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1.
Cell Mol Life Sci ; 81(1): 333, 2024 Aug 07.
Article in English | MEDLINE | ID: mdl-39112663

ABSTRACT

Synaptic dysfunction is an early pathogenic event leading to cognitive decline in Huntington's disease (HD). We previously reported that the active ADAM10 level is increased in the HD cortex and striatum, causing excessive proteolysis of the synaptic cell adhesion protein N-Cadherin. Conversely, ADAM10 inhibition is neuroprotective and prevents cognitive decline in HD mice. Although the breakdown of cortico-striatal connection has been historically linked to cognitive deterioration in HD, dendritic spine loss and long-term potentiation (LTP) defects identified in the HD hippocampus are also thought to contribute to the cognitive symptoms of the disease. The aim of this study is to investigate the contribution of ADAM10 to spine pathology and LTP defects of the HD hippocampus. We provide evidence that active ADAM10 is increased in the hippocampus of two mouse models of HD, leading to extensive proteolysis of N-Cadherin, which has a widely recognized role in spine morphology and synaptic plasticity. Importantly, the conditional heterozygous deletion of ADAM10 in the forebrain of HD mice resulted in the recovery of spine loss and ultrastructural synaptic defects in CA1 pyramidal neurons. Meanwhile, normalization of the active ADAM10 level increased the pool of synaptic BDNF protein and activated ERK neuroprotective signaling in the HD hippocampus. We also show that the ADAM10 inhibitor GI254023X restored LTP defects and increased the density of mushroom spines enriched with GluA1-AMPA receptors in HD hippocampal neurons. Notably, we report that administration of the TrkB antagonist ANA12 to HD hippocampal neurons reduced the beneficial effect of GI254023X, indicating that the BDNF receptor TrkB contributes to mediate the neuroprotective activity exerted by ADAM10 inhibition in HD. Collectively, these findings indicate that ADAM10 inhibition coupled with TrkB signaling represents an efficacious strategy to prevent hippocampal synaptic plasticity defects and cognitive dysfunction in HD.


Subject(s)
ADAM10 Protein , Amyloid Precursor Protein Secretases , Hippocampus , Huntington Disease , Long-Term Potentiation , Membrane Proteins , Receptor, trkB , Signal Transduction , Animals , ADAM10 Protein/metabolism , ADAM10 Protein/genetics , Huntington Disease/metabolism , Huntington Disease/pathology , Mice , Amyloid Precursor Protein Secretases/metabolism , Amyloid Precursor Protein Secretases/antagonists & inhibitors , Hippocampus/metabolism , Hippocampus/pathology , Receptor, trkB/metabolism , Receptor, trkB/antagonists & inhibitors , Long-Term Potentiation/drug effects , Membrane Proteins/metabolism , Membrane Proteins/genetics , Brain-Derived Neurotrophic Factor/metabolism , Disease Models, Animal , Cadherins/metabolism , Dendritic Spines/metabolism , Dendritic Spines/pathology , Neuroprotection , Male , Mice, Inbred C57BL , Neuronal Plasticity , Protein-Tyrosine Kinases/metabolism , Protein-Tyrosine Kinases/antagonists & inhibitors , Protein-Tyrosine Kinases/genetics , Mice, Knockout
2.
Bioorg Med Chem ; 112: 117872, 2024 Oct 01.
Article in English | MEDLINE | ID: mdl-39153378

ABSTRACT

Riluzole, the first clinically approved treatment for amyotrophic lateral sclerosis (ALS), represents a successful example of a drug endowed with a multimodal mechanism of action. In recent years, different series of riluzole-based compounds have been reported, including several agents acting as Multi-Target-Directed Ligands (MTLDs) endowed with neuroprotective effects. Aiming at identical twin structures inspired by riluzole (2a-c), a synthetic procedure was planned, but the reactivity of the system took a different path, leading to the serendipitous isolation of benzo[b][1,4]thiazepines 3a-c and expanded intermediates N-cyano-benzo[b][1,4]thiazepines 4a-c, which were fully characterized. The newly obtained structures 3a-c, bearing riluzole key elements, were initially tested in an in vitro ischemia/reperfusion injury protocol, simulating the cerebral stroke. Results identified compound 3b as the most effective in reverting the injury caused by an ischemia-like condition, and its activity was comparable, or even higher than that of riluzole, exhibiting a concentration-dependent neuroprotective effect. Moreover, derivative 3b completely reverted the release of Lactate Dehydrogenase (LDH), lowering the values to those of the control slices. Based on its very promising pharmacological properties, compound 3b was then selected to assess its effects on voltage-dependent Na+ and K+ currents. The results indicated that derivative 3b induced a multifaceted inhibitory effect on voltage-gated currents in SH-SY5Y differentiated neurons, suggesting its possible applications in epilepsy and stroke management, other than ALS. Accordingly, brain penetration was also measured for 3b, as it represents an elegant example of a MTDL and opens the way to further ex-vivo and/or in-vivo characterization.


