Your browser doesn't support javascript.
loading
Mostrar: 20 | 50 | 100
Resultados 1 - 20 de 44
Filtrar
Mais filtros

Base de dados
País/Região como assunto
Tipo de documento
Intervalo de ano de publicação
1.
Proc Natl Acad Sci U S A ; 120(34): e2309516120, 2023 08 22.
Artigo em Inglês | MEDLINE | ID: mdl-37590407

RESUMO

Here, we introduce the full functional reconstitution of genetically validated core protein machinery (SNAREs, Munc13, Munc18, Synaptotagmin, and Complexin) for synaptic vesicle priming and release in a geometry that enables detailed characterization of the fate of docked vesicles both before and after release is triggered with Ca2+. Using this setup, we identify new roles for diacylglycerol (DAG) in regulating vesicle priming and Ca2+-triggered release involving the SNARE assembly chaperone Munc13. We find that low concentrations of DAG profoundly accelerate the rate of Ca2+-dependent release, and high concentrations reduce clamping and permit extensive spontaneous release. As expected, DAG also increases the number of docked, release-ready vesicles. Dynamic single-molecule imaging of Complexin binding to release-ready vesicles directly establishes that DAG accelerates the rate of SNAREpin assembly mediated by chaperones, Munc13 and Munc18. The selective effects of physiologically validated mutations confirmed that the Munc18-Syntaxin-VAMP2 "template" complex is a functional intermediate in the production of primed, release-ready vesicles, which requires the coordinated action of Munc13 and Munc18.


Assuntos
Diglicerídeos , Vesículas Sinápticas , Humanos , Exocitose , Transmissão Sináptica , Sinaptotagminas , Vesícula
2.
Proc Natl Acad Sci U S A ; 119(38): e2208337119, 2022 09 20.
Artigo em Inglês | MEDLINE | ID: mdl-36103579

RESUMO

Synchronous release at neuronal synapses is accomplished by a machinery that senses calcium influx and fuses the synaptic vesicle and plasma membranes to release neurotransmitters. Previous studies suggested the calcium sensor synaptotagmin (Syt) is a facilitator of vesicle docking and both a facilitator and inhibitor of fusion. On phospholipid monolayers, the Syt C2AB domain spontaneously oligomerized into rings that are disassembled by Ca2+, suggesting Syt rings may clamp fusion as membrane-separating "washers" until Ca2+-mediated disassembly triggers fusion and release [J. Wang et al., Proc. Natl. Acad. Sci. U.S.A. 111, 13966-13971 (2014)].). Here, we combined mathematical modeling with experiment to measure the mechanical properties of Syt rings and to test this mechanism. Consistent with experimental results, the model quantitatively recapitulates observed Syt ring-induced dome and volcano shapes on phospholipid monolayers and predicts rings are stabilized by anionic phospholipid bilayers or bulk solution with ATP. The selected ring conformation is highly sensitive to membrane composition and bulk ATP levels, a property that may regulate vesicle docking and fusion in ATP-rich synaptic terminals. We find the Syt molecules hosted by a synaptic vesicle oligomerize into a halo, unbound from the vesicle, but in proximity to sufficiently phosphatidylinositol 4,5-bisphosphate (PIP2)-rich plasma membrane (PM) domains, the PM-bound trans Syt ring conformation is preferred. Thus, the Syt halo serves as landing gear for spatially directed docking at PIP2-rich sites that define the active zones of exocytotic release, positioning the Syt ring to clamp fusion and await calcium. Our results suggest the Syt ring is both a Ca2+-sensitive fusion clamp and a high-fidelity sensor for directed docking.


Assuntos
Vesículas Sinápticas , Sinaptotagmina I , Trifosfato de Adenosina/metabolismo , Cálcio/metabolismo , Fosfatidilinositol 4,5-Difosfato/química , Vesículas Sinápticas/metabolismo , Sinaptotagmina I/química
3.
Proc Natl Acad Sci U S A ; 118(5)2021 02 02.
Artigo em Inglês | MEDLINE | ID: mdl-33468631

RESUMO

Controlled release of neurotransmitters stored in synaptic vesicles (SVs) is a fundamental process that is central to all information processing in the brain. This relies on tight coupling of the SV fusion to action potential-evoked presynaptic Ca2+ influx. This Ca2+-evoked release occurs from a readily releasable pool (RRP) of SVs docked to the plasma membrane (PM). The protein components involved in initial SV docking/tethering and the subsequent priming reactions which make the SV release ready are known. Yet, the supramolecular architecture and sequence of molecular events underlying SV release are unclear. Here, we use cryoelectron tomography analysis in cultured hippocampal neurons to delineate the arrangement of the exocytosis machinery under docked SVs. Under native conditions, we find that vesicles are initially "tethered" to the PM by a variable number of protein densities (∼10 to 20 nm long) with no discernible organization. In contrast, we observe exactly six protein masses, each likely consisting of a single SNAREpin with its bound Synaptotagmins and Complexin, arranged symmetrically connecting the "primed" vesicles to the PM. Our data indicate that the fusion machinery is likely organized into a highly cooperative framework during the priming process which enables rapid SV fusion and neurotransmitter release following Ca2+ influx.


