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1.
J Integr Neurosci ; 23(7): 132, 2024 Jul 16.
Article in English | MEDLINE | ID: mdl-39082301

ABSTRACT

BACKGROUND: Non-invasive brain mapping using navigated transcranial magnetic stimulation (nTMS) is a valuable tool prior to resection of malignant brain tumors. With nTMS motor mapping, it is additionally possible to analyze the function of the motor system and to evaluate tumor-induced neuroplasticity. Distinct changes in motor cortex excitability induced by certain malignant brain tumors are a focal point of research. METHODS: A retrospective single-center study was conducted involving patients with malignant brain tumors. Clinical data, resting motor threshold (rMT), and nTMS-based tractography were evaluated. The interhemispheric rMT-ratio (rMTTumor/rMTControl) was calculated for each extremity and considered pathological if it was >110% or <90%. Distances between the corticospinal tract and the tumor (lesion-to-tract-distance - LTD) were measured. RESULTS: 49 patients were evaluated. 16 patients (32.7%) had a preoperative motor deficit. The cohort comprised 22 glioblastomas (44.9%), 5 gliomas of Classification of Tumors of the Central Nervous System (CNS WHO) grade 3 (10.2%), 6 gliomas of CNS WHO grade 2 (12.2%) and 16 cerebral metastases (32.7%). 26 (53.1%) had a pathological rMT-ratio for the upper extremity and 35 (71.4%) for the lower extremity. All patients with tumor-induced motor deficits had pathological interhemispheric rMT-ratios, and presence of tumor-induced motor deficits was associated with infiltration of the tumor to the nTMS-positive cortex (p = 0.04) and shorter LTDs (all p < 0.021). Pathological interhemispheric rMT-ratio for the upper extremity was associated with cerebral metastases, but not with gliomas (p = 0.002). CONCLUSIONS: Our study underlines the diagnostic potential of nTMS motor mapping to go beyond surgical risk stratification. Pathological alterations in motor cortex excitability can be measured with nTMS mapping. Pathological cortical excitability was more frequent in cerebral metastases than in gliomas.


Subject(s)
Brain Neoplasms , Diffusion Tensor Imaging , Motor Cortex , Pyramidal Tracts , Transcranial Magnetic Stimulation , Humans , Pyramidal Tracts/physiopathology , Pyramidal Tracts/diagnostic imaging , Pyramidal Tracts/pathology , Brain Neoplasms/physiopathology , Brain Neoplasms/diagnostic imaging , Brain Neoplasms/pathology , Motor Cortex/physiopathology , Motor Cortex/diagnostic imaging , Motor Cortex/pathology , Male , Female , Middle Aged , Retrospective Studies , Adult , Aged , Glioma/physiopathology , Glioma/pathology , Glioma/diagnostic imaging , Brain Mapping , Evoked Potentials, Motor/physiology
2.
CNS Neurosci Ther ; 30(7): e14889, 2024 Jul.
Article in English | MEDLINE | ID: mdl-39073240

ABSTRACT

BACKGROUND: Upper limb motor impairment commonly occurs after stroke, impairing quality of life. Brain network reorganization likely differs between subgroups with differing impairment severity. This study explored differences in functional connectivity (FC) and corticospinal tract (CST) integrity between patients with mild/moderate versus severe hemiplegia poststroke to clarify the neural correlates underlying motor deficits. METHOD: Sixty chronic stroke patients with upper limb motor impairment were categorized into mild/moderate and severe groups based on Fugl-Meyer scores. Resting-state FC was assessed using functional near-infrared spectroscopy (fNIRS) to compare connectivity patterns between groups across motor regions. CST integrity was evaluated by inducing motor evoked potentials (MEP) via transcranial magnetic stimulation. RESULTS: Compared to the mild/moderate group, the severe group exhibited heightened premotor cortex-primary motor cortex (PMC-M1) connectivity (t = 4.56, p < 0.01). Absence of MEP was also more frequent in the severe group (χ2 = 12.31, p = 0.01). Bayesian models effectively distinguished subgroups and identified the PMC-M1 connection as highly contributory (accuracy = 91.30%, area under the receiver operating characteristic curve [AUC] = 0.86). CONCLUSION: Distinct patterns of connectivity and corticospinal integrity exist between stroke subgroups with differing impairments. Strengthened connectivity potentially indicates recruitment of additional motor resources to compensate for damage. These findings elucidate the neural correlates underlying motor deficits poststroke and could guide personalized, network-based therapies targeting predictive biomarkers to improve rehabilitation outcomes.