Subject(s)
Neuroprotective Agents , Riluzole , Animals , Humans , Dose-Response Relationship, Drug , Ligands , Molecular Structure , Neuroprotective Agents/pharmacology , Neuroprotective Agents/chemical synthesis , Neuroprotective Agents/chemistry , Riluzole/pharmacology , Riluzole/chemical synthesis , Riluzole/chemistry , Structure-Activity Relationship , Thiazepines/chemical synthesis , Thiazepines/chemistry , Thiazepines/pharmacology
3.
Int J Mol Sci ; 25(5)2024 Feb 23.
Article in English | MEDLINE | ID: mdl-38473860

ABSTRACT

Oxytocin (OT) is a neuropeptide that modulates social-related behavior and cognition in the central nervous system of mammals. In the CA1 area of the hippocampus, the indirect effects of the OT on the pyramidal neurons and their role in information processing have been elucidated. However, limited data are available concerning the direct modulation exerted by OT on the CA1 interneurons (INs) expressing the oxytocin receptor (OTR). Here, we demonstrated that TGOT (Thr4,Gly7-oxytocin), a selective OTR agonist, affects not only the membrane potential and the firing frequency but also the neuronal excitability and the shape of the action potentials (APs) of these INs in mice. Furthermore, we constructed linear mixed-effects models (LMMs) to unravel the dependencies between the AP parameters and the firing frequency, also considering how TGOT can interact with them to strengthen or weaken these influences. Our analyses indicate that OT regulates the functionality of the CA1 GABAergic INs through different and independent mechanisms. Specifically, the increase in neuronal firing rate can be attributed to the depolarizing effect on the membrane potential and the related enhancement in cellular excitability by the peptide. In contrast, the significant changes in the AP shape are directly linked to oxytocinergic modulation. Importantly, these alterations in AP shape are not associated with the TGOT-induced increase in neuronal firing rate, being themselves critical for signal processing.


Subject(s)
Interneurons , Oxytocin , Mice , Animals , Action Potentials , Oxytocin/pharmacology , Interneurons/physiology , Neurons , Hippocampus , Pyramidal Cells , Mammals
4.
Pharmacol Res ; 194: 106823, 2023 08.
Article in English | MEDLINE | ID: mdl-37336430

ABSTRACT

Evidence that Huntington's disease (HD) is characterized by impaired cholesterol biosynthesis in the brain has led to strategies to increase its level in the brain of the rapidly progressing R6/2 mouse model, with a positive therapeutic outcome. Here we tested the long-term efficacy of chronic administration of cholesterol to the brain of the slowly progressing zQ175DN knock-in HD mice in preventing ("early treatment") or reversing ("late treatment") HD symptoms. To do this we used the most advanced formulation of cholesterol loaded brain-permeable nanoparticles (NPs), termed hybrid-g7-NPs-chol, which were injected intraperitoneally. We show that one cycle of treatment with hybrid-g7-NPs-chol, administered in the presymptomatic ("early treatment") or symptomatic ("late treatment") stages is sufficient to normalize cognitive defects up to 5 months, as well as to improve other behavioral and neuropathological parameters. A multiple cycle treatment combining both early and late treatments ("2 cycle treatment") lasting 6 months generates therapeutic effects for more than 11 months, without severe adverse reactions. Sustained cholesterol delivery to the brain of zQ175DN mice also reduces mutant Huntingtin aggregates in both the striatum and cortex and completely normalizes synaptic communication in the striatal medium spiny neurons compared to saline-treated HD mice. Furthermore, through a meta-analysis of published and current data, we demonstrated the power of hybrid-g7-NPs-chol and other strategies able to increase brain cholesterol biosynthesis, to reverse cognitive decline and counteract the formation of mutant Huntingtin aggregates. These results demonstrate that cholesterol delivery via brain-permeable NPs is a therapeutic option to sustainably reverse HD-related behavioral decline and neuropathological signs over time, highlighting the therapeutic potential of cholesterol-based strategies in HD patients. DATA AVAILABILITY: This study does not include data deposited in public repositories. Data are available on request to the corresponding authors.


Subject(s)
Huntington Disease , Mice , Animals , Huntington Disease/drug therapy , Huntington Disease/pathology , Brain/pathology , Cholesterol , Corpus Striatum/pathology , Cognition , Disease Models, Animal , Mice, Transgenic
5.
Brain ; 144(10): 3175-3190, 2021 11 29.
Article in English | MEDLINE | ID: mdl-33974044

