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1.
Ann Neurol ; 96(1): 187-193, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38506405

ABSTRACT

Using 6-minute free-running intracranial-electroencephalogram (icEEG) during sleep, an optimized multilayer perceptron (MLP) neural network accurately maps the sensorimotor cortex (SM) and identifies the anterior lip of the central sulcus (CS) in intractable epilepsy patients. We calculated 6 performance metrics to evaluate the MLP's efficacy: accuracy, area under the curve (AUC), recall, precision, F1-scores, and specificity. Each layer had 4 neurons with hyperbolic TanH activation function and 4 with Gaussian distribution function. Conventional 10-fold cross-validation was used. Feature extension (ε) and weighted imbalanced data (w) improved MLP performance. ANN NEUROL 2024;96:187-193.


Subject(s)
Brain Mapping , Electrocorticography , Sensorimotor Cortex , Humans , Sensorimotor Cortex/physiology , Electrocorticography/methods , Male , Brain Mapping/methods , Female , Adult , Neural Networks, Computer , Drug Resistant Epilepsy/physiopathology , Young Adult , Electroencephalography/methods
2.
J Comp Neurol ; 528(4): 597-623, 2020 03 01.
Article in English | MEDLINE | ID: mdl-31531866

ABSTRACT

The sensory-motor division of the avian arcopallium receives parallel inputs from primary and high-order pallial areas of sensory and vocal control pathways, and sends a prominent descending projection to ascending and premotor, subpallial stages of these pathways. While this organization is well established for the auditory and trigeminal systems, the arcopallial subdivision related to the tectofugal visual system and its descending projection to the optic tectum (TeO) has been less investigated. In this study, we charted the arcopallial area displaying tectofugal visual responses and by injecting neural tracers, we traced its connectional anatomy. We found visual motion-sensitive responses in a central region of the dorsal (AD) and intermediate (AI) arcopallium, in between previously described auditory and trigeminal zones. Blocking the ascending tectofugal sensory output, canceled these visual responses in the arcopallium, verifying their tectofugal origin. Injecting PHA-L into the visual, but not into the auditory AI, revealed a massive projection to tectal layer 13 and other tectal related areas, sparing auditory, and trigeminal ones. Conversely, CTB injections restricted to TeO retrogradely labeled neurons confined to the visual AI. These results show that the AI zone receiving tectofugal inputs sends top-down modulations specifically directed to tectal targets, just like the auditory and trigeminal AI zones project back to their respective subpallial sensory and premotor areas, as found by previous studies. Therefore, the arcopallium seems to be organized in a parallel fashion, such that in spite of expected cross-modal integration, the different sensory-motor loops run through separate subdivisions of this structure.


Subject(s)
Columbidae/physiology , Photic Stimulation/methods , Sensorimotor Cortex/physiology , Visual Pathways/physiology , Animals , Columbidae/anatomy & histology , Female , Male , Sensorimotor Cortex/anatomy & histology , Sensorimotor Cortex/chemistry , Visual Pathways/anatomy & histology , Visual Pathways/chemistry
3.
J Neurosci Methods ; 329: 108454, 2020 01 01.
Article in English | MEDLINE | ID: mdl-31669337

ABSTRACT

BACKGROUND: Understanding the configuration of neural circuits and the specific role of distinct cortical neuron types involved in behavior, requires the study of structure-function and connectivity relationships with single cell resolution in awake behaving animals. Despite head-fixed behaving rats have been used for in vivo measuring of neuronal activity, it is a concern that head fixation could change the performance of behavioral task. NEW METHOD: We describe the procedures for efficiently training Wistar rats to develop a behavioral task, involving planning and execution of a qualified movement in response to a visual cue under head-fixed conditions. The behavioral and movement performance in freely moving vs head-fixed conditions was analyzed. RESULTS: The best behavioral performance was obtained in the rats that were trained first in freely moving conditions and then placed in a head-restrained condition compared with the animals which first were habituated to head-restriction and then learned the task. Moreover, head restriction did not alter the movement performance. Stable juxtacellular recordings from sensorimotor cortex neurons were obtained while the rats were performing forelimb movements. Biocytin electroporation and retrograde tracer injections, permits identify the hodology of individual long-range projecting neurons. COMPARISON WITH EXISTING METHODS: Our method shows no difference in the behavioral performance of head fixed and freely moving conditions. Also includes a computer aided design of a discrete and ergonomic head-post allowing enough stability to perform juxtacellular recording and labeling of cortical neurons. CONCLUSIONS: Our method is suitable for the in vivo characterization of neuronal circuits and their long-range connectivity.


