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1.
Cereb Cortex ; 34(8)2024 Aug 01.
Article in English | MEDLINE | ID: mdl-39106175

ABSTRACT

Functional and structural studies investigating macroscopic connectivity in the human cerebral cortex suggest that high-order associative regions exhibit greater connectivity compared to primary ones. However, the synaptic organization of these brain regions remains unexplored. In the present work, we conducted volume electron microscopy to investigate the synaptic organization of the human brain obtained at autopsy. Specifically, we examined layer III of Brodmann areas 17, 3b, and 4, as representative areas of primary visual, somatosensorial, and motor cortex. Additionally, we conducted comparative analyses with our previous datasets of layer III from temporopolar and anterior cingulate associative cortical regions (Brodmann areas 24, 38, and 21). 9,690 synaptic junctions were 3D reconstructed, showing that certain synaptic characteristics are specific to particular regions. The number of synapses per volume, the proportion of the postsynaptic targets, and the synaptic size may distinguish one region from another, regardless of whether they are associative or primary cortex. By contrast, other synaptic characteristics were common to all analyzed regions, such as the proportion of excitatory and inhibitory synapses, their shapes, their spatial distribution, and a higher proportion of synapses located on dendritic spines. The present results provide further insights into the synaptic organization of the human cerebral cortex.


Subject(s)
Cerebral Cortex , Synapses , Volume Electron Microscopy , Adult , Aged , Female , Humans , Male , Middle Aged , Cerebral Cortex/ultrastructure , Dendritic Spines/ultrastructure , Imaging, Three-Dimensional/methods , Synapses/ultrastructure
2.
Commun Biol ; 7(1): 796, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38951162

ABSTRACT

The highly complex structure of the brain requires an approach that can unravel its connectivity. Using volume electron microscopy and a dedicated software we can trace and measure all nerve fibers present within different samples of brain tissue. With this software tool, individual dendrites and axons are traced, obtaining a simplified "skeleton" of each fiber, which is linked to its corresponding synaptic contacts. The result is an intricate meshwork of axons and dendrites interconnected by a cloud of synaptic junctions. To test this methodology, we apply it to the stratum radiatum of the hippocampus and layers 1 and 3 of the somatosensory cortex of the mouse. We find that nerve fibers are densely packed in the neuropil, reaching up to 9 kilometers per cubic mm. We obtain the number of synapses, the number and lengths of dendrites and axons, the linear densities of synapses established by dendrites and axons, and their location on dendritic spines and shafts. The quantitative data obtained through this method enable us to identify subtle traits and differences in the synaptic organization of the samples, which might have been overlooked in a qualitative analysis.


Subject(s)
Microscopy, Electron , Nerve Fibers , Synapses , Animals , Mice , Microscopy, Electron/methods , Nerve Fibers/ultrastructure , Synapses/ultrastructure , Axons/ultrastructure , Dendrites/ultrastructure , Brain/ultrastructure , Somatosensory Cortex/ultrastructure , Mice, Inbred C57BL , Male , Software , Hippocampus/ultrastructure , Hippocampus/cytology , Volume Electron Microscopy
3.
J Vis Exp ; (209)2024 Jul 12.
Article in English | MEDLINE | ID: mdl-39072644

ABSTRACT

The retina comprises numerous cells forming diverse neuronal circuits, which constitute the first stage of the visual pathway. Each circuit is characterized by unique features and distinct neurotransmitters, determining its role and functional significance. Given the intricate cell types within its structure, the complexity of neuronal circuits in the retina poses challenges for exploration. To better investigate retinal circuits and cross-talk, such as the link between cone and rod pathways, and precise molecular localization (neurotransmitters or neuropeptides), such as the presence of substance P-like immunoreactivity in the mouse retina, we employed a pre-embedding immunoelectron microscopy (immuno-EM) method to explore synaptic connections and organization. This approach enables us to pinpoint specific intercellular synaptic connections and precise molecular localization and could play a guiding role in exploring its function. This article describes the protocol, reagents used, and detailed steps, including (1) retina fixation preparation, (2) pre-embedding immunostaining, and (3) post-fixation and embedding.


