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1.
Cell ; 187(9): 2175-2193.e21, 2024 Apr 25.
Article in English | MEDLINE | ID: mdl-38552623

ABSTRACT

In addition to long-distance molecular motor-mediated transport, cellular vesicles also need to be moved at short distances with defined directions to meet functional needs in subcellular compartments but with unknown mechanisms. Such short-distance vesicle transport does not involve molecular motors. Here, we demonstrate, using synaptic vesicle (SV) transport as a paradigm, that phase separation of synaptic proteins with vesicles can facilitate regulated, directional vesicle transport between different presynaptic bouton sub-compartments. Specifically, a large coiled-coil scaffold protein Piccolo, in response to Ca2+ and via its C2A domain-mediated Ca2+ sensing, can extract SVs from the synapsin-clustered reserve pool condensate and deposit the extracted SVs onto the surface of the active zone protein condensate. We further show that the Trk-fused gene, TFG, also participates in COPII vesicle trafficking from ER to the ER-Golgi intermediate compartment via phase separation. Thus, phase separation may play a general role in short-distance, directional vesicle transport in cells.


Subject(s)
COP-Coated Vesicles , Endoplasmic Reticulum , Synaptic Vesicles , Animals , Synaptic Vesicles/metabolism , COP-Coated Vesicles/metabolism , Endoplasmic Reticulum/metabolism , Calcium/metabolism , Golgi Apparatus/metabolism , Rats , Biological Transport , Presynaptic Terminals/metabolism , Synapsins/metabolism , Biomolecular Condensates/metabolism , Cytoskeletal Proteins/metabolism , Phase Separation
2.
Eur Phys J E Soft Matter ; 47(1): 8, 2024 Jan 25.
Article in English | MEDLINE | ID: mdl-38270681

ABSTRACT

We study the formation of vesicle condensates induced by the protein synapsin, as a cell-free model system mimicking vesicle pool formation in the synapse. The system can be considered as an example of liquid-liquid phase separation (LLPS) in biomolecular fluids, where one phase is a complex fluid itself consisting of vesicles and a protein network. We address the pertinent question why the LLPS is self-limiting and stops at a certain size, i.e., why macroscopic phase separation is prevented. Using fluorescence light microscopy, we observe different morphologies of the condensates (aggregates) depending on the protein-to-lipid ratio. Cryogenic electron microscopy then allows us to resolve individual vesicle positions and shapes in a condensate and notably the size and geometry of adhesion zones between vesicles. We hypothesize that the membrane tension induced by already formed adhesion zones then in turn limits the capability of vesicles to bind additional vesicles, resulting in a finite condensate size. In a simple numerical toy model we show that this effect can be accounted for by redistribution of effective binding particles on the vesicle surface, accounting for the synapsin-induced adhesion zone.

3.
Autophagy ; : 1-19, 2023 Nov 08.
Article in English | MEDLINE | ID: mdl-37881948

ABSTRACT

In neurons, autophagosome biogenesis occurs mainly in distal axons, followed by maturation during retrograde transport. Autophagosomal growth depends on the supply of membrane lipids which requires small vesicles containing ATG9, a lipid scramblase essential for macroautophagy/autophagy. Here, we show that ATG9-containing vesicles are enriched in synapses and resemble synaptic vesicles in size and density. The proteome of ATG9-containing vesicles immuno-isolated from nerve terminals showed conspicuously low levels of trafficking proteins except of the AP2-complex and some enzymes involved in endosomal phosphatidylinositol metabolism. Super resolution microscopy of nerve terminals and isolated vesicles revealed that ATG9-containing vesicles represent a distinct vesicle population with limited overlap not only with synaptic vesicles but also other membranes of the secretory pathway, uncovering a surprising heterogeneity in their membrane composition. Our results are compatible with the view that ATG9-containing vesicles function as lipid shuttles that scavenge membrane lipids from various intracellular membranes to support autophagosome biogenesis.Abbreviations: AP: adaptor related protein complex: ATG2: autophagy related 2; ATG9: autophagy related 9; DNA PAINT: DNA-based point accumulation for imaging in nanoscale topography; DyMIN STED: dynamic minimum stimulated emission depletion; EL: endosome and lysosome; ER: endoplasmic reticulum; GA: Golgi apparatus; iBAQ: intensity based absolute quantification; LAMP: lysosomal-associated membrane protein; M6PR: mannose-6-phosphate receptor, cation dependent; Minflux: minimal photon fluxes; Mito: mitochondria; MS: mass spectrometry; PAS: phagophore assembly site; PM: plasma membrane; Px: peroxisome; RAB26: RAB26, member RAS oncogene family; RAB3A: RAB3A, member RAS oncogene family; RAB5A: RAB5A, member RAS oncogene family; SNARE: soluble N-ethylmaleimide-sensitive-factor attachment receptor; SVs: synaptic vesicles; SYP: synaptophysin; TGN: trans-Golgi network; TRAPP: transport protein particle; VTI1: vesicle transport through interaction with t-SNAREs.

