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1.
ACS Chem Neurosci ; 15(6): 1276-1285, 2024 Mar 20.
Artigo em Inglês | MEDLINE | ID: mdl-38454572

RESUMO

Glutamate, the major excitatory neurotransmitter in the vertebrate brain, exerts its functions through the activation of specific plasma membrane receptors and transporters. Overstimulation of glutamate receptors results in neuronal cell death through a process known as excitotoxicity. A family of sodium-dependent glutamate plasma membrane transporters is responsible for the removal of glutamate from the synaptic cleft, preventing an excitotoxic insult. Glial glutamate transporters carry out more than 90% of the brain glutamate uptake activity and are responsible for glutamate recycling through the GABA/Glutamate/Glutamine shuttle. The aryl hydrocarbon receptor is a ligand-dependent transcription factor that integrates environmental clues through its ability to heterodimerize with different transcription factors. Taking into consideration the fundamental role of glial glutamate transporters in glutamatergic synapses and that these transporters are regulated at the transcriptional, translational, and localization levels in an activity-dependent fashion, in this contribution, we explored the involvement of the aryl hydrocarbon receptor, as a model of environmental integrator, in the regulation of the glial sodium-dependent glutamate/aspartate transporter. Using the model of chick cerebellar Bergmann glia cells, we report herein that the aryl hydrocarbon receptors exert a time-dependent decrease in the transporter mRNA levels and a diminution of its uptake activity. The nuclear factor kappa light chain enhancer of the activated B cell signaling pathway is involved in this regulation. Our results favor the notion of an environmentally dependent regulation of glutamate removal in glial cells and therefore strengthen the notion of the involvement of glial cells in xenobiotic neurotoxic effects.


Assuntos
Ácido Aspártico , Receptores de Hidrocarboneto Arílico , Ácido Aspártico/metabolismo , Receptores de Hidrocarboneto Arílico/metabolismo , Proteínas de Transporte de Glutamato da Membrana Plasmática/metabolismo , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Sódio/metabolismo , Neuroglia/metabolismo , Ácido Glutâmico/metabolismo , Células Cultivadas
2.
ACS Chem Neurosci ; 15(6): 1197-1205, 2024 Mar 20.
Artigo em Inglês | MEDLINE | ID: mdl-38451201

RESUMO

Vitamin C (Vc) plays a pivotal role in a series of pathological processes, such as tumors, immune diseases, and neurological disorders. However, its therapeutic potential for tinnitus management remains unclear. In this study, we find that Vc relieves tinnitus in noise-exposed rats. In the 7-day therapy groups, spontaneous firing rate (SFR) increases from 1.17 ± 0.10 Hz to 1.77 ± 0.15 Hz after noise exposure. Vc effectively reduces the elevated SFR to 0.99 ± 0.07 and 0.55 ± 0.05 Hz at different doses. The glutamate level in auditory cortex of noise-exposed rats (3.78 ± 0.42 µM) increases relative to that in the control group (1.34 ± 0.22 µM). High doses of Vc (500 mg/kg/day) effectively reduce the elevated glutamate levels (1.49 ± 0.28 µM). Mechanistic studies show that the expression of glutamate transporter 1 (GLT-1) is impaired following noise exposure and that Vc treatment effectively restores GLT-1 expression in the auditory cortex. Meanwhile, the GLT-1 inhibitor, dl-threo-beta-benzyloxyaspartic acid (dl-TBOA), invalidates the protection role of Vc. Our finding shows that Vc substantially enhances glutamate clearance by upregulating GLT-1 and consequently alleviates noise-induced tinnitus. This study provides valuable insight into a novel biological target for the development of therapeutic interventions that may prevent the onset of tinnitus.


Assuntos
Córtex Auditivo , Zumbido , Ratos , Animais , Córtex Auditivo/metabolismo , Ácido Ascórbico/farmacologia , Ácido Ascórbico/metabolismo , Neuroproteção , Zumbido/tratamento farmacológico , Zumbido/metabolismo , Ácido Glutâmico/metabolismo , Modelos Animais de Doenças , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Transportador 2 de Aminoácido Excitatório/metabolismo
3.
Glia ; 72(6): 1082-1095, 2024 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-38385571

RESUMO

Information exchange between neurons and astrocytes mediated by extracellular vesicles (EVs) is known to play a key role in the pathogenesis of central nervous system diseases. A key driver of epilepsy is the dysregulation of intersynaptic excitatory neurotransmitters mediated by astrocytes. Thus, we investigated the potential association between neuronal EV microRNAs (miRNAs) and astrocyte glutamate uptake ability in epilepsy. Here, we showed that astrocytes were able to engulf epileptogenic neuronal EVs, inducing a significant increase in the glutamate concentration in the extracellular fluid of astrocytes, which was linked to a decrease in glutamate transporter-1 (GLT-1) protein expression. Using sequencing and gene ontology (GO) functional analysis, miR-181c-5p was found to be the most significantly upregulated miRNA in epileptogenic neuronal EVs and was linked to glutamate metabolism. Moreover, we found that neuronal EV-derived miR-181c-5p interacted with protein kinase C-delta (PKCδ), downregulated PKCδ and GLT-1 protein expression and increased glutamate concentrations in astrocytes both in vitro and in vivo. Our findings demonstrated that epileptogenic neuronal EVs carrying miR-181c-5p decrease the glutamate uptake ability of astrocytes, thus promoting susceptibility to epilepsy.