Subject(s)
Microscopy, Immunoelectron , Retina , Animals , Retina/metabolism , Retina/chemistry , Mice , Microscopy, Immunoelectron/methods , Tissue Embedding/methods , Synapses/metabolism , Synapses/ultrastructure , Synapses/chemistry
4.
Int J Mol Sci ; 25(13)2024 Jul 06.
Article in English | MEDLINE | ID: mdl-39000549

ABSTRACT

Synaptic ribbons are the eponymous specializations of continuously active ribbon synapses. They are primarily composed of the RIBEYE protein that consists of a unique amino-terminal A-domain and carboxy-terminal B-domain that is largely identical to the ubiquitously expressed transcriptional regulator protein CtBP2. Both RIBEYE A-domain and RIBEYE B-domain are essential for the assembly of the synaptic ribbon, as shown by previous analyses of RIBEYE knockout and knockin mice and related investigations. How exactly the synaptic ribbon is assembled from RIBEYE subunits is not yet clear. To achieve further insights into the architecture of the synaptic ribbon, we performed analytical post-embedding immunogold-electron microscopy with direct gold-labelled primary antibodies against RIBEYE A-domain and RIBEYE B-domain for improved ultrastructural resolution. With direct gold-labelled monoclonal antibodies against RIBEYE A-domain and RIBEYE B-domain, we found that both domains show a very similar localization within the synaptic ribbon of mouse photoreceptor synapses, with no obvious differential gradient between the centre and surface of the synaptic ribbon. These data favour a model of the architecture of the synaptic ribbon in which the RIBEYE A-domain and RIBEYE B-domain are located similar distances from the midline of the synaptic ribbon.


Subject(s)
Antibodies, Monoclonal , Synapses , Animals , Mice , Synapses/ultrastructure , Synapses/metabolism , Antibodies, Monoclonal/immunology , Alcohol Oxidoreductases/metabolism , Alcohol Oxidoreductases/chemistry , Co-Repressor Proteins/metabolism , Immunohistochemistry/methods , Protein Domains , Microscopy, Immunoelectron/methods , Nerve Tissue Proteins/metabolism , Nerve Tissue Proteins/immunology
5.
J Vis Exp ; (208)2024 Jun 07.
Article in English | MEDLINE | ID: mdl-38912821

ABSTRACT

Retinal organoids (ROs) are a three-dimensional culture system mimicking human retinal features that have differentiated from induced pluripotent stem cells (iPSCs) under specific conditions. Synapse development and maturation in ROs have been studied immunocytochemically and functionally. However, the direct evidence of the synaptic contact ultrastructure is limited, containing both special ribbon synapses and conventional chemical synapses. Transmission electron microscopy (TEM) is characterized by high resolution and a respectable history elucidating retinal development and synapse maturation in humans and various species. It is a powerful tool to explore synaptic structure in ROs and is widely used in the research field of ROs. Therefore, to better explore the structure of RO synaptic contacts at the nanoscale and obtain high-quality microscopic evidence, we developed a simple and repeatable method of RO TEM sample preparation. This paper describes the protocol, reagents used, and detailed steps, including RO fixation preparation, post fixation, embedding, and visualization.


Subject(s)
Microscopy, Electron, Transmission , Organoids , Retina , Organoids/ultrastructure , Organoids/cytology , Retina/cytology , Retina/ultrastructure , Microscopy, Electron, Transmission/methods , Humans , Induced Pluripotent Stem Cells/cytology , Induced Pluripotent Stem Cells/ultrastructure , Animals , Synapses/ultrastructure
6.
Proc Natl Acad Sci U S A ; 121(27): e2403136121, 2024 Jul 02.
Article in English | MEDLINE | ID: mdl-38923992