Assuntos
Proteínas do Tecido Nervoso/metabolismo , Terminações Pré-Sinápticas/metabolismo , Vesículas Sinápticas/metabolismo , Animais , Células Cultivadas , Microscopia Crioeletrônica , Hipocampo/citologia , Imageamento Tridimensional , Camundongos Endogâmicos C57BL , Neurônios/metabolismo , Neurônios/ultraestrutura , Terminações Pré-Sinápticas/ultraestrutura , Vesículas Sinápticas/ultraestrutura
4.
Proc Natl Acad Sci U S A ; 117(7): 3819-3827, 2020 02 18.
Artigo em Inglês | MEDLINE | ID: mdl-32015138

RESUMO

Synaptotagmin 1 (Syt1) synchronizes neurotransmitter release to action potentials (APs) acting as the fast Ca2+ release sensor and as the inhibitor (clamp) of spontaneous and delayed asynchronous release. While the Syt1 Ca2+ activation mechanism has been well-characterized, how Syt1 clamps transmitter release remains enigmatic. Here we show that C2B domain-dependent oligomerization provides the molecular basis for the Syt1 clamping function. This follows from the investigation of a designed mutation (F349A), which selectively destabilizes Syt1 oligomerization. Using a combination of fluorescence imaging and electrophysiology in neocortical synapses, we show that Syt1F349A is more efficient than wild-type Syt1 (Syt1WT) in triggering synchronous transmitter release but fails to clamp spontaneous and synaptotagmin 7 (Syt7)-mediated asynchronous release components both in rescue (Syt1-/- knockout background) and dominant-interference (Syt1+/+ background) conditions. Thus, we conclude that Ca2+-sensitive Syt1 oligomers, acting as an exocytosis clamp, are critical for maintaining the balance among the different modes of neurotransmitter release.


Assuntos
Neurotransmissores/metabolismo , Sinaptotagmina I/metabolismo , Animais , Exocitose , Camundongos , Camundongos Knockout , Mutação de Sentido Incorreto , Sinapses/metabolismo , Transmissão Sináptica , Sinaptotagmina I/genética
5.
Am J Hum Genet ; 104(4): 721-730, 2019 04 04.
Artigo em Inglês | MEDLINE | ID: mdl-30929742

RESUMO

VAMP2 encodes the vesicular SNARE protein VAMP2 (also called synaptobrevin-2). Together with its partners syntaxin-1A and synaptosomal-associated protein 25 (SNAP25), VAMP2 mediates fusion of synaptic vesicles to release neurotransmitters. VAMP2 is essential for vesicular exocytosis and activity-dependent neurotransmitter release. Here, we report five heterozygous de novo mutations in VAMP2 in unrelated individuals presenting with a neurodevelopmental disorder characterized by axial hypotonia (which had been present since birth), intellectual disability, and autistic features. In total, we identified two single-amino-acid deletions and three non-synonymous variants affecting conserved residues within the C terminus of the VAMP2 SNARE motif. Affected individuals carrying de novo non-synonymous variants involving the C-terminal region presented a more severe phenotype with additional neurological features, including central visual impairment, hyperkinetic movement disorder, and epilepsy or electroencephalography abnormalities. Reconstituted fusion involving a lipid-mixing assay indicated impairment in vesicle fusion as one of the possible associated disease mechanisms. The genetic synaptopathy caused by VAMP2 de novo mutations highlights the key roles of this gene in human brain development and function.