Assuntos
Epilepsia , Vesículas Extracelulares , MicroRNAs , Humanos , Astrócitos/metabolismo , Proteína Quinase C-delta/metabolismo , Epilepsia/genética , Epilepsia/metabolismo , MicroRNAs/genética , MicroRNAs/metabolismo , Neurônios/metabolismo , Vesículas Extracelulares/metabolismo , Ácido Glutâmico/metabolismo , Sistema X-AG de Transporte de Aminoácidos/metabolismo
4.
Nat Commun ; 15(1): 458, 2024 Feb 01.
Artigo em Inglês | MEDLINE | ID: mdl-38302444

RESUMO

In the central nervous system, astrocytes enable appropriate synapse function through glutamate clearance from the synaptic cleft; however, it remains unclear how astrocytic glutamate transporters function at peri-synaptic contact. Here, we report that Down syndrome cell adhesion molecule (DSCAM) in Purkinje cells controls synapse formation and function in the developing cerebellum. Dscam-mutant mice show defects in CF synapse translocation as is observed in loss of function mutations in the astrocytic glutamate transporter GLAST expressed in Bergmann glia. These mice show impaired glutamate clearance and the delocalization of GLAST away from the cleft of parallel fibre (PF) synapse. GLAST complexes with the extracellular domain of DSCAM. Riluzole, as an activator of GLAST-mediated uptake, rescues the proximal impairment in CF synapse formation in Purkinje cell-selective Dscam-deficient mice. DSCAM is required for motor learning, but not gross motor coordination. In conclusion, the intercellular association of synaptic and astrocyte proteins is important for synapse formation and function in neural transmission.


Assuntos
Neuroglia , Neurônios , Animais , Camundongos , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Cerebelo/metabolismo , Ácido Glutâmico/metabolismo , Neuroglia/metabolismo , Neurônios/metabolismo , Células de Purkinje/metabolismo , Sinapses/metabolismo
5.
J Neurosci ; 44(1)2024 Jan 03.
Artigo em Inglês | MEDLINE | ID: mdl-37963762

RESUMO

Spasticity is a hyperexcitability disorder that adversely impacts functional recovery and rehabilitative efforts after spinal cord injury (SCI). The loss of evoked rate-dependent depression (RDD) of the monosynaptic H-reflex is indicative of hyperreflexia, a physiological sign of spasticity. Given the intimate relationship between astrocytes and neurons, that is, the tripartite synapse, we hypothesized that astrocytes might have a significant role in post-injury hyperreflexia and plasticity of neighboring neuronal synaptic dendritic spines. Here, we investigated the effect of selective Rac1KO in astrocytes (i.e., adult male and female mice, transgenic cre-flox system) on SCI-induced spasticity. Three weeks after a mild contusion SCI, control Rac1wt animals displayed a loss of H-reflex RDD, that is, hyperreflexia. In contrast, transgenic animals with astrocytic Rac1KO demonstrated near-normal H-reflex RDD similar to pre-injury levels. Reduced hyperreflexia in astrocytic Rac1KO animals was accompanied by a loss of thin-shaped dendritic spine density on α-motor neurons in the ventral horn. In SCI-Rac1wt animals, as expected, we observed the development of dendritic spine dysgenesis on α-motor neurons associated with spasticity. As compared with WT animals, SCI animals with astrocytic Rac1KO expressed increased levels of the glial-specific glutamate transporter, glutamate transporter-1 in the ventral spinal cord, potentially enhancing glutamate clearance from the synaptic cleft and reducing hyperreflexia in astrocytic Rac1KO animals. Taken together, our findings show for the first time that Rac1 activity in astrocytes can contribute to hyperreflexia underlying spasticity following SCI. These results reveal an opportunity to target cell-specific molecular regulators of H-reflex excitability to manage spasticity after SCI.Significance Statement Spinal cord injury leads to stretch reflex hyperexcitability, which underlies the clinical symptom of spasticity. This study shows for the first time that astrocytic Rac1 contributes to the development of hyperreflexia after SCI. Specifically, astrocytic Rac1KO reduced SCI-related H-reflex hyperexcitability, decreased dendritic spine dysgenesis on α-motor neurons, and elevated the expression of the astrocytic glutamate transporter-1 (GLT-1). Overall, this study supports a distinct role for astrocytic Rac1 signaling within the spinal reflex circuit and the development of SCI-related spasticity.