ABSTRACT

Brain cholesterol is produced mainly by astrocytes and is important for neuronal function. Its biosynthesis is severely reduced in mouse models of Huntington's disease. One possible mechanism is a diminished nuclear translocation of the transcription factor sterol regulatory element-binding protein 2 (SREBP2) and, consequently, reduced activation of SREBP2-controlled genes in the cholesterol biosynthesis pathway. Here we evaluated the efficacy of a gene therapy based on the unilateral intra-striatal injection of a recombinant adeno-associated virus 2/5 (AAV2/5) targeting astrocytes specifically and carrying the transcriptionally active N-terminal fragment of human SREBP2 (hSREBP2). Robust hSREBP2 expression in striatal glial cells in R6/2 Huntington's disease mice activated the transcription of cholesterol biosynthesis pathway genes, restored synaptic transmission, reversed dopamine receptor D2 (Drd2) transcript levels decline, cleared mutant huntingtin aggregates and attenuated behavioural deficits. We conclude that glial SREBP2 participates in Huntington's disease brain pathogenesis in vivo and that AAV-based delivery of SREBP2 to astrocytes counteracts key features of the disease.


Subject(s)
Astrocytes/metabolism , Corpus Striatum/metabolism , Gene Transfer Techniques , Genetic Therapy/methods , Huntington Disease/therapy , Sterol Regulatory Element Binding Protein 2/administration & dosage , Animals , Astrocytes/pathology , Corpus Striatum/pathology , Genetic Vectors/administration & dosage , Genetic Vectors/genetics , Huntington Disease/genetics , Huntington Disease/metabolism , Huntington Disease/pathology , Male , Mice , Mice, Inbred CBA , Mice, Transgenic , Phenotype , Sterol Regulatory Element Binding Protein 2/biosynthesis , Sterol Regulatory Element Binding Protein 2/genetics
6.
Proc Natl Acad Sci U S A ; 114(7): E1234-E1242, 2017 02 14.
Article in English | MEDLINE | ID: mdl-28137879

ABSTRACT

Medium spiny neurons (MSNs) are a key population in the basal ganglia network, and their degeneration causes a severe neurodegenerative disorder, Huntington's disease. Understanding how ventral neuroepithelial progenitors differentiate into MSNs is critical for regenerative medicine to develop specific differentiation protocols using human pluripotent stem cells. Studies performed in murine models have identified some transcriptional determinants, including GS Homeobox 2 (Gsx2) and Early B-cell factor 1 (Ebf1). Here, we have generated human embryonic stem (hES) cell lines inducible for these transcription factors, with the aims of (i) studying their biological role in human neural progenitors and (ii) incorporating TF conditional expression in a developmental-based protocol for generating MSNs from hES cells. Using this approach, we found that Gsx2 delays cell-cycle exit and reduces Pax6 expression, whereas Ebf1 promotes neuronal differentiation. Moreover, we found that Gsx2 and Ebf1 combined overexpression in hES cells achieves high yields of MSNs, expressing Darpp32 and Ctip2, in vitro as well in vivo after transplantation. We show that hES-derived striatal progenitors can be transplanted in animal models and can differentiate and integrate into the host, extending fibers over a long distance.


Subject(s)
Cell Differentiation/genetics , Homeodomain Proteins/genetics , Human Embryonic Stem Cells/metabolism , Neurons/metabolism , Trans-Activators/genetics , Animals , Cell Cycle/genetics , Cell Line , Dopamine and cAMP-Regulated Phosphoprotein 32/genetics , Dopamine and cAMP-Regulated Phosphoprotein 32/metabolism , Gene Expression , Homeodomain Proteins/metabolism , Human Embryonic Stem Cells/transplantation , Humans , Mice, Nude , Neurons/cytology , Repressor Proteins/genetics , Repressor Proteins/metabolism , Stem Cell Transplantation/methods , Telencephalon/cytology , Trans-Activators/metabolism , Transplantation, Heterologous , Tumor Suppressor Proteins/genetics , Tumor Suppressor Proteins/metabolism
7.
Cereb Cortex ; 26(2): 873-890, 2016 Feb.
Article in English | MEDLINE | ID: mdl-26582364

ABSTRACT

Rac GTPases regulate the development of cortical/hippocampal GABAergic interneurons by affecting the early development and migration of GABAergic precursors. We have addressed the function of Rac1 and Rac3 proteins during the late maturation of hippocampal interneurons. We observed specific phenotypic differences between conditional Rac1 and full Rac3 knockout mice. Rac1 deletion caused greater generalized hyperactivity and cognitive impairment compared with Rac3 deletion. This phenotype matched with a more evident functional impairment of the inhibitory circuits in Rac1 mutants, showing higher excitability and reduced spontaneous inhibitory currents in the CA hippocampal pyramidal neurons. Morphological analysis confirmed a differential modification of the inhibitory circuits: deletion of either Rac caused a similar reduction of parvalbumin-positive inhibitory terminals in the pyramidal layer. Intriguingly, cannabinoid receptor-1-positive terminals were strongly increased only in the CA1 of Rac1-depleted mice. This increase may underlie the stronger electrophysiological defects in this mutant. Accordingly, incubation with an antagonist for cannabinoid receptors partially rescued the reduction of spontaneous inhibitory currents in the pyramidal cells of Rac1 mutants. Our results show that Rac1 and Rac3 have independent roles in the formation of GABAergic circuits, as highlighted by the differential effects of their deletion on the late maturation of specific populations of interneurons.


