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1.
J Neurosci ; 44(24)2024 Jun 12.
Article in English | MEDLINE | ID: mdl-38749704

ABSTRACT

General anesthetics disrupt brain network dynamics through multiple pathways, in part through postsynaptic potentiation of inhibitory ion channels as well as presynaptic inhibition of neuroexocytosis. Common clinical general anesthetic drugs, such as propofol and isoflurane, have been shown to interact and interfere with core components of the exocytic release machinery to cause impaired neurotransmitter release. Recent studies however suggest that these drugs do not affect all synapse subtypes equally. We investigated the role of the presynaptic release machinery in multiple neurotransmitter systems under isoflurane general anesthesia in the adult female Drosophila brain using live-cell super-resolution microscopy and optogenetic readouts of exocytosis and neural excitability. We activated neurotransmitter-specific mushroom body output neurons and imaged presynaptic function under isoflurane anesthesia. We found that isoflurane impaired synaptic release and presynaptic protein dynamics in excitatory cholinergic synapses. In contrast, isoflurane had little to no effect on inhibitory GABAergic or glutamatergic synapses. These results present a distinct inhibitory mechanism for general anesthesia, whereby neuroexocytosis is selectively impaired at excitatory synapses, while inhibitory synapses remain functional. This suggests a presynaptic inhibitory mechanism that complements the other inhibitory effects of these drugs.


Subject(s)
Brain , Drosophila Proteins , Isoflurane , SNARE Proteins , Synapses , Animals , Synapses/drug effects , Synapses/metabolism , Synapses/physiology , Female , SNARE Proteins/metabolism , Isoflurane/pharmacology , Brain/metabolism , Brain/drug effects , Drosophila Proteins/metabolism , Drosophila Proteins/genetics , Drosophila , Anesthetics, Inhalation/pharmacology , Synaptic Transmission/physiology , Synaptic Transmission/drug effects , Mushroom Bodies/drug effects , Mushroom Bodies/metabolism , Mushroom Bodies/physiology
2.
Brain ; 2024 May 14.
Article in English | MEDLINE | ID: mdl-38743588

ABSTRACT

Charcot-Marie-Tooth disease type 1A (CMT1A) is the most common inherited peripheral neuropathy caused by a 1.5 megabase tandem duplication of chromosome 17 harboring the PMP22 gene. This dose-dependent overexpression of PMP22 results in disrupted Schwann cell myelination of peripheral nerves. To get better insights into the underlying pathogenic mechanisms in CMT1A, we investigated the role of PMP22 duplication on cellular homeostasis in CMT1A mouse models and in patient-derived induced pluripotent stem cells differentiated into Schwann cell precursors (iPSC-SCPs). We performed lipidomic profiling and bulk RNA sequencing on sciatic nerves of two developing CMT1A mouse models and on CMT1A patient derived iPSC-SCPs. For the sciatic nerves of the CMT1A mice, cholesterol and lipid metabolism was dose-dependently downregulated throughout development. For the CMT1A iPSC-SCPs, transcriptional analysis unveiled a strong suppression of genes related to autophagy and lipid metabolism. Gene ontology enrichment analysis identified disturbances in pathways related to plasma membrane components and cell receptor signaling. Lipidomic analysis confirmed the severe dysregulation in plasma membrane lipids, particularly sphingolipids, in CMT1A iPSC-SCPs. Furthermore, we identified reduced lipid raft dynamics, disturbed plasma membrane fluidity, and impaired cholesterol incorporation and storage, all of which could result from altered lipid storage homeostasis in the patient-derived CMT1A iPSC-SCPs. Importantly, this phenotype could be rescued by stimulating autophagy and lipolysis. We conclude that PMP22 duplication disturbs intracellular lipid storage and leads to a more disordered plasma membrane due to an alteration in the lipid composition, which ultimately may lead to impaired axo-glial interactions. Moreover, targeting lipid handling and metabolism could hold promise for the treatment of CMT1A patients.