Subject(s)
Behavior, Animal/physiology , Conditioning, Operant/physiology , Connectome/methods , Electrocorticography/methods , Motor Activity/physiology , Neurons/physiology , Restraint, Physical , Sensorimotor Cortex/physiology , Animals , Electroporation , Forelimb/physiology , Head Movements/physiology , Neuroanatomical Tract-Tracing Techniques , Psychomotor Performance/physiology , Rats , Rats, Wistar
4.
Biomed Phys Eng Express ; 6(3): 035030, 2020 04 27.
Article in English | MEDLINE | ID: mdl-33438675

ABSTRACT

Motor imagery (MI) constitutes a recurrent strategy for signals generation in brain-computer interfaces (BCIs) - systems that aim to control external devices by directly associating brain responses to distinct commands. Although great improvement has been achieved in MI-BCIs performance over recent years, they still suffer from inter- and intra-subject variability issues. As an attempt to cope with this, some studies have suggested that MI training should aid users to appropriately modulate their response for BCI usage: generally, this training is performed based on the sensorimotor rhythms' modulation over the primary sensorimotor cortex (PMC), with the signal being feedbacked to the user. Nonetheless, recent studies have revisited the actual involvement of the PMC into MI, and little to no attention has been devoted to understanding the participation of other cortical areas into training protocols. Therefore, in this work, our aim was to analyze the response induced by hands MI of 10 healthy subjects in the form of event-related desynchronizations (ERDs) and to assess whether features from beyond the PMC might be useful for hands MI classification. We investigated how this response occurs for distinct frequency intervals between 7-30 Hz, and ex0plored changes in their evocation pattern across 12 MI training sessions without feedback. Overall, we found that ERD patterns occur differently for the frequencies encompassed by the µ and ß bands, with its evocation being favored for the first band. Over time, the no-feedback approach was inefficient to aid in enhancing ERD evocation (EO). Moreover, to some extent, EO tends to decrease over blocks within a given run, and runs within an MI session, but remains stable within an MI block. We also found that the C3/C4 pair is not necessarily optimal for data classification, and both spectral and spatial subjects' specificities should be considered when designing training protocols.


Subject(s)
Feedback , Imagination , Sensorimotor Cortex/physiology , Adult , Algorithms , Brain-Computer Interfaces , Electrodes , Electroencephalography , Equipment Design , Female , Humans , Image Processing, Computer-Assisted , Male , Models, Statistical , Motor Skills , Reproducibility of Results , Sensitivity and Specificity , Signal Processing, Computer-Assisted , Young Adult
5.
J Neurophysiol ; 120(3): 960-972, 2018 09 01.
Article in English | MEDLINE | ID: mdl-29766764

ABSTRACT

An important unresolved question about neural processing is the mechanism by which distant brain areas coordinate their activities and relate their local processing to global neural events. A potential candidate for the local-global integration are slow rhythms such as respiration. In this study, we asked if there are modulations of local cortical processing that are phase-locked to (peripheral) sensory-motor exploratory rhythms. We studied rats on an elevated platform where they would spontaneously display exploratory and rest behaviors. Concurrent with behavior, we monitored whisking through electromyography and the respiratory rhythm from the olfactory bulb (OB) local field potential (LFP). We also recorded LFPs from dorsal hippocampus, primary motor cortex, primary somatosensory cortex, and primary visual cortex. We defined exploration as simultaneous whisking and sniffing above 5 Hz and found that this activity peaked at ~8 Hz. We considered rest as the absence of whisking and sniffing, and in this case, respiration occurred at ~3 Hz. We found a consistent shift across all areas toward these rhythm peaks accompanying behavioral changes. We also found, across areas, that LFP gamma (70-100 Hz) amplitude could phase-lock to the animal's OB respiratory rhythm, a finding indicative of respiration-locked changes in local processing. In a subset of animals, we also recorded the hippocampal theta activity and found that occurred at frequencies overlapped with respiration but was not spectrally coherent with it, suggesting a different oscillator. Our results are consistent with the notion of respiration as a binder or integrator of activity between brain regions.