Subject(s)
Behavior, Animal/physiology , GABAergic Neurons/physiology , Hippocampus/cytology , Nerve Net/metabolism , rac GTP-Binding Proteins/deficiency , rac1 GTP-Binding Protein/deficiency , Adaptation, Ocular/genetics , Animals , Conditioning, Classical/physiology , Emotions/physiology , Excitatory Amino Acid Agents/pharmacology , Exploratory Behavior/physiology , Gene Expression Regulation/genetics , Glutamate Decarboxylase/genetics , Glutamate Decarboxylase/metabolism , In Vitro Techniques , Inhibitory Postsynaptic Potentials/drug effects , Inhibitory Postsynaptic Potentials/genetics , Mice , Mice, Inbred C57BL , Mice, Transgenic , Nerve Tissue Proteins/metabolism , Pyramidal Cells/metabolism , Synapsins/genetics , Synapsins/metabolism , rac GTP-Binding Proteins/genetics , rac1 GTP-Binding Protein/genetics
8.
Development ; 140(2): 301-12, 2013 Jan 15.
Article in English | MEDLINE | ID: mdl-23250204

ABSTRACT

Medium-sized spiny neurons (MSNs) are the only neostriatum projection neurons, and their degeneration underlies some of the clinical features of Huntington's disease. Using knowledge of human developmental biology and exposure to key neurodevelopmental molecules, human pluripotent stem (hPS) cells were induced to differentiate into MSNs. In a feeder-free adherent culture, ventral telencephalic specification is induced by BMP/TGFß inhibition and subsequent SHH/DKK1 treatment. The emerging FOXG1(+)/GSX2(+) telencephalic progenitors are then terminally differentiated, resulting in the systematic line-independent generation of FOXP1(+)/FOXP2(+)/CTIP2(+)/calbindin(+)/DARPP-32(+) MSNs. Similar to mature MSNs, these neurons carry dopamine and A2a receptors, elicit a typical firing pattern and show inhibitory postsynaptic currents, as well as dopamine neuromodulation and synaptic integration ability in vivo. When transplanted into the striatum of quinolinic acid-lesioned rats, hPS-derived neurons survive and differentiate into DARPP-32(+) neurons, leading to a restoration of apomorphine-induced rotation behavior. In summary, hPS cells can be efficiently driven to acquire a functional striatal fate using an ontogeny-recapitulating stepwise method that represents a platform for in vitro human developmental neurobiology studies and drug screening approaches.


Subject(s)
Dopamine and cAMP-Regulated Phosphoprotein 32/metabolism , Neurons/metabolism , Pluripotent Stem Cells/metabolism , Animals , Cell Adhesion , Cell Differentiation , Cell Lineage , Cell Survival , Cell Transplantation , Embryonic Stem Cells/cytology , Female , Fibroblasts/cytology , Fibroblasts/metabolism , Flow Cytometry , GABAergic Neurons/metabolism , Humans , Huntington Disease/metabolism , Mice , Oligonucleotide Array Sequence Analysis , Patch-Clamp Techniques , Quinolinic Acid/pharmacology , RNA/metabolism , Rats , Stem Cells/cytology , Time Factors
9.
Cereb Cortex ; 24(5): 1247-58, 2014 May.
Article in English | MEDLINE | ID: mdl-23258346

ABSTRACT

The intracellular mechanisms driving postmitotic development of cortical γ-aminobutyric acid (GABA)ergic interneurons are poorly understood. We have addressed the function of Rac GTPases in cortical and hippocampal interneuron development. Developing neurons express both Rac1 and Rac3. Previous work has shown that Rac1 ablation does not affect the development of migrating cortical interneurons. Analysis of mice with double deletion of Rac1 and Rac3 shows that these GTPases are required during postmitotic interneuron development. The number of parvalbumin-positive cells was affected in the hippocampus and cortex of double knockout mice. Rac depletion also influences the maturation of interneurons that reach their destination, with reduction of inhibitory synapses in both hippocampal CA1 and cortical pyramidal cells. The decreased number of cortical migrating interneurons and their altered morphology indicate a role of Rac1 and Rac3 in regulating the motility of cortical interneurons, thus interfering with their final localization. While electrophysiological passive and active properties of pyramidal neurons including membrane capacity, resting potential, and spike amplitude and duration were normal, these cells showed reduced spontaneous inhibitory currents and increased excitability. Our results show that Rac1 and Rac3 contribute synergistically to postmitotic development of specific populations of GABAergic cells, suggesting that these proteins regulate their migration and differentiation.