Assuntos
Reflexo Anormal , Traumatismos da Medula Espinal , Camundongos , Masculino , Feminino , Animais , Astrócitos/metabolismo , Neurônios Motores/fisiologia , Medula Espinal/metabolismo , Animais Geneticamente Modificados , Reflexo H , Sistema X-AG de Transporte de Aminoácidos/metabolismo
6.
ACS Chem Neurosci ; 14(23): 4252-4263, 2023 12 06.
Artigo em Inglês | MEDLINE | ID: mdl-37994790

RESUMO

Glutamate transporters are responsible for active transport of the major excitatory neurotransmitter glutamate across the cell membrane, regulating the extracellular glutamate concentration in the mammalian brain. Extracellular glutamate levels in the brain are usually in the submicromolar range but can increase by exocytosis, inhibition of cellular uptake, or through glutamate release by reverse transport, as well as other mechanisms, which can lead to neurodegeneration and neuronal cell death. Such conditions can be encountered upon energy deprivation during an ischemic stroke. Here, we developed acetoxymethyl (AM) ester prodrug-like derivatives of excitatory amino acid transporter (EAAT) inhibitors that permeate the cell membrane and are activated, most likely through hydrolysis by endogenous cellular esterases, to form the active EAAT inhibitor. Upon increase in external K+ concentration, the inhibitors block glutamate efflux by EAAT reverse transport. Using a novel high-affinity fluorescent prodrug-like inhibitor, dl-threo-9-anthracene-methoxy-aspartate (TAOA) AM ester, we demonstrate that the precursor rapidly accumulates inside cells. Electrophysiological methods and fluorescence assays utilizing the iGluSnFR external glutamate sensor were used to demonstrate the efficacy of AM ester-protected inhibitors in inhibiting K+-mediated glutamate release. Together, our results provide evidence for a novel method to potentially prevent glutamate release by reverse transport under pathophysiological conditions in a model cell system, as well as in human astrocytes, while leaving glutamate uptake under physiological conditions operational. This method could have wide-ranging applications in the prevention of glutamate-induced neuronal cell death.


Assuntos
Ácido Glutâmico , Pró-Fármacos , Animais , Humanos , Ácido Glutâmico/metabolismo , Pró-Fármacos/farmacologia , Transporte Biológico , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Ésteres , Mamíferos/metabolismo
7.
Mol Neurobiol ; 60(12): 7166-7184, 2023 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-37541967

RESUMO

Pain sufferer usually show an aversion to the environment associated with pain, identified as pain aversion. The amygdala, an almond-shaped limbic structure in the medial temporal lobe, exerts a critical effect on emotion and pain formation. However, studies on inflammatory pain-induced aversion are still relatively limited, and the available evidence is not enough to clarify its inherent mechanisms. Proteomics is a high-throughput, comprehensive, and objective study method that compares the similarities and differences of protein expression under different conditions to screen potential targets. The current study aimed to identify potential pivotal proteins in the amygdala of rats after complete Freund's adjuvant (CFA)-induced pain aversion via proteomics analysis. Immunohistochemistry was performed to confirm the expression of glutamate transporter-1 (GLT-1) in the amygdala during different periods of pain aversion. Thirteen proteins were found to be different between the day 2 and day 15 groups. Among the 13 differentially expressed proteins, Q8R64 denotes GLT-1, which utilises synaptic glutamate to remain optimal extracellular glutamic levels, thereby preventing accumulation in the synaptic cleft and consequent excitotoxicity. The variation in GLT-1 expression was correlated with the variation tendency of pain aversion, which implies a potential link between the modulation of pain aversion and the excitability of glutamatergic neurons. This study demonstrated that exposure to inflammatory pain results in aversion induced from pain, leading to extensive biological changes in the amygdala.


Assuntos
Dor , Proteômica , Ratos , Animais , Adjuvante de Freund/metabolismo , Dor/metabolismo , Tonsila do Cerebelo/metabolismo , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Inflamação/metabolismo
8.
J Gen Physiol ; 155(9)2023 09 04.
Artigo em Inglês | MEDLINE | ID: mdl-37477643