Subject(s)
Evoked Potentials, Motor , Pyramidal Tracts , Spectroscopy, Near-Infrared , Stroke , Transcranial Magnetic Stimulation , Humans , Male , Female , Transcranial Magnetic Stimulation/methods , Spectroscopy, Near-Infrared/methods , Middle Aged , Aged , Stroke/physiopathology , Stroke/complications , Stroke/diagnostic imaging , Evoked Potentials, Motor/physiology , Pyramidal Tracts/physiopathology , Pyramidal Tracts/diagnostic imaging , Chronic Disease , Motor Cortex/physiopathology , Motor Cortex/diagnostic imaging , Biomarkers , Adult
3.
Sci Rep ; 14(1): 15079, 2024 07 02.
Article in English | MEDLINE | ID: mdl-38956128

ABSTRACT

The effect of the menstrual cycle on fine motor skills is unclear. This study determined whether the menstrual cycle affected fine motor skills and related neural activities. Nineteen women with regular menstrual cycles were tested for fine motor skills using two types of tasks: grooved pegboard task (GPT), which evaluates motor control with high freedom of movements, and force modulation task (FMT), which evaluates more complex and fine motor control with low freedom of movements. We also assessed primary motor cortex intracortical circuits and sensorimotor integration using paired-pulse transcranial magnetic stimulation to reveal why the menstrual cycle affects fine motor skills. The present study indicated that fine motor skills assessed by FMT varied throughout the menstrual cycle while those measured by GPT did not. These results suggest that fine motor skills requiring more complex and fine control may be affected by the menstrual cycle. Additionally, changes in fine motor skills throughout the menstrual cycle may be associated with the severity of menstruation-related symptoms.


Subject(s)
Menstrual Cycle , Motor Cortex , Motor Skills , Transcranial Magnetic Stimulation , Humans , Female , Menstrual Cycle/physiology , Motor Skills/physiology , Adult , Motor Cortex/physiology , Young Adult , Evoked Potentials, Motor/physiology
4.
Medicine (Baltimore) ; 103(27): e38723, 2024 Jul 05.
Article in English | MEDLINE | ID: mdl-38968539

ABSTRACT

BACKGROUND: This study aimed to investigate the effects of virtual reality (VR)-based robot therapy combined with task-oriented therapy on cerebral cortex activation and upper limb function in patients with stroke. METHODS: This study included 46 patients with hemiplegia within 1 year of stroke onset. Patients were divided into an experimental group (n = 23) and a control group (n = 23) using a computer randomization program. The experimental group received VR-based robot and task-oriented therapies, whereas the control group received only task-oriented therapy. All participants received interventions for 40 minutes per session, 5 times a week, for 8 weeks. For the pre- and post-evaluation of all participants, the Fugl-Meyer Assessment for the upper extremity, manual function test, motor activity log, and Jebsen-Taylor Hand Function Test were used to evaluate changes in upper limb function and motor-evoked potential amplitudes were measured to compare cerebral cortex activation. RESULTS: In comparison to the control group, experimental group demonstrated an improvement in the function of the upper limb (P < .01) and activation of the cerebral cortex (P < .01). CONCLUSION: The combined intervention of VR-based robot and task-oriented therapies is valuable for improving upper limb function and cerebral cortex activation in patients with stroke.


Subject(s)
Cerebral Cortex , Robotics , Stroke Rehabilitation , Stroke , Upper Extremity , Virtual Reality , Humans , Male , Female , Stroke Rehabilitation/methods , Stroke Rehabilitation/instrumentation , Middle Aged , Upper Extremity/physiopathology , Robotics/methods , Cerebral Cortex/physiopathology , Aged , Stroke/therapy , Stroke/physiopathology , Stroke/complications , Recovery of Function , Hemiplegia/therapy , Hemiplegia/etiology , Hemiplegia/physiopathology , Hemiplegia/rehabilitation , Evoked Potentials, Motor/physiology , Treatment Outcome , Adult
5.
Article in English | MEDLINE | ID: mdl-39024076