Subject(s)
Cerebral Cortex/cytology , GABAergic Neurons/physiology , Hippocampus/cytology , rac GTP-Binding Proteins/metabolism , rac1 GTP-Binding Protein/metabolism , 4-Aminopyridine/pharmacology , Animals , Animals, Newborn , Bicuculline/pharmacology , Cell Movement/drug effects , Cell Movement/genetics , Excitatory Amino Acid Antagonists/pharmacology , GABA-A Receptor Antagonists/pharmacology , GABAergic Neurons/drug effects , Gene Expression Regulation, Developmental/genetics , Inhibitory Postsynaptic Potentials/genetics , Interneurons/drug effects , Interneurons/physiology , Mice , Mice, Knockout , Piperazines/pharmacology , Potassium Channel Blockers/pharmacology , Vesicular Inhibitory Amino Acid Transport Proteins/metabolism , rac GTP-Binding Proteins/genetics , rac1 GTP-Binding Protein/genetics
10.
Front Physiol ; 15: 1426783, 2024.
Article in English | MEDLINE | ID: mdl-38974517

ABSTRACT

Lysosomal Ca2+ signaling is emerging as a crucial regulator of endothelial Ca2+ dynamics. Ca2+ release from the acidic vesicles in response to extracellular stimulation is usually promoted via Two Pore Channels (TPCs) and is amplified by endoplasmic reticulum (ER)-embedded inositol-1,3,4-trisphosphate (InsP3) receptors and ryanodine receptors. Emerging evidence suggests that sub-cellular Ca2+ signals in vascular endothelial cells can also be generated by the Transient Receptor Potential Mucolipin 1 channel (TRPML1) channel, which controls vesicle trafficking, autophagy and gene expression. Herein, we adopted a multidisciplinary approach, including live cell imaging, pharmacological manipulation, and gene targeting, revealing that TRPML1 protein is expressed and triggers global Ca2+ signals in the human brain microvascular endothelial cell line, hCMEC/D3. The direct stimulation of TRPML1 with both the synthetic agonist, ML-SA1, and the endogenous ligand phosphatidylinositol 3,5-bisphosphate (PI(3,5)P2) induced a significant increase in [Ca2+]i, that was reduced by pharmacological blockade and genetic silencing of TRPML1. In addition, TRPML1-mediated lysosomal Ca2+ release was sustained both by lysosomal Ca2+ release and ER Ca2+- release through inositol-1,4,5-trisphophate receptors and store-operated Ca2+ entry. Notably, interfering with TRPML1-mediated lysosomal Ca2+ mobilization led to a decrease in the free ER Ca2+ concentration. Imaging of DAF-FM fluorescence revealed that TRPML1 stimulation could also induce a significant Ca2+-dependent increase in nitric oxide concentration. Finally, the pharmacological and genetic blockade of TRPML1 impaired ATP-induced intracellular Ca2+ release and NO production. These findings, therefore, shed novel light on the mechanisms whereby the lysosomal Ca2+ store can shape endothelial Ca2+ signaling and Ca2+-dependent functions in vascular endothelial cells.

11.
Mol Cell Neurosci ; 49(4): 395-405, 2012 Apr.
Article in English | MEDLINE | ID: mdl-22388097

ABSTRACT

Bone marrow-derived mesenchymal stem cells (MSCs) are multipotent stem cells endowed with neurotrophic potential combined with immunological properties, making them a promising therapeutic tool for neurodegenerative disorders. However, the mechanisms through which MSCs promote the neurological recovery following injury or inflammation are still largely unknown, although cell replacement and paracrine mechanisms have been hypothesized. In order to find out what are the mechanisms of the trophic action of MSCs, as compared to glial cells, on CNS neurons, we set up a co-culture system where rat MSCs (or cortical astrocytes) were used as a feeding layer for hippocampal neurons without any direct contact between the two cell types. The analysis of hippocampal synaptogenesis, synaptic vesicle recycling and electrical activity show that MSCs were capable to support morphological and functional neuronal differentiation. The proliferation of hippocampal glial cells induced by the release of bioactive substance(s) from MSCs was necessary for neuronal survival. Furthermore, MSCs selectively increased hippocampal GABAergic pre-synapses. This effect was paralleled with a higher expression of the potassium/chloride KCC2 co-transporter and increased frequency and amplitude of mIPSCs and sIPSCs. The enhancement of GABA synapses was impaired by the treatment with K252a, a Trk/neurotrophin receptor blocker, and by TrkB receptor bodies hence suggesting the involvement of BDNF as a mediator of such effects. The results obtained here indicate that MSC-secreted factors induce glial-dependent neuronal survival and trigger an augmented GABAergic transmission in hippocampal cultures, highlighting a new effect by which MSCs could promote CNS repair. Our results suggest that MSCs may be useful in those neurological disorders characterized by an impairment of excitation versus inhibition balance.


