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1.
Medicines (Basel) ; 11(5)2024 Apr 30.
Article in English | MEDLINE | ID: mdl-38786549

ABSTRACT

Background: Traumatic brain injury manifests itself in various forms, ranging from mild impairment of consciousness to severe coma and death. Traumatic brain injury remains one of the leading causes of morbidity and mortality. Currently, there is no therapy to reverse the effects associated with traumatic brain injury. New neuroprotective treatments for severe traumatic brain injury have not achieved significant clinical success. Methods: A literature review was performed to summarize the recent interdisciplinary findings on management of traumatic brain injury from both clinical and experimental perspective. Results: In the present review, we discuss the concepts of traditional and new approaches to treatment of traumatic brain injury. The recent development of different drug delivery approaches to the central nervous system is also discussed. Conclusions: The management of traumatic brain injury could be aimed either at the pathological mechanisms initiating the secondary brain injury or alleviating the symptoms accompanying the injury. In many cases, however, the treatment should be complex and include a variety of medical interventions and combination therapy.

2.
Phys Rev E ; 105(1-1): 014401, 2022 Jan.
Article in English | MEDLINE | ID: mdl-35193251

ABSTRACT

Refractoriness is a fundamental property of excitable elements, such as neurons, indicating the probability for re-excitation in a given time lag, and is typically linked to the neuronal hyperpolarization following an evoked spike. Here we measured the refractory periods (RPs) in neuronal cultures and observed that an average anisotropic absolute RP could exceed 10 ms and its tail is 20 ms, independent of a large stimulation frequency range. It is an order of magnitude longer than anticipated and comparable with the decaying membrane potential time scale. It is followed by a sharp rise-time (relative RP) of merely ∼1 md to complete responsiveness. Extracellular stimulations result in longer absolute RPs than solely intracellular ones, and a pair of extracellular stimulations from two different routes exhibits distinct absolute RPs, depending on their order. Our results indicate that a neuron is an accurate excitable element, where the diverse RPs cannot be attributed solely to the soma and imply fast mutual interactions between different stimulation routes and dendrites. Further elucidation of neuronal computational capabilities and their interplay with adaptation mechanisms is warranted.

3.
Cell Rep ; 38(3): 110268, 2022 01 18.
Article in English | MEDLINE | ID: mdl-35045289

ABSTRACT

Dysregulated homeostasis of neural activity has been hypothesized to drive Alzheimer's disease (AD) pathogenesis. AD begins with a decades-long presymptomatic phase, but whether homeostatic mechanisms already begin failing during this silent phase is unknown. We show that before the onset of memory decline and sleep disturbances, familial AD (fAD) model mice display no deficits in CA1 mean firing rate (MFR) during active wakefulness. However, homeostatic down-regulation of CA1 MFR is disrupted during non-rapid eye movement (NREM) sleep and general anesthesia in fAD mouse models. The resultant hyperexcitability is attenuated by the mitochondrial dihydroorotate dehydrogenase (DHODH) enzyme inhibitor, which tunes MFR toward lower set-point values. Ex vivo fAD mutations impair downward MFR homeostasis, resulting in pathological MFR set points in response to anesthetic drug and inhibition blockade. Thus, firing rate dyshomeostasis of hippocampal circuits is masked during active wakefulness but surfaces during low-arousal brain states, representing an early failure of the silent disease stage.


Subject(s)
Alzheimer Disease/physiopathology , Neural Pathways/physiopathology , Sleep/physiology , Wakefulness/physiology , Anesthesia, General , Animals , Disease Models, Animal , Mice , Unconsciousness/chemically induced , Unconsciousness/physiopathology
4.
Front Mol Neurosci ; 14: 757264, 2021.
Article in English | MEDLINE | ID: mdl-34776865