RESUMO

Light responses of rod photoreceptor cells in the retina are encoded by changes in synaptic glutamate release that is in turn shaped by reuptake involving EAAT5 plasma membrane glutamate transporters. Heterologously expressed EAAT5 activates too slowly upon glutamate binding to support significant uptake. We tested EAAT5 activation in mouse rods in vivo by stimulating glutamate transporter anion currents (IA(glu)) with UV flash photolysis of MNI-glutamate, varying flash intensity to vary glutamate levels. Responses to uncaging rose rapidly with time constants of 2-3 ms, similar to IA(glu) events arising from spontaneous release. Spontaneous release events and IA(glu) evoked by weak flashes also declined with similar time constants of 40-50 ms. Stronger flashes evoked responses that decayed more slowly. Time constants were twofold faster at 35°C, suggesting that they reflect transporter kinetics, not diffusion. Selective EAAT1 and EAAT2 inhibitors had no significant effect, suggesting IA(glu) in rods arises solely from EAAT5. We calibrated glutamate levels attained during flash photolysis by expressing a fluorescent glutamate sensor iGluSnFr in cultured epithelial cells. We compared fluorescence at different glutamate concentrations to fluorescence evoked by photolytic uncaging of MNI-glutamate. The relationship between flash intensity and glutamate yielded EC50 values for EAAT5 amplitude, decay time, and rise time of ∼10 µM. Micromolar affinity and rapid activation of EAAT5 in rods show it can rapidly bind synaptic glutamate. However, we also found that EAAT5 currents are saturated by the synchronous release of only a few vesicles, suggesting limited capacity and a role for glial uptake at higher release rates.


Assuntos
Sistema X-AG de Transporte de Aminoácidos , Ácido Glutâmico , Camundongos , Animais , Ácido Glutâmico/metabolismo , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Transportador 5 de Aminoácido Excitatório/metabolismo , Células Fotorreceptoras Retinianas Bastonetes/metabolismo , Retina/metabolismo
9.
Neurochem Int ; 169: 105587, 2023 10.
Artigo em Inglês | MEDLINE | ID: mdl-37495172

RESUMO

Glutamate is a crucial neurotransmitter for hearing transduction in the cochlea, but excess glutamate is detrimental to the survival of cochlear sensory cells. Glutamate-aspartate transporter (GLAST) is the major transporter for glutamate removal; however, its role in aminoglycoside-induced hair cell loss is not well studied. In the present study, we first investigated the localization and expression of GLAST over the course of development of the mouse cochlea, and we found that inhibition of GLAST increased hair cell death. However, when the glutamate receptor NMDAR was inhibited by D-AP5, hair cell death was no longer increased by the GLAST inhibitor. Our results indicate that GLAST inhibition aggravates damage to cochlear hair cells, which may occur via NMDAR, and this suggests new clinical strategies for ameliorating the ototoxicity associated with the dysfunction of glutamate metabolism.


Assuntos
Aminoglicosídeos , Receptores de N-Metil-D-Aspartato , Camundongos , Animais , Receptores de N-Metil-D-Aspartato/metabolismo , Aminoglicosídeos/toxicidade , Aminoglicosídeos/metabolismo , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Células Ciliadas Auditivas/metabolismo , Ácido Glutâmico/metabolismo
10.
J Neurosci ; 43(49): 8294-8305, 2023 12 06.
Artigo em Inglês | MEDLINE | ID: mdl-37429719

RESUMO

Dopamine neurons (DANs) are extensively studied in the context of associative learning, in both vertebrates and invertebrates. In the acquisition of male and female Drosophila olfactory memory, the PAM cluster of DANs provides the reward signal, and the PPL1 cluster of DANs sends the punishment signal to the Kenyon cells (KCs) of mushroom bodies, the center for memory formation. However, thermo-genetical activation of the PPL1 DANs after memory acquisition impaired aversive memory, and that of the PAM DANs impaired appetitive memory. We demonstrate that the knockdown of glutamate decarboxylase, which catalyzes glutamate conversion to GABA in PAM DANs, potentiated the appetitive memory. In addition, the knockdown of glutamate transporter in PPL1 DANs potentiated aversive memory, suggesting that GABA and glutamate co-transmitters act in an inhibitory manner in olfactory memory formation. We also found that, in γKCs, the Rdl receptor for GABA and the mGluR DmGluRA mediate the inhibition. Although multiple-spaced training is required to form long-term aversive memory, a single cycle of training was sufficient to develop long-term memory when the glutamate transporter was knocked down, in even a single subset of PPL1 DANs. Our results suggest that the mGluR signaling pathway may set a threshold for memory acquisition to allow the organisms' behaviors to adapt to changing physiological conditions and environments.SIGNIFICANCE STATEMENT In the acquisition of olfactory memory in Drosophila, the PAM cluster of dopamine neurons (DANs) mediates the reward signal, while the PPL1 cluster of DANs conveys the punishment signal to the Kenyon cells of the mushroom bodies, which serve as the center for memory formation. We found that GABA co-transmitters in the PAM DANs and glutamate co-transmitters in the PPL1 DANs inhibit olfactory memory formation. Our findings demonstrate that long-term memory acquisition, which typically necessitates multiple-spaced training sessions to establish aversive memory, can be triggered with a single training cycle in cases where the glutamate co-transmission is inhibited, even within a single subset of PPL1 DANs, suggesting that the glutamate co-transmission may modulate the threshold for memory acquisition.