Subject(s)
Brain-Derived Neurotrophic Factor/metabolism , Mesenchymal Stem Cells/metabolism , Neurons/metabolism , Synaptic Transmission/physiology , Animals , Astrocytes/cytology , Astrocytes/metabolism , Blotting, Western , Cell Differentiation/physiology , Coculture Techniques , Enzyme-Linked Immunosorbent Assay , Feeder Cells , Fluorescent Antibody Technique , Hippocampus/cytology , Hippocampus/physiology , Inhibitory Postsynaptic Potentials/physiology , Neurons/cytology , Patch-Clamp Techniques , Rats , gamma-Aminobutyric Acid/metabolism
12.
Curr Neuropharmacol ; 21(11): 2310-2322, 2023.
Article in English | MEDLINE | ID: mdl-37464831

ABSTRACT

Dystonia, the third most common movement disorder, refers to a heterogeneous group of neurological diseases characterized by involuntary, sustained or intermittent muscle contractions resulting in repetitive twisting movements and abnormal postures. In the last few years, several studies on animal models helped expand our knowledge of the molecular mechanisms underlying dystonia. These findings have reinforced the notion that the synaptic alterations found mainly in the basal ganglia and cerebellum, including the abnormal neurotransmitters signalling, receptor trafficking and synaptic plasticity, are a common hallmark of different forms of dystonia. In this review, we focus on the major contribution provided by rodent models of DYT-TOR1A, DYT-THAP1, DYT-GNAL, DYT/ PARK-GCH1, DYT/PARK-TH and DYT-SGCE dystonia, which reveal that an abnormal motor network and synaptic dysfunction represent key elements in the pathophysiology of dystonia.


Subject(s)
Dystonia , Dystonic Disorders , Animals , Basal Ganglia , Cerebellum , Disease Models, Animal
13.
Front Cell Neurosci ; 17: 1082010, 2023.
Article in English | MEDLINE | ID: mdl-36816855

ABSTRACT

Oxytocin (OT) is a neuropeptide widely known for its peripheral hormonal effects (i.e., parturition and lactation) and central neuromodulatory functions, related especially to social behavior and social, spatial, and episodic memory. The hippocampus is a key structure for these functions, it is innervated by oxytocinergic fibers, and contains OT receptors (OTRs). The hippocampal OTR distribution is not homogeneous among its subregions and types of neuronal cells, reflecting the specificity of oxytocin's modulatory action. In this review, we describe the most recent discoveries in OT/OTR signaling in the hippocampus, focusing primarily on the electrophysiological oxytocinergic modulation of the OTR-expressing hippocampal neurons. We then look at the effect this modulation has on the balance of excitation/inhibition and synaptic plasticity in each hippocampal subregion. Additionally, we review OTR downstream signaling, which underlies the OT effects observed in different types of hippocampal neuron. Overall, this review comprehensively summarizes the advancements in unraveling the neuromodulatory functions exerted by OT on specific hippocampal networks.

14.
Cell Mol Life Sci ; 68(10): 1769-83, 2011 May.
Article in English | MEDLINE | ID: mdl-20981563

ABSTRACT

Neural stem (NS) cells are a self-renewing population of symmetrically dividing multipotent radial glia-like stem cells, characterized by homogeneous expansion in monolayer. Here we report that fetal NS cells isolated from different regions of the developing mouse nervous system behave in a similar manner with respect to self-renewal and neuropotency, but exhibit distinct positional identities. For example, NS cells from the neocortex maintain the expression of anterior transcription factors, including Otx2 and Foxg1, while Hoxb4 and Hoxb9 are uniquely found in spinal cord-derived NS cells. This molecular signature was stable for over 20 passages and was strictly linked to the developmental stage of the donor, because only NS cells derived from E14.5 cortex, and not those derived from E12.5 cortex, carried a consistent transcription factor profile. We also showed that traits of this positional code are maintained during neuronal differentiation, leading to the generation of electrophysiologically active neurons, even if they do not acquire a complete neurochemical identity.


Subject(s)
Fetus/cytology , Neural Stem Cells/metabolism , Animals , Cell Differentiation , Cells, Cultured , Forkhead Transcription Factors/genetics , Forkhead Transcription Factors/metabolism , Homeodomain Proteins/genetics , Homeodomain Proteins/metabolism , Mice , Neocortex/cytology , Neocortex/embryology , Nerve Tissue Proteins/genetics , Nerve Tissue Proteins/metabolism , Otx Transcription Factors/genetics , Otx Transcription Factors/metabolism , Patch-Clamp Techniques , Spinal Cord/cytology , Spinal Cord/embryology , Transcription Factors/genetics , Transcription Factors/metabolism
16.
Cell Rep Methods ; 2(12): 100367, 2022 12 19.
Article in English | MEDLINE | ID: mdl-36590694

ABSTRACT

Stem cell engineering of striatal medium spiny neurons (MSNs) is a promising strategy to understand diseases affecting the striatum and for cell-replacement therapies in different neurological diseases. Protocols to generate cells from human pluripotent stem cells (PSCs) are scarce and how well they recapitulate the endogenous fetal cells remains poorly understood. We have developed a protocol that modulates cell seeding density and exposure to specific morphogens that generates authentic and functional D1- and D2-MSNs with a high degree of reproducibility in 25 days of differentiation. Single-cell RNA sequencing (scRNA-seq) shows that our cells can mimic the cell-fate acquisition steps observed in vivo in terms of cell type composition, gene expression, and signaling pathways. Finally, by modulating the midkine pathway we show that we can increase the yield of MSNs. We expect that this protocol will help decode pathogenesis factors in striatal diseases and eventually facilitate cell-replacement therapies for Huntington's disease (HD).