ABSTRACT

Mechanical events and alterations in neuronal morphology that accompany neuronal activity have been observed for decades. However, no clear neurophysiological role, nor an agreed molecular mechanism relating these events to the electrochemical process, has been found. Here we hypothesized that intense, yet physiological, electrical activity in neurons triggers cytoskeletal depolymerization. We excited the sciatic nerve of anesthetized mice with repetitive electric pulses (5, 10, and 100 Hz) for 1 and 2 min and immediately fixed the excised nerves. We then scanned the excised nerves with high-resolution transmission electron microscopy, and quantified cytoskeletal changes in the resulting micrographs. We demonstrate that excitation with a stimulation frequency that is within the physiological regime is accompanied by a significant reduction in the density of cytoskeletal proteins relative to the baseline values recorded in control nerves. After 10 Hz stimulation with durations of 1 and 2 min, neurofilaments density dropped to 55.8 and 51.1% of the baseline median values, respectively. In the same experiments, microtubules density dropped to 23.7 and 38.5% of the baseline median values, respectively. These changes were also accompanied by a reduction in the cytoskeleton-to-cytoplasm contrast that we attribute to the presence of depolymerized electron-dense molecules in the lumen. Thus, we demonstrate with an in vivo model a link between electrical activity and immediate cytoskeleton rearrangement at the nano-scale. We suggest that this cytoskeletal plasticity reduces cellular stiffness and allows cellular homeostasis, maintenance of neuronal morphology and that it facilitates in later stages growth of the neuronal projections.

5.
J Mol Neurosci ; 71(12): 2593-2607, 2021 Dec.
Article in English | MEDLINE | ID: mdl-34151409

ABSTRACT

Alzheimer's disease (AD) is characterized by progressive synaptic dysfunction, deterioration of neuronal transmission, and consequently neuronal death. Although there is no treatment for AD, exposure to enriched environment (EE) in mice, as well as physical and mental activity in human subjects have been shown to have a protective effect by slowing the disease's progression and reducing AD-like cognitive impairment. However, the molecular mechanism of this mitigating effect is still not understood. One of the mechanisms that has recently been shown to be involved in neuronal degeneration is microRNAs (miRNAs) regulation, which act as a post-transcriptional regulators of gene expression. miR-128 has been shown to be significantly altered in individuals with AD and in mice following exposure to EE. Here, we focused on elucidating the possible role of miR-128 in AD pathology and found that miR-128 regulates the expression of two proteins essential for synaptic transmission, SNAP-25, and synaptotagmin1 (Syt1). Clinically relevant, in 5xFAD mouse model for AD, this miRNA's expression was found as downregulated, resembling the alteration found in the hippocampi of individuals with AD. Interestingly, exposing WT mice to EE also resulted in downregulation of miR-128 expression levels, although EE and AD conditions demonstrate opposing effects on neuronal functioning and synaptic plasticity. We also found that miR-128 expression downregulation in primary hippocampal cultures from 5xFAD mice results in increased neuronal network activity and neuronal excitability. Altogether, our findings place miR-128 as a synaptic player that may contribute to synaptic functioning and plasticity through regulation of synaptic protein expression and function.


Subject(s)
Alzheimer Disease/genetics , Hippocampus/metabolism , MicroRNAs/metabolism , Synapses/metabolism , Synaptosomal-Associated Protein 25/genetics , Synaptotagmin I/genetics , Alzheimer Disease/metabolism , Animals , Cells, Cultured , Hippocampus/cytology , Mice , MicroRNAs/genetics , Neurons/metabolism , Synaptosomal-Associated Protein 25/metabolism , Synaptotagmin I/metabolism
6.
Sensors (Basel) ; 21(1)2021 Jan 01.
Article in English | MEDLINE | ID: mdl-33401414

ABSTRACT

During hundreds of millions of years of evolution, insects have evolved some of the most efficient and robust sensing organs, often far more sensitive than their man-made equivalents. In this study, we demonstrate a hybrid bio-technological approach, integrating a locust tympanic ear with a robotic platform. Using an Ear-on-a-Chip method, we manage to create a long-lasting miniature sensory device that operates as part of a bio-hybrid robot. The neural signals recorded from the ear in response to sound pulses, are processed and used to control the robot's motion. This work is a proof of concept, demonstrating the use of biological ears for robotic sensing and control.


Subject(s)
Grasshoppers , Robotics , Animals , Ear, Middle , Lab-On-A-Chip Devices , Sound
7.
ACS Nano ; 13(9): 10015-10028, 2019 09 24.
Article in English | MEDLINE | ID: mdl-31454225

ABSTRACT

Individuals with spinal cord injury (SCI) usually suffer from permanent neurological deficits, while spontaneous recovery and therapeutic efficacy are limited. Here, we demonstrate that when given intranasally, exosomes derived from mesenchymal stem cells (MSC-Exo) could pass the blood brain barrier and migrate to the injured spinal cord area. Furthermore, MSC-Exo loaded with phosphatase and tensin homolog small interfering RNA (ExoPTEN) could attenuate the expression of PTEN in the injured spinal cord region following intranasal administrations. In addition, the loaded MSC-Exo considerably enhanced axonal growth and neovascularization, while reducing microgliosis and astrogliosis. The intranasal ExoPTEN therapy could also partly improve structural and electrophysiological function and, most importantly, significantly elicited functional recovery in rats with complete SCI. The results imply that intranasal ExoPTEN may be used clinically to promote recovery for SCI individuals.


