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1.
Front Neural Circuits ; 18: 1358570, 2024.
Article in English | MEDLINE | ID: mdl-38715983

ABSTRACT

A morphologically present but non-functioning synapse is termed a silent synapse. Silent synapses are categorized into "postsynaptically silent synapses," where AMPA receptors are either absent or non-functional, and "presynaptically silent synapses," where neurotransmitters cannot be released from nerve terminals. The presence of presynaptically silent synapses remains enigmatic, and their physiological significance is highly intriguing. In this study, we examined the distribution and developmental changes of presynaptically active and silent synapses in individual neurons. Our findings show a gradual increase in the number of excitatory synapses, along with a corresponding decrease in the percentage of presynaptically silent synapses during neuronal development. To pinpoint the distribution of presynaptically active and silent synapses, i.e., their positional information, we employed Sholl analysis. Our results indicate that the distribution of presynaptically silent synapses within a single neuron does not exhibit a distinct pattern during synapse development in different distance from the cell body. However, irrespective of neuronal development, the proportion of presynaptically silent synapses tends to rise as the projection site moves farther from the cell body, suggesting that synapses near the cell body may exhibit higher synaptic transmission efficiency. This study represents the first observation of changes in the distribution of presynaptically active and silent synapses within a single neuron.


Subject(s)
Hippocampus , Neurons , Synapses , Animals , Hippocampus/cytology , Hippocampus/physiology , Neurons/physiology , Synapses/physiology , Cells, Cultured , Presynaptic Terminals/physiology , Excitatory Postsynaptic Potentials/physiology , Rats , Synaptic Transmission/physiology
2.
Int J Neural Syst ; 34(6): 2450028, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38706265

ABSTRACT

Spiking neural membrane systems (or spiking neural P systems, SNP systems) are a new type of computation model which have attracted the attention of plentiful scholars for parallelism, time encoding, interpretability and extensibility. The original SNP systems only consider the time delay caused by the execution of rules within neurons, but not caused by the transmission of spikes via synapses between neurons and its adaptive adjustment. In view of the importance of time delay for SNP systems, which are a time encoding computation model, this study proposes SNP systems with adaptive synaptic time delay (ADSNP systems) based on the dynamic regulation mechanism of synaptic transmission delay in neural systems. In ADSNP systems, besides neurons, astrocytes that can generate adenosine triphosphate (ATP) are introduced. After receiving spikes, astrocytes convert spikes into ATP and send ATP to the synapses controlled by them to change the synaptic time delays. The Turing universality of ADSNP systems in number generating and accepting modes is proved. In addition, a small universal ADSNP system using 93 neurons and astrocytes is given. The superiority of the ADSNP system is demonstrated by comparison with the six variants. Finally, an ADSNP system is constructed for credit card fraud detection, which verifies the feasibility of the ADSNP system for solving real-world problems. By considering the adaptive synaptic delay, ADSNP systems better restore the process of information transmission in biological neural networks, and enhance the adaptability of SNP systems, making the control of time more accurate.


Subject(s)
Astrocytes , Models, Neurological , Neural Networks, Computer , Neurons , Synapses , Synaptic Transmission , Synapses/physiology , Astrocytes/physiology , Neurons/physiology , Synaptic Transmission/physiology , Action Potentials/physiology , Adenosine Triphosphate/metabolism , Time Factors , Humans
3.
Elife ; 122024 May 10.
Article in English | MEDLINE | ID: mdl-38727712

ABSTRACT

Vesicles within presynaptic terminals are thought to be segregated into a variety of readily releasable and reserve pools. The nature of the pools and trafficking between them is not well understood, but pools that are slow to mobilize when synapses are active are often assumed to feed pools that are mobilized more quickly, in a series. However, electrophysiological studies of synaptic transmission have suggested instead a parallel organization where vesicles within slowly and quickly mobilized reserve pools would separately feed independent reluctant- and fast-releasing subdivisions of the readily releasable pool. Here, we use FM-dyes to confirm the existence of multiple reserve pools at hippocampal synapses and a parallel organization that prevents intermixing between the pools, even when stimulation is intense enough to drive exocytosis at the maximum rate. The experiments additionally demonstrate extensive heterogeneity among synapses in the relative sizes of the slowly and quickly mobilized reserve pools, which suggests equivalent heterogeneity in the numbers of reluctant and fast-releasing readily releasable vesicles that may be relevant for understanding information processing and storage.