Subject(s)
Medium Spiny Neurons , Pluripotent Stem Cells , Humans , Reproducibility of Results , Neurogenesis , Corpus Striatum , Pluripotent Stem Cells/metabolism
17.
Mol Neurobiol ; 58(6): 2824-2835, 2021 Jun.
Article in English | MEDLINE | ID: mdl-33511502

ABSTRACT

In light of previous results, we assessed whether liposomes functionalized with ApoE-derived peptide (mApoE) and phosphatidic acid (PA) (mApoE-PA-LIP) impacted on intracellular calcium (Ca2+) dynamics in cultured human cerebral microvascular endothelial cells (hCMEC/D3), as an in vitro human blood-brain barrier (BBB) model, and in cultured astrocytes. mApoE-PA-LIP pre-treatment actively increased both the duration and the area under the curve (A.U.C) of the ATP-evoked Ca2+ waves in cultured hCMEC/D3 cells as well as in cultured astrocytes. mApoE-PA-LIP increased the ATP-evoked intracellular Ca2+ waves even under 0 [Ca2+]e conditions, thus indicating that the increased intracellular Ca2+ response to ATP is mainly due to endogenous Ca2+ release. Indeed, when Sarco-Endoplasmic Reticulum Calcium ATPase (SERCA) activity was blocked by cyclopiazonic acid (CPA), the extracellular application of ATP failed to trigger any intracellular Ca2+ waves, indicating that metabotropic purinergic receptors (P2Y) are mainly involved in the mApoE-PA-LIP-induced increase of the Ca2+ wave triggered by ATP. In conclusion, mApoE-PA-LIP modulate intracellular Ca2+ dynamics evoked by ATP when SERCA is active through inositol-1,4,5-trisphosphate-dependent (InsP3) endoplasmic reticulum Ca2+ release. Considering that P2Y receptors represent important pharmacological targets to treat cognitive dysfunctions, and that P2Y receptors have neuroprotective effects in neuroinflammatory processes, the enhancement of purinergic signaling provided by mApoE-PA-LIP could counteract Aß-induced vasoconstriction and reduction in cerebral blood flow (CBF). Our obtained results could give an additional support to promote mApoE-PA-LIP as effective therapeutic tool for Alzheimer's disease (AD).


Subject(s)
Alzheimer Disease/pathology , Astrocytes/metabolism , Brain/pathology , Calcium Signaling , Endothelial Cells/metabolism , Microvessels/pathology , Receptors, Purinergic/metabolism , Adenosine Triphosphate/metabolism , Animals , Astrocytes/drug effects , Calcium/metabolism , Calcium Signaling/drug effects , Cell Line , Endoplasmic Reticulum/metabolism , Endothelial Cells/drug effects , Humans , Indoles/pharmacology , Liposomes , Phosphatidic Acids/chemistry , Rats , Sarcoplasmic Reticulum Calcium-Transporting ATPases/metabolism
18.
Cell Calcium ; 99: 102454, 2021 11.
Article in English | MEDLINE | ID: mdl-34454368

ABSTRACT

The excitatory neurotransmitter glutamate gates post-synaptic N-methyl-d-aspartate (NMDA) receptors (NMDARs) to mediate extracellular Ca2+ entry and stimulate neuronal nitric oxide (NO) synthase to release NO and trigger neurovascular coupling (NVC). Neuronal and glial NMDARs may also operate in a flux-independent manner, although it is unclear whether their non-ionotropic mode of action is involved in NVC. Recently, endothelial NMDARs were found to trigger Ca2+-dependent NO production and induce NVC, but the underlying mode of signaling remains elusive. Herein, we report that GluN1 protein, as well as GluN2C and GluN3B transcripts and proteins, were expressed and that NMDA did not elicit inward currents, but induced a dose-dependent increase in intracellular Ca2+ concentration ([Ca2+]i) in the human brain microvascular endothelial cell line, hCMEC/D3. A multidisciplinary approach, including live cell imaging, whole-cell patch-clamp recordings, pharmacological manipulation and gene targeting, revealed that NMDARs increase the [Ca2+]i in a flux-independent manner in hCMEC/D3 cells. The Ca2+ response to NMDA was triggered by endogenous Ca2+ release from the endoplasmic reticulum and the lysosomal Ca2+ stores and sustained by store-operated Ca2+ entry. Unexpectedly, pharmacological and genetic blockade of mGluR1 and mGluR5 dramatically impaired NMDARs-mediated Ca2+ signals. These findings indicate that NMDARs may increase the endothelial [Ca2+]i in a flux-independent manner via group 1 mGluRs. However, imaging of DAF-FM fluorescence revealed that NMDARs may also induce Ca2+-dependent NO release by signaling in a flux-dependent manner. These findings, therefore, shed novel light on the mechanisms whereby brain microvascular endothelium decodes glutamatergic signaling and regulates NVC.