Subject(s)
Exosomes/transplantation , Mesenchymal Stem Cell Transplantation , Mesenchymal Stem Cells/metabolism , PTEN Phosphohydrolase/metabolism , RNA, Small Interfering/metabolism , Recovery of Function , Spinal Cord Injuries/physiopathology , Spinal Cord Injuries/therapy , Administration, Intranasal , Animals , Axons/pathology , Blood-Brain Barrier/pathology , Chemotaxis , Electrophysiological Phenomena , Exosomes/ultrastructure , Female , Ganglia, Spinal/pathology , Gold/chemistry , Humans , Magnetic Resonance Imaging , Motor Activity , Nanoparticles/chemistry , Nanoparticles/ultrastructure , Neurons/pathology , Rats, Sprague-Dawley , Spinal Cord/pathology
8.
Cell Rep ; 25(11): 3169-3179.e7, 2018 12 11.
Article in English | MEDLINE | ID: mdl-30540948

ABSTRACT

Importins mediate transport from synapse to soma and from cytoplasm to nucleus, suggesting that perturbation of importin-dependent pathways should have significant neuronal consequences. A behavioral screen on five importin α knockout lines revealed that reduced expression of importin α5 (KPNA1) in hippocampal neurons specifically decreases anxiety in mice. Re-expression of importin α5 in ventral hippocampus of knockout animals increased anxiety behaviors to wild-type levels. Hippocampal neurons lacking importin α5 reveal changes in presynaptic plasticity and modified expression of MeCP2-regulated genes, including sphingosine kinase 1 (Sphk1). Knockout of importin α5, but not importin α3 or α4, reduces MeCP2 nuclear localization in hippocampal neurons. A Sphk1 blocker reverses anxiolysis in the importin α5 knockout mouse, while pharmacological activation of sphingosine signaling has robust anxiolytic effects in wild-type animals. Thus, importin α5 influences sphingosine-sensitive anxiety pathways by regulating MeCP2 nuclear import in hippocampal neurons.


Subject(s)
Anxiety/metabolism , Methyl-CpG-Binding Protein 2/metabolism , Phosphotransferases (Alcohol Group Acceptor)/metabolism , alpha Karyopherins/metabolism , Animals , Anti-Anxiety Agents/pharmacology , Behavior, Animal , Carbolines/pharmacology , Hippocampus/pathology , Mice, Knockout , Neurons/metabolism , Phenotype , Synapses/metabolism , Transcription, Genetic , alpha Karyopherins/deficiency
9.
Sci Rep ; 8(1): 5100, 2018 03 23.
Article in English | MEDLINE | ID: mdl-29572466

ABSTRACT

Physical models typically assume time-independent interactions, whereas neural networks and machine learning incorporate interactions that function as adjustable parameters. Here we demonstrate a new type of abundant cooperative nonlinear dynamics where learning is attributed solely to the nodes, instead of the network links which their number is significantly larger. The nodal, neuronal, fast adaptation follows its relative anisotropic (dendritic) input timings, as indicated experimentally, similarly to the slow learning mechanism currently attributed to the links, synapses. It represents a non-local learning rule, where effectively many incoming links to a node concurrently undergo the same adaptation. The network dynamics is now counterintuitively governed by the weak links, which previously were assumed to be insignificant. This cooperative nonlinear dynamic adaptation presents a self-controlled mechanism to prevent divergence or vanishing of the learning parameters, as opposed to learning by links, and also supports self-oscillations of the effective learning parameters. It hints on a hierarchical computational complexity of nodes, following their number of anisotropic inputs and opens new horizons for advanced deep learning algorithms and artificial intelligence based applications, as well as a new mechanism for enhanced and fast learning by neural networks.

