scholarly article | Q13442814 |
P356 | DOI | 10.1007/978-1-4939-6688-2_15 |
P698 | PubMed publication ID | 27943193 |
P50 | author | Benjamin H. Cooper | Q60652561 |
Cordelia Imig | Q33274675 | ||
P2860 | cites work | NIH Image to ImageJ: 25 years of image analysis | Q23319322 |
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Conical electron tomography of a chemical synapse: polyhedral cages dock vesicles to the active zone | Q28276725 | ||
The morphological and molecular nature of synaptic vesicle priming at presynaptic active zones | Q28506683 | ||
A common molecular basis for membrane docking and functional priming of synaptic vesicles | Q28512083 | ||
PSD-95 is required to sustain the molecular organization of the postsynaptic density | Q28568031 | ||
Munc13-independent vesicle priming at mouse photoreceptor ribbon synapses | Q28586499 | ||
Bruchpilot promotes active zone assembly, Ca2+ channel clustering, and vesicle release | Q47070593 | ||
New ways of looking at synapses | Q48119257 | ||
Structural components in the synaptic cleft captured by freeze-substitution and deep etching of directly frozen cerebellar cortex | Q48119467 | ||
Differential effects of SNAP-25 deletion on Ca2+ -dependent and Ca2+ -independent neurotransmission | Q48144404 | ||
Preparation of organotypic hippocampal slice cultures: interface method | Q48218802 | ||
Analysis of synaptic ultrastructure without fixative using high-pressure freezing and tomography. | Q48307568 | ||
The rate of aldehyde fixation of the exocytotic machinery in cultured hippocampal synapses | Q48616881 | ||
Capture of activity-induced ultrastructural changes at synapses by high-pressure freezing of brain tissue | Q48756076 | ||
A simple method for organotypic cultures of nervous tissue | Q29614375 | ||
Automated electron microscope tomography using robust prediction of specimen movements | Q29616585 | ||
Definition of the readily releasable pool of vesicles at hippocampal synapses | Q29620402 | ||
Organization of the core structure of the postsynaptic density | Q30482020 | ||
Bassoon and the synaptic ribbon organize Ca²+ channels and vesicles to add release sites and promote refilling | Q30497701 | ||
Cryo-electron tomography reveals a critical role of RIM1α in synaptic vesicle tethering | Q30540085 | ||
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Passive diffusion as a mechanism underlying ribbon synapse vesicle release and resupply | Q31171218 | ||
The mammalian central nervous synaptic cleft contains a high density of periodically organized complexes | Q33229477 | ||
Recent advances in high-pressure freezing: equipment- and specimen-loading methods | Q33291927 | ||
Quantitative analysis of the native presynaptic cytomatrix by cryoelectron tomography | Q33523242 | ||
The presynaptic dense projection of the Caenorhabditis elegans cholinergic neuromuscular junction localizes synaptic vesicles at the active zone through SYD-2/liprin and UNC-10/RIM-dependent interactions | Q33853608 | ||
Visualizing recycling synaptic vesicles in hippocampal neurons by FM 1-43 photoconversion | Q33948072 | ||
Evidence for recycling of synaptic vesicle membrane during transmitter release at the frog neuromuscular junction | Q34207383 | ||
Electron tomographic analysis of synaptic ultrastructure | Q34299074 | ||
Three-dimensional architecture of presynaptic terminal cytomatrix. | Q34642485 | ||
Electron tomography on γ-aminobutyric acid-ergic synapses reveals a discontinuous postsynaptic network of filaments | Q34975368 | ||
Electron microscopic tomography reveals discrete transcleft elements at excitatory and inhibitory synapses. | Q35675158 | ||
Ultrastructural analysis of adult mouse neocortex comparing aldehyde perfusion with cryo fixation | Q35932244 | ||
Differential dependence of phasic transmitter release on synaptotagmin 1 at GABAergic and glutamatergic hippocampal synapses | Q36926790 | ||
Ultrafast endocytosis at Caenorhabditis elegans neuromuscular junctions | Q37145198 | ||
Vesicle docking in regulated exocytosis. | Q37150432 | ||
An emerging view of presynaptic structure from electron microscopic studies | Q37372749 | ||
UNC-13 and UNC-10/rim localize synaptic vesicles to specific membrane domains. | Q37417587 | ||
Ultrafast endocytosis at mouse hippocampal synapses. | Q37642826 | ||
Insights into the molecular organization of the neuron by cryo-electron tomography | Q37918150 | ||
High-pressure freezing for the preservation of biological structure: theory and practice | Q38725037 | ||
Dual-axis tomography: an approach with alignment methods that preserve resolution | Q41069925 | ||
Fixation effects on synaptic vesicle density in neuromuscular junctions of young and old mice | Q41453455 | ||
Morphological characterization of molecular complexes present in the synaptic cleft | Q41627533 | ||
Syntaxin and synaptobrevin function downstream of vesicle docking in Drosophila | Q41666993 | ||
One GABA and two acetylcholine receptors function at the C. elegans neuromuscular junction | Q41852996 | ||
Topographic Mapping of the Synaptic Cleft into Adhesive Nanodomains. | Q41863255 | ||
Conical electron tomography of a chemical synapse: vesicles docked to the active zone are hemi-fused | Q42080316 | ||
Munc13-1 C1 domain activation lowers the energy barrier for synaptic vesicle fusion. | Q42507707 | ||
Electron microscopy of the mouse central nervous system | Q42876855 | ||
Morphological correlates of functionally defined synaptic vesicle populations | Q43558103 | ||
The structural organization of the readily releasable pool of synaptic vesicles | Q44814913 | ||
Synaptobrevin is essential for fast synaptic-vesicle endocytosis | Q45099773 | ||
P407 | language of work or name | English | Q1860 |
P304 | page(s) | 215-231 | |
P577 | publication date | 2017-01-01 | |
P1433 | published in | Methods in Molecular Biology | Q15752859 |
P1476 | title | 3D Analysis of Synaptic Ultrastructure in Organotypic Hippocampal Slice Culture by High-Pressure Freezing and Electron Tomography | |
P478 | volume | 1538 |
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