ABSTRACT

The spatial distribution of proteins and their arrangement within the cellular ultrastructure regulates the opening of α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid (AMPA) receptors in response to glutamate release at the synapse. Fluorescence microscopy imaging revealed that the postsynaptic density (PSD) and scaffolding proteins in the presynaptic active zone (AZ) align across the synapse to form a trans-synaptic "nanocolumn," but the relation to synaptic vesicle release sites is uncertain. Here, we employ focused-ion beam (FIB) milling and cryoelectron tomography to image synapses under near-native conditions. Improved image contrast, enabled by FIB milling, allows simultaneous visualization of supramolecular nanoclusters within the AZ and PSD and synaptic vesicles. Surprisingly, membrane-proximal synaptic vesicles, which fuse to release glutamate, are not preferentially aligned with AZ or PSD nanoclusters. These synaptic vesicles are linked to the membrane by peripheral protein densities, often consistent in size and shape with Munc13, as well as globular densities bridging the synaptic vesicle and plasma membrane, consistent with prefusion complexes of SNAREs, synaptotagmins, and complexin. Monte Carlo simulations of synaptic transmission events using biorealistic models guided by our tomograms predict that clustering AMPARs within PSD nanoclusters increases the variability of the postsynaptic response but not its average amplitude. Together, our data support a model in which synaptic strength is tuned at the level of single vesicles by the spatial relationship between scaffolding nanoclusters and single synaptic vesicle fusion sites.


Subject(s)
Electron Microscope Tomography , Synaptic Vesicles , Synaptic Vesicles/metabolism , Synaptic Vesicles/ultrastructure , Electron Microscope Tomography/methods , Animals , Rats , Post-Synaptic Density/metabolism , Post-Synaptic Density/ultrastructure , Cryoelectron Microscopy/methods , Synapses/metabolism , Synapses/ultrastructure
7.
J Neurosci ; 44(23)2024 Jun 05.
Article in English | MEDLINE | ID: mdl-38839340

ABSTRACT

A decade ago, in 2013, and over the course of 4 summer months, three separate observations were reported that each shed light independently on a new molecular organization that fundamentally reshaped our perception of excitatory synaptic transmission (Fukata et al., 2013; MacGillavry et al., 2013; Nair et al., 2013). This discovery unveiled an intricate arrangement of AMPA-type glutamate receptors and their principal scaffolding protein PSD-95, at synapses. This breakthrough was made possible, thanks to advanced super-resolution imaging techniques. It fundamentally changed our understanding of excitatory synaptic architecture and paved the way for a brand-new area of research. In this Progressions article, the primary investigators of the nanoscale organization of synapses have come together to chronicle the tale of their discovery. We recount the initial inquiry that prompted our research, the preceding studies that inspired our work, the technical obstacles that were encountered, and the breakthroughs that were made in the subsequent decade in the realm of nanoscale synaptic transmission. We review the new discoveries made possible by the democratization of super-resolution imaging techniques in the field of excitatory synaptic physiology and architecture, first by the extension to other glutamate receptors and to presynaptic proteins and then by the notion of trans-synaptic organization. After describing the organizational modifications occurring in various pathologies, we discuss briefly the latest technical developments made possible by super-resolution imaging and emerging concepts in synaptic physiology.


Subject(s)
Receptors, AMPA , Synapses , Receptors, AMPA/metabolism , Receptors, AMPA/chemistry , Synapses/metabolism , Synapses/ultrastructure , Animals , Humans , Synaptic Transmission/physiology , Nanostructures/chemistry
8.
Glia ; 72(10): 1785-1800, 2024 Oct.
Article in English | MEDLINE | ID: mdl-38856149

ABSTRACT

Most excitatory synapses in the mammalian brain are contacted or ensheathed by astrocyte processes, forming tripartite synapses. Astrocytes are thought to be critical regulators of the structural and functional dynamics of synapses. While the degree of synaptic coverage by astrocytes is known to vary across brain regions and animal species, the reason for and implications of this variability remains unknown. Further, how astrocyte coverage of synapses relates to in vivo functional properties of individual synapses has not been investigated. Here, we characterized astrocyte coverage of synapses of pyramidal neurons in the ferret visual cortex and, using correlative light and electron microscopy, examined their relationship to synaptic strength and sensory-evoked Ca2+ activity. Nearly, all synapses were contacted by astrocytes, and most were contacted along the axon-spine interface. Structurally, we found that the degree of synaptic astrocyte coverage directly scaled with synapse size and postsynaptic density complexity. Functionally, we found that the amount of astrocyte coverage scaled with how selectively a synapse responds to a particular visual stimulus and, at least for the largest synapses, scaled with the reliability of visual stimuli to evoke postsynaptic Ca2+ events. Our study shows astrocyte coverage is highly correlated with structural metrics of synaptic strength of excitatory synapses in the visual cortex and demonstrates a previously unknown relationship between astrocyte coverage and reliable sensory activation.