Subject(s)
Hippocampus , Synapses , Synaptic Vesicles , Animals , Hippocampus/physiology , Synaptic Vesicles/metabolism , Synaptic Vesicles/physiology , Synapses/physiology , Synaptic Transmission/physiology , Rats , Exocytosis , Presynaptic Terminals/physiology
4.
Chaos ; 34(5)2024 May 01.
Article in English | MEDLINE | ID: mdl-38767461

ABSTRACT

Transient or partial synchronization can be used to do computations, although a fully synchronized network is sometimes related to the onset of epileptic seizures. Here, we propose a homeostatic mechanism that is capable of maintaining a neuronal network at the edge of a synchronization transition, thereby avoiding the harmful consequences of a fully synchronized network. We model neurons by maps since they are dynamically richer than integrate-and-fire models and more computationally efficient than conductance-based approaches. We first describe the synchronization phase transition of a dense network of neurons with different tonic spiking frequencies coupled by gap junctions. We show that at the transition critical point, inputs optimally reverberate through the network activity through transient synchronization. Then, we introduce a local homeostatic dynamic in the synaptic coupling and show that it produces a robust self-organization toward the edge of this phase transition. We discuss the potential biological consequences of this self-organization process, such as its relation to the Brain Criticality hypothesis, its input processing capacity, and how its malfunction could lead to pathological synchronization and the onset of seizure-like activity.


Subject(s)
Homeostasis , Models, Neurological , Nerve Net , Neurons , Homeostasis/physiology , Neurons/physiology , Nerve Net/physiology , Humans , Action Potentials/physiology , Animals , Computer Simulation , Brain/physiology , Synaptic Transmission/physiology
6.
Proc Natl Acad Sci U S A ; 121(21): e2406565121, 2024 May 21.
Article in English | MEDLINE | ID: mdl-38753507

ABSTRACT

While depolarization of the neuronal membrane is known to evoke the neurotransmitter release from synaptic vesicles, hyperpolarization is regarded as a resting state of chemical neurotransmission. Here, we report that hyperpolarizing neurons can actively signal neural information by employing undocked hemichannels. We show that UNC-7, a member of the innexin family in Caenorhabditis elegans, functions as a hemichannel in thermosensory neurons and transmits temperature information from the thermosensory neurons to their postsynaptic interneurons. By monitoring neural activities in freely behaving animals, we find that hyperpolarizing thermosensory neurons inhibit the activity of the interneurons and that UNC-7 hemichannels regulate this process. UNC-7 is required to control thermotaxis behavior and functions independently of synaptic vesicle exocytosis. Our findings suggest that innexin hemichannels mediate neurotransmission from hyperpolarizing neurons in a manner that is distinct from the synaptic transmission, expanding the way of neural circuitry operations.


Subject(s)
Caenorhabditis elegans Proteins , Caenorhabditis elegans , Interneurons , Neurons , Synaptic Transmission , Animals , Caenorhabditis elegans/physiology , Caenorhabditis elegans/metabolism , Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans Proteins/genetics , Synaptic Transmission/physiology , Interneurons/metabolism , Interneurons/physiology , Neurons/physiology , Neurons/metabolism , Synaptic Vesicles/metabolism , Synaptic Vesicles/physiology , Taxis Response/physiology , Connexins/metabolism , Connexins/genetics , Membrane Proteins
7.
Transl Psychiatry ; 14(1): 193, 2024 Apr 17.
Article in English | MEDLINE | ID: mdl-38632257

ABSTRACT

Autism Spectrum Disorders (ASD) are principally diagnosed by three core behavioural symptoms, such as stereotyped repertoire, communication impairments and social dysfunctions. This complex pathology has been linked to abnormalities of corticostriatal and limbic circuits. Despite experimental efforts in elucidating the molecular mechanisms behind these abnormalities, a clear etiopathogenic hypothesis is still lacking. To this aim, preclinical studies can be really helpful to longitudinally study behavioural alterations resembling human symptoms and to investigate the underlying neurobiological correlates. In this regard, the BTBR T+ Itpr3tf/J (BTBR) mice are an inbred mouse strain that exhibits a pattern of behaviours well resembling human ASD-like behavioural features. In this study, the BTBR mice model was used to investigate neurochemical and biomolecular alterations, regarding Nerve Growth Factor (NGF) and Brain-Derived Neurotrophic Factor (BDNF), together with GABAergic, glutamatergic, cholinergic, dopaminergic and noradrenergic neurotransmissions and their metabolites in four different brain areas, i.e. prefrontal cortex, hippocampus, amygdala and hypothalamus. In our results, BTBR strain reported decreased noradrenaline, acetylcholine and GABA levels in prefrontal cortex, while hippocampal measurements showed reduced NGF and BDNF expression levels, together with GABA levels. Concerning hypothalamus, no differences were retrieved. As regarding amygdala, we found reduced dopamine levels, accompanied by increased dopamine metabolites in BTBR mice, together with decreased acetylcholine, NGF and GABA levels and enhanced glutamate content. Taken together, our data showed that the BTBR ASD model, beyond its face validity, is a useful tool to untangle neurotransmission alterations that could be underpinned to the heterogeneous ASD-like behaviours, highlighting the crucial role played by amygdala.