4.
Nat Commun ; 14(1): 6730, 2023 10 23.
Article in English | MEDLINE | ID: mdl-37872159

ABSTRACT

Neuronal transmission relies on the regulated secretion of neurotransmitters, which are packed in synaptic vesicles (SVs). Hundreds of SVs accumulate at synaptic boutons. Despite being held together, SVs are highly mobile, so that they can be recruited to the plasma membrane for their rapid release during neuronal activity. However, how such confinement of SVs corroborates with their motility remains unclear. To bridge this gap, we employ ultrafast single-molecule tracking (SMT) in the reconstituted system of native SVs and in living neurons. SVs and synapsin 1, the most highly abundant synaptic protein, form condensates with liquid-like properties. In these condensates, synapsin 1 movement is slowed in both at short (i.e., 60-nm) and long (i.e., several hundred-nm) ranges, suggesting that the SV-synapsin 1 interaction raises the overall packing of the condensate. Furthermore, two-color SMT and super-resolution imaging in living axons demonstrate that synapsin 1 drives the accumulation of SVs in boutons. Even the short intrinsically-disordered fragment of synapsin 1 was sufficient to restore the native SV motility pattern in synapsin triple knock-out animals. Thus, synapsin 1 condensation is sufficient to guarantee reliable confinement and motility of SVs, allowing for the formation of mesoscale domains of SVs at synapses in vivo.


Subject(s)
Synapsins , Synaptic Vesicles , Animals , Synaptic Vesicles/metabolism , Synapsins/genetics , Synapsins/metabolism , Synapses/metabolism , Synaptic Transmission/physiology , Animals, Genetically Modified
5.
Nature ; 611(7937): 827-834, 2022 11.
Article in English | MEDLINE | ID: mdl-36418452

ABSTRACT

Vacuolar-type adenosine triphosphatases (V-ATPases)1-3 are electrogenic rotary mechanoenzymes structurally related to F-type ATP synthases4,5. They hydrolyse ATP to establish electrochemical proton gradients for a plethora of cellular processes1,3. In neurons, the loading of all neurotransmitters into synaptic vesicles is energized by about one V-ATPase molecule per synaptic vesicle6,7. To shed light on this bona fide single-molecule biological process, we investigated electrogenic proton-pumping by single mammalian-brain V-ATPases in single synaptic vesicles. Here we show that V-ATPases do not pump continuously in time, as suggested by observing the rotation of bacterial homologues8 and assuming strict ATP-proton coupling. Instead, they stochastically switch between three ultralong-lived modes: proton-pumping, inactive and proton-leaky. Notably, direct observation of pumping revealed that physiologically relevant concentrations of ATP do not regulate the intrinsic pumping rate. ATP regulates V-ATPase activity through the switching probability of the proton-pumping mode. By contrast, electrochemical proton gradients regulate the pumping rate and the switching of the pumping and inactive modes. A direct consequence of mode-switching is all-or-none stochastic fluctuations in the electrochemical gradient of synaptic vesicles that would be expected to introduce stochasticity in proton-driven secondary active loading of neurotransmitters and may thus have important implications for neurotransmission. This work reveals and emphasizes the mechanistic and biological importance of ultraslow mode-switching.


