal transmission. RESULTS: In this study, we demonstrate that aNPCs from the subventricular zone reverse the effects induced by the cytokine. Moreover, we show that the effect of aNPCs on cortical neurons is mediated by cannabinoid CB1 receptor activation. CONCLUSION: These data suggest that the role of aNPCs in preventing excitatory neurotransmission potentiation induced by TNFα on cortical neurons may have important implications for pathologies characterized by an inflammatory component affecting cortical neurons such as Alzheimer's disease.


Neural Stem Cells/physiology , Neurons/physiology , Tumor Necrosis Factor-alpha/pharmacology , Animals , Cells, Cultured , Lateral Ventricles/cytology , Mice , Neural Stem Cells/cytology , Neural Stem Cells/drug effects , Neurogenesis , Neurons/cytology , Neurons/drug effects , Synaptic Transmission
14.
Nanoscale ; 5(22): 10963-74, 2013 Nov 21.
Article En | MEDLINE | ID: mdl-24065287

Activation of glial cells, including astrocytes and microglia, has been implicated in the inflammatory responses underlying brain injury and neurodegenerative diseases including Alzheimer's and Parkinson's diseases. The classic activation state (M1) is characterized by high capacity to present antigens, high production of nitric oxide (NO) and reactive oxygen species (ROS) and proinflammatory cytokines. Classically activated cells act as potent effectors that drive the inflammatory response and may mediate detrimental effects on neural cells. The second phenotype (M2) is an alternative, apparently beneficial, activation state, more related to a fine tuning of inflammation, scavenging of debris, promotion of angiogenesis, tissue remodeling and repair. Specific environmental chemical signals are able to induce these different polarization states. We provide here evidence that nanostructured substrates are able, exclusively in virtue of their physical properties, to push microglia toward the proinflammatory activation phenotype, with an efficacy which reflects the graded nanoscale rugosity. The acquisition of a proinflammatory phenotype appears specific for microglia and not astrocytes, indicating that these two cell types, although sharing common innate immune responses, respond differently to external physical stimuli.


Astrocytes/drug effects , Metal Nanoparticles/toxicity , Microglia/drug effects , Titanium/chemistry , Animals , Astrocytes/metabolism , Cells, Cultured , Cytokines/metabolism , Lipopolysaccharides/toxicity , Metal Nanoparticles/chemistry , Mice , Mice, Inbred C57BL , Microglia/metabolism , Nitric Oxide/metabolism , Rats , Rats, Sprague-Dawley , Surface Properties
15.
Nat Commun ; 4: 2136, 2013.
Article En | MEDLINE | ID: mdl-23868368

Synaptosomal-associated protein of 25 kDa (SNAP-25) is a member of the Soluble N-ethylmaleimide-sensitive-factor attachment protein receptors (SNARE) protein family, required for exocytosis of synaptic vesicles and regulation of diverse ion channels. Here, we show that acute reduction of SNAP-25 expression leads to an immature phenotype of dendritic spines that are, consistently, less functional. Conversely, over-expression of SNAP-25 results in an increase in the density of mature, Postsynaptic Density protein 95 (PSD-95)-positive spines. The regulation of spine morphogenesis by SNAP-25 depends on the protein's ability to bind both the plasma membrane and the adaptor protein p140Cap, a key protein regulating actin cytoskeleton and spine formation. We propose that SNAP-25 allows the organization of the molecular apparatus needed for spine formation by recruiting and stabilizing p140Cap.


Adaptor Proteins, Vesicular Transport/genetics , Dendritic Spines/metabolism , Gene Expression Regulation, Developmental , Hippocampus/metabolism , Intracellular Signaling Peptides and Proteins/genetics , Membrane Proteins/genetics , Synaptosomal-Associated Protein 25/genetics , Actin Cytoskeleton/genetics , Actin Cytoskeleton/metabolism , Adaptor Proteins, Vesicular Transport/metabolism , Animals , Dendritic Spines/ultrastructure , Disks Large Homolog 4 Protein , Embryo, Mammalian , HeLa Cells , Hippocampus/cytology , Hippocampus/embryology , Humans , Intracellular Signaling Peptides and Proteins/metabolism , Membrane Proteins/metabolism , Primary Cell Culture , Protein Binding , Protein Stability , Rats , Signal Transduction , Synaptosomal-Associated Protein 25/metabolism
16.
EMBO Rep ; 14(7): 645-51, 2013 Jul.
Article En | MEDLINE | ID: mdl-23732542