10.
J Neurosci ; 38(1): 220-231, 2018 01 03.
Article in English | MEDLINE | ID: mdl-29133430

ABSTRACT

The exact function of the polybasic juxtamembrane region (5RK) of the plasma membrane neuronal SNARE, syntaxin 1A (Syx), in vesicle exocytosis, although widely studied, is currently not clear. Here, we addressed the role of 5RK in Ca2+-triggered release, using our Syx-based intramolecular fluorescence resonance energy transfer (FRET) probe, which previously allowed us to resolve a depolarization-induced Ca2+-dependent close-to-open transition (CDO) of Syx that occurs concomitant with evoked release, both in PC12 cells and hippocampal neurons and was abolished upon charge neutralization of 5RK. First, using dynamic FRET analysis in PC12 cells, we show that CDO occurs following assembly of SNARE complexes that include the vesicular SNARE, synaptobrevin 2, and that the participation of 5RK in CDO goes beyond its participation in the final zippering of the complex, because mutations of residues adjacent to 5RK, believed to be crucial for final zippering, do not abolish this transition. In addition, we show that CDO is contingent on membrane phosphatidylinositol 4,5-bisphosphate (PIP2), which is fundamental for maintaining regulated exocytosis, as depletion of membranal PIP2 abolishes CDO. Prompted by these results, which underscore a potentially significant role of 5RK in exocytosis, we next amperometrically analyzed catecholamine release from PC12 cells, revealing that charge neutralization of 5RK promotes spontaneous and inhibits Ca2+-triggered release events. Namely, 5RK acts as a fusion clamp, making release dependent on stimulation by Ca2+SIGNIFICANCE STATEMENT Syntaxin 1A (Syx) is a central protein component of the SNARE complex, which underlies neurotransmitter release. Although widely studied in relation to its participation in SNARE complex formation and its interaction with phosphoinositides, the function of Syx's polybasic juxtamembrane region (5RK) remains unclear. Previously, we showed that a conformational transition of Syx, related to calcium-triggered release, reported by a Syx-based FRET probe, is abolished upon charge neutralization of 5RK (5RK/A). Here we show that this conformational transition is dependent on phosphatidylinositol 4,5-bisphosphate (PIP2) and is related to SNARE complex formation. Subsequently, we show that the 5RK/A mutation enhances spontaneous release and inhibits calcium-triggered release in neuroendocrine cells, indicating a previously unrecognized role of 5RK in neurotransmitter release.


Subject(s)
Calcium Signaling/physiology , Neuroendocrine Cells/physiology , Syntaxin 1/genetics , Syntaxin 1/physiology , Animals , Calcium Signaling/genetics , Exocytosis/physiology , Hippocampus/cytology , Hippocampus/physiology , Mutation/genetics , Neurons/physiology , PC12 Cells , Phosphatidylinositol 4,5-Diphosphate/pharmacology , Rats , SNARE Proteins/physiology , Syntaxin 1/antagonists & inhibitors
11.
Sci Rep ; 7(1): 18036, 2017 12 21.
Article in English | MEDLINE | ID: mdl-29269849

ABSTRACT

Neurons are the computational elements that compose the brain and their fundamental principles of activity are known for decades. According to the long-lasting computational scheme, each neuron sums the incoming electrical signals via its dendrites and when the membrane potential reaches a certain threshold the neuron typically generates a spike to its axon. Here we present three types of experiments, using neuronal cultures, indicating that each neuron functions as a collection of independent threshold units. The neuron is anisotropically activated following the origin of the arriving signals to the membrane, via its dendritic trees. The first type of experiments demonstrates that a single neuron's spike waveform typically varies as a function of the stimulation location. The second type reveals that spatial summation is absent for extracellular stimulations from different directions. The third type indicates that spatial summation and subtraction are not achieved when combining intra- and extra- cellular stimulations, as well as for nonlocal time interference, where the precise timings of the stimulations are irrelevant. Results call to re-examine neuronal functionalities beyond the traditional framework, and the advanced computational capabilities and dynamical properties of such complex systems.


Subject(s)
Action Potentials/physiology , Axons/physiology , Brain/physiology , Dendrites/physiology , Models, Neurological , Neurons/physiology , Animals
12.
Front Neurosci ; 11: 589, 2017.
Article in English | MEDLINE | ID: mdl-29163001

ABSTRACT

Spinal cord injury (SCI), involving damaged axons and glial scar tissue, often culminates in irreversible impairments. Achieving substantial recovery following complete spinal cord transection remains an unmet challenge. Here, we report of implantation of an engineered 3D construct embedded with human oral mucosa stem cells (hOMSC) induced to secrete neuroprotective, immunomodulatory, and axonal elongation-associated factors, in a complete spinal cord transection rat model. Rats implanted with induced tissue engineering constructs regained fine motor control, coordination and walking pattern in sharp contrast to the untreated group that remained paralyzed (42 vs. 0%). Immunofluorescence, CLARITY, MRI, and electrophysiological assessments demonstrated a reconnection bridging the injured area, as well as presence of increased number of myelinated axons, neural precursors, and reduced glial scar tissue in recovered animals treated with the induced cell-embedded constructs. Finally, this construct is made of bio-compatible, clinically approved materials and utilizes a safe and easily extractable cell population. The results warrant further research with regards to the effectiveness of this treatment in addressing spinal cord injury.