Subject(s)
Brain , Mammals , Vacuolar Proton-Translocating ATPases , Animals , Adenosine Triphosphate/metabolism , Brain/enzymology , Brain/metabolism , Mammals/metabolism , Protons , Synaptic Vesicles/enzymology , Synaptic Vesicles/metabolism , Vacuolar Proton-Translocating ATPases/metabolism , Neurotransmitter Agents/metabolism , Synaptic Transmission , Time Factors , Kinetics
7.
Eur Biophys J ; 51(6): 465-482, 2022 Sep.
Article in English | MEDLINE | ID: mdl-35904588

ABSTRACT

The size, polydispersity, and electron density profile of synaptic vesicles (SVs) can be studied by small-angle X-ray scattering (SAXS), i.e. by X-ray diffraction from purified SV suspensions in solution. Here we show that size and shape transformations, as they appear in the functional context of these important synaptic organelles, can also be monitored by SAXS. In particular, we have investigated the active uptake of neurotransmitters, and find a mean vesicle radius increase of about 12% after the uptake of glutamate, which indicates an unusually large extensibility of the vesicle surface, likely to be accompanied by conformational changes of membrane proteins and rearrangements of the bilayer. Changes in the electron density profile (EDP) give first indications for such a rearrangement. Details of the protein structure are screened, however, by SVs polydispersity. To overcome the limitations of large ensemble averages and heterogeneous structures, we therefore propose serial X-ray diffraction by single free electron laser pulses. Using simulated data for realistic parameters, we show that this is in principle feasible, and that even spatial distances between vesicle proteins could be assessed by this approach.


Subject(s)
Glutamic Acid , Synaptic Vesicles , Biological Transport , Proteins/metabolism , Scattering, Small Angle , Synaptic Vesicles/chemistry , Synaptic Vesicles/metabolism , X-Ray Diffraction
8.
Neuron ; 110(9): 1483-1497.e7, 2022 05 04.
Article in English | MEDLINE | ID: mdl-35263617

ABSTRACT

Vesicular transporters (VTs) define the type of neurotransmitter that synaptic vesicles (SVs) store and release. While certain mammalian neurons release multiple transmitters, it is not clear whether the release occurs from the same or distinct vesicle pools at the synapse. Using quantitative single-vesicle imaging, we show that a vast majority of SVs in the rodent brain contain only one type of VT, indicating specificity for a single neurotransmitter. Interestingly, SVs containing dual transporters are highly diverse (27 types) but small in proportion (2% of all SVs), excluding the largest pool that carries VGLUT1 and ZnT3 (34%). Using VGLUT1-ZnT3 SVs, we demonstrate that the transporter colocalization influences the SV content and synaptic quantal size. Thus, the presence of diverse transporters on the same vesicle is bona fide, and depending on the VT types, this may act to regulate neurotransmitter type, content, and release in space and time.


Subject(s)
Neurotransmitter Transport Proteins , Synaptic Vesicles , Animals , Mammals , Membrane Transport Proteins , Neurotransmitter Agents , Synapses , Synaptic Vesicles/physiology , Vesicular Glutamate Transport Protein 1
9.
Methods Mol Biol ; 2417: 131-145, 2022.
Article in English | MEDLINE | ID: mdl-35099797

ABSTRACT

Synaptic vesicles (SVs) store neurotransmitters and undergo a fine-tuned regulatory and dynamic cycle of exo- and endocytosis, which is essential for neurotransmission at chemical synapses. The development of protocols for isolating SVs from biological extracts was a fundamental accomplishment since it allowed for characterizing the molecular properties of SVs using biochemical methods. In this chapter, we describe a modified procedure for isolating SVs from a few g of rodent brain and that can be completed within ~12 h. The protocol involves the preparation of isolated nerve terminals from which SVs are released by osmotic shock and then enriched via various centrifugation steps, followed by size exclusion chromatography as final purification step. The final vesicle fraction is 22-fold enriched in SVs over the starting material, and the final yield of SVs obtained using this protocol is approximately 20 µg of protein per gram of mouse brain. The degree of contamination by other organelles and particles monitored by morphology and immunolabeling compares well with that of the classical protocols.