Subject(s)
Receptors, Metabotropic Glutamate , Receptors, N-Methyl-D-Aspartate , Brain/metabolism , Endothelial Cells/metabolism , Endothelium/metabolism , Humans , Nitric Oxide/metabolism , Receptors, Metabotropic Glutamate/metabolism
19.
Front Cell Neurosci ; 15: 703407, 2021.
Article in English | MEDLINE | ID: mdl-34366789

ABSTRACT

The perirhinal cortex (PRC) is a polymodal associative region of the temporal lobe that works as a gateway between cortical areas and hippocampus. In recent years, an increasing interest arose in the role played by the PRC in learning and memory processes, such as object recognition memory, in contrast with certain forms of hippocampus-dependent spatial and episodic memory. The integrative properties of the PRC should provide all necessary resources to select and enhance the information to be propagated to and from the hippocampus. Among these properties, we explore in this paper the ability of the PRC neurons to amplify the output voltage to current input at selected frequencies, known as membrane resonance. Within cerebral circuits the resonance of a neuron operates as a filter toward inputs signals at certain frequencies to coordinate network activity in the brain by affecting the rate of neuronal firing and the precision of spike timing. Furthermore, the ability of the PRC neurons to resonate could have a fundamental role in generating subthreshold oscillations and in the selection of cortical inputs directed to the hippocampus. Here, performing whole-cell patch-clamp recordings from perirhinal pyramidal neurons and GABAergic interneurons of GAD67-GFP+ mice, we found, for the first time, that the majority of PRC neurons are resonant at their resting potential, with a resonance frequency of 0.5-1.5 Hz at 23°C and of 1.5-2.8 Hz at 36°C. In the presence of ZD7288 (blocker of HCN channels) resonance was abolished in both pyramidal neurons and interneurons, suggesting that Ih current is critically involved in resonance generation. Otherwise, application of TTx (voltage-dependent Na+ channel blocker) attenuates the resonance in pyramidal neurons but not in interneurons, suggesting that only in pyramidal neurons the persistent sodium current has an amplifying effect. These experimental results have also been confirmed by a computational model. From a functional point of view, the resonance in the PRC would affect the reverberating activity between neocortex and hippocampus, especially during slow wave sleep, and could be involved in the redistribution and strengthening of memory representation in cortical regions.

20.
J Neurophysiol ; 103(2): 725-32, 2010 Feb.
Article in English | MEDLINE | ID: mdl-19939958

ABSTRACT

The massive transfer of information from the neocortex to the entorhinal cortex (and vice versa) is hindered by a powerful inhibitory control generated in the perirhinal cortex. In vivo and in vitro experiments performed in rodents and cats support this conclusion, further extended in the present study to the analysis of the interaction between the entorhinal cortex and other parahippocampal areas, such as the postrhinal and the retrosplenial cortices. The experiments were performed in the in vitro isolated guinea pig brain by a combined approach based on electrophysiological recordings and fast imaging of optical signals generated by voltage-sensitive dyes applied to the entire brain by arterial perfusion. Local stimuli delivered in different portions of the perirhinal, postrhinal, and retrosplenial cortex evoked local responses that did not propagate to the entorhinal cortex. Neither high- and low-frequency-patterned stimulation nor paired associative stimuli facilitated the propagation of activity to the entorhinal region. Similar stimulations performed during cholinergic neuromodulation with carbachol were also ineffective in overcoming the inhibitory network that controls propagation to the entorhinal cortex. The pharmacological inactivation of GABAergic transmission by local application of bicuculline (1 mM) in area 36 of the perirhinal cortex facilitated the longitudinal (rostrocaudal) propagation of activity into the perirhinal/postrhinal cortices but did not cause propagation into the entorhinal cortex. Bicuculline injection in both area 35 and medial entorhinal cortex released the inhibitory control and allowed the propagation of the neural activity to the entorhinal cortex. These results demonstrate that, as for the perirhinal-entorhinal reciprocal interactions, also the connections between the postrhinal/retrosplenial cortices and the entorhinal region are subject to a powerful inhibitory control.


Subject(s)
Action Potentials/physiology , Brain Mapping/methods , Microscopy, Fluorescence/methods , Nerve Net/physiology , Neural Pathways/physiology , Parahippocampal Gyrus/physiology , Animals , Fluorescent Dyes , Guinea Pigs , Membrane Potentials/physiology , Organ Culture Techniques
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