Subject(s)
Astrocytes , Ferrets , Primary Visual Cortex , Synapses , Animals , Astrocytes/physiology , Astrocytes/ultrastructure , Synapses/physiology , Synapses/ultrastructure , Primary Visual Cortex/physiology , Pyramidal Cells/physiology , Pyramidal Cells/ultrastructure , Male , Female , Excitatory Postsynaptic Potentials/physiology , Calcium/metabolism , Visual Cortex/physiology , Visual Cortex/cytology , Photic Stimulation/methods
9.
Nature ; 631(8020): 360-368, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38926570

ABSTRACT

A deep understanding of how the brain controls behaviour requires mapping neural circuits down to the muscles that they control. Here, we apply automated tools to segment neurons and identify synapses in an electron microscopy dataset of an adult female Drosophila melanogaster ventral nerve cord (VNC)1, which functions like the vertebrate spinal cord to sense and control the body. We find that the fly VNC contains roughly 45 million synapses and 14,600 neuronal cell bodies. To interpret the output of the connectome, we mapped the muscle targets of leg and wing motor neurons using genetic driver lines2 and X-ray holographic nanotomography3. With this motor neuron atlas, we identified neural circuits that coordinate leg and wing movements during take-off. We provide the reconstruction of VNC circuits, the motor neuron atlas and tools for programmatic and interactive access as resources to support experimental and theoretical studies of how the nervous system controls behaviour.


Subject(s)
Connectome , Drosophila melanogaster , Motor Neurons , Nerve Tissue , Neural Pathways , Synapses , Animals , Female , Datasets as Topic , Drosophila melanogaster/anatomy & histology , Drosophila melanogaster/cytology , Drosophila melanogaster/physiology , Drosophila melanogaster/ultrastructure , Extremities/physiology , Extremities/innervation , Holography , Microscopy, Electron , Motor Neurons/cytology , Motor Neurons/physiology , Motor Neurons/ultrastructure , Movement , Muscles/innervation , Muscles/physiology , Nerve Tissue/anatomy & histology , Nerve Tissue/cytology , Nerve Tissue/physiology , Nerve Tissue/ultrastructure , Neural Pathways/cytology , Neural Pathways/physiology , Neural Pathways/ultrastructure , Synapses/physiology , Synapses/ultrastructure , Tomography, X-Ray , Wings, Animal/innervation , Wings, Animal/physiology
10.
Curr Biol ; 34(11): 2418-2433.e4, 2024 Jun 03.
Article in English | MEDLINE | ID: mdl-38749425

ABSTRACT

A primary cilium is a membrane-bound extension from the cell surface that contains receptors for perceiving and transmitting signals that modulate cell state and activity. Primary cilia in the brain are less accessible than cilia on cultured cells or epithelial tissues because in the brain they protrude into a deep, dense network of glial and neuronal processes. Here, we investigated cilia frequency, internal structure, shape, and position in large, high-resolution transmission electron microscopy volumes of mouse primary visual cortex. Cilia extended from the cell bodies of nearly all excitatory and inhibitory neurons, astrocytes, and oligodendrocyte precursor cells (OPCs) but were absent from oligodendrocytes and microglia. Ultrastructural comparisons revealed that the base of the cilium and the microtubule organization differed between neurons and glia. Investigating cilia-proximal features revealed that many cilia were directly adjacent to synapses, suggesting that cilia are poised to encounter locally released signaling molecules. Our analysis indicated that synapse proximity is likely due to random encounters in the neuropil, with no evidence that cilia modulate synapse activity as would be expected in tetrapartite synapses. The observed cell class differences in proximity to synapses were largely due to differences in external cilia length. Many key structural features that differed between neuronal and glial cilia influenced both cilium placement and shape and, thus, exposure to processes and synapses outside the cilium. Together, the ultrastructure both within and around neuronal and glial cilia suggest differences in cilia formation and function across cell types in the brain.