13.
Sci Rep ; 6: 36228, 2016 11 08.
Article in English | MEDLINE | ID: mdl-27824075

ABSTRACT

The increasing number of recording electrodes enhances the capability of capturing the network's cooperative activity, however, using too many monitors might alter the properties of the measured neural network and induce noise. Using a technique that merges simultaneous multi-patch-clamp and multi-electrode array recordings of neural networks in-vitro, we show that the membrane potential of a single neuron is a reliable and super-sensitive probe for monitoring such cooperative activities and their detailed rhythms. Specifically, the membrane potential and the spiking activity of a single neuron are either highly correlated or highly anti-correlated with the time-dependent macroscopic activity of the entire network. This surprising observation also sheds light on the cooperative origin of neuronal burst in cultured networks. Our findings present an alternative flexible approach to the technique based on a massive tiling of networks by large-scale arrays of electrodes to monitor their activity.


Subject(s)
Neurons/physiology , Patch-Clamp Techniques/methods , Single-Cell Analysis/instrumentation , Action Potentials , Animals , Cells, Cultured , Membrane Potentials , Neurons/cytology , Rats
14.
Neurobiol Aging ; 36(5): 1938-52, 2015 May.
Article in English | MEDLINE | ID: mdl-25796132

ABSTRACT

Memory deficit is a common manifestation of age-related cognitive impairment, of which depression is a frequently occurring comorbidity. Previously, we developed a submissive (Sub) mouse line, validated as a model of depressive-like behavior. Using learning paradigms testing hippocampus-dependent spatial and nonspatial memory, we demonstrate here that Sub mice developed cognitive impairments at earlier age (3 months), compared with wild-type mice. Furthermore, acute hippocampal slices from Sub animals failed to display paired-pulse facilitation, whereas primed burst stimulation elicited significantly enhanced long-term potentiation in region CA1, relative to control mice. Changes in synaptic plasticity were accompanied by markedly reduced hippocampal messenger RNA expression of insulin-like growth factor and brain-derived neurotrophic factor. Finally, we identified markedly elevated protein levels of the α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid (AMPA) receptor subunit GluA1 in the hippocampi of Sub mice, which was exacerbated with age. Taken together, the results point to a linkage between depressive-like behavior and the susceptibility to develop age-related cognitive impairment, potentially by hippocampal α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid receptor-mediated glutamatergic signaling.


Subject(s)
Cognition Disorders/etiology , Depression/complications , Hippocampus/metabolism , Hippocampus/physiopathology , Neuronal Plasticity/physiology , Receptors, AMPA/genetics , Receptors, AMPA/metabolism , Aging , Animals , Cognition , Cognition Disorders/physiopathology , Depression/psychology , Disease Models, Animal , Gene Expression , Male , Mice
15.
J Neurosci Methods ; 243: 8-17, 2015 Mar 30.
Article in English | MEDLINE | ID: mdl-25619449

ABSTRACT

BACKGROUND: Electrical stimulus isolator is a widely used device in electrophysiology. The timing of the stimulus application is usually automated and controlled by the external device or acquisition software; however, the intensity of the stimulus is adjusted manually. Inaccuracy, lack of reproducibility and no automation of the experimental protocol are disadvantages of the manual adjustment. To overcome these shortcomings, we developed StimDuino, an inexpensive Arduino-controlled stimulus isolator allowing highly accurate, reproducible automated setting of the stimulation current. NEW METHOD: The intensity of the stimulation current delivered by StimDuino is controlled by Arduino, an open-source microcontroller development platform. The automatic stimulation patterns are software-controlled and the parameters are set from Matlab-coded simple, intuitive and user-friendly graphical user interface. The software also allows remote control of the device over the network. RESULTS: Electrical current measurements showed that StimDuino produces the requested current output with high accuracy. In both hippocampal slice and in vivo recordings, the fEPSP measurements obtained with StimDuino and the commercial stimulus isolators showed high correlation. COMPARISON WITH EXISTING METHODS: Commercial stimulus isolators are manually managed, while StimDuino generates automatic stimulation patterns with increasing current intensity. The pattern is utilized for the input-output relationship analysis, necessary for assessment of excitability. In contrast to StimuDuino, not all commercial devices are capable for remote control of the parameters and stimulation process. CONCLUSIONS: StimDuino-generated automation of the input-output relationship assessment eliminates need for the current intensity manually adjusting, improves stimulation reproducibility, accuracy and allows on-site and remote control of the stimulation parameters.


