Regulation of synaptic vesicle docking by different classes of macromolecules in active zone material.

The docking of synaptic vesicles at active zones on the presynaptic plasma membrane of axon terminals is essential for their fusion with the membrane and exocytosis of their neurotransmitter to mediate synaptic impulse transmission. Dense networks of macromolecules, called active zone material, (AZM...

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Main Authors: Joseph A Szule, Mark L Harlow, Jae Hoon Jung, Francisco F De-Miguel, Robert M Marshall, Uel J McMahan
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2012-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3306385?pdf=render
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spelling doaj-ccaa3129b63d452c9fde322dc23368c32020-11-25T01:48:33ZengPublic Library of Science (PLoS)PLoS ONE1932-62032012-01-0173e3333310.1371/journal.pone.0033333Regulation of synaptic vesicle docking by different classes of macromolecules in active zone material.Joseph A SzuleMark L HarlowJae Hoon JungFrancisco F De-MiguelRobert M MarshallUel J McMahanThe docking of synaptic vesicles at active zones on the presynaptic plasma membrane of axon terminals is essential for their fusion with the membrane and exocytosis of their neurotransmitter to mediate synaptic impulse transmission. Dense networks of macromolecules, called active zone material, (AZM) are attached to the presynaptic membrane next to docked vesicles. Electron tomography has shown that some AZM macromolecules are connected to docked vesicles, leading to the suggestion that AZM is somehow involved in the docking process. We used electron tomography on the simply arranged active zones at frog neuromuscular junctions to characterize the connections of AZM to docked synaptic vesicles and to search for the establishment of such connections during vesicle docking. We show that each docked vesicle is connected to 10-15 AZM macromolecules, which fall into four classes based on several criteria including their position relative to the presynaptic membrane. In activated axon terminals fixed during replacement of docked vesicles by previously undocked vesicles, undocked vesicles near vacated docking sites on the presynaptic membrane have connections to the same classes of AZM macromolecules that are connected to docked vesicles in resting terminals. The number of classes and the total number of macromolecules to which the undocked vesicles are connected are inversely proportional to the vesicles' distance from the presynaptic membrane. We conclude that vesicle movement toward and maintenance at docking sites on the presynaptic membrane are directed by an orderly succession of stable interactions between the vesicles and distinct classes of AZM macromolecules positioned at different distances from the membrane. Establishing the number, arrangement and sequence of association of AZM macromolecules involved in vesicle docking provides an anatomical basis for testing and extending concepts of docking mechanisms provided by biochemistry.http://europepmc.org/articles/PMC3306385?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Joseph A Szule
Mark L Harlow
Jae Hoon Jung
Francisco F De-Miguel
Robert M Marshall
Uel J McMahan
spellingShingle Joseph A Szule
Mark L Harlow
Jae Hoon Jung
Francisco F De-Miguel
Robert M Marshall
Uel J McMahan
Regulation of synaptic vesicle docking by different classes of macromolecules in active zone material.
PLoS ONE
author_facet Joseph A Szule
Mark L Harlow
Jae Hoon Jung
Francisco F De-Miguel
Robert M Marshall
Uel J McMahan
author_sort Joseph A Szule
title Regulation of synaptic vesicle docking by different classes of macromolecules in active zone material.
title_short Regulation of synaptic vesicle docking by different classes of macromolecules in active zone material.
title_full Regulation of synaptic vesicle docking by different classes of macromolecules in active zone material.
title_fullStr Regulation of synaptic vesicle docking by different classes of macromolecules in active zone material.
title_full_unstemmed Regulation of synaptic vesicle docking by different classes of macromolecules in active zone material.
title_sort regulation of synaptic vesicle docking by different classes of macromolecules in active zone material.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2012-01-01
description The docking of synaptic vesicles at active zones on the presynaptic plasma membrane of axon terminals is essential for their fusion with the membrane and exocytosis of their neurotransmitter to mediate synaptic impulse transmission. Dense networks of macromolecules, called active zone material, (AZM) are attached to the presynaptic membrane next to docked vesicles. Electron tomography has shown that some AZM macromolecules are connected to docked vesicles, leading to the suggestion that AZM is somehow involved in the docking process. We used electron tomography on the simply arranged active zones at frog neuromuscular junctions to characterize the connections of AZM to docked synaptic vesicles and to search for the establishment of such connections during vesicle docking. We show that each docked vesicle is connected to 10-15 AZM macromolecules, which fall into four classes based on several criteria including their position relative to the presynaptic membrane. In activated axon terminals fixed during replacement of docked vesicles by previously undocked vesicles, undocked vesicles near vacated docking sites on the presynaptic membrane have connections to the same classes of AZM macromolecules that are connected to docked vesicles in resting terminals. The number of classes and the total number of macromolecules to which the undocked vesicles are connected are inversely proportional to the vesicles' distance from the presynaptic membrane. We conclude that vesicle movement toward and maintenance at docking sites on the presynaptic membrane are directed by an orderly succession of stable interactions between the vesicles and distinct classes of AZM macromolecules positioned at different distances from the membrane. Establishing the number, arrangement and sequence of association of AZM macromolecules involved in vesicle docking provides an anatomical basis for testing and extending concepts of docking mechanisms provided by biochemistry.
url http://europepmc.org/articles/PMC3306385?pdf=render
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