Subject(s)
Cilia , Animals , Cilia/ultrastructure , Mice , Microscopy, Electron, Transmission , Mice, Inbred C57BL , Neurons/ultrastructure , Neurons/physiology , Visual Cortex/ultrastructure , Visual Cortex/physiology , Neuroglia/ultrastructure , Neuroglia/physiology , Female , Synapses/ultrastructure , Synapses/physiology , Male
11.
STAR Protoc ; 5(2): 103003, 2024 Jun 21.
Article in English | MEDLINE | ID: mdl-38735041

ABSTRACT

Single-cell microcultures (SCMs) form a monosynaptic circuit that allows stimulation and recording of postsynaptic responses using a single electrode. Here, we present a protocol to establish autaptic cultures from rat superior cervical ganglion neurons. We describe the steps for preparing SCMs, recording synaptic currents, and identifying and processing the recorded neurons for electron microscopy. We then detail procedures for visualizing synapses. This protocol is illustrated by correlating evoked and spontaneous neurotransmitter release with the ultrastructural features of synapses recorded. For complete details on the use and execution of this protocol, please refer to Velasco et al.1.


Subject(s)
Neurons , Animals , Rats , Neurons/cytology , Neurons/physiology , Neurons/ultrastructure , Microscopy, Electron/methods , Synapses/physiology , Synapses/ultrastructure , Synapses/metabolism , Electrophysiology/methods , Cell Culture Techniques/methods , Superior Cervical Ganglion/cytology , Cells, Cultured , Electrophysiological Phenomena , Single-Cell Analysis/methods
12.
Science ; 384(6696): eadk4858, 2024 May 10.
Article in English | MEDLINE | ID: mdl-38723085

ABSTRACT

To fully understand how the human brain works, knowledge of its structure at high resolution is needed. Presented here is a computationally intensive reconstruction of the ultrastructure of a cubic millimeter of human temporal cortex that was surgically removed to gain access to an underlying epileptic focus. It contains about 57,000 cells, about 230 millimeters of blood vessels, and about 150 million synapses and comprises 1.4 petabytes. Our analysis showed that glia outnumber neurons 2:1, oligodendrocytes were the most common cell, deep layer excitatory neurons could be classified on the basis of dendritic orientation, and among thousands of weak connections to each neuron, there exist rare powerful axonal inputs of up to 50 synapses. Further studies using this resource may bring valuable insights into the mysteries of the human brain.


Subject(s)
Cerebral Cortex , Humans , Axons/physiology , Axons/ultrastructure , Cerebral Cortex/blood supply , Cerebral Cortex/ultrastructure , Dendrites/physiology , Neurons/ultrastructure , Oligodendroglia/ultrastructure , Synapses/physiology , Synapses/ultrastructure , Temporal Lobe/ultrastructure , Microscopy
13.
Cell ; 187(10): 2574-2594.e23, 2024 May 09.
Article in English | MEDLINE | ID: mdl-38729112

ABSTRACT

High-resolution electron microscopy of nervous systems has enabled the reconstruction of synaptic connectomes. However, we do not know the synaptic sign for each connection (i.e., whether a connection is excitatory or inhibitory), which is implied by the released transmitter. We demonstrate that artificial neural networks can predict transmitter types for presynapses from electron micrographs: a network trained to predict six transmitters (acetylcholine, glutamate, GABA, serotonin, dopamine, octopamine) achieves an accuracy of 87% for individual synapses, 94% for neurons, and 91% for known cell types across a D. melanogaster whole brain. We visualize the ultrastructural features used for prediction, discovering subtle but significant differences between transmitter phenotypes. We also analyze transmitter distributions across the brain and find that neurons that develop together largely express only one fast-acting transmitter (acetylcholine, glutamate, or GABA). We hope that our publicly available predictions act as an accelerant for neuroscientific hypothesis generation for the fly.