Subject(s)
Autism Spectrum Disorder , Autistic Disorder , Mice , Animals , Humans , Autistic Disorder/metabolism , Brain-Derived Neurotrophic Factor/metabolism , Acetylcholine , Dopamine , Nerve Growth Factor/metabolism , Mice, Inbred C57BL , Mice, Inbred Strains , Synaptic Transmission/physiology , Autism Spectrum Disorder/metabolism , Amygdala/metabolism , gamma-Aminobutyric Acid , Disease Models, Animal
8.
Proc Natl Acad Sci U S A ; 121(15): e2320505121, 2024 Apr 09.
Article in English | MEDLINE | ID: mdl-38568977

ABSTRACT

The presynaptic SNARE-complex regulator complexin (Cplx) enhances the fusogenicity of primed synaptic vesicles (SVs). Consequently, Cplx deletion impairs action potential-evoked transmitter release. Conversely, though, Cplx loss enhances spontaneous and delayed asynchronous release at certain synapse types. Using electrophysiology and kinetic modeling, we show that such seemingly contradictory transmitter release phenotypes seen upon Cplx deletion can be explained by an additional of Cplx in the control of SV priming, where its ablation facilitates the generation of a "faulty" SV fusion apparatus. Supporting this notion, a sequential two-step priming scheme, featuring reduced vesicle fusogenicity and increased transition rates into the faulty primed state, reproduces all aberrations of transmitter release modes and short-term synaptic plasticity seen upon Cplx loss. Accordingly, we propose a dual presynaptic function for the SNARE-complex interactor Cplx, one as a "checkpoint" protein that guarantees the proper assembly of the fusion machinery during vesicle priming, and one in boosting vesicle fusogenicity.


Subject(s)
Synapses , Synaptic Vesicles , Synapses/metabolism , Synaptic Vesicles/metabolism , Action Potentials , Nerve Tissue Proteins/genetics , Nerve Tissue Proteins/metabolism , SNARE Proteins/genetics , SNARE Proteins/metabolism , Synaptic Transmission/physiology
9.
Endocr Regul ; 58(1): 105-114, 2024 Jan 01.
Article in English | MEDLINE | ID: mdl-38656256

ABSTRACT

Oxytocin plays an important role in brain development and is associated with various neurotransmitter systems in the brain. Abnormalities in the production, secretion, and distribution of oxytocin in the brain, at least during some stages of the development, are critical for the pathogenesis of neuropsychiatric diseases, particularly in the autism spectrum disorder. The etiology of autism includes changes in local sensory and dopaminergic areas of the brain, which are also supplied by the hypothalamic sources of oxytocin. It is very important to understand their mutual relationship. In this review, the relationship of oxytocin with several components of the dopaminergic system, gamma-aminobutyric acid (GABA) inhibitory neurotransmission and their alterations in the autism spectrum disorder is discussed. Special attention has been paid to the results describing a reduced expression of inhibitory GABAergic markers in the brain in the context of dopaminergic areas in various models of autism. It is presumed that the altered GABAergic neurotransmission, due to the absence or dysfunction of oxytocin at certain developmental stages, disinhibits the dopaminergic signaling and contributes to the autism symptoms.


Subject(s)
Autistic Disorder , Brain , Dopamine , Oxytocin , gamma-Aminobutyric Acid , Oxytocin/metabolism , Oxytocin/physiology , Humans , Dopamine/metabolism , gamma-Aminobutyric Acid/metabolism , Autistic Disorder/metabolism , Brain/metabolism , Animals , Synaptic Transmission/physiology , Autism Spectrum Disorder/metabolism , Autism Spectrum Disorder/etiology
10.
ACS Chem Biol ; 19(4): 953-961, 2024 Apr 19.
Article in English | MEDLINE | ID: mdl-38566504