Assuntos
Drosophila , Olfato , Animais , Feminino , Masculino , Drosophila/fisiologia , Olfato/fisiologia , Dopamina/metabolismo , Neurônios Dopaminérgicos/fisiologia , Penicilinas/metabolismo , Glutamatos , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Ácido gama-Aminobutírico/metabolismo , Corpos Pedunculados/metabolismo , Drosophila melanogaster/metabolismo
11.
Cells ; 12(12)2023 06 12.
Artigo em Inglês | MEDLINE | ID: mdl-37371080

RESUMO

Once outside the synaptic cleft, the excitatory neurotransmitter glutamate is rapidly bound by its high-affinity transporters, which are expressed in abundance on the surface of perisynaptic astroglia. While this binding and the subsequent uptake of glutamate constrain excitatory transmission mainly within individual synapses, there is growing evidence for the physiologically important extrasynaptic actions of glutamate. However, the mechanistic explanation and the scope of such actions remain obscure. Furthermore, a significant proportion of glutamate molecules initially bound by transporters could be released back into the extracellular space before being translocated into astrocytes. To understand the implications of such effects, we simulated the release, diffusion, and transporter and receptor interactions of glutamate molecules in the synaptic environment. The latter was represented via trial-by-trial stochastic generation of astroglial and neuronal elements in the brain neuropil (overlapping spheroids of varied sizes), rather than using the 'average' morphology, thus reflecting the probabilistic nature of neuropil architectonics. Our simulations predict significant activation of high-affinity receptors, such as receptors of the NMDA type, at distances beyond half-micron from the glutamate release site, with glutamate-transporter unbinding playing an important role. These theoretical predictions are consistent with recent glutamate imaging data, thus lending support to the concept of significant volume-transmitted actions of glutamate in the brain.


Assuntos
Sistema X-AG de Transporte de Aminoácidos , Receptores de N-Metil-D-Aspartato , Receptores de N-Metil-D-Aspartato/metabolismo , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Neurônios/metabolismo , Ácido Glutâmico/metabolismo , Sinapses/metabolismo
12.
Brain Res Bull ; 200: 110683, 2023 08.
Artigo em Inglês | MEDLINE | ID: mdl-37301482

RESUMO

Synapse loss is a major contributor to cognitive dysfunction in Alzheimer's disease (AD). Impairments in the expression and/or glutamate uptake activity of glia glutamate transporter-1 (GLT-1) contribute to synapse loss in AD. Hence, targeting the restoration of GLT-1 activity may have potential for alleviating synapse loss in AD. Ceftriaxone (Cef) can upregulate the expression and glutamate uptake activity of GLT-1 in many disease models, including those for AD. The present study investigated the effects of Cef on synapse loss and the role of GLT-1 using APP/PS1 transgenic and GLT-1 knockdown APP/PS1 AD mice. Furthermore, the involvement of microglia in the process was investigated due to its important role in synapse loss in AD. We found that Cef treatment significantly ameliorated synapse loss and dendritic degeneration in APP/PS1 AD mice, evidenced by an increased dendritic spine density, decreased dendritic beading density, and upregulated levels of postsynaptic density protein 95 (PSD95) and synaptophysin. The effects of Cef were suppressed by GLT-1 knockdown in GLT-1+/-/APP/PS1 AD mice. Simultaneously, Cef treatment inhibited ionized calcium binding adapter molecule 1 (Iba1) expression, decreased the proportion of CD11b+CD45hi cells, declined interleukin-6 (IL-6) content, and reduced the co-expression of Iba1 with PSD95 or synaptophysin in APP/PS1 AD mice. In conclusion, Cef treatment ameliorated synapse loss and dendritic degeneration in APP/PS1 AD mice in a GLT-1-dependent manner, and the inhibitory effect of Cef on the activation of microglia/macrophages and their phagocytosis for synaptic elements contributed to the mechanism.


Assuntos
Doença de Alzheimer , Camundongos , Animais , Doença de Alzheimer/tratamento farmacológico , Doença de Alzheimer/metabolismo , Ceftriaxona/farmacologia , Microglia/metabolismo , Sinaptofisina/metabolismo , Camundongos Transgênicos , Hipocampo/metabolismo , Ácido Glutâmico/metabolismo , Sinapses/metabolismo , Macrófagos/metabolismo , Proteína 4 Homóloga a Disks-Large/metabolismo , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Modelos Animais de Doenças , Precursor de Proteína beta-Amiloide/metabolismo , Presenilina-1/genética , Presenilina-1/metabolismo , Peptídeos beta-Amiloides/metabolismo
13.
Nat Commun ; 14(1): 2579, 2023 05 04.
Artigo em Inglês | MEDLINE | ID: mdl-37142617