Subject(s)
Drosophila melanogaster , Microscopy, Electron , Neurotransmitter Agents , Synapses , Animals , Brain/ultrastructure , Brain/metabolism , Connectome , Drosophila melanogaster/ultrastructure , Drosophila melanogaster/metabolism , gamma-Aminobutyric Acid/metabolism , Microscopy, Electron/methods , Neural Networks, Computer , Neurons/metabolism , Neurons/ultrastructure , Neurotransmitter Agents/metabolism , Synapses/ultrastructure , Synapses/metabolism
14.
Chem Senses ; 492024 Jan 01.
Article in English | MEDLINE | ID: mdl-38761122

ABSTRACT

Taste receptor cells are morphologically classified as types II and III. Type II cells form a unique type of synapses referred to as channel synapses where calcium homeostasis modulator 1 (CALHM1) together with CALHM3 forms voltage-gated channels that release the neurotransmitter, adenosine triphosphate (ATP). To validate the proposed structural model of channel synapses, the ultrastructural localization of CALHM1 in type II cells of both fungiform and circumvallate taste buds was examined. A monoclonal antibody against CALHM1 was developed and its localization was evaluated via immunofluorescence and immunoelectron microscopy using the immunogold-silver labeling technique. CALHM1 was detected as puncta using immunofluorescence and along the presynaptic membrane of channel synapses facing atypical mitochondria, which provide ATP, by immunoelectron microscopy. In addition, it was detected along the plasma membrane lined by subsurface cisternae at sites apposed to afferent nerve fibers. Our results support the validity of a previously proposed structural model for channel synapses and provide insights into the function of subsurface cisternae whose function in taste receptor cells is unknown. We also examined the localization of CALHM1 in hybrid synapses of type III cells, which are conventional chemical synapses accompanied by mitochondria similar to atypical mitochondria of channel synapses. CALHM1 was not detected in the six hybrid synapses examined using immunoelectron microscopy. We further performed double immunolabeling for CALHM1 and Bassoon, which is detected as puncta corresponding to conventional vesicular synapses in type III cells. Our observations suggest that at least some, and probably most, hybrid synapses are not accompanied by CALHM1.


Subject(s)
Calcium Channels , Taste Buds , Animals , Taste Buds/metabolism , Taste Buds/ultrastructure , Mice , Calcium Channels/metabolism , Synapses/metabolism , Synapses/ultrastructure , Microscopy, Immunoelectron , Mice, Inbred C57BL , Antibodies, Monoclonal/metabolism
15.
Methods Cell Biol ; 187: 139-174, 2024.
Article in English | MEDLINE | ID: mdl-38705623

ABSTRACT

Array tomography (AT) allows one to localize sub-cellular components within the structural context of cells in 3D through the imaging of serial sections. Using this technique, the z-resolution can be improved physically by cutting ultra-thin sections. Nevertheless, conventional immunofluorescence staining of those sections is time consuming and requires relatively large amounts of costly antibody solutions. Moreover, epitopes are only readily accessible at the section's surface, leaving the volume of the serial sections unlabeled. Localization of receptors at neuronal synapses in 3D in their native cellular ultrastructural context is important for understanding signaling processes. Here, we present in vivo labeling of receptors via fluorophore-coupled tags in combination with super-resolution AT. We present two workflows where we label receptors at the plasma membrane: first, in vivo labeling via microinjection with a setup consisting of readily available components and self-manufactured microscope table equipment and second, live receptor labeling by using a cell-permeable tag. To take advantage of a near-to-native preservation of tissues for subsequent scanning electron microscopy (SEM), we also apply high-pressure freezing and freeze substitution. The advantages and disadvantages of our workflows are discussed.