ABSTRACT

Synaptotagmin-1 (Syt-1) is a calcium sensing protein that is resident in synaptic vesicles. It is well established that Syt-1 is essential for fast and synchronous neurotransmitter release. However, the role of Ca2+ and phospholipid binding in the function of Syt-1, and ultimately in neurotransmitter release, is unclear. Here, we investigate the binding of Ca2+ to Syt-1, first in the absence of lipids, using native mass spectrometry to evaluate individual binding affinities. Syt-1 binds to one Ca2+ with a KD ∼ 45 µM. Each subsequent binding affinity (n ≥ 2) is successively unfavorable. Given that Syt-1 has been reported to bind anionic phospholipids to modulate the Ca2+ binding affinity, we explored the extent that Ca2+ binding was mediated by selected anionic phospholipid binding. We found that phosphatidylinositol 4,5-bisphosphate (PI(4,5)P2) and dioleoylphosphatidylserine (DOPS) positively modulated Ca2+ binding. However, the extent of Syt-1 binding to phosphatidylinositol 3,5-bisphosphate (PI(3,5)P2) was reduced with increasing [Ca2+]. Overall, we find that specific lipids differentially modulate Ca2+ binding. Given that these lipids are enriched in different subcellular compartments and therefore may interact with Syt-1 at different stages of the synaptic vesicle cycle, we propose a regulatory mechanism involving Syt-1, Ca2+, and anionic phospholipids that may also control some aspects of vesicular exocytosis.


Subject(s)
Calcium , Phospholipids , Synaptotagmin I , Calcium/metabolism , Exocytosis/physiology , Neurotransmitter Agents/metabolism , Phospholipids/metabolism , Synaptic Transmission/physiology , Synaptic Vesicles/metabolism , Synaptotagmin I/metabolism , Animals , Rats
11.
ACS Chem Neurosci ; 15(9): 1738-1754, 2024 May 01.
Article in English | MEDLINE | ID: mdl-38613458

ABSTRACT

Iboga alkaloids, also known as coronaridine congeners, have shown promise in the treatment of alcohol and opioid use disorders. The objective of this study was to evaluate the effects of catharanthine and 18-methoxycoronaridine (18-MC) on dopamine (DA) transmission and cholinergic interneurons in the mesolimbic DA system, nicotine-induced locomotor activity, and nicotine-taking behavior. Utilizing ex vivo fast-scan cyclic voltammetry (FSCV) in the nucleus accumbens core of male mice, we found that catharanthine or 18-MC differentially inhibited evoked DA release. Catharanthine inhibition of evoked DA release was significantly reduced by both α4 and α6 nicotinic acetylcholine receptors (nAChRs) antagonists. Additionally, catharanthine substantially increased DA release more than vehicle during high-frequency stimulation, although less potently than an α4 nAChR antagonist, which confirms previous work with nAChR antagonists. Interestingly, while catharanthine slowed DA reuptake measured via FSCV ex vivo, it also increased extracellular DA in striatal dialysate from anesthetized mice in vivo in a dose-dependent manner. Superfusion of catharanthine or 18-MC inhibited the firing rate of striatal cholinergic interneurons in a concentration dependent manner, which are known to potently modulate presynaptic DA release. Catharanthine or 18-MC suppressed acetylcholine currents in oocytes expressing recombinant rat α6/α3ß2ß3 or α6/α3ß4 nAChRs. In behavioral experiments using male Sprague-Dawley rats, systemic administration of catharanthine or 18-MC blocked nicotine enhancement of locomotor activity. Importantly, catharanthine attenuated nicotine self-administration in a dose-dependent manner while having no effect on food reinforcement. Lastly, administration of catharanthine and nicotine together greatly increased head twitch responses, indicating a potential synergistic hallucinogenic effect. These findings demonstrate that catharanthine and 18-MC have similar, but not identical effects on striatal DA dynamics, striatal cholinergic interneuron activity and nicotine psychomotor effects.


Subject(s)
Dopamine Plasma Membrane Transport Proteins , Dopamine , Ibogaine , Ibogaine/analogs & derivatives , Nicotine , Receptors, Nicotinic , Animals , Dopamine/metabolism , Male , Receptors, Nicotinic/metabolism , Receptors, Nicotinic/drug effects , Nicotine/pharmacology , Ibogaine/pharmacology , Mice , Dopamine Plasma Membrane Transport Proteins/metabolism , Dopamine Plasma Membrane Transport Proteins/drug effects , Nucleus Accumbens/drug effects , Nucleus Accumbens/metabolism , Mice, Inbred C57BL , Nicotinic Antagonists/pharmacology , Oocytes/drug effects , Nicotinic Agonists/pharmacology , Synaptic Transmission/drug effects , Synaptic Transmission/physiology , Self Administration , Xenopus laevis , Interneurons/drug effects , Interneurons/metabolism , Dose-Response Relationship, Drug , Motor Activity/drug effects
12.
Proc Natl Acad Sci U S A ; 121(18): e2322550121, 2024 Apr 30.
Article in English | MEDLINE | ID: mdl-38657053