3.
Nat Commun ; 15(1): 1508, 2024 Feb 19.
Article in English | MEDLINE | ID: mdl-38374041

ABSTRACT

Understanding the mechanisms that drive TDP-43 pathology is integral to combating amyotrophic lateral sclerosis (ALS), frontotemporal lobar degeneration (FTLD) and other neurodegenerative diseases. Here we generated a longitudinal quantitative proteomic map of the cortex from the cytoplasmic TDP-43 rNLS8 mouse model of ALS and FTLD, and developed a complementary open-access webtool, TDP-map ( https://shiny.rcc.uq.edu.au/TDP-map/ ). We identified distinct protein subsets enriched for diverse biological pathways with temporal alterations in protein abundance, including increases in protein folding factors prior to disease onset. This included increased levels of DnaJ homolog subfamily B member 5, DNAJB5, which also co-localized with TDP-43 pathology in diseased human motor cortex. DNAJB5 over-expression decreased TDP-43 aggregation in cell and cortical neuron cultures, and knockout of Dnajb5 exacerbated motor impairments caused by AAV-mediated cytoplasmic TDP-43 expression in mice. Together, these findings reveal molecular mechanisms at distinct stages of ALS and FTLD progression and suggest that protein folding factors could be protective in neurodegenerative diseases.


Subject(s)
Amyotrophic Lateral Sclerosis , Frontotemporal Dementia , Frontotemporal Lobar Degeneration , Protein Aggregates , TDP-43 Proteinopathies , Animals , Humans , Mice , Amyotrophic Lateral Sclerosis/metabolism , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Frontotemporal Dementia/metabolism , Frontotemporal Lobar Degeneration/metabolism , Neurons/metabolism , Proteomics , TDP-43 Proteinopathies/metabolism
4.
J Biol Chem ; 300(1): 105541, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38072052

ABSTRACT

Munc18-interacting proteins (Mints) are multidomain adaptors that regulate neuronal membrane trafficking, signaling, and neurotransmission. Mint1 and Mint2 are highly expressed in the brain with overlapping roles in the regulation of synaptic vesicle fusion required for neurotransmitter release by interacting with the essential synaptic protein Munc18-1. Here, we have used AlphaFold2 to identify and then validate the mechanisms that underpin both the specific interactions of neuronal Mint proteins with Munc18-1 as well as their wider interactome. We found that a short acidic α-helical motif within Mint1 and Mint2 is necessary and sufficient for specific binding to Munc18-1 and binds a conserved surface on Munc18-1 domain3b. In Munc18-1/2 double knockout neurosecretory cells, mutation of the Mint-binding site reduces the ability of Munc18-1 to rescue exocytosis, and although Munc18-1 can interact with Mint and Sx1a (Syntaxin1a) proteins simultaneously in vitro, we find that they have mutually reduced affinities, suggesting an allosteric coupling between the proteins. Using AlphaFold2 to then examine the entire cellular network of putative Mint interactors provides a structural model for their assembly with a variety of known and novel regulatory and cargo proteins including ADP-ribosylation factor (ARF3/ARF4) small GTPases and the AP3 clathrin adaptor complex. Validation of Mint1 interaction with a new predicted binder TJAP1 (tight junction-associated protein 1) provides experimental support that AlphaFold2 can correctly predict interactions across such large-scale datasets. Overall, our data provide insights into the diversity of interactions mediated by the Mint family and show that Mints may help facilitate a key trigger point in SNARE (soluble N-ethylmaleimide-sensitive factor attachment receptor) complex assembly and vesicle fusion.