Subject(s)
Automation, Laboratory/instrumentation , Electric Stimulation/instrumentation , Electrophysiology/instrumentation , Access to Information , Animals , Automation, Laboratory/economics , Calibration , Electrophysiology/economics , Equipment Design , Excitatory Postsynaptic Potentials , Hippocampus/physiology , Male , Microelectrodes , Rats, Sprague-Dawley , Reproducibility of Results , Software , Tissue Culture Techniques , User-Computer Interface
16.
Cereb Cortex ; 24(9): 2309-23, 2014 Sep.
Article in English | MEDLINE | ID: mdl-23537531

ABSTRACT

Alterations in the levels of synaptic proteins affect synaptic transmission and synaptic plasticity. However, the precise effects on neuronal network activity are still enigmatic. Here, we utilized microelectrode array (MEA) to elucidate how manipulation of the presynaptic release process affects the activity of neuronal networks. By combining pharmacological tools and genetic manipulation of synaptic proteins, we show that overexpression of DOC2B and Munc13-1, proteins known to promote vesicular maturation and release, elicits opposite effects on the activity of the neuronal network. Although both cause an increase in the overall number of spikes, the distribution of spikes is different. While DOC2B enhances, Munc13-1 reduces the firing rate within bursts of spikes throughout the network; however, Munc13-1 increases the rate of network bursts. DOC2B's effects were mimicked by Strontium that elevates asynchronous release but not by a DOC2B mutant that enhances spontaneous release rate. This suggests for the first time that increased asynchronous release on the single-neuron level promotes bursting activity in the network level. This innovative study demonstrates the complementary role of the network level in explaining the physiological relevance of the cellular activity of presynaptic proteins and the transformation of synaptic release manipulation from the neuron to the network level.


Subject(s)
Action Potentials/physiology , Calcium-Binding Proteins/metabolism , Nerve Net/physiology , Nerve Tissue Proteins/metabolism , Neurons/physiology , Action Potentials/drug effects , Animals , Blotting, Western , Calcium-Binding Proteins/genetics , Cells, Cultured , Cerebral Cortex/drug effects , Cerebral Cortex/physiology , Computer Simulation , Immunohistochemistry , Mice, Inbred ICR , Microelectrodes , Mutation , Nerve Tissue Proteins/genetics , Neural Pathways/drug effects , Neural Pathways/physiology , Neurons/drug effects , Neurotransmitter Agents/pharmacology , Strontium/pharmacology
17.
Neuromolecular Med ; 15(2): 351-63, 2013 Jun.
Article in English | MEDLINE | ID: mdl-23519441

ABSTRACT

Tomosyn, a syntaxin-binding protein, is known to inhibit vesicle priming and synaptic transmission via interference with the formation of SNARE complexes. Using a lentiviral vector, we specifically overexpressed tomosyn1 in hippocampal dentate gyrus neurons in adult mice. Mice were then subjected to spatial learning and memory tasks and electrophysiological measurements from hippocampal slices. Tomosyn1-overexpression significantly impaired hippocampus-dependent spatial memory while tested in the Morris water maze. Further, tomosyn1-overexpressing mice utilize swimming strategies of lesser cognitive ability in the Morris water maze compared with control mice. Electrophysiological measurements at mossy fiber-CA3 synapses revealed impaired paired-pulse facilitation in the mossy fiber of tomosyn1-overexpressing mice. This study provides evidence for novel roles for tomosyn1 in hippocampus-dependent spatial learning and memory, potentially via decreased synaptic transmission in mossy fiber-CA3 synapses. Moreover, it provides new insight regarding the role of the hippocampal dentate gyrus and mossy fiber-CA3 synapses in swimming strategy preference, and in learning and memory.