ABSTRACT

Pronounced differences in neurotransmitter release from a given presynaptic neuron, depending on the synaptic target, are among the most intriguing features of cortical networks. Hippocampal pyramidal cells (PCs) release glutamate with low probability to somatostatin expressing oriens-lacunosum-moleculare (O-LM) interneurons (INs), and the postsynaptic responses show robust short-term facilitation, whereas the release from the same presynaptic axons onto fast-spiking INs (FSINs) is ~10-fold higher and the excitatory postsynaptic currents (EPSCs) display depression. The mechanisms underlying these vastly different synaptic behaviors have not been conclusively identified. Here, we applied a combined functional, pharmacological, and modeling approach to address whether the main difference lies in the action potential-evoked fusion or else in upstream priming processes of synaptic vesicles (SVs). A sequential two-step SV priming model was fitted to the peak amplitudes of unitary EPSCs recorded in response to complex trains of presynaptic stimuli in acute hippocampal slices of adult mice. At PC-FSIN connections, the fusion probability (Pfusion) of well-primed SVs is 0.6, and 44% of docked SVs are in a fusion-competent state. At PC-O-LM synapses, Pfusion is only 40% lower (0.36), whereas the fraction of well-primed SVs is 6.5-fold smaller. Pharmacological enhancement of fusion by 4-AP and priming by PDBU was recaptured by the model with a selective increase of Pfusion and the fraction of well-primed SVs, respectively. Our results demonstrate that the low fidelity of transmission at PC-O-LM synapses can be explained by a low occupancy of the release sites by well-primed SVs.


Subject(s)
Neurotransmitter Agents , Synaptic Vesicles , Animals , Synaptic Vesicles/metabolism , Synaptic Vesicles/physiology , Mice , Neurotransmitter Agents/metabolism , Hippocampus/metabolism , Hippocampus/physiology , Excitatory Postsynaptic Potentials/physiology , Synaptic Transmission/physiology , Interneurons/metabolism , Interneurons/physiology , Pyramidal Cells/metabolism , Pyramidal Cells/physiology , Synapses/metabolism , Synapses/physiology , Models, Neurological
13.
Dev Psychobiol ; 66(2)2024 Feb.
Article in English | MEDLINE | ID: mdl-38646069

ABSTRACT

Choline and folate are critical nutrients for fetal brain development, but the timing of their influence during gestation has not been previously characterized. At different periods during gestation, choline stimulation of α7-nicotinic receptors facilitates conversion of γ-aminobutyric acid (GABA) receptors from excitatory to inhibitory and recruitment of GluR1-R2 receptors for faster excitatory responses to glutamate. The outcome of the fetal development of inhibition and excitation was assessed in 159 newborns by P50 cerebral auditory-evoked responses. Paired stimuli, S1, S2, were presented 500 msec apart. Higher P50 amplitude in response to S1 (P50S1microV) assesses excitation, and lower P50S2microV assesses inhibition in this paired-stimulus paradigm. Development of inhibition was related solely to maternal choline plasma concentration and folate supplementation at 16 weeks' gestation. Development of excitation was related only to maternal choline at 28 weeks. Higher maternal choline concentrations later in gestation did not compensate for earlier lower concentrations. At 4 years of age, increased behavior problems on the Child Behavior Checklist 1½-5yrs were related to both newborn inhibition and excitation. Incomplete development of inhibition and excitation associated with lower choline and folate during relatively brief periods of gestation thus has enduring effects on child development.


Subject(s)
Choline , Evoked Potentials, Auditory , Folic Acid , Humans , Choline/pharmacology , Choline/metabolism , Female , Folic Acid/pharmacology , Male , Infant, Newborn , Pregnancy , Evoked Potentials, Auditory/physiology , Evoked Potentials, Auditory/drug effects , Child, Preschool , Fetal Development/physiology , Fetal Development/drug effects , Synaptic Transmission/physiology , Synaptic Transmission/drug effects , Adult , Gestational Age , Child Development/physiology , Child Development/drug effects
14.
Nat Commun ; 15(1): 3406, 2024 Apr 22.
Article in English | MEDLINE | ID: mdl-38649706