Subject(s)
Mentha , Adaptor Proteins, Signal Transducing/metabolism , Cell Membrane/metabolism , Mentha/metabolism , Munc18 Proteins/metabolism , Nerve Tissue Proteins/metabolism , Neurons/metabolism , Protein Binding , SNARE Proteins/genetics , SNARE Proteins/metabolism , Syntaxin 1/metabolism , Humans , Animals , Rats , PC12 Cells
5.
Cell Mol Life Sci ; 80(4): 95, 2023 Mar 17.
Article in English | MEDLINE | ID: mdl-36930291

ABSTRACT

Aggregation of the RNA-binding protein, TDP-43, is the unifying hallmark of amyotrophic lateral sclerosis and frontotemporal dementia. TDP-43-related neurodegeneration involves multiple changes to normal physiological TDP-43, which undergoes nuclear depletion, cytoplasmic mislocalisation, post-translational modification, and aberrant liquid-liquid phase separation, preceding inclusion formation. Along with toxic cytoplasmic aggregation, concurrent depletion and dysfunction of normal nuclear TDP-43 in cells with TDP-43 pathology is likely a key potentiator of neurodegeneration, but is not well understood. To define processes driving TDP-43 dysfunction, we used CRISPR/Cas9-mediated fluorescent tagging to investigate how disease-associated stressors and pathological TDP-43 alter abundance, localisation, self-assembly, aggregation, solubility, and mobility dynamics of normal nuclear TDP-43 over time in live cells. Oxidative stress stimulated liquid-liquid phase separation of endogenous TDP-43 into droplet-like puncta, or spherical shell-like anisosomes. Further, nuclear RNA-binding-ablated or acetylation-mimicking TDP-43 readily sequestered and depleted free normal nuclear TDP-43 into dynamic anisosomes, in which recruited endogenous TDP-43 proteins remained soluble and highly mobile. Large, phosphorylated inclusions formed by nuclear or cytoplasmic aggregation-prone TDP-43 mutants also caused sequestration, but rendered endogenous TDP-43 immobile and insoluble, indicating pathological transition. These findings suggest that RNA-binding deficiency and post-translational modifications including acetylation exacerbate TDP-43 aggregation and dysfunction by driving sequestration, mislocalisation, and depletion of normal nuclear TDP-43 in neurodegenerative diseases.


Subject(s)
Amyotrophic Lateral Sclerosis , Frontotemporal Dementia , Humans , Amyotrophic Lateral Sclerosis/metabolism , Cell Nucleus/metabolism , Cytoplasm/metabolism , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Frontotemporal Dementia/genetics , Frontotemporal Dementia/metabolism
6.
Neuron ; 111(9): 1402-1422.e13, 2023 05 03.
Article in English | MEDLINE | ID: mdl-36827984

ABSTRACT

Neuronal activity causes use-dependent decline in protein function. However, it is unclear how this is coupled to local quality control mechanisms. We show in Drosophila that the endocytic protein Endophilin-A (EndoA) connects activity-induced calcium influx to synaptic autophagy and neuronal survival in a Parkinson disease-relevant fashion. Mutations in the disordered loop, including a Parkinson disease-risk mutation, render EndoA insensitive to neuronal stimulation and affect protein dynamics: when EndoA is more flexible, its mobility in membrane nanodomains increases, making it available for autophagosome formation. Conversely, when EndoA is more rigid, its mobility reduces, blocking stimulation-induced autophagy. Balanced stimulation-induced autophagy is required for dopagminergic neuron survival, and a variant in the human ENDOA1 disordered loop conferring risk to Parkinson disease also blocks nanodomain protein mobility and autophagy both in vivo and in human-induced dopaminergic neurons. Thus, we reveal a mechanism that neurons use to connect neuronal activity to local autophagy and that is critical for neuronal survival.


Subject(s)
Parkinson Disease , Animals , Humans , Autophagy/genetics , Calcium/metabolism , Dopaminergic Neurons/metabolism , Drosophila/metabolism , Mutation/genetics , Parkinson Disease/genetics , Parkinson Disease/metabolism
7.
Methods Mol Biol ; 2565: 311-327, 2023.
Article in English | MEDLINE | ID: mdl-36205903