Subject(s)
CA3 Region, Hippocampal/physiopathology , Dentate Gyrus/physiopathology , Learning Disabilities/genetics , Memory Disorders/genetics , Nerve Tissue Proteins/physiology , R-SNARE Proteins/physiology , Animals , Bacterial Proteins/genetics , CA3 Region, Hippocampal/metabolism , Dentate Gyrus/metabolism , Exploratory Behavior/physiology , Genes, Reporter , Genetic Vectors , Learning Disabilities/physiopathology , Lentivirus , Luminescent Proteins/genetics , Male , Maze Learning , Memory Disorders/physiopathology , Mice , Mice, Inbred C57BL , Mossy Fibers, Hippocampal/physiopathology , Nerve Tissue Proteins/biosynthesis , Nerve Tissue Proteins/genetics , Neuronal Plasticity/physiology , Psychomotor Performance/physiology , R-SNARE Proteins/biosynthesis , R-SNARE Proteins/genetics , Recombinant Fusion Proteins/metabolism , Swimming , Up-Regulation
18.
J Cell Sci ; 123(Pt 11): 1940-7, 2010 Jun 01.
Article in English | MEDLINE | ID: mdl-20484665

ABSTRACT

Regulation of exocytosis by voltage-gated K(+) channels has classically been viewed as inhibition mediated by K(+) fluxes. We recently identified a new role for Kv2.1 in facilitating vesicle release from neuroendocrine cells, which is independent of K(+) flux. Here, we show that Kv2.1-induced facilitation of release is not restricted to neuroendocrine cells, but also occurs in the somatic-vesicle release from dorsal-root-ganglion neurons and is mediated by direct association of Kv2.1 with syntaxin. We further show in adrenal chromaffin cells that facilitation induced by both wild-type and non-conducting mutant Kv2.1 channels in response to long stimulation persists during successive stimulation, and can be attributed to an increased number of exocytotic events and not to changes in single-spike kinetics. Moreover, rigorous analysis of the pools of released vesicles reveals that Kv2.1 enhances the rate of vesicle recruitment during stimulation with high Ca(2+), without affecting the size of the readily releasable vesicle pool. These findings place a voltage-gated K(+) channel among the syntaxin-binding proteins that directly regulate pre-fusion steps in exocytosis.


Subject(s)
Chromaffin Cells/metabolism , Exocytosis , Ganglia, Spinal/pathology , Neurons/metabolism , Secretory Vesicles/metabolism , Shab Potassium Channels/metabolism , Animals , Animals, Newborn , Calcium Signaling , Cells, Cultured , Chromaffin Cells/pathology , Electrophysiology , Neurons/pathology , Qa-SNARE Proteins/metabolism , Rats , Rats, Wistar , Shab Potassium Channels/genetics
19.
PLoS One ; 5(2): e9290, 2010 Feb 18.
Article in English | MEDLINE | ID: mdl-20174633

ABSTRACT

BACKGROUND: The absence of a suitable cellular model is a major obstacle for the study of peripheral neuropathies. Human embryonic stem cells hold the potential to be differentiated into peripheral neurons which makes them a suitable candidate for this purpose. However, so far the potential of hESC to differentiate into derivatives of the peripheral nervous system (PNS) was not investigated enough and in particular, the few trials conducted resulted in low yields of PNS neurons. Here we describe a novel hESC differentiation method to produce enriched populations of PNS mature neurons. By plating 8 weeks hESC derived neural progenitors (hESC-NPs) on laminin for two weeks in a defined medium, we demonstrate that over 70% of the resulting neurons express PNS markers and 30% of these cells are sensory neurons. METHODS/FINDINGS: Our method shows that the hNPs express neuronal crest lineage markers in a temporal manner, and by plating 8 weeks hESC-NPs into laminin coated dishes these hNPs were promoted to differentiate and give rise to homogeneous PNS neuronal populations, expressing several PNS lineage-specific markers. Importantly, these cultures produced functional neurons with electrophysiological activities typical of mature neurons. Moreover, supporting this physiological capacity implantation of 8 weeks old hESC-NPs into the neural tube of chick embryos also produced human neurons expressing specific PNS markers in vivo in just a few days. Having the enriched PNS differentiation system in hand, we show for the first time in human PNS neurons the expression of IKAP/hELP1 protein, where a splicing mutation on the gene encoding this protein causes the peripheral neuropathy Familial Dysautonomia. CONCLUSIONS/SIGNIFICANCE: We conclude that this differentiation system to produce high numbers of human PNS neurons will be useful for studying PNS related neuropathies and for developing future drug screening applications for these diseases.