RESUMO

Excitatory amino acid transporters (EAATs) uptake glutamate into glial cells and neurons. EAATs achieve million-fold transmitter gradients by symporting it with three sodium ions and a proton, and countertransporting a potassium ion via an elevator mechanism. Despite the availability of structures, the symport and antiport mechanisms still need to be clarified. We report high-resolution cryo-EM structures of human EAAT3 bound to the neurotransmitter glutamate with symported ions, potassium ions, sodium ions alone, or without ligands. We show that an evolutionarily conserved occluded translocation intermediate has a dramatically higher affinity for the neurotransmitter and the countertransported potassium ion than outward- or inward-facing transporters and plays a crucial role in ion coupling. We propose a comprehensive ion coupling mechanism involving a choreographed interplay between bound solutes, conformations of conserved amino acid motifs, and movements of the gating hairpin and the substrate-binding domain.


Assuntos
Sistema X-AG de Transporte de Aminoácidos , Ácido Glutâmico , Humanos , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Transporte de Íons , Íons/metabolismo , Ácido Glutâmico/metabolismo , Sódio/metabolismo , Potássio/metabolismo
14.
Hear Res ; 432: 108753, 2023 05.
Artigo em Inglês | MEDLINE | ID: mdl-37054532

RESUMO

Since glutamate is the primary excitatory neurotransmitter in the mammalian cochlea, the mechanisms for the removal of glutamate from the synaptic and extrasynaptic spaces are critical for maintaining normal function of this region. Glial cells of inner ear are crucial for regulation of synaptic transmission throughout since it closely interacts with neurons along the entire auditory pathway, however little is known about the activity and expression of glutamate transporters in the cochlea. In this study, using primary cochlear glial cells cultures obtained from newborn Balb/C mice, we determined the activity of a sodium-dependent and sodium-independent glutamate uptake mechanisms by means of High Performance Liquid Chromatography. The sodium-independent glutamate transport has a prominent contribution in cochlear glial cells which is similar to what has been demonstrated in other sensory organs, but it is not found in tissues less susceptible to continuous glutamate-mediated injuries. Our results showed that xCG- system is expressed in CGCs and is the main responsible for sodium-independent glutamate uptake. The identification and characterization of the xCG- transporter in the cochlea suggests a possible role of this transporter in the control of extracellular glutamate concentrations and regulation of redox state, that may aid in the preservation of auditory function.


Assuntos
Ácido Glutâmico , Sódio , Camundongos , Animais , Ácido Glutâmico/metabolismo , Sódio/metabolismo , Cóclea/fisiologia , Neuroglia/metabolismo , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Mamíferos/metabolismo
15.
Nat Commun ; 14(1): 1799, 2023 03 31.
Artigo em Inglês | MEDLINE | ID: mdl-37002226

RESUMO

Episodic ataxias (EAs) are rare neurological conditions affecting the nervous system and typically leading to motor impairment. EA6 is linked to the mutation of a highly conserved proline into an arginine in the glutamate transporter EAAT1. In vitro studies showed that this mutation leads to a reduction in the substrates transport and an increase in the anion conductance. It was hypothesised that the structural basis of these opposed functional effects might be the straightening of transmembrane helix 5, which is kinked in the wild-type protein. In this study, we present the functional and structural implications of the mutation P208R in the archaeal homologue of glutamate transporters GltTk. We show that also in GltTk the P208R mutation leads to reduced aspartate transport activity and increased anion conductance, however a cryo-EM structure reveals that the kink is preserved. The arginine side chain of the mutant points towards the lipidic environment, where it may engage in interactions with the phospholipids, thereby potentially interfering with the transport cycle and contributing to stabilisation of an anion conducting state.


Assuntos
Sistema X-AG de Transporte de Aminoácidos , Proteínas Arqueais , Ataxia , Humanos , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Arginina/genética , Ataxia/genética , Transportador 1 de Aminoácido Excitatório/genética , Mutação , Archaea/genética , Archaea/fisiologia , Proteínas Arqueais/genética , Proteínas Arqueais/fisiologia
16.
J Neurochem ; 165(4): 457-466, 2023 05.
Artigo em Inglês | MEDLINE | ID: mdl-36920226

RESUMO

Glutamate is the major excitatory neurotransmitter in the vertebrate brain, it is critically involved in the function and dysfunction of the central nervous system. The molecular cloning of its ionotropic receptors in the last decade of the past century increased exponentially the interest in this neurotransmitter system. Since then, a plethora of knowledge of the structure, function, and regulation of its receptors and transporters has advanced our understanding of glutamate-mediated neurochemical transactions. Moreover, the characterization of glial glutamate receptors together with the compulsory participation of surrounding astrocytes in glutamate turnover and in the known metabolic coupling with neurons has supported what is now known as the tripartite synapses. The molecular characterization of the various glutamate transporters has also been fundamental for the involvement of glial cells in glutamatergic synapses. Using radial glial cultures, over the years, we have demonstrated an alternative glutamate-mediated signaling system triggered by sodium-dependent glutamate transporters. A detailed account of these findings and the signaling through other glutamate transporters are presented here. The role of this signaling system in the context of glutamatergic transmission is discussed as well as the future directions in the field.