ABSTRACT

Neuronal and hormonal communication relies on the exocytic fusion of vesicles containing neurotransmitters and hormones with the plasma membrane. This process is tightly regulated by key protein-protein and protein-lipid interactions and culminates in the soluble N-ethylmaleimide-sensitive factor attachment protein receptor (SNARE) complex formation and zippering that promotes vesicular fusion. Located on both sides of the vesicle and the plasma membrane, the zippering of the SNARE complex acts to overcome the energy barrier afforded by the repulsive electrostatic force stemming from apposing two negatively charged phospholipid membranes. Another component opposing the timely organization of the fusion machinery is thermal Brownian energy that tends to homogenize all cellular molecules by constantly switching their motions and directions through short-lived molecular interactions. Much less is known of the mechanisms counteracting these chaotic forces, allowing seamless cellular functions such as exocytic fusion. Super-resolution microscopy techniques such as single-molecule imaging have proven useful to start uncovering these nanoscale mechanisms. Here, we used single-particle tracking photoactivatable localization microscopy (sptPALM) to track syntaxin-1-mEos, a SNARE protein located on the plasma membrane of cultured bovine chromaffin cells. We demonstrate that syntaxin-1-mEos undergoes dramatic change in its mobility in response to secretagogue stimulation leading to increased nanoclustering. These nanoclusters are transient in nature and likely to provide docked vesicles with a molecular environment conducive to exocytic fusion.


Subject(s)
Chromaffin Cells , Single Molecule Imaging , Animals , Cattle , Chromaffin Cells/metabolism , Exocytosis , Hormones , Membrane Fusion/physiology , Phospholipids , SNARE Proteins/metabolism , Secretagogues , Soluble N-Ethylmaleimide-Sensitive Factor Attachment Proteins , Syntaxin 1/metabolism
8.
Trends Genet ; 38(9): 889-891, 2022 09.
Article in English | MEDLINE | ID: mdl-35773026

ABSTRACT

Pathology formed by the protein TDP-43 (TAR DNA binding protein 43) is the hallmark of several neurodegenerative diseases. Recent studies by Ma et al. and Brown et al. reveal that loss of TDP-43 function causes inclusion of cryptic exons in specific mRNAs, including the synaptic gene UNC13A, a known genetic risk factor for amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). These findings suggest new disease mechanisms.


Subject(s)
Amyotrophic Lateral Sclerosis , Frontotemporal Dementia , Neurodegenerative Diseases , Amyotrophic Lateral Sclerosis/genetics , Amyotrophic Lateral Sclerosis/pathology , Exons , Frontotemporal Dementia/genetics , Frontotemporal Dementia/pathology , Humans , Neurodegenerative Diseases/genetics , RNA, Messenger/metabolism
9.
J Cell Biol ; 220(3)2021 03 01.
Article in English | MEDLINE | ID: mdl-33496726

ABSTRACT

Caveolae are specialized domains of the vertebrate cell surface with a well-defined morphology and crucial roles in cell migration and mechanoprotection. Unique compositions of proteins and lipids determine membrane architectures. The precise caveolar lipid profile and the roles of the major caveolar structural proteins, caveolins and cavins, in selectively sorting lipids have not been defined. Here, we used quantitative nanoscale lipid mapping together with molecular dynamic simulations to define the caveolar lipid profile. We show that caveolin-1 (CAV1) and cavin1 individually sort distinct plasma membrane lipids. Intact caveolar structures composed of both CAV1 and cavin1 further generate a unique lipid nano-environment. The caveolar lipid sorting capability includes selectivities for lipid headgroups and acyl chains. Because lipid headgroup metabolism and acyl chain remodeling are tightly regulated, this selective lipid sorting may allow caveolae to act as transit hubs to direct communications among lipid metabolism, vesicular trafficking, and signaling.