ABSTRACT

Synapses at dendritic branches exhibit specific properties for information processing. However, how the synapses are orchestrated to dynamically modify their properties, thus optimizing information processing, remains elusive. Here, we observed at hippocampal dendritic branches diverse configurations of synaptic connectivity, two extremes of which are characterized by low transmission efficiency, high plasticity and coding capacity, or inversely. The former favors information encoding, pertinent to learning, while the latter prefers information storage, relevant to memory. Presynaptic intracellular Mg2+ crucially mediates the dynamic transition continuously between the two extreme configurations. Consequently, varying intracellular Mg2+ levels endow individual branches with diverse synaptic computations, thus modulating their ability to process information. Notably, elevating brain Mg2+ levels in aging animals restores synaptic configuration resembling that of young animals, coincident with improved learning and memory. These findings establish intracellular Mg2+ as a crucial factor reconfiguring synaptic connectivity at dendrites, thus optimizing their branch-specific properties in information processing.


Subject(s)
Dendrites , Hippocampus , Magnesium , Neuronal Plasticity , Synapses , Synaptic Transmission , Animals , Magnesium/metabolism , Synapses/physiology , Synapses/metabolism , Hippocampus/physiology , Hippocampus/metabolism , Neuronal Plasticity/physiology , Dendrites/physiology , Dendrites/metabolism , Synaptic Transmission/physiology , Male , Memory/physiology , Rats , Learning/physiology , Mice , Mice, Inbred C57BL
15.
J Neurosci Res ; 102(4): e25331, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38651314

ABSTRACT

Circadian rhythms synchronize to light through the retinohypothalamic tract (RHT), which is a bundle of axons coming from melanopsin retinal ganglion cells, whose synaptic terminals release glutamate to the ventral suprachiasmatic nucleus (SCN). Activation of AMPA-kainate and NMDA postsynaptic receptors elicits the increase in intracellular calcium required for triggering the signaling cascade that ends in phase shifts. During aging, there is a decline in the synchronization of circadian rhythms to light. With electrophysiological (whole-cell patch-clamp) and immunohistochemical assays, in this work, we studied pre- and postsynaptic properties between the RHT and ventral SCN neurons in young adult (P90-120) and old (P540-650) C57BL/6J mice. Incremental stimulation intensities (applied on the optic chiasm) induced much lesser AMPA-kainate postsynaptic responses in old animals, implying a lower recruitment of RHT fibers. Conversely, a higher proportion of old SCN neurons exhibited synaptic facilitation, and variance-mean analysis indicated an increase in the probability of release in RHT terminals. Moreover, both spontaneous and miniature postsynaptic events displayed larger amplitudes in neurons from aged mice, whereas analysis of the NMDA and AMPA-kainate components (evoked by RHT electrical stimulation) disclosed no difference between the two ages studied. Immunohistochemistry revealed a bigger size in the puncta of vGluT2, GluN2B, and GluN2A of elderly animals, and the number of immunopositive particles was increased, but that of PSD-95 was reduced. All these synaptic adaptations could be part of compensatory mechanisms in the glutamatergic signaling to ameliorate the loss of RHT terminals in old animals.


Subject(s)
Aging , Glutamic Acid , Mice, Inbred C57BL , Suprachiasmatic Nucleus , Synaptic Transmission , Animals , Mice , Suprachiasmatic Nucleus/physiology , Suprachiasmatic Nucleus/metabolism , Synaptic Transmission/physiology , Aging/physiology , Glutamic Acid/metabolism , Male , Excitatory Postsynaptic Potentials/physiology , Visual Pathways/physiology , Vesicular Glutamate Transport Protein 2/metabolism , Patch-Clamp Techniques , Receptors, N-Methyl-D-Aspartate/metabolism , Disks Large Homolog 4 Protein/metabolism
16.
Proc Natl Acad Sci U S A ; 121(15): e2318041121, 2024 Apr 09.
Article in English | MEDLINE | ID: mdl-38568976

ABSTRACT

Stable matching of neurotransmitters with their receptors is fundamental to synapse function and reliable communication in neural circuits. Presynaptic neurotransmitters regulate the stabilization of postsynaptic transmitter receptors. Whether postsynaptic receptors regulate stabilization of presynaptic transmitters has received less attention. Here, we show that blockade of endogenous postsynaptic acetylcholine receptors (AChR) at the neuromuscular junction destabilizes the cholinergic phenotype in motor neurons and stabilizes an earlier, developmentally transient glutamatergic phenotype. Further, expression of exogenous postsynaptic gamma-aminobutyric acid type A receptors (GABAA receptors) in muscle cells stabilizes an earlier, developmentally transient GABAergic motor neuron phenotype. Both AChR and GABAA receptors are linked to presynaptic neurons through transsynaptic bridges. Knockdown of specific components of these transsynaptic bridges prevents stabilization of the cholinergic or GABAergic phenotypes. Bidirectional communication can enforce a match between transmitter and receptor and ensure the fidelity of synaptic transmission. Our findings suggest a potential role of dysfunctional transmitter receptors in neurological disorders that involve the loss of the presynaptic transmitter.