SNAP-25 is a key component of the synaptic-vesicle fusion machinery, involved in several psychiatric diseases including schizophrenia and ADHD. SNAP-25 protein expression is lower in different brain areas of schizophrenic patients and in ADHD mouse models. How the reduced expression of SNAP-25 alters the properties of synaptic transmission, leading to a pathological phenotype, is unknown. We show that, unexpectedly, halved SNAP-25 levels at 13-14 DIV not only fail to impair synaptic transmission but instead enhance evoked glutamatergic neurotransmission. This effect is possibly dependent on presynaptic voltage-gated calcium channel activity and is not accompanied by changes in spontaneous quantal events or in the pool of readily releasable synaptic vesicles. Notably, synapses of 13-14 DIV neurons with reduced SNAP-25 expression show paired-pulse depression as opposed to paired-pulse facilitation occurring in their wild-type counterparts. This phenotype disappears with synapse maturation. As alterations in short-term plasticity represent a new mechanism contributing to cognitive impairments in intellectual disabilities, our data provide mechanistic clues for neuronal circuit alterations in psychiatric diseases characterized by reduced expression of SNAP-25.


Glutamic Acid/metabolism , Neuronal Plasticity/physiology , Neurons/physiology , Synaptic Transmission/physiology , Synaptosomal-Associated Protein 25/metabolism , Action Potentials/drug effects , Action Potentials/physiology , Animals , Calcium/metabolism , Calcium Channels/genetics , Calcium Channels/metabolism , Gene Expression Regulation, Developmental , Gene Silencing , Glutamic Acid/pharmacology , Hippocampus/cytology , Hippocampus/drug effects , Humans , Mice , Neuronal Plasticity/drug effects , Neurons/cytology , Neurons/drug effects , Primary Cell Culture , RNA, Small Interfering/genetics , RNA, Small Interfering/metabolism , Rats , Synaptic Transmission/drug effects , Synaptic Vesicles/drug effects , Synaptic Vesicles/physiology , Synaptosomal-Associated Protein 25/antagonists & inhibitors , Synaptosomal-Associated Protein 25/genetics , gamma-Aminobutyric Acid/metabolism , gamma-Aminobutyric Acid/pharmacology
17.
EMBO J ; 32(12): 1730-44, 2013 Jun 12.
Article En | MEDLINE | ID: mdl-23685357

Actin-based remodelling underlies spine structural changes occurring during synaptic plasticity, the process that constantly reshapes the circuitry of the adult brain in response to external stimuli, leading to learning and memory formation. A positive correlation exists between spine shape and synaptic strength and, consistently, abnormalities in spine number and morphology have been described in a number of neurological disorders. In the present study, we demonstrate that the actin-regulating protein, Eps8, is recruited to the spine head during chemically induced long-term potentiation in culture and that inhibition of its actin-capping activity impairs spine enlargement and plasticity. Accordingly, mice lacking Eps8 display immature spines, which are unable to undergo potentiation, and are impaired in cognitive functions. Additionally, we found that reduction in the levels of Eps8 occurs in brains of patients affected by autism compared to controls. Our data reveal the key role of Eps8 actin-capping activity in spine morphogenesis and plasticity and indicate that reductions in actin-capping proteins may characterize forms of intellectual disabilities associated with spine defects.


Actins/metabolism , Adaptor Proteins, Signal Transducing/metabolism , Brain/metabolism , Dendritic Spines/metabolism , Nerve Tissue Proteins/metabolism , Synapses/metabolism , Actins/genetics , Adaptor Proteins, Signal Transducing/genetics , Animals , Autistic Disorder/genetics , Autistic Disorder/metabolism , Cognition/physiology , Dendritic Spines/genetics , Humans , Long-Term Potentiation/physiology , Mice , Mice, Knockout , Nerve Tissue Proteins/genetics , Synapses/genetics
18.
J Mol Neurosci ; 51(2): 274-81, 2013 Oct.
Article En | MEDLINE | ID: mdl-23468184

Strategies involved in mesenchymal stem cell (MSC) differentiation toward neuronal cells for screening purposes are characterized by quality and quantity issues. Differentiated cells are often scarce with respect to starting undifferentiated population, and the differentiation process is usually quite long, with high risk of contamination and low yield efficiency. Here, we describe a novel simple method to induce direct differentiation of MSCs into neuronal cells, without neurosphere formation. Differentiated cells are characterized by clear morphological changes, expression of neuronal specific markers, showing functional response to depolarizing stimuli and electrophysiological properties similar to those of developing neurons. The method described here represents a valuable tool for future strategies aimed at personalized screening of therapeutic agents in vitro.