Subject(s)
Caveolae/metabolism , Caveolin 1/metabolism , Lipids/chemistry , Animals , Caveolin 1/chemistry , Cell Membrane/metabolism , Dogs , Humans , MCF-7 Cells , Madin Darby Canine Kidney Cells , Models, Biological , Molecular Dynamics Simulation , Mutant Proteins/metabolism , Phosphatidylserines/chemistry , Phosphatidylserines/metabolism , Protein Binding , Protein Domains
10.
Proc Natl Acad Sci U S A ; 117(48): 30476-30487, 2020 12 01.
Article in English | MEDLINE | ID: mdl-33214152

ABSTRACT

None of the current superresolution microscopy techniques can reliably image the changes in endogenous protein nanoclustering dynamics associated with specific conformations in live cells. Single-domain nanobodies have been invaluable tools to isolate defined conformational states of proteins, and we reasoned that expressing these nanobodies coupled to single-molecule imaging-amenable tags could allow superresolution analysis of endogenous proteins in discrete conformational states. Here, we used anti-GFP nanobodies tagged with photoconvertible mEos expressed as intrabodies, as a proof-of-concept to perform single-particle tracking on a range of GFP proteins expressed in live cells, neurons, and small organisms. We next expressed highly specialized nanobodies that target conformation-specific endogenous ß2-adrenoreceptor (ß2-AR) in neurosecretory cells, unveiling real-time mobility behaviors of activated and inactivated endogenous conformers during agonist treatment in living cells. We showed that activated ß2-AR (Nb80) is highly immobile and organized in nanoclusters. The Gαs-GPCR complex detected with Nb37 displayed higher mobility with surprisingly similar nanoclustering dynamics to that of Nb80. Activated conformers are highly sensitive to dynamin inhibition, suggesting selective targeting for endocytosis. Inactivated ß2-AR (Nb60) molecules are also largely immobile but relatively less sensitive to endocytic blockade. Expression of single-domain nanobodies therefore provides a unique opportunity to capture highly transient changes in the dynamic nanoscale organization of endogenous proteins.


Subject(s)
Models, Molecular , Protein Conformation , Receptors, Adrenergic, beta-2/chemistry , Single Molecule Imaging , Single-Domain Antibodies/chemistry , Animals , Cell Line , Endocytosis , Fluorescent Antibody Technique , Gene Expression , Genes, Reporter , Humans , Membrane Proteins/chemistry , Membrane Proteins/metabolism , Mice , Protein Binding , Receptors, Adrenergic, beta-2/genetics , Receptors, Adrenergic, beta-2/metabolism , Recombinant Fusion Proteins , Single Molecule Imaging/methods , Single-Domain Antibodies/metabolism , Zebrafish
11.
Neuropharmacology ; 169: 107554, 2020 06 01.
Article in English | MEDLINE | ID: mdl-30826343

ABSTRACT

Communication between cells relies on regulated exocytosis, a multi-step process that involves the docking, priming and fusion of vesicles with the plasma membrane, culminating in the release of neurotransmitters and hormones. Key proteins and lipids involved in exocytosis are subjected to Brownian movement and constantly switch between distinct motion states which are governed by short-lived molecular interactions. Critical biochemical reactions between exocytic proteins that occur in the confinement of nanodomains underpin the precise sequence of priming steps which leads to the fusion of vesicles. The advent of super-resolution microscopy techniques has provided the means to visualize individual molecules on the plasma membrane with high spatiotemporal resolution in live cells. These techniques are revealing a highly dynamic nature of the nanoscale organization of the exocytic machinery. In this review, we focus on soluble N-ethylmaleimide-sensitive factor attachment receptor (SNARE) syntaxin-1, which mediates vesicular fusion. Syntaxin-1 is highly mobile at the plasma membrane, and its inherent speed allows fast assembly and disassembly of syntaxin-1 nanoclusters which are associated with exocytosis. We reflect on recent studies which have revealed the mechanisms regulating syntaxin-1 nanoclustering on the plasma membrane and draw inferences on the effect of synaptic activity, phosphoinositides, N-ethylmaleimide-sensitive factor (NSF), α-soluble NSF attachment protein (α-SNAP) and SNARE complex assembly on the dynamic nanoscale organization of syntaxin-1. This article is part of the special issue entitled 'Mobility and trafficking of neuronal membrane proteins'.