Assuntos
Deficiência Intelectual/genética , Hipotonia Muscular/genética , Transtornos do Neurodesenvolvimento/genética , Neurônios/metabolismo , Sinapses/metabolismo , Proteína 2 Associada à Membrana da Vesícula/genética , Adolescente , Transtorno Autístico/genética , Transtorno Autístico/metabolismo , Encéfalo/diagnóstico por imagem , Criança , Pré-Escolar , Epilepsia/metabolismo , Exocitose , Feminino , Heterozigoto , Humanos , Lipídeos/química , Imageamento por Ressonância Magnética , Masculino , Fusão de Membrana , Transtornos dos Movimentos/genética , Mutação , Transtornos do Neurodesenvolvimento/metabolismo , Neurotransmissores/metabolismo , Fenótipo , Domínios Proteicos , Proteínas R-SNARE/metabolismo , Proteína 2 Associada à Membrana da Vesícula/fisiologia
6.
Small ; 18(51): e2205567, 2022 12.
Artigo em Inglês | MEDLINE | ID: mdl-36328714

RESUMO

Cellular plasma membranes, in their role as gatekeepers to the external environment, host numerous protein assemblies and lipid domains that manage the movement of molecules into and out of cells, regulate electric potential, and direct cell signaling. The ability to investigate these roles on the bilayer at a single-molecule level in a controlled, in vitro environment while preserving lipid and protein architectures will provide deeper insights into how the plasma membrane works. A tunable silicon microarray platform that supports stable, planar, and asymmetric suspended lipid membranes (SLIM) using synthetic and native plasma membrane vesicles for single-molecule fluorescence investigations is developed. Essentially, a "plasma membrane-on-a-chip" system that preserves lipid asymmetry and protein orientation is created. By harnessing the combined potential of this platform with total internal reflection fluorescence (TIRF) microscopy, the authors are able to visualize protein complexes with single-molecule precision. This technology has widespread applications in biological processes that happen at the cellular membranes and will further the knowledge of lipid and protein assemblies.


Assuntos
Bicamadas Lipídicas , Proteínas de Membrana , Bicamadas Lipídicas/metabolismo , Membrana Celular/metabolismo , Membranas , Proteínas de Membrana/metabolismo , Dispositivos Lab-On-A-Chip
7.
Proc Natl Acad Sci U S A ; 115(32): E7624-E7631, 2018 08 07.
Artigo em Inglês | MEDLINE | ID: mdl-30038018

RESUMO

Regulated exocytosis, which underlies many intercellular signaling events, is a tightly controlled process often triggered by calcium ion(s) (Ca2+). Despite considerable insight into the central components involved, namely, the core fusion machinery [soluble N-ethylmaleimide-sensitive factor attachment protein receptor (SNARE)] and the principal Ca2+ sensor [C2-domain proteins like synaptotagmin (Syt)], the molecular mechanism of Ca2+-dependent release has been unclear. Here, we report that the Ca2+-sensitive oligomers of Syt1, a conserved structural feature among several C2-domain proteins, play a critical role in orchestrating Ca2+-coupled vesicular release. This follows from pHluorin-based imaging of single-vesicle exocytosis in pheochromocytoma (PC12) cells showing that selective disruption of Syt1 oligomerization using a structure-directed mutation (F349A) dramatically increases the normally low levels of constitutive exocytosis to effectively occlude Ca2+-stimulated release. We propose a parsimonious model whereby Ca2+-sensitive oligomers of Syt (or a similar C2-domain protein) assembled at the site of docking physically block spontaneous fusion until disrupted by Ca2+ Our data further suggest Ca2+-coupled vesicular release is triggered by removal of the inhibition, rather than by direct activation of the fusion machinery.


Assuntos
Cálcio/metabolismo , Exocitose , Fusão de Membrana/fisiologia , Multimerização Proteica/fisiologia , Sinaptotagmina I/metabolismo , Animais , Cátions Bivalentes/metabolismo , Vesículas Citoplasmáticas/metabolismo , Vesículas Citoplasmáticas/ultraestrutura , Imunofluorescência , Proteínas de Fluorescência Verde/química , Microscopia Eletrônica , Mutação , Células PC12 , Ligação Proteica/fisiologia , Ratos , Proteínas Recombinantes/metabolismo , Sinaptotagmina I/genética , Proteína 2 Associada à Membrana da Vesícula/metabolismo
8.
Proc Natl Acad Sci U S A ; 114(9): 2395-2400, 2017 02 28.
Artigo em Inglês | MEDLINE | ID: mdl-28193892

RESUMO

Although action potentials propagate along axons in an all-or-none manner, subthreshold membrane potential fluctuations at the soma affect neurotransmitter release from synaptic boutons. An important mechanism underlying analog-digital modulation is depolarization-mediated inactivation of presynaptic Kv1-family potassium channels, leading to action potential broadening and increased calcium influx. Previous studies have relied heavily on recordings from blebs formed after axon transection, which may exaggerate the passive propagation of somatic depolarization. We recorded instead from small boutons supplied by intact axons identified with scanning ion conductance microscopy in primary hippocampal cultures and asked how distinct potassium channels interact in determining the basal spike width and its modulation by subthreshold somatic depolarization. Pharmacological or genetic deletion of Kv1.1 broadened presynaptic spikes without preventing further prolongation by brief depolarizing somatic prepulses. A heterozygous mouse model of episodic ataxia type 1 harboring a dominant Kv1.1 mutation had a similar broadening effect on basal spike shape as deletion of Kv1.1; however, spike modulation by somatic prepulses was abolished. These results argue that the Kv1.1 subunit is not necessary for subthreshold modulation of spike width. However, a disease-associated mutant subunit prevents the interplay of analog and digital transmission, possibly by disrupting the normal stoichiometry of presynaptic potassium channels.