Subject(s)
Embryonic Stem Cells/cytology , Neurons/cytology , Peripheral Nervous System Diseases/pathology , Peripheral Nervous System/cytology , Animals , Carrier Proteins/genetics , Carrier Proteins/metabolism , Cell Culture Techniques , Cell Differentiation , Cell Line , Cells, Cultured , Chick Embryo , Dysautonomia, Familial/genetics , Dysautonomia, Familial/metabolism , Dysautonomia, Familial/pathology , Embryonic Stem Cells/metabolism , Fluorescent Antibody Technique , Forkhead Transcription Factors/genetics , Forkhead Transcription Factors/metabolism , Gene Expression , Humans , Male , Membrane Potentials/drug effects , Mutation , Neurons/metabolism , Neurons/physiology , Patch-Clamp Techniques , Peripheral Nervous System/metabolism , Peripheral Nervous System Diseases/genetics , Peripheral Nervous System Diseases/metabolism , Potassium Chloride/pharmacology , Reverse Transcriptase Polymerase Chain Reaction , SOX9 Transcription Factor/genetics , SOX9 Transcription Factor/metabolism , Sensory Receptor Cells/cytology , Sensory Receptor Cells/metabolism , Sensory Receptor Cells/physiology , Transcriptional Elongation Factors
20.
J Neurophysiol ; 100(2): 1041-52, 2008 Aug.
Article in English | MEDLINE | ID: mdl-18497350

ABSTRACT

Endocannabinoids released from the postsynaptic neuronal membrane can activate presynaptic CB1 receptors and inhibit neurotransmitter release. In hippocampal slices, depolarization of the CA1 pyramidal neurons elicits an endocannabinoid-mediated inhibition of gamma-aminobutyric acid release known as depolarization-induced suppression of inhibition (DSI). Using the highly reduced neuron/synaptic bouton preparation from the CA1 region of hippocampus, we have begun to examine endocannabinoid-dependent short-term depression (STD) of inhibitory synaptic transmission under well-controlled physiological and pharmacological conditions in an environment free of other cells. Application of the CB1 synthetic agonist WIN55212-2 and endogenous cannabinoids 2-AG and anandamide produced a decrease in spontaneous inhibitory postsynaptic current (sIPSC) frequency and amplitude, indicating the presence of CB1 receptors at synapses in this preparation. Endocannabinoid-dependent STD is different from DSI found in hippocampal slices and the neuron/bouton preparation from basolateral amygdala (BLA) since depolarization alone was not sufficient to induce suppression of sIPSCs. However, concurrent application of the metabotropic glutamate receptor (mGluR) agonist (RS)-3,5-dihydroxyphenylglycine (DHPG) and postsynaptic depolarization resulted in a transient (30-50 s) decrease in sIPSC frequency and amplitude. Application of DHPG alone had no effect on sIPSCs. The depolarization/DHPG-induced STD was blocked by the CB1 antagonist SR141716A and the mGluR5 antagonist MPEP and was sensitive to intracellular calcium concentration. Comparing the present findings with earlier work in hippocampal slices and BLA, it appears that endocannabinoid release is less robust in isolated hippocampal neurons.


Subject(s)
Cannabinoid Receptor Modulators/physiology , Endocannabinoids , Hippocampus/cytology , Inhibitory Postsynaptic Potentials/physiology , Neurons/physiology , Receptors, Metabotropic Glutamate/physiology , Synapses/physiology , Animals , Animals, Newborn , Arachidonic Acids/pharmacology , Benzoxazines/pharmacology , Cannabinoid Receptor Modulators/antagonists & inhibitors , Drug Interactions , Excitatory Amino Acid Antagonists/pharmacology , Glycerides/pharmacology , In Vitro Techniques , Inhibitory Postsynaptic Potentials/drug effects , Inhibitory Postsynaptic Potentials/radiation effects , Methoxyhydroxyphenylglycol/analogs & derivatives , Methoxyhydroxyphenylglycol/pharmacology , Morpholines/pharmacology , Naphthalenes/pharmacology , Neurons/drug effects , Patch-Clamp Techniques/methods , Piperidines/pharmacology , Pyrazoles/pharmacology , Pyridines/pharmacology , Rats , Rats, Sprague-Dawley , Receptor, Cannabinoid, CB1/antagonists & inhibitors , Receptor, Cannabinoid, CB1/metabolism , Receptor, Metabotropic Glutamate 5 , Rimonabant , Synapses/drug effects , Synapses/radiation effects , Synapsins/metabolism , gamma-Aminobutyric Acid/metabolism
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