Subject(s)
Cell Membrane/metabolism , Exocytosis/physiology , Membrane Fusion/physiology , Nanoparticles/metabolism , Synapses/metabolism , Syntaxin 1/metabolism , Animals , Cell Membrane/chemistry , Humans , Markov Chains , Nanoparticles/analysis , Protein Binding/physiology , Protein Transport/physiology , Synapses/chemistry , Synaptic Vesicles/chemistry , Synaptic Vesicles/metabolism , Syntaxin 1/analysis
12.
Trends Cell Biol ; 28(9): 685-697, 2018 09.
Article in English | MEDLINE | ID: mdl-29759816

ABSTRACT

Cellular communication relies on fusion of secretory vesicles with the plasma membrane, following dynamic events that change the micro- and nanoscale environment of the approaching vesicles in the vicinity of docking sites. Visualization of fine cortical actin network structures and their interactions with vesicle and plasma membrane has recently been facilitated by the development of new imaging technologies. Consequently, a greater understanding is emerging of the role of the cortical actin network on controlling secretory vesicles as they undergo docking, priming, and fusion in exocytic hot spots. In this review, we propose a mechanistic framework underpinning the mesoscopic properties of the cortical actin and discuss how molecular coupling of these pleiotropic effects orchestrate every single step of regulated exocytosis.


Subject(s)
Actins/metabolism , Exocytosis , Animals , Humans
14.
Cell Rep ; 22(2): 427-440, 2018 01 09.
Article in English | MEDLINE | ID: mdl-29320738

ABSTRACT

Propofol is the most commonly used general anesthetic in humans. Our understanding of its mechanism of action has focused on its capacity to potentiate inhibitory systems in the brain. However, it is unknown whether other neural mechanisms are involved in general anesthesia. Here, we demonstrate that the synaptic release machinery is also a target. Using single-particle tracking photoactivation localization microscopy, we show that clinically relevant concentrations of propofol and etomidate restrict syntaxin1A mobility on the plasma membrane, whereas non-anesthetic analogs produce the opposite effect and increase syntaxin1A mobility. Removing the interaction with the t-SNARE partner SNAP-25 abolishes propofol-induced syntaxin1A confinement, indicating that syntaxin1A and SNAP-25 together form an emergent drug target. Impaired syntaxin1A mobility and exocytosis under propofol are both rescued by co-expressing a truncated syntaxin1A construct that interacts with SNAP-25. Our results suggest that propofol interferes with a step in SNARE complex formation, resulting in non-functional syntaxin1A nanoclusters.


Subject(s)
Anesthetics, General/therapeutic use , Synaptic Vesicles/metabolism , Syntaxin 1/metabolism , Anesthetics, General/pharmacology , Humans
15.
J Vis Exp ; (131)2018 01 14.
Article in English | MEDLINE | ID: mdl-29364242

ABSTRACT

An increasing number of super-resolution microscopy techniques are helping to uncover the mechanisms that govern the nanoscale cellular world. Single-molecule imaging is gaining momentum as it provides exceptional access to the visualization of individual molecules in living cells. Here, we describe a technique that we developed to perform single-particle tracking photo-activated localization microscopy (sptPALM) in Drosophila larvae. Synaptic communication relies on key presynaptic proteins that act by docking, priming, and promoting the fusion of neurotransmitter-containing vesicles with the plasma membrane. A range of protein-protein and protein-lipid interactions tightly regulates these processes and the presynaptic proteins therefore exhibit changes in mobility associated with each of these key events. Investigating how mobility of these proteins correlates with their physiological function in an intact live animal is essential to understanding their precise mechanism of action. Extracting protein mobility with high resolution in vivo requires overcoming limitations such as optical transparency, accessibility, and penetration depth. We describe how photoconvertible fluorescent proteins tagged to the presynaptic protein Syntaxin-1A can be visualized via slight oblique illumination and tracked at the motor nerve terminal or along the motor neuron axon of the third instar Drosophila larva.


