Javascript must be enabled to continue!
SYNAPTIC INTERACTIONS IN PRIMATE MOTOR CORTEX: RELATIONS BETWEEN CONNECTIVITY AND INTRACORTICAL LOCATION
View through CrossRef
ABSTRACT
To investigate intracortical microcircuits within primate motor cortical areas, we documented pairs of neurons whose synaptic interactions were identified by spike-triggered averaging (STA) of intracellularly recorded membrane potentials and whose relative location was histologically identified.
Average synchronous excitation potentials (ASEPs) were the most commonly observed feature in STAs between neuron pairs in all cortical layers (about 70%). This synchrony spread broadly for distances of more than 4 mm, gradually decreasing in amplitude and probability with cell separation.
Excitatory postsynaptic potentials (EPSPs) were observed among 9% of the neuron pairs, whose separation extended for distances of more than 4 mm. The peak amplitudes of EPSPs were inversely correlated with cell separation. Most source neurons were located in layer II-III or layer V, while the postsynaptic target neurons had wide laminar distribution.
The probability of finding excitatory connections was not uniform within the cortical space. The connectivity between neuron pairs was relatively dense within 1.0 mm, and became sparse for distances between 1.0 and 2.0 mm, and showed a second peak for distance between 2.0 and 4.0 mm.
Inhibitory postsynaptic potentials (IPSPs) and/or average synchronous inhibitory potentials (ASIPs) were observed for 10% of neuron pairs. Most of these were separated by less than 1.0 mm, suggesting that their influence was restricted within their own and neighboring columns. The major source neurons that provide these inhibitory effects were located within layer II-III. We conclude that excitatory synaptic effects (ASEPs and EPSPs) are widely distributed and omni-directional within primate motor cortex, while inhibitory connections (ASIPs and IPSPs) are restricted within columnar dimensions, and are predominantly directed from superficial to deeper layers.
The appearance of independent zones that had no functional connectivity with neighboring columns indicates that primate motor cortical areas may not be organized in a uniform way. This would support the sparse coding theory and multiple representations of cortical output in the motor cortex.
Title: SYNAPTIC INTERACTIONS IN PRIMATE MOTOR CORTEX: RELATIONS BETWEEN CONNECTIVITY AND INTRACORTICAL LOCATION
Description:
ABSTRACT
To investigate intracortical microcircuits within primate motor cortical areas, we documented pairs of neurons whose synaptic interactions were identified by spike-triggered averaging (STA) of intracellularly recorded membrane potentials and whose relative location was histologically identified.
Average synchronous excitation potentials (ASEPs) were the most commonly observed feature in STAs between neuron pairs in all cortical layers (about 70%).
This synchrony spread broadly for distances of more than 4 mm, gradually decreasing in amplitude and probability with cell separation.
Excitatory postsynaptic potentials (EPSPs) were observed among 9% of the neuron pairs, whose separation extended for distances of more than 4 mm.
The peak amplitudes of EPSPs were inversely correlated with cell separation.
Most source neurons were located in layer II-III or layer V, while the postsynaptic target neurons had wide laminar distribution.
The probability of finding excitatory connections was not uniform within the cortical space.
The connectivity between neuron pairs was relatively dense within 1.
0 mm, and became sparse for distances between 1.
0 and 2.
0 mm, and showed a second peak for distance between 2.
0 and 4.
0 mm.
Inhibitory postsynaptic potentials (IPSPs) and/or average synchronous inhibitory potentials (ASIPs) were observed for 10% of neuron pairs.
Most of these were separated by less than 1.
0 mm, suggesting that their influence was restricted within their own and neighboring columns.
The major source neurons that provide these inhibitory effects were located within layer II-III.
We conclude that excitatory synaptic effects (ASEPs and EPSPs) are widely distributed and omni-directional within primate motor cortex, while inhibitory connections (ASIPs and IPSPs) are restricted within columnar dimensions, and are predominantly directed from superficial to deeper layers.
The appearance of independent zones that had no functional connectivity with neighboring columns indicates that primate motor cortical areas may not be organized in a uniform way.
This would support the sparse coding theory and multiple representations of cortical output in the motor cortex.
Related Results
Frontal eye field as defined by intracortical microstimulation in squirrel monkeys, owl monkeys, and macaque monkeys II. cortical connections
Frontal eye field as defined by intracortical microstimulation in squirrel monkeys, owl monkeys, and macaque monkeys II. cortical connections
AbstractPhysiological (intracortical microstimulation) and anatomical (transport of horseradish peroxidase conjugated to wheat germ agglutinin as shown by tetramethyl benzidine) ap...
Synaptic Integration
Synaptic Integration
Abstract
Neurons in the brain receive thousands of synaptic inputs from other neurons. Synaptic integration is the term used to describe how neu...
Volume Electron Microscopy Analysis of Synapses in Associative and Primary Regions of the Human Cerebral Cortex
Volume Electron Microscopy Analysis of Synapses in Associative and Primary Regions of the Human Cerebral Cortex
Abstract
Functional and structural studies investigating macroscopic connectivity in the human cerebral cortex suggest that high-order associative regions exhibit g...
Perbandingan Kinerja Perusahaan Dengan Metode Balanced Scorecard
Perbandingan Kinerja Perusahaan Dengan Metode Balanced Scorecard
The purpose of this study is to compare the performance of two Honda service companies with the Balanced Scorecard method. The research locations are Aneka Motor Denpasar and Niki ...
Motor cortex activation in hemiparetic stroke patients
Motor cortex activation in hemiparetic stroke patients
100
Little is known about the function of surviving motor cortex after hemiparetic stroke. Though the corticospinal tract may be damaged, function may persis...
Cerebral structures participating in motor preparation in humans: a positron emission tomography study
Cerebral structures participating in motor preparation in humans: a positron emission tomography study
1. Using positron emission tomography and measurement of regional cerebral blood flow (rCBF) as an index of cerebral activity we investigated the central processing of motor prepar...
Asymmetric directed functional connectivity within the frontoparietal motor network during motor imagery and execution
Asymmetric directed functional connectivity within the frontoparietal motor network during motor imagery and execution
Abstract
Both imagery and execution of motor controls consist of interactions within a neuronal network, including frontal motor-related regions and posterior parie...
Energetics of stochastic BCM type synaptic plasticity and storing of accurate information
Energetics of stochastic BCM type synaptic plasticity and storing of accurate information
Abstract
Excitatory synaptic signaling in cortical circuits is thought to be metabolically expensive. Two fundamental brain functions, learning and memory, are asso...