Subject(s)
Receptors, Cholinergic , Synapses , Synapses/metabolism , Receptors, Cholinergic/metabolism , Synaptic Transmission/physiology , Motor Neurons/metabolism , Receptors, GABA-A/metabolism , gamma-Aminobutyric Acid/metabolism , Neurotransmitter Agents/metabolism , Cholinergic Agents , Receptors, Presynaptic
17.
Acta Physiol (Oxf) ; 240(6): e14146, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38606882

ABSTRACT

AIM: The Repressor Element-1 Silencing Transcription Factor (REST) is an epigenetic master regulator playing a crucial role in the nervous system. In early developmental stages, REST downregulation promotes neuronal differentiation and the acquisition of the neuronal phenotype. In addition, postnatal fluctuations in REST expression contribute to shaping neuronal networks and maintaining network homeostasis. Here we investigate the role of the early postnatal deletion of neuronal REST in the assembly and strength of excitatory and inhibitory synaptic connections. METHODS: We investigated excitatory and inhibitory synaptic transmission by patch-clamp recordings in acute neocortical slices in a conditional knockout mouse model (RestGTi) in which Rest was deleted by delivering PHP.eB adeno-associated viruses encoding CRE recombinase under the control of the human synapsin I promoter in the lateral ventricles of P0-P1 pups. RESULTS: We show that, under physiological conditions, Rest deletion increased the intrinsic excitability of principal cortical neurons in the primary visual cortex and the density and strength of excitatory synaptic connections impinging on them, without affecting inhibitory transmission. Conversely, in the presence of a pathological excitation/inhibition imbalance induced by pentylenetetrazol, Rest deletion prevented the increase in synaptic excitation and decreased seizure severity. CONCLUSION: The data indicate that REST exerts distinct effects on the excitability of cortical circuits depending on whether it acts under physiological conditions or in the presence of pathologic network hyperexcitability. In the former case, REST preserves a correct excitatory/inhibitory balance in cortical circuits, while in the latter REST loses its homeostatic activity and may become pro-epileptogenic.


Subject(s)
Homeostasis , Repressor Proteins , Animals , Homeostasis/physiology , Mice , Repressor Proteins/genetics , Repressor Proteins/metabolism , Mice, Knockout , Synaptic Transmission/physiology , Seizures/genetics , Seizures/metabolism , Seizures/physiopathology , Nerve Net/physiology , Nerve Net/metabolism , Neurons/metabolism , Neurons/physiology , Cerebral Cortex/metabolism , Cerebral Cortex/physiology
18.
Proc Natl Acad Sci U S A ; 121(18): e2314541121, 2024 Apr 30.
Article in English | MEDLINE | ID: mdl-38657049

ABSTRACT

Recent evidence has demonstrated that the transsynaptic nanoscale organization of synaptic proteins plays a crucial role in regulating synaptic strength in excitatory synapses. However, the molecular mechanism underlying this transsynaptic nanostructure in inhibitory synapses still remains unclear and its impact on synapse function in physiological or pathological contexts has not been demonstrated. In this study, we utilized an engineered proteolysis technique to investigate the effects of acute cleavage of neuroligin-2 (NL2) on synaptic transmission. Our results show that the rapid cleavage of NL2 led to impaired synaptic transmission by reducing both neurotransmitter release probability and quantum size. These changes were attributed to the dispersion of RIM1/2 and GABAA receptors and a weakened spatial alignment between them at the subsynaptic scale, as observed through superresolution imaging and model simulations. Importantly, we found that endogenous NL2 undergoes rapid MMP9-dependent cleavage during epileptic activities, which further exacerbates the decrease in inhibitory transmission. Overall, our study demonstrates the significant impact of nanoscale structural reorganization on inhibitory transmission and unveils ongoing modulation of mature GABAergic synapses through active cleavage of NL2 in response to hyperactivity.