Subject(s)
Drosophila/physiology , Neurotransmitter Agents/physiology , Presynaptic Terminals/physiology , Animals
17.
Nat Commun ; 8: 13660, 2017 01 03.
Article in English | MEDLINE | ID: mdl-28045048

ABSTRACT

Syntaxin1A is organized in nanoclusters that are critical for the docking and priming of secretory vesicles from neurosecretory cells. Whether and how these nanoclusters are affected by neurotransmitter release in nerve terminals from a living organism is unknown. Here we imaged photoconvertible syntaxin1A-mEos2 in the motor nerve terminal of Drosophila larvae by single-particle tracking photoactivation localization microscopy. Opto- and thermo-genetic neuronal stimulation increased syntaxin1A-mEos2 mobility, and reduced the size and molecular density of nanoclusters, suggesting an activity-dependent release of syntaxin1A from the confinement of nanoclusters. Syntaxin1A mobility was increased by mutating its polyphosphoinositide-binding site or preventing SNARE complex assembly via co-expression of tetanus toxin light chain. In contrast, syntaxin1A mobility was reduced by preventing SNARE complex disassembly. Our data demonstrate that polyphosphoinositide favours syntaxin1A trapping, and show that SNARE complex disassembly leads to syntaxin1A dissociation from nanoclusters. Lateral diffusion and trapping of syntaxin1A in nanoclusters therefore dynamically regulate neurotransmitter release.


Subject(s)
Drosophila Proteins/genetics , Drosophila melanogaster/physiology , Phosphatidylinositol Phosphates/metabolism , Synaptic Transmission , Syntaxin 1/genetics , Animals , Binding Sites , Diffusion , Drosophila Proteins/metabolism , Drosophila melanogaster/cytology , Gene Expression Regulation , Larva/cytology , Larva/physiology , Metalloendopeptidases/genetics , Metalloendopeptidases/metabolism , Molecular Imaging/methods , Motor Neurons/metabolism , Motor Neurons/ultrastructure , Optogenetics , Protein Binding , Protein Transport , SNARE Proteins/genetics , SNARE Proteins/metabolism , Synapses/metabolism , Synapses/ultrastructure , Syntaxin 1/metabolism , Tetanus Toxin/genetics , Tetanus Toxin/metabolism
18.
J Cell Biol ; 215(2): 277-292, 2016 Oct 24.
Article in English | MEDLINE | ID: mdl-27810917

ABSTRACT

Our understanding of endocytic pathway dynamics is severely restricted by the diffraction limit of light microscopy. To address this, we implemented a novel technique based on the subdiffractional tracking of internalized molecules (sdTIM). This allowed us to image anti-green fluorescent protein Atto647N-tagged nanobodies trapped in synaptic vesicles (SVs) from live hippocampal nerve terminals expressing vesicle-associated membrane protein 2 (VAMP2)-pHluorin with 36-nm localization precision. Our results showed that, once internalized, VAMP2-pHluorin/Atto647N-tagged nanobodies exhibited a markedly lower mobility than on the plasma membrane, an effect that was reversed upon restimulation in presynapses but not in neighboring axons. Using Bayesian model selection applied to hidden Markov modeling, we found that SVs oscillated between diffusive states or a combination of diffusive and transport states with opposite directionality. Importantly, SVs exhibiting diffusive motion were relatively less likely to switch to the transport motion. These results highlight the potential of the sdTIM technique to provide new insights into the dynamics of endocytic pathways in a wide variety of cellular settings.


Subject(s)
Endocytosis , Motion , Optical Phenomena , Synaptic Vesicles/metabolism , Animals , Axons/metabolism , Bayes Theorem , Cell Membrane/metabolism , Green Fluorescent Proteins/metabolism , Hippocampus/cytology , Imaging, Three-Dimensional , Markov Chains , Neurons/metabolism , Rats, Sprague-Dawley , Single-Domain Antibodies/metabolism , Stochastic Processes , Synapses/metabolism , Vesicle-Associated Membrane Protein 2/metabolism
19.
J Cell Biol ; 214(7): 847-58, 2016 09 26.
Article in English | MEDLINE | ID: mdl-27646276