Subject(s)
Synapses , Synaptic Vesicles , Animals , Brain/metabolism , Mammals , Mice , Neurotransmitter Agents/metabolism , Synapses/metabolism , Synaptic Transmission , Synaptic Vesicles/metabolism
10.
Front Psychiatry ; 12: 701408, 2021.
Article in English | MEDLINE | ID: mdl-34421682

ABSTRACT

Major depressive disorder (MDD) leads to pervasive changes in the health of afflicted patients. Despite advances in the understanding of MDD and its treatment, profound innovation is needed to develop fast-onset antidepressants with higher effectiveness. When acutely administered, the endogenous nucleoside guanosine (GUO) shows fast-onset antidepressant-like effects in several mouse models, including the olfactory bulbectomy (OBX) rodent model. OBX is advocated to possess translational value and be suitable to assess the time course of depressive-like behavior in rodents. This study aimed at investigating the long-term behavioral and neurochemical effects of GUO in a mouse model of depression induced by bilateral bulbectomy (OBX). Mice were submitted to OBX and, after 14 days of recovery, received daily (ip) administration of 7.5 mg/kg GUO or 40 mg/kg imipramine (IMI) for 45 days. GUO and IMI reversed the OBX-induced hyperlocomotion and recognition memory impairment, hippocampal BDNF increase, and redox imbalance (ROS, NO, and GSH levels). GUO also mitigated the OBX-induced hippocampal neuroinflammation (IL-1, IL-6, TNF-α, INF-γ, and IL-10). Brain microPET imaging ([18F]FDG) shows that GUO also prevented the OBX-induced increase in hippocampal FDG metabolism. These results provide additional evidence for GUO antidepressant-like effects, associated with beneficial neurochemical outcomes relevant to counteract depression.

11.
Purinergic Signal ; 17(2): 255-271, 2021 06.
Article in English | MEDLINE | ID: mdl-33834349

ABSTRACT

Ischemic stroke is a major cause of morbidity and mortality worldwide and only few affected patients are able to receive treatment, especially in developing countries. Detailed pathophysiology of brain ischemia has been extensively studied in order to discover new treatments with a broad therapeutic window and that are accessible to patients worldwide. The nucleoside guanosine (Guo) has been shown to have neuroprotective effects in animal models of brain diseases, including ischemic stroke. In a rat model of focal permanent ischemia, systemic administration of Guo was effective only when administered immediately after stroke induction. In contrast, intranasal administration of Guo (In-Guo) was effective even when the first administration was 3 h after stroke induction. In order to validate the neuroprotective effect in this larger time window and to investigate In-Guo neuroprotection under global brain dysfunction induced by ischemia, we used the model of thermocoagulation of pial vessels in Wistar rats. In our study, we have found that In-Guo administered 3 h after stroke was capable of preventing ischemia-induced dysfunction, such as bilateral suppression and synchronicity of brain oscillations and ipsilateral cell death signaling, and increased permeability of the blood-brain barrier. In addition, In-Guo had a long-lasting effect on preventing ischemia-induced motor impairment. Our data reinforce In-Guo administration as a potential new treatment for brain ischemia with a more suitable therapeutic window.


Subject(s)
Brain/physiopathology , Guanosine/administration & dosage , Guanosine/therapeutic use , Ischemic Stroke/drug therapy , Ischemic Stroke/physiopathology , Neuroprotective Agents/administration & dosage , Neuroprotective Agents/therapeutic use , Administration, Intranasal , Animals , Blood-Brain Barrier/drug effects , Cell Death/drug effects , Cerebral Veins/drug effects , Electrocoagulation , Electroencephalography/drug effects , Functional Laterality/drug effects , Ischemic Stroke/complications , Male , Movement Disorders/etiology , Movement Disorders/prevention & control , Rats , Rats, Wistar , Signal Transduction/drug effects
12.
J Mol Biol ; 433(12): 166961, 2021 06 11.
Article in English | MEDLINE | ID: mdl-33774037