Subject(s)
Exploratory Behavior/physiology , Olfactory Bulb/physiology , Respiration , Rest/physiology , Sensorimotor Cortex/physiology , Animals , Behavior, Animal/physiology , Electromyography , Hippocampus/physiology , Male , Motor Activity/physiology , Rats , Rats, Sprague-Dawley , Rats, Wistar , Theta Rhythm , Vibrissae/physiology
6.
Behav Brain Res ; 336: 145-150, 2018 01 15.
Article in English | MEDLINE | ID: mdl-28842271

ABSTRACT

The sensorimotor cortex and the striatum are interconnected by the corticostriatal pathway, suggesting that cortical injury alters the striatal function that is associated with skilled movements and motor learning, which are functions that may be modulated by dopamine (DA). In this study, we explored motor coordination and balance in order to investigate whether the activation of D1 receptors (D1Rs) modulates functional recovery after cortical injury. The results of the beam-walking test showed motor deficit in the injured group at 24, 48 and 96h post-injury, and the recovery time was observed at 192h after cortical injury. In the sham and injured rats, systemic administration of the D1R antagonist SCH-23390 (1mg/kg) alone at 24, 48, 96 and 192h significantly (P<0.01) increased the motor deficit, while administration of the D1R agonist SKF-38393 alone (2, 3 and 4mg/kg) at 24, 48, 96 and 192h post-injury did not produce a significant difference; however, the co-administration of SKF-38393 and SCH-23390 prevented the antagonist-induced increase in the motor deficit. The cortical+striatal injury showed significantly increased the motor deficit at 24, 48, 96 and 192h post-injury (P<0.01) but did not show recovery at 192h. In conclusion, the administration of the D1R agonist did not accelerate the motor recovery, but the activation of D1Rs maintained motor coordination, confirming that an intact striatum may be necessary for achieving recovery.


Subject(s)
Receptors, Dopamine D1/metabolism , Receptors, Dopamine D1/physiology , Sensorimotor Cortex/physiology , 2,3,4,5-Tetrahydro-7,8-dihydroxy-1-phenyl-1H-3-benzazepine/metabolism , 2,3,4,5-Tetrahydro-7,8-dihydroxy-1-phenyl-1H-3-benzazepine/pharmacology , Animals , Benzazepines/metabolism , Benzazepines/pharmacology , Brain Injuries, Traumatic/metabolism , Brain Injuries, Traumatic/physiopathology , Corpus Striatum/metabolism , Disease Models, Animal , Dopamine/metabolism , Dopamine Antagonists/pharmacology , Male , Motor Cortex/physiopathology , Neostriatum/metabolism , Rats , Rats, Wistar , Receptors, Dopamine D1/agonists , Receptors, Dopamine D2/metabolism , Sensorimotor Cortex/metabolism
7.
Exerc Sport Sci Rev ; 45(1): 34-40, 2017 01.
Article in English | MEDLINE | ID: mdl-27984329

ABSTRACT

Optimization of gait rehabilitation using split-belt treadmills critically depends on our understanding of the roles of somatosensory perception and sensorimotor recalibration in perceiving gait asymmetry and adapting to split-belt walking. Recent evidence justifies the hypothesis that perception of gait asymmetry is based mainly on detection of temporal mismatches between afferent inputs at the spinal level.


Subject(s)
Adaptation, Physiological , Gait/physiology , Perception/physiology , Walking/physiology , Cerebellum/physiology , Humans , Sensorimotor Cortex/physiology , Spine/physiology , Stroke Rehabilitation
9.
Cereb Cortex ; 25(6): 1535-43, 2015 Jun.
Article in English | MEDLINE | ID: mdl-24363266

ABSTRACT

Savings is a fundamental property of learning. In motor adaptation, it refers to the improvement in learning observed when adaptation to a perturbation A (A1) is followed by re-adaptation to the same perturbation (A2). A common procedure to equate the initial level of error across sessions consists of restoring native sensorimotor coordinates by inserting null--unperturbed--trials (N) just before re-adaptation (washout). Here, we hypothesized that the washout is not innocuous but interferes with the expression of the new memory at recall. To assess this possibility, we measured savings following the A1NA2 protocol, where A was a 40° visual rotation. In Experiment 1, we increased the time window between N and A2 from 1 min to 24 h. This manipulation increased the amount of savings during middle to late phases of adaptation, suggesting that N interfered with the retrieval of A. In Experiment 2, we used repetitive TMS to evaluate if this interference was partly mediated by the sensorimotor cortex (SM). We conclude that the washout does not just restore the unperturbed sensorimotor coordinates, but inhibits the expression of the recently acquired visuomotor map through a mechanism involving SM. Our results resemble the phenomenon of extinction in classical conditioning.


Subject(s)
Extinction, Psychological/physiology , Learning/physiology , Mental Recall/physiology , Movement/physiology , Psychomotor Performance/physiology , Sensorimotor Cortex/physiology , Adaptation, Physiological , Adult , Analysis of Variance , Electroencephalography , Evoked Potentials, Motor/physiology , Female , Humans , Male , Photic Stimulation , Reaction Time/physiology , Rotation , Time Factors , Transcranial Magnetic Stimulation , Young Adult
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