Subject(s)
Synapses , Tomography , Animals , Synapses/metabolism , Synapses/ultrastructure , Tomography/methods , Imaging, Three-Dimensional/methods , Staining and Labeling/methods , Mice , Microscopy, Electron, Scanning/methods , Fluorescent Dyes/chemistry , Microinjections/methods , Neurons/metabolism , Rats
16.
Methods Cell Biol ; 187: 57-72, 2024.
Article in English | MEDLINE | ID: mdl-38705630

ABSTRACT

Correlative light and electron microscopy (CLEM) can provide valuable information about a biological sample by giving information on the specific localization of a molecule of interest within an ultrastructural context. In this work, we describe a simple CLEM method to obtain high-resolution images of neurotransmitter receptor distribution in synapses by electron microscopy (EM). We use hippocampal organotypic slices from a previously reported mouse model expressing a modified AMPA receptor (AMPAR) subunit that binds biotin at the surface (Getz et al., 2022). This tag can be recognized by StreptAvidin-Fluoronanogold™ conjugates (SA-FNG), which reach receptors at synapses (synaptic cleft is 50-100nm thick). By using pre-embedding labeling, we found that SA-FNG reliably bind synaptic receptors and penetrate around 10-15µm in depth in live tissue. However, the silver enhancement was only reaching the surface of the slices. We show that permeabilization with triton is highly effective at increasing the in depth-gold amplification and that the membrane integrity is well preserved. Finally, we also apply high-resolution electron tomography, thus providing important information about the 3D organization of surface AMPA receptors in synapses at the nanoscale.


Subject(s)
Hippocampus , Receptors, AMPA , Synapses , Animals , Mice , Hippocampus/metabolism , Hippocampus/cytology , Receptors, AMPA/metabolism , Synapses/metabolism , Synapses/ultrastructure , Membrane Proteins/metabolism , Gold/chemistry , Microscopy, Electron/methods , Fluorescent Dyes/chemistry , Fluorescent Dyes/metabolism
17.
J Neurosci ; 44(25)2024 Jun 19.
Article in English | MEDLINE | ID: mdl-38641407

ABSTRACT

Vertebrate vision begins with light absorption by rod and cone photoreceptors, which transmit signals from their synaptic terminals to second-order neurons: bipolar and horizontal cells. In mouse rods, there is a single presynaptic ribbon-type active zone at which the release of glutamate occurs tonically in the dark. This tonic glutamatergic signaling requires continuous exo- and endocytosis of synaptic vesicles. At conventional synapses, endocytosis commonly requires dynamins: GTPases encoded by three genes (Dnm1-3), which perform membrane scission. Disrupting endocytosis by dynamin deletions impairs transmission at conventional synapses, but the impact of disrupting endocytosis and the role(s) of specific dynamin isoforms at rod ribbon synapses are understood incompletely. Here, we used cell-specific knock-outs (KOs) of the neuron-specific Dnm1 and Dnm3 to investigate the functional roles of dynamin isoforms in rod photoreceptors in mice of either sex. Analysis of synaptic protein expression, synapse ultrastructure, and retinal function via electroretinograms (ERGs) showed that dynamins 1 and 3 act redundantly and are essential for supporting the structural and functional integrity of rod ribbon synapses. Single Dnm3 KO showed no phenotype, and single Dnm1 KO only modestly reduced synaptic vesicle density without affecting vesicle size and overall synapse integrity, whereas double Dnm1/Dnm3 KO impaired vesicle endocytosis profoundly, causing enlarged vesicles, reduced vesicle density, reduced ERG responses, synaptic terminal degeneration, and disassembly and degeneration of postsynaptic processes. Concurrently, cone function remained intact. These results show the fundamental redundancy of dynamins 1 and 3 in regulating the structure and function of rod ribbon synapses.


Subject(s)
Dynamin III , Dynamin I , Electroretinography , Mice, Knockout , Retinal Rod Photoreceptor Cells , Synapses , Animals , Retinal Rod Photoreceptor Cells/physiology , Retinal Rod Photoreceptor Cells/metabolism , Retinal Rod Photoreceptor Cells/ultrastructure , Mice , Synapses/physiology , Synapses/metabolism , Synapses/ultrastructure , Male , Female , Dynamin I/metabolism , Dynamin I/genetics , Dynamin III/genetics , Dynamin III/metabolism , Mice, Inbred C57BL
18.
Science ; 384(6693): 338-343, 2024 Apr 19.
Article in English | MEDLINE | ID: mdl-38635709

ABSTRACT

The computational capabilities of neuronal networks are fundamentally constrained by their specific connectivity. Previous studies of cortical connectivity have mostly been carried out in rodents; whether the principles established therein also apply to the evolutionarily expanded human cortex is unclear. We studied network properties within the human temporal cortex using samples obtained from brain surgery. We analyzed multineuron patch-clamp recordings in layer 2-3 pyramidal neurons and identified substantial differences compared with rodents. Reciprocity showed random distribution, synaptic strength was independent from connection probability, and connectivity of the supragranular temporal cortex followed a directed and mostly acyclic graph topology. Application of these principles in neuronal models increased dimensionality of network dynamics, suggesting a critical role for cortical computation.