ABSTRACT

Transcranial magnetic stimulation (TMS) coupled with electroencephalography (EEG) possesses diagnostic and therapeutic benefits. However, TMS provokes a large pulse artifact that momentarily obscures the cortical response, presenting a significant challenge for EEG data interpretation. We examined how stimulation intensity (SI), EEG sampling frequency (Fs) and synchronization of stimulation with EEG sampling influence the amplitude and duration of the pulse artifact. In eight healthy subjects, single-pulse TMS was administered to the primary motor cortex, due to its well-documented responsiveness to TMS. We applied two different SIs (90% and 120% of resting motor threshold, representing the commonly used subthreshold and suprathreshold levels) and Fs (conventional 5 kHz and high frequency 20 kHz) both with TMS synchronized with the EEG sampling and the conventional non-synchronized setting. Aside from removal of the DC-offset and epoching, no preprocessing was performed to the data. Using a random forest regression model, we identified that Fs had the largest impact on both the amplitude and duration of the pulse artifact, with median variable importance values of 1.444 and 1.327, respectively, followed by SI (0.964 and 1.083) and sampling synchronization (0.223 and 0.248). This indicated that Fs and SI are crucial for minimizing prediction error and thus play a pivotal role in accurately characterizing the pulse artifact. The results of this study enable focusing some of the study design parameters to minimize TMS pulse artifact, which is essential for both enhancing the reliability of clinical TMS-EEG applications and improving the overall integrity and interpretability of TMS-EEG data.


Subject(s)
Artifacts , Electroencephalography , Motor Cortex , Transcranial Magnetic Stimulation , Humans , Transcranial Magnetic Stimulation/methods , Male , Electroencephalography/methods , Female , Adult , Motor Cortex/physiology , Young Adult , Healthy Volunteers , Evoked Potentials, Motor/physiology , Reproducibility of Results , Algorithms
6.
Int J Nanomedicine ; 19: 7473-7492, 2024.
Article in English | MEDLINE | ID: mdl-39071504

ABSTRACT

Background: Gigantocellular reticular nucleus (GRNs) executes a vital role in locomotor recovery after spinal cord injury. However, due to its unique anatomical location deep within the brainstem, intervening in GRNs for spinal cord injury research is challenging. To address this problem, this study adopted an extracorporeal magnetic stimulation system to observe the effects of selective magnetic stimulation of GRNs with iron oxide nanoparticles combined treadmill training on locomotor recovery after spinal cord injury, and explored the possible mechanisms. Methods: Superparamagnetic iron oxide (SPIO) nanoparticles were stereotactically injected into bilateral GRNs of mice with moderate T10 spinal cord contusion. Eight-week selective magnetic stimulation produced by extracorporeal magnetic stimulation system (MSS) combined with treadmill training was adopted for the animals from one week after surgery. Locomotor function of mice was evaluated by the Basso Mouse Scale, Grid-walking test and Treadscan analysis. Brain MRI, anterograde virus tracer and immunofluorescence staining were applied to observe the tissue compatibility of SPIO in GRNs, trace GRNs' projections and evaluate neurotransmitters' expression in spinal cord respectively. Motor-evoked potentials and H reflex were collected for assessing the integrity of cortical spinal tract and the excitation of motor neurons in anterior horn. Results: (1) SPIO persisted in GRNs for a minimum of 24 weeks without inducing apoptosis of GRN cells, and degraded slowly over time. (2) MSS-enabled treadmill training dramatically improved locomotor performances of injured mice, and promoted cortico-reticulo-spinal circuit reorganization. (3) MSS-enabled treadmill training took superimposed roles through both activating GRNs to drive more projections of GRNs across lesion site and rebalancing neurotransmitters' expression in anterior horn of lumbar spinal cord. Conclusion: These results indicate that selective MSS intervention of GRNs potentially serves as an innovative strategy to promote more spared fibers of GRNs across lesion site and rebalance neurotransmitters' expression after spinal cord injury, paving the way for the structural remodeling of neural systems collaborating with exercise training, thus ultimately contributing to the reconstruction of cortico-reticulo-spinal circuit.