Adipocytes/cytology , Mesenchymal Stem Cells/cytology , Neurogenesis , Neurons/cytology , Primary Cell Culture/methods , Adipocytes/metabolism , Animals , Biomarkers/metabolism , Calcium/metabolism , Female , Mesenchymal Stem Cells/metabolism , Neurons/metabolism , Rats , Rats, Sprague-Dawley
19.
Anal Chem ; 84(22): 9833-40, 2012 Nov 20.
Article En | MEDLINE | ID: mdl-23094863

Neuroinflammation plays a central role in neurodegenerative diseases and involves a large number of interactions between different brain cell types. Unraveling the complexity of cell-cell interaction in neuroinflammation is crucial for both clarifying the molecular mechanisms involved and increasing efficacy in drug development. Here, we provide a versatile analytical method for specifically addressing cell-to-cell communication, using primary brain cells, a microfluidic device, and a multiparametric readout approach. Different cell types are plated in separate chambers of a microfluidic network so that culturing conditions can be independently controlled and single cell types can be selectively primed with different stimuli. When chambers are microfluidically connected, the specific contribution of each cell type can be finely monitored by analyzing morphology, vitality, calcium dynamics, and electrophysiology parameters. We exemplify this approach by examining the role of astrocytes derived from two different brain regions (cortex and hippocampus) on neuronal viability in two types of neuroinflammatory insults, namely, metabolic stress and exposure to amyloid ß fibrils, and demonstrate regional differences in glial control of neuronal physiopathology. In particular, we show that during metabolic stress, cortical but not hippocampal astrocytes play a neuroprotective role; also, in an exacerbated inflammatory scenario consisting in the exposure to Aß + IL-1ß, hippocampal but not cortical astrocytes play a detrimental role on neurons. Aside from bringing novel insights into the glial role in neuroinflammation, the method presented here represents a promising tool for addressing a wide range of biological and biochemical phenomena, characterized by a complex interaction of multiple cell types.


Brain/pathology , Cell Communication , Microfluidic Analytical Techniques/methods , Amyloid beta-Peptides/chemistry , Amyloid beta-Peptides/pharmacology , Animals , Astrocytes/drug effects , Astrocytes/pathology , Brain Ischemia/pathology , Cell Communication/drug effects , Cell Survival/drug effects , Cerebral Cortex/drug effects , Cerebral Cortex/pathology , Hippocampus/pathology , Inflammation/pathology , Neurons/drug effects , Neurons/pathology , Peptide Fragments/chemistry , Peptide Fragments/pharmacology , Protein Multimerization , Protein Structure, Secondary , Rats
20.
Neuron ; 74(2): 300-13, 2012 Apr 26.
Article En | MEDLINE | ID: mdl-22542184

How mutant prion protein (PrP) leads to neurological dysfunction in genetic prion diseases is unknown. Tg(PG14) mice synthesize a misfolded mutant PrP which is partially retained in the neuronal endoplasmic reticulum (ER). As these mice age, they develop ataxia and massive degeneration of cerebellar granule neurons (CGNs). Here, we report that motor behavioral deficits in Tg(PG14) mice emerge before neurodegeneration and are associated with defective glutamate exocytosis from granule neurons due to impaired calcium dynamics. We found that mutant PrP interacts with the voltage-gated calcium channel α(2)δ-1 subunit, which promotes the anterograde trafficking of the channel. Owing to ER retention of mutant PrP, α(2)δ-1 accumulates intracellularly, impairing delivery of the channel complex to the cell surface. Thus, mutant PrP disrupts cerebellar glutamatergic neurotransmission by reducing the number of functional channels in CGNs. These results link intracellular PrP retention to synaptic dysfunction, indicating new modalities of neurotoxicity and potential therapeutic strategies.


Calcium Channels/metabolism , Cerebellum/cytology , Mutation/genetics , Neurons/metabolism , Prions/genetics , Synaptic Transmission/genetics , Age Factors , Animals , Animals, Newborn , Biophysics , Calcium/metabolism , Cells, Cultured , Disease Models, Animal , Electric Stimulation , Endoplasmic Reticulum/genetics , Endoplasmic Reticulum/metabolism , Glutamic Acid/metabolism , Green Fluorescent Proteins/genetics , Green Fluorescent Proteins/metabolism , Magnetic Resonance Imaging , Membrane Potentials/genetics , Mice , Mice, Inbred C57BL , Mice, Transgenic , Motor Activity/genetics , Neurons/ultrastructure , Patch-Clamp Techniques , Prion Diseases/genetics , Prion Diseases/metabolism , Prion Diseases/physiopathology , Prion Proteins , Protein Transport/genetics , Reaction Time/genetics , Rotarod Performance Test , Synaptosomes/metabolism
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