ABSTRACT

Neurotransmission relies on the tight spatial and temporal regulation of the synaptic vesicle (SV) cycle. Nerve terminals contain hundreds of SVs that form tight clusters. These clusters represent a distinct liquid phase in which one component of the phase are SVs and the other synapsin 1, a highly abundant synaptic protein. Another major family of disordered proteins at the presynapse includes synucleins, most notably α-synuclein. The precise physiological role of α-synuclein in synaptic physiology remains elusive, albeit its role has been implicated in nearly all steps of the SV cycle. To determine the effect of α-synuclein on the synapsin phase, we employ the reconstitution approach using natively purified SVs from rat brains and the heterologous cell system to generate synapsin condensates. We demonstrate that synapsin condensates recruit α-synuclein, and while enriched into these synapsin condensates, α-synuclein still maintains its high mobility. The presence of SVs enhances the rate of synapsin/α-synuclein condensation, suggesting that SVs act as catalyzers for the formation of synapsin condensates. Notably, at physiological salt and protein concentrations, α-synuclein alone is not able to cluster isolated SVs. Excess of α-synuclein disrupts the kinetics of synapsin/SV condensate formation, indicating that the molar ratio between synapsin and α-synuclein is important in assembling the functional condensates of SVs. Understanding the molecular mechanism of α-synuclein interactions at the nerve terminals is crucial for clarifying the pathogenesis of synucleinopathies, where α-synuclein, synaptic proteins and lipid organelles all accumulate as insoluble intracellular inclusions.


Subject(s)
Brain/cytology , Synapsins/metabolism , Synaptic Vesicles/metabolism , alpha-Synuclein/metabolism , Animals , Brain/metabolism , HEK293 Cells , Humans , Luminescent Proteins/genetics , Luminescent Proteins/metabolism , Macromolecular Substances/chemistry , Macromolecular Substances/metabolism , Microscopy, Confocal , Microscopy, Fluorescence , Rats , Synapsins/chemistry , Synaptic Transmission , alpha-Synuclein/chemistry , Red Fluorescent Protein
13.
Nat Commun ; 12(1): 858, 2021 02 08.
Article in English | MEDLINE | ID: mdl-33558502

ABSTRACT

Synaptic vesicles are storage organelles for neurotransmitters. They pass through a trafficking cycle and fuse with the pre-synaptic membrane when an action potential arrives at the nerve terminal. While molecular components and biophysical parameters of synaptic vesicles have been determined, our knowledge on the protein interactions in their membranes is limited. Here, we apply cross-linking mass spectrometry to study interactions of synaptic vesicle proteins in an unbiased approach without the need for specific antibodies or detergent-solubilisation. Our large-scale analysis delivers a protein network of vesicle sub-populations and functional assemblies including an active and an inactive conformation of the vesicular ATPase complex as well as non-conventional arrangements of the luminal loops of SV2A, Synaptophysin and structurally related proteins. Based on this network, we specifically target Synaptobrevin-2, which connects with many proteins, in different approaches. Our results allow distinction of interactions caused by 'crowding' in the vesicle membrane from stable interaction modules.


Subject(s)
Cross-Linking Reagents/chemistry , Mass Spectrometry , Synaptic Membranes/metabolism , Synaptic Vesicles/metabolism , Animals , Brain/metabolism , Membrane Fusion , Protein Binding , Protein Interaction Maps , Proteolipids , Proteome/metabolism , Rats , Synaptic Membranes/ultrastructure , Synaptic Vesicles/ultrastructure , Synaptophysin/metabolism , Vacuolar Proton-Translocating ATPases/metabolism , Vesicle-Associated Membrane Protein 2/metabolism
14.
Cell Rep ; 34(2): 108623, 2021 01 12.
Article in English | MEDLINE | ID: mdl-33440152

ABSTRACT

Vesicular glutamate transporters (VGLUTs) fill synaptic vesicles with glutamate. VGLUTs were originally identified as sodium-dependent transporters of inorganic phosphate (Pi), but the physiological relevance of this activity remains unclear. Heterologous expression of all three VGLUTs greatly augments intracellular Pi levels. Using neuronal models, we show that translocation of VGLUTs to the plasma membrane during exocytosis results in highly increased Pi uptake. VGLUT-mediated Pi influx is counteracted by Pi efflux. Synaptosomes prepared from perinatal VGLUT2-/- mice that are virtually free of VGLUTs show drastically reduced cytosolic Pi levels and fail to import Pi. Glutamate partially competes with sodium (Na+)/Pi (NaPi)-uptake mediated by VGLUTs but does not appear to be transported. A nanobody that blocks glutamate transport by binding to the cytoplasmic domain of VGLUT1 abolishes Pi transport when co-expressed with VGLUT1. We conclude that VGLUTs have a dual function that is essential for both vesicular glutamate loading and Pi restoration in neurons.