Assuntos
Neuroglia , Neurônios , Neuroglia/metabolismo , Neurônios/metabolismo , Ácido Glutâmico/metabolismo , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Neurotransmissores/metabolismo
17.
J Neurosci ; 43(15): 2696-2713, 2023 04 12.
Artigo em Inglês | MEDLINE | ID: mdl-36894315

RESUMO

Although motor cortex is crucial for learning precise and reliable movements, whether and how astrocytes contribute to its plasticity and function during motor learning is unknown. Here, we report that astrocyte-specific manipulations in primary motor cortex (M1) during a lever push task alter motor learning and execution, as well as the underlying neuronal population coding. Mice that express decreased levels of the astrocyte glutamate transporter 1 (GLT1) show impaired and variable movement trajectories, whereas mice with increased astrocyte Gq signaling show decreased performance rates, delayed response times, and impaired trajectories. In both groups, which include male and female mice, M1 neurons have altered interneuronal correlations and impaired population representations of task parameters, including response time and movement trajectories. RNA sequencing further supports a role for M1 astrocytes in motor learning and shows changes in astrocytic expression of glutamate transporter genes, GABA transporter genes, and extracellular matrix protein genes in mice that have acquired this learned behavior. Thus, astrocytes coordinate M1 neuronal activity during motor learning, and our results suggest that this contributes to learned movement execution and dexterity through mechanisms that include regulation of neurotransmitter transport and calcium signaling.SIGNIFICANCE STATEMENT We demonstrate for the first time that in the M1 of mice, astrocyte function is critical for coordinating neuronal population activity during motor learning. We demonstrate that knockdown of astrocyte glutamate transporter GLT1 affects specific components of learning, such as smooth trajectory formation. Altering astrocyte calcium signaling by activation of Gq-DREADD upregulates GLT1 and affects other components of learning, such as response rates and reaction times as well as trajectory smoothness. In both manipulations, neuronal activity in motor cortex is dysregulated, but in different ways. Thus, astrocytes have a crucial role in motor learning via their influence on motor cortex neurons, and they do so by mechanisms that include regulation of glutamate transport and calcium signals.


Assuntos
Astrócitos , Córtex Motor , Camundongos , Masculino , Animais , Feminino , Astrócitos/metabolismo , Córtex Motor/metabolismo , Neurônios Motores/metabolismo , Transmissão Sináptica , Sistema X-AG de Transporte de Aminoácidos/metabolismo
18.
Chem Biol Interact ; 375: 110440, 2023 Apr 25.
Artigo em Inglês | MEDLINE | ID: mdl-36878458

RESUMO

Guanosine has been reported to elicit antidepressant-like responses in rodents, but if these actions are associated with its ability to afford neuroprotection against glutamate-induced toxicity still needs to be fully understood. Therefore, this study investigated the antidepressant-like and neuroprotective effects elicited by guanosine in mice and evaluated the possible involvement of NMDA receptors, glutamine synthetase, and GLT-1 in these responses. We found that guanosine (0.05 mg/kg, but not 0.01 mg/kg, p. o.) was effective in producing an antidepressant-like effect and protecting hippocampal and prefrontocortical slices against glutamate-induced damage. Our results also unveiled that ketamine (1 mg/kg, but not 0.1 mg/kg, i. p, an NMDA receptor antagonist) effectively elicited antidepressant-like actions and protected hippocampal and prefrontocortical slices against glutamatergic toxicity. Furthermore, the combined administration of sub-effective doses of guanosine (0.01 mg/kg, p. o.) with ketamine (0.1 mg/kg, i. p.) promoted an antidepressant-like effect and augmented glutamine synthetase activity and GLT-1 immunocontent in the hippocampus, but not in the prefrontal cortex. Our results also showed that the combination of sub-effective doses of ketamine and guanosine, at the same protocol schedule that exhibited an antidepressant-like effect, effectively abolished glutamate-induced damage in hippocampal and prefrontocortical slices. Our in vitro results reinforce that guanosine, ketamine, or sub-effective concentrations of guanosine plus ketamine protect against glutamate exposure by modulating glutamine synthetase activity and GLT-1 levels. Finally, molecular docking analysis suggests that guanosine might interact with NMDA receptors at the ketamine or glycine/d-serine co-agonist binding sites. These findings provide support for the premise that guanosine has antidepressant-like effects and should be further investigated for depression management.