Assuntos
Potenciais de Ação , Ataxia/metabolismo , Hipocampo/metabolismo , Canal de Potássio Kv1.1/genética , Mioquimia/metabolismo , Neurônios/metabolismo , Subunidades Proteicas/genética , Animais , Ataxia/genética , Ataxia/patologia , Modelos Animais de Doenças , Expressão Gênica , Hipocampo/patologia , Canal de Potássio Kv1.1/deficiência , Camundongos , Camundongos Knockout , Mioquimia/genética , Mioquimia/patologia , Neurônios/patologia , Técnicas de Patch-Clamp , Terminações Pré-Sinápticas/metabolismo , Terminações Pré-Sinápticas/patologia , Cultura Primária de Células , Subunidades Proteicas/deficiência , Transmissão Sináptica
9.
Ann Neurol ; 81(4): 597-603, 2017 04.
Artigo em Inglês | MEDLINE | ID: mdl-28253535

RESUMO

We report 2 families with undiagnosed recessive presynaptic congenital myasthenic syndrome (CMS). Whole exome or genome sequencing identified segregating homozygous variants in VAMP1: c.51_64delAGGTGGGGGTCCCC in a Kuwaiti family and c.146G>C in an Israeli family. VAMP1 is crucial for vesicle fusion at presynaptic neuromuscular junction (NMJ). Electrodiagnostic examination showed severely low compound muscle action potentials and presynaptic impairment. We assessed the effect of the nonsense mutation on mRNA levels and evaluated the NMJ transmission in VAMP1lew/lew mice, observing neurophysiological features of presynaptic impairment, similar to the patients. Taken together, our findings highlight VAMP1 homozygous mutations as a cause of presynaptic CMS. Ann Neurol 2017;81:597-603.


Assuntos
Síndromes Miastênicas Congênitas/genética , Síndromes Miastênicas Congênitas/fisiopatologia , Junção Neuromuscular/fisiopatologia , Proteína 1 Associada à Membrana da Vesícula/genética , Animais , Pré-Escolar , Códon sem Sentido , Consanguinidade , Modelos Animais de Doenças , Feminino , Homozigoto , Humanos , Israel , Kuweit , Masculino , Camundongos , Camundongos Transgênicos , Linhagem
10.
Proc Natl Acad Sci U S A ; 111(38): 13966-71, 2014 Sep 23.
Artigo em Inglês | MEDLINE | ID: mdl-25201968

RESUMO

The synaptic vesicle protein synaptotagmin-1 (SYT) is required to couple calcium influx to the membrane fusion machinery. However, the structural mechanism underlying this process is unclear. Here we report an unexpected circular arrangement (ring) of SYT's cytosolic domain (C2AB) formed on lipid monolayers in the absence of free calcium ions as revealed by electron microscopy. Rings vary in diameter from 18-43 nm, corresponding to 11-26 molecules of SYT. Continuous stacking of the SYT rings occasionally converts both lipid monolayers and bilayers into protein-coated tubes. Helical reconstruction of the SYT tubes shows that one of the C2 domains (most likely C2B, based on its biochemical properties) interacts with the membrane and is involved in ring formation, and the other C2 domain points radially outward. SYT rings are disrupted rapidly by physiological concentrations of free calcium but not by magnesium. Assuming that calcium-free SYT rings are physiologically relevant, these results suggest a simple and novel mechanism by which SYT regulates neurotransmitter release: The ring acts as a spacer to prevent the completion of the soluble N-ethylmaleimide-sensitive factor activating protein receptor (SNARE) complex assembly, thereby clamping fusion in the absence of calcium. When the ring disassembles in the presence of calcium, fusion proceeds unimpeded.


Assuntos
Cálcio/química , Bicamadas Lipídicas/química , Complexos Multiproteicos/química , Proteínas SNARE/química , Sinaptotagmina I/química , Humanos , Complexos Multiproteicos/ultraestrutura , Estrutura Terciária de Proteína
SELEÇÃO DE REFERÊNCIAS
DETALHE DA PESQUISA