Subject(s)
Biological Transport/physiology , Phosphates/metabolism , Synaptic Vesicles/metabolism , Vesicular Glutamate Transport Proteins/metabolism , Animals , Humans , Rats , Transfection
15.
Mol Cell ; 81(1): 13-24.e7, 2021 01 07.
Article in English | MEDLINE | ID: mdl-33202250

ABSTRACT

Tethering of synaptic vesicles (SVs) to the active zone determines synaptic strength, although the molecular basis governing SV tethering is elusive. Here, we discover that small unilamellar vesicles (SUVs) and SVs from rat brains coat on the surface of condensed liquid droplets formed by active zone proteins RIM, RIM-BP, and ELKS via phase separation. Remarkably, SUV-coated RIM/RIM-BP condensates are encapsulated by synapsin/SUV condensates, forming two distinct SUV pools reminiscent of the reserve and tethered SV pools that exist in presynaptic boutons. The SUV-coated RIM/RIM-BP condensates can further cluster Ca2+ channels anchored on membranes. Thus, we reconstitute a presynaptic bouton-like structure mimicking the SV-tethered active zone with its one side attached to the presynaptic membrane and the other side connected to the synapsin-clustered SV condensates. The distinct interaction modes between membraneless protein condensates and membrane-based organelles revealed here have general implications in cellular processes, including vesicular formation and trafficking, organelle biogenesis, and autophagy.


Subject(s)
Brain/metabolism , Calcium Channels/metabolism , Presynaptic Terminals/metabolism , Synapsins/metabolism , Synaptic Vesicles/metabolism , Animals , Calcium Channels/genetics , Humans , Mice , Rats , Synapsins/genetics , Synaptic Vesicles/genetics
16.
Sci Rep ; 10(1): 7540, 2020 05 05.
Article in English | MEDLINE | ID: mdl-32371955

ABSTRACT

Large dense-core vesicles (LDCVs) contain a variety of neurotransmitters, proteins, and hormones such as biogenic amines and peptides, together with microRNAs (miRNAs). Isolation of LDCVs is essential for functional studies including vesicle fusion, vesicle acidification, monoamine transport, and the miRNAs stored in LDCVs. Although several methods were reported for purifying LDCVs, the final fractions are significantly contaminated by other organelles, compromising biochemical characterization. Here we isolated LDCVs (chromaffin granules) with high yield and purity from bovine adrenal medulla. The fractionation protocol combines differential and continuous sucrose gradient centrifugation, allowing for reducing major contaminants such as mitochondria. Purified LDCVs show robust acidification by the endogenous V-ATPase and undergo SNARE-mediated fusion with artificial membranes. Interestingly, LDCVs contain specific miRNAs such as miR-375 and miR-375 is stabilized by protein complex against RNase A. This protocol can be useful in research on the biological functions of LDCVs.


Subject(s)
Adrenal Medulla/physiology , Cytological Techniques/methods , Animals , Cattle , Cell Fractionation , Chromaffin Granules/metabolism , Membrane Fusion , MicroRNAs/metabolism , Mitochondria/metabolism , Nerve Tissue Proteins/metabolism , Neurotransmitter Agents/metabolism
17.
Nat Commun ; 10(1): 3904, 2019 08 29.
Article in English | MEDLINE | ID: mdl-31467284