Assuntos
Ketamina , Fármacos Neuroprotetores , Animais , Camundongos , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Sistema X-AG de Transporte de Aminoácidos/farmacologia , Antidepressivos/farmacologia , Depressão/metabolismo , Glutamato-Amônia Ligase/metabolismo , Glutamato-Amônia Ligase/farmacologia , Ácido Glutâmico/farmacologia , Guanosina/farmacologia , Guanosina/metabolismo , Hipocampo , Ketamina/farmacologia , Simulação de Acoplamento Molecular , Fármacos Neuroprotetores/farmacologia , Fármacos Neuroprotetores/metabolismo , Receptores de N-Metil-D-Aspartato/metabolismo , Transportador 2 de Aminoácido Excitatório
19.
ASN Neuro ; 15: 17590914231157974, 2023.
Artigo em Inglês | MEDLINE | ID: mdl-36815213

RESUMO

Aging is marked by complex and progressive physiological changes, including in the glutamatergic system, that lead to a decline of brain function. Increased content of senescent cells in the brain, such as glial cells, has been reported to impact cognition both in animal models and human tissue during normal aging and in the context of neurodegenerative disease. Changes in the glutamatergic synaptic activity rely on the glutamate-glutamine cycle, in which astrocytes handle glutamate taken up from synapses and provide glutamine for neurons, thus maintaining excitatory neurotransmission. However, the mechanisms of glutamate homeostasis in brain aging are still poorly understood. Herein, we showed that mouse senescent astrocytes in vitro undergo upregulation of GLT-1, GLAST, and glutamine synthetase (GS), along with the increased enzymatic activity of GS and [3H]-D-aspartate uptake. Furthermore, we observed higher levels of GS and increased [3H]-D-aspartate uptake in the hippocampus of aged mice, although the activity of GS was similar between young and old mice. Analysis of a previously available RNAseq dataset of mice at different ages revealed upregulation of GLAST and GS mRNA levels in hippocampal astrocytes during aging. Corroborating these rodent data, we showed an increased number of GS + cells, and GS and GLT-1 levels/intensity in the hippocampus of elderly humans. Our data suggest that aged astrocytes undergo molecular and functional changes that control glutamate-glutamine homeostasis upon brain aging.


Assuntos
Astrócitos , Doenças Neurodegenerativas , Animais , Humanos , Camundongos , Idoso , Astrócitos/metabolismo , Glutamina/genética , Glutamina/metabolismo , Glutamato-Amônia Ligase/genética , Glutamato-Amônia Ligase/metabolismo , Regulação para Cima , Sistema X-AG de Transporte de Aminoácidos/genética , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Ácido D-Aspártico/genética , Ácido Glutâmico/metabolismo , Hipocampo/metabolismo
20.
J Pain ; 24(7): 1163-1180, 2023 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-36641029

RESUMO

Systemic lupus erythematosus (SLE) is an unpredictable autoimmune disease where the body's immune system mistakenly attacks healthy tissues in many parts of the body. Chronic pain is one of the most frequently reported symptoms among SLE patients. We previously reported that MRL lupus prone (MRL/lpr) mice develop hypersensitivity to mechanical and heat stimulation. In the present study, we found that the spinal protease-activated receptor-1(PAR1) plays an important role in the genesis of chronic pain in MRL/lpr mice. Female MRL/lpr mice with chronic pain had activation of astrocytes, over-expression of thrombin and PAR1, enhanced glutamatergic synaptic activity, as well as suppressed activity of adenosine monophosphate-activated protein kinase (AMPK) and glial glutamate transport function in the spinal cord. Intrathecal injection of either the PAR1 antagonist, or AMPK activator attenuated heat hyperalgesia and mechanical allodynia in MRL/lpr mice. Furthermore, we also identified that the enhanced glutamatergic synaptic activity and suppressed activity of glial glutamate transporters in the spinal dorsal horn of MRL/lpr mice are caused by activation of the PAR1 and suppression of AMPK signaling pathways. These findings suggest that targeting the PAR1 and AMPK signaling pathways in the spinal cord may be a useful approach for treating chronic pain caused by SLE. PERSPECTIVE: Our study provides evidence suggesting activation of PAR1 and suppression of AMPK in the spinal cord induces thermal hyperalgesia and mechanical allodynia in a lupus mouse model. Targeting signaling pathways regulating the PAR1 and AMPK could potentially provide a novel approach to the management of chronic pain caused by SLE.


Assuntos
Dor Crônica , Lúpus Eritematoso Sistêmico , Camundongos , Feminino , Animais , Dor Crônica/etiologia , Dor Crônica/metabolismo , Hiperalgesia/etiologia , Hiperalgesia/metabolismo , Receptor PAR-1/metabolismo , Proteínas Quinases Ativadas por AMP/metabolismo , Sistema X-AG de Transporte de Aminoácidos/metabolismo , Lúpus Eritematoso Sistêmico/metabolismo , Corno Dorsal da Medula Espinal/metabolismo , Glutamatos/metabolismo
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