ABSTRACT

Munc18-1 and syntaxin-1A control SNARE-dependent neuroexocytosis and are organized in nanodomains on the plasma membrane of neurons and neurosecretory cells. Deciphering the intra- and intermolecular steps via which they prepare secretory vesicles (SVs) for fusion is key to understanding neuronal and hormonal communication. Here, we demonstrate that expression of a priming-deficient mutant lacking 17 residues of the domain 3a hinge-loop (Munc18-1(Δ317-333)) in PC12 cells engineered to knockdown Munc18-1/2 markedly prolonged SV docking. Single-molecule analysis revealed nonhomogeneous diffusion of Munc18-1 and syntaxin-1A in and out of partially overlapping nanodomains. Whereas Munc18-1(WT) mobility increased in response to stimulation, syntaxin-1A became less mobile. These Munc18-1 and syntaxin-1A diffusional switches were blocked by the expression of Munc18-1(Δ317-333), suggesting that a conformational change in the Munc18-1 hinge-loop controls syntaxin-1A and subsequent SNARE complex assembly. Accordingly, syntaxin-1A confinement was prevented by expression of botulinum neurotoxin type E. The Munc18-1 domain 3a hinge-loop therefore controls syntaxin-1A engagement into SNARE complex formation during priming.


Subject(s)
Munc18 Proteins/chemistry , Munc18 Proteins/metabolism , Nanoparticles/chemistry , SNARE Proteins/metabolism , Secretory Vesicles/metabolism , Syntaxin 1/chemistry , Syntaxin 1/metabolism , Animals , Area Under Curve , Botulinum Toxins/metabolism , Humans , Models, Molecular , PC12 Cells , Protein Domains , Protein Structure, Secondary , Rats
20.
Anesthesiology ; 122(5): 1060-74, 2015 May.
Article in English | MEDLINE | ID: mdl-25738637

ABSTRACT

BACKGROUND: Recent evidence suggests that general anesthetics activate endogenous sleep pathways, yet this mechanism cannot explain the entirety of general anesthesia. General anesthetics could disrupt synaptic release processes, as previous work in Caenorhabditis elegans and in vitro cell preparations suggested a role for the soluble NSF attachment protein receptor protein, syntaxin1A, in mediating resistance to several general anesthetics. The authors questioned whether the syntaxin1A-mediated effects found in these reductionist systems reflected a common anesthetic mechanism distinct from sleep-related processes. METHODS: Using the fruit fly model, Drosophila melanogaster, the authors investigated the relevance of syntaxin1A manipulations to general anesthesia. The authors used different behavioral and electrophysiological endpoints to test the effect of syntaxin1A mutations on sensitivity to isoflurane. RESULTS: The authors found two syntaxin1A mutations that confer opposite general anesthesia phenotypes: syxH3-C, a 14-amino acid deletion mutant, is resistant to isoflurane (n = 40 flies), and syxKARRAA, a strain with two amino acid substitutions, is hypersensitive to the drug (n = 40 flies). Crucially, these opposing effects are maintained across different behavioral endpoints and life stages. The authors determined the isoflurane sensitivity of syxH3-C at the larval neuromuscular junction to assess effects on synaptic release. The authors find that although isoflurane slightly attenuates synaptic release in wild-type animals (n = 8), syxH3-C preserves synaptic release in the presence of isoflurane (n = 8). CONCLUSION: The study results are evidence that volatile general anesthetics target synaptic release mechanisms; in addition to first activating sleep pathways, a major consequence of these drugs may be to decrease the efficacy of neurotransmission.


Subject(s)
Anesthetics, Inhalation/pharmacology , Drosophila Proteins/physiology , Drug Resistance/genetics , Hypersensitivity/genetics , Isoflurane/pharmacology , Qa-SNARE Proteins/physiology , Animals , Behavior, Animal/drug effects , Drosophila Proteins/genetics , Drosophila melanogaster , Larva , Locomotion/drug effects , Mutation , Neuromuscular Junction/drug effects , Neurotransmitter Agents/metabolism , Qa-SNARE Proteins/genetics , Reflex, Startle , Sleep/drug effects
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