ABSTRACT

Regulated exocytosis of synaptic vesicles is substantially faster than of endocrine dense core vesicles despite similar molecular machineries. The reasons for this difference are unknown and could be due to different regulatory proteins, different spatial arrangements, different vesicle sizes, or other factors. To address these questions, we take a reconstitution approach and compare regulated SNARE-mediated fusion of purified synaptic and dense core chromaffin and insulin vesicles using a single vesicle-supported membrane fusion assay. In all cases, Munc18 and complexin are required to restrict fusion in the absence of calcium. Calcium triggers fusion of all docked vesicles. Munc13 (C1C2MUN domain) is required for synaptic and enhanced insulin vesicle fusion, but not for chromaffin vesicles, correlating inversely with the presence of CAPS protein on purified vesicles. Striking disparities in calcium-triggered fusion rates are observed, increasing with curvature with time constants 0.23 s (synaptic vesicles), 3.3 s (chromaffin vesicles), and 9.1 s (insulin vesicles) and correlating with rate differences in cells.


Subject(s)
Membrane Fusion/physiology , SNARE Proteins/metabolism , Secretory Vesicles/metabolism , Synaptic Vesicles/metabolism , Animals , Biological Transport , Calcium/metabolism , Calcium-Binding Proteins/metabolism , Cell Membrane/metabolism , Exocytosis , Humans , Insulin , Munc18 Proteins/metabolism , Nerve Tissue Proteins , PC12 Cells , Rats
18.
Cell Rep ; 23(2): 535-545, 2018 Apr 10.
Article in English | MEDLINE | ID: mdl-29642010

ABSTRACT

Vesicular glutamate transporters (VGLUTs) fill synaptic vesicles with glutamate and are thus essential for glutamatergic neurotransmission. However, VGLUTs were originally discovered as members of a transporter subfamily specific for inorganic phosphate (Pi). It is still unclear how VGLUTs accommodate glutamate transport coupled to an electrochemical proton gradient ΔµH+ with inversely directed Pi transport coupled to the Na+ gradient and the membrane potential. Using both functional reconstitution and heterologous expression, we show that VGLUT transports glutamate and Pi using a single substrate binding site but different coupling to cation gradients. When facing the cytoplasm, both ions are transported into synaptic vesicles in a ΔµH+-dependent fashion, with glutamate preferred over Pi. When facing the extracellular space, Pi is transported in a Na+-coupled manner, with glutamate competing for binding but at lower affinity. We conclude that VGLUTs have dual functions in both vesicle transmitter loading and Pi homeostasis within glutamatergic neurons.


Subject(s)
Phosphates/metabolism , Vesicular Glutamate Transport Protein 1/metabolism , Animals , Binding Sites , Biological Transport/drug effects , Cell Membrane/metabolism , Exocytosis/drug effects , Glutamic Acid/metabolism , Hydrogen-Ion Concentration , Kinetics , Liposomes/chemistry , Liposomes/metabolism , Nigericin/pharmacology , PC12 Cells , Potassium Chloride/pharmacology , Rats , Rats, Wistar , Recombinant Proteins/biosynthesis , Recombinant Proteins/genetics , Substrate Specificity , Synaptic Vesicles/metabolism , Vesicular Glutamate Transport Protein 1/genetics
19.
Epilepsia ; 58(10): 1771-1781, 2017 10.
Article in English | MEDLINE | ID: mdl-28762469

ABSTRACT

OBJECTIVES: Glutaric acidemia type I (GA-I) is an inherited neurometabolic disorder caused by deficiency of glutaryl-CoA dehydrogenase (GCDH) and characterized by increased levels of glutaric, 3-OH-glutaric, and glutaconic acids in the brain parenchyma. The increment of these organic acids inhibits glutamate decarboxylase (GAD) and consequently lowers the γ-aminobutyric acid (GABA) synthesis. Untreated patients exhibit severe neurologic deficits during development, including epilepsy, especially following an acute encephalopathy outbreak. In this work, we evaluated the role of the GABAergic system on epileptogenesis in GA-I using the Gcdh-/- mice exposed to a high lysine diet (Gcdh-/- -Lys). METHODS: Spontaneous recurrent seizures (SRS), seizure susceptibility, and changes in brain oscillations were evaluated by video-electroencephalography (EEG). Cortical GABAergic synaptic transmission was evaluated using electrophysiologic and neurochemical approaches. RESULTS: SRS were observed in 72% of Gcdh-/- -Lys mice, whereas no seizures were detected in age-matched controls (Gcdh+/+ or Gcdh-/- receiving normal diet). The severity and number of PTZ-induced seizures were higher in Gcdh-/- -Lys mice. EEG spectral analysis showed a significant decrease in theta and gamma oscillations and predominant delta waves in Gcdh-/- -Lys mice, associated with increased EEG left index. Analysis of cortical synaptosomes revealed a significantly increased percentage of glutamate release and decreased GABA release in Gcdh-/- -Lys mice that were associated with a decrease in cortical GAD immunocontent and activity and confirmed by reduced frequency of inhibitory events in cortical pyramidal cells. SIGNIFICANCE: Using an experimental model with a phenotype similar to that of GA-I in humans-the Gcdh-/- mice under high lysine diet (Gcdh-/- -Lys)-we provide evidence that a reduction in cortical inhibition of Gcdh-/- -Lys mice, probably induced by GAD dysfunction, leads to hyperexcitability and increased slow oscillations associated with neurologic abnormalities in GA-I. Our findings offer a new perspective on the pathophysiology of brain damage in GA-I.