Subject(s)
Cell Adhesion Molecules, Neuronal , Nerve Tissue Proteins , Synapses , Synaptic Transmission , Animals , Mice , Cell Adhesion Molecules, Neuronal/metabolism , Epilepsy/metabolism , Epilepsy/physiopathology , Epilepsy/pathology , Hippocampus/metabolism , Matrix Metalloproteinase 9/metabolism , Membrane Proteins/metabolism , Nerve Tissue Proteins/metabolism , Nerve Tissue Proteins/genetics , Proteolysis , Receptors, GABA-A/metabolism , Synapses/metabolism , Synaptic Transmission/physiology
19.
J Neurosci ; 44(20)2024 May 15.
Article in English | MEDLINE | ID: mdl-38594069

ABSTRACT

The brain bidirectionally communicates with the gut to control food intake and energy balance, which becomes dysregulated in obesity. For example, endocannabinoid (eCB) signaling in the small-intestinal (SI) epithelium is upregulated in diet-induced obese (DIO) mice and promotes overeating by a mechanism that includes inhibiting gut-brain satiation signaling. Upstream neural and molecular mechanism(s) involved in overproduction of orexigenic gut eCBs in DIO, however, are unknown. We tested the hypothesis that overactive parasympathetic signaling at the muscarinic acetylcholine receptors (mAChRs) in the SI increases biosynthesis of the eCB, 2-arachidonoyl-sn-glycerol (2-AG), which drives hyperphagia via local CB1Rs in DIO. Male mice were maintained on a high-fat/high-sucrose Western-style diet for 60 d, then administered several mAChR antagonists 30 min prior to tissue harvest or a food intake test. Levels of 2-AG and the activity of its metabolic enzymes in the SI were quantitated. DIO mice, when compared to those fed a low-fat/no-sucrose diet, displayed increased expression of cFos protein in the dorsal motor nucleus of the vagus, which suggests an increased activity of efferent cholinergic neurotransmission. These mice exhibited elevated levels of 2-AG biosynthesis in the SI, that was reduced to control levels by mAChR antagonists. Moreover, the peripherally restricted mAChR antagonist, methylhomatropine bromide, and the peripherally restricted CB1R antagonist, AM6545, reduced food intake in DIO mice for up to 24 h but had no effect in mice conditionally deficient in SI CB1Rs. These results suggest that hyperactivity at mAChRs in the periphery increases formation of 2-AG in the SI and activates local CB1Rs, which drives hyperphagia in DIO.


Subject(s)
Diet, High-Fat , Endocannabinoids , Glycerides , Mice, Inbred C57BL , Obesity , Signal Transduction , Synaptic Transmission , Animals , Endocannabinoids/metabolism , Male , Obesity/metabolism , Mice , Synaptic Transmission/physiology , Synaptic Transmission/drug effects , Diet, High-Fat/adverse effects , Signal Transduction/physiology , Glycerides/metabolism , Arachidonic Acids/metabolism , Eating/physiology , Eating/drug effects , Muscarinic Antagonists/pharmacology , Receptors, Muscarinic/metabolism , Brain-Gut Axis/physiology
20.
Proc Natl Acad Sci U S A ; 121(16): e2315958121, 2024 Apr 16.
Article in English | MEDLINE | ID: mdl-38588427

ABSTRACT

The ability of neurons to rapidly remodel their synaptic structure and strength in response to neuronal activity is highly conserved across species and crucial for complex brain functions. However, mechanisms required to elicit and coordinate the acute, activity-dependent structural changes across synapses are not well understood, as neurodevelopment and structural plasticity are tightly linked. Here, using an RNAi screen in Drosophila against genes affecting nervous system functions in humans, we uncouple cellular processes important for synaptic plasticity and synapse development. We find mutations associated with neurodegenerative and mental health disorders are 2-times more likely to affect activity-induced synaptic remodeling than synapse development. We report that while both synapse development and activity-induced synaptic remodeling at the fly NMJ require macroautophagy (hereafter referred to as autophagy), bifurcation in the autophagy pathway differentially impacts development and synaptic plasticity. We demonstrate that neuronal activity enhances autophagy activation but diminishes degradative autophagy, thereby driving the pathway towards autophagy-based secretion. Presynaptic knockdown of Snap29, Sec22, or Rab8, proteins implicated in the secretory autophagy pathway, is sufficient to abolish activity-induced synaptic remodeling. This study uncovers secretory autophagy as a transsynaptic signaling mechanism modulating synaptic plasticity.


Subject(s)
Drosophila Proteins , Neuromuscular Junction , Animals , Humans , Neuromuscular Junction/metabolism , Synapses/metabolism , Drosophila/physiology , Neurons/metabolism , Autophagy/genetics , Neuronal Plasticity/genetics , Drosophila Proteins/genetics , Drosophila Proteins/metabolism , Synaptic Transmission/physiology , GTP Phosphohydrolases/metabolism
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