Subject(s)
Nerve Net , Pyramidal Cells , Synapses , Temporal Lobe , Animals , Humans , Nerve Net/physiology , Nerve Net/ultrastructure , Pyramidal Cells/physiology , Pyramidal Cells/ultrastructure , Rodentia , Synapses/physiology , Synapses/ultrastructure , Temporal Lobe/physiology , Patch-Clamp Techniques
19.
Microsc Res Tech ; 87(7): 1647-1653, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38461470

ABSTRACT

The synaptic basal lamina of the electrocytes was disclosed to be electron-translucent to some extent when viewed in an en-face direction in embedment-free section transmission electron microscopy (EFS-TEM), and synaptic vesicles located close to the presynaptic membrane were seen through the synaptic basal lamina together with the presynaptic and postsynaptic membranes. This feature of translucency has the potential to analyze possible spatial interrelations in situ between bioactive molecules in the synaptic basal lamina and the synaptic vesicles in further studies. The synaptic basal lamina, appearing as an electron-dense line sandwiched by two parallel lines representing the presynaptic and postsynaptic membranes in ultrathin sections cut right to the synaptic junctional plane in conventional TEM, was not fully continuous but randomly intermittent along its trajectory. Compatible with the intermittent line appearance, the en-face 3D view in embedment-free section TEM revealed for the first time partial irregular defects of the synaptic basal lamina. Considering the known functional significance of several molecules contained in the synaptic basal lamina in the maintenance and exertion of the synapse, its partial defects may not represent its rigid structural features, but its immature structure under remodeling or its dynamic changes in consistency such as the sol/gel transition, whose validity needs further examination. RESEARCH HIGHLIGHTS: In embedment-free section TEM, a 3D en-face view of synaptic basal lamina in situ is reliably possible. The basal lamina en-face is electron-translucent, which makes it possible to analyze spatial interrelation between pre- and post-synaptic components. Partial irregular defects in the basal lamina are revealed in Torpedo electrocytes, suggesting its remodeling or dynamic changes in consistency.


Subject(s)
Microscopy, Electron, Transmission , Animals , Microscopy, Electron, Transmission/methods , Synaptic Vesicles/ultrastructure , Electrical Synapses/ultrastructure , Electrical Synapses/physiology , Synapses/ultrastructure , Synaptic Membranes/ultrastructure , Imaging, Three-Dimensional/methods
20.
Nat Methods ; 21(5): 908-913, 2024 May.
Article in English | MEDLINE | ID: mdl-38514779

ABSTRACT

Mapping neuronal networks from three-dimensional electron microscopy (3D-EM) data still poses substantial reconstruction challenges, in particular for thin axons. Currently available automated image segmentation methods require manual proofreading for many types of connectomic analysis. Here we introduce RoboEM, an artificial intelligence-based self-steering 3D 'flight' system trained to navigate along neurites using only 3D-EM data as input. Applied to 3D-EM data from mouse and human cortex, RoboEM substantially improves automated state-of-the-art segmentations and can replace manual proofreading for more complex connectomic analysis problems, yielding computational annotation cost for cortical connectomes about 400-fold lower than the cost of manual error correction.


Subject(s)
Connectome , Imaging, Three-Dimensional , Synapses , Connectome/methods , Animals , Mice , Humans , Imaging, Three-Dimensional/methods , Synapses/physiology , Synapses/ultrastructure , Microscopy, Electron/methods , Artificial Intelligence , Algorithms , Image Processing, Computer-Assisted/methods , Cerebral Cortex/cytology
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