Subject(s)
Amino Acid Metabolism, Inborn Errors/genetics , Brain Diseases, Metabolic/genetics , Brain/drug effects , Epilepsy/genetics , Glutaryl-CoA Dehydrogenase/deficiency , Glutaryl-CoA Dehydrogenase/genetics , gamma-Aminobutyric Acid/drug effects , Amino Acid Metabolism, Inborn Errors/metabolism , Animals , Blotting, Western , Brain Diseases, Metabolic/metabolism , Chromatography, High Pressure Liquid , Epilepsy/metabolism , GABA Antagonists/pharmacology , Glutamate Decarboxylase , Glutamic Acid/drug effects , Glutamic Acid/metabolism , Glutaryl-CoA Dehydrogenase/metabolism , Mice , Mice, Knockout , Pentylenetetrazole/pharmacology , Synaptosomes/drug effects , Synaptosomes/metabolism , gamma-Aminobutyric Acid/metabolism
20.
Article in English | MEDLINE | ID: mdl-28223107

ABSTRACT

Major depressive disorder (MDD) is a neuropsychiatric disease that is associated with profound disturbances in affected individuals. Elucidating the pathophysiology of MDD has been frustratingly slow, especially concerning the neurochemical events and brain regions associated with disease progression. Thus, we evaluated the time-course (up to 8weeks) behavioral and biochemical effects in mice that underwent to a bilateral olfactory bulbectomy (OBX), which is used to modeling depressive-like behavior in rodents. Similar to the symptoms in patients with MDD, OBX induced long-lasting (e.g., impairment of habituation to novelty, hyperactivity and an anxiety-like phenotype) and transient (e.g., loss of self-care and motivational behavior) behavioral effects. Moreover, OBX temporarily impaired hippocampal synaptosomal mitochondria, in a manner that would be associated with hippocampal-related synaptotoxicity. Finally, long-lasting pro-oxidative (i.e., increased levels of reactive oxygen species and nitric oxide and decreased glutathione levels) and pro-inflammatory (i.e., increased levels of pro-inflammatory cytokines IL-1, IL-6, TNF-α and decreased anti-inflammatory cytokine IL-10 levels) effects were induced in the hippocampus by OBX. Additionally, these parameters were transiently affected in the posterior and frontal cortices. This study is the first to suggest that the transient and long-lasting behavioral effects from OBX strongly correlate with mitochondrial, oxidative and inflammatory parameters in the hippocampus; furthermore, these effects show a weak correlation with these parameters in the cortex. Our findings highlight the underlying mechanisms involved in the biochemical time course of events related to depressive behavior.


Subject(s)
Behavior, Animal/physiology , Depressive Disorder, Major , Hippocampus , Inflammation , Olfactory Bulb/surgery , Animals , Depressive Disorder, Major/immunology , Depressive Disorder, Major/metabolism , Depressive Disorder, Major/physiopathology , Disease Models, Animal , Hippocampus/immunology , Hippocampus/metabolism , Inflammation/immunology , Inflammation/metabolism , Male , Mice , Mice, Inbred C57BL
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