Subject(s)
Magnetic Iron Oxide Nanoparticles , Spinal Cord Injuries , Animals , Spinal Cord Injuries/therapy , Spinal Cord Injuries/physiopathology , Magnetic Iron Oxide Nanoparticles/chemistry , Mice , Locomotion/physiology , Recovery of Function/physiology , Spinal Cord , Physical Conditioning, Animal , Reticular Formation , Magnetic Field Therapy/methods , Mice, Inbred C57BL , Female , Evoked Potentials, Motor/physiology
7.
Physiother Res Int ; 29(3): e2102, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38861661

ABSTRACT

BACKGROUND: Transcranial Magnetic Stimulation (TMS) studies examining exercise-induced neuroplasticity in pain populations have produced contradictory findings. We conducted a systematic review to explore how exercise impacts cortical excitability in pain populations using TMS metrics. This review aims to summarize the effect sizes and to understand their sources of heterogeneity. METHODS: We searched multiple databases from inception to December 2022. We included randomized controlled trials (RCTs) with any type of pain population, including acute and chronic pain; exercise interventions were compared to sham exercise or other active interventions. The primary outcomes were TMS metrics, and pain intensity was the secondary outcome. Risk of bias assessment was conducted using the Cochrane tool. RESULTS: This review included five RCTs (n = 155). The main diagnoses were fibromyalgia and cervical dystonia. The interventions included submaximal contractions, aerobic exercise, physical therapy, and exercise combined with transcranial direct current stimulation. Three studies are considered to have a high risk of bias. All five studies showed significant pain improvement with exercise. The neurophysiological data revealed improvements in cortical excitability measured by motor-evoked potentials; standardized mean difference = 2.06, 95% confidence interval 1.35-2.78, I2 = 19%) but no significant differences in resting motor threshold. The data on intracortical inhibition/facilitation (ICI/ICF) was not systematically analyzed, but one study (n = 45) reported higher ICI and lower ICF after exercise. CONCLUSIONS: These findings suggest that exercise interventions positively affect pain relief by modifying corticospinal excitability, but their effects on ICI/ICF are still unclear. While the results are inconclusive, they provide a basis for further exploration in this area of research; future studies should focus on establishing standardized TMS measurements and exercise protocols to ensure consistent and reliable findings. A large-scale RCT that examines various exercise interventions and their effects on cortical excitability could offer valuable insights to optimize its application in promoting neuroplasticity in pain populations.


Subject(s)
Cortical Excitability , Exercise Therapy , Humans , Cortical Excitability/physiology , Exercise Therapy/methods , Transcranial Magnetic Stimulation , Randomized Controlled Trials as Topic , Pain Management/methods , Evoked Potentials, Motor/physiology , Chronic Pain/therapy , Neuronal Plasticity/physiology , Exercise/physiology
8.
Sci Rep ; 14(1): 14862, 2024 06 27.
Article in English | MEDLINE | ID: mdl-38937562

ABSTRACT

Tactile Imagery (TI) remains a fairly understudied phenomenon despite growing attention to this topic in recent years. Here, we investigated the effects of TI on corticospinal excitability by measuring motor evoked potentials (MEPs) induced by single-pulse transcranial magnetic stimulation (TMS). The effects of TI were compared with those of tactile stimulation (TS) and kinesthetic motor imagery (kMI). Twenty-two participants performed three tasks in randomly assigned order: imagine finger tapping (kMI); experience vibratory sensations in the middle finger (TS); and mentally reproduce the sensation of vibration (TI). MEPs increased during both kMI and TI, with a stronger increase for kMI. No statistically significant change in MEP was observed during TS. The demonstrated differential effects of kMI, TI and TS on corticospinal excitability have practical implications for devising the imagery-based and TS-based brain-computer interfaces (BCIs), particularly the ones intended to improve neurorehabilitation by evoking plasticity changes in sensorimotor circuitry.


Subject(s)
Evoked Potentials, Motor , Imagination , Touch , Transcranial Magnetic Stimulation , Humans , Transcranial Magnetic Stimulation/methods , Male , Female , Evoked Potentials, Motor/physiology , Adult , Imagination/physiology , Young Adult , Touch/physiology , Pyramidal Tracts/physiology , Fingers/physiology , Motor Cortex/physiology , Vibration , Brain-Computer Interfaces
9.
Brain Behav ; 14(6): e3575, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38867451

ABSTRACT

BACKGROUND: Acupuncture as a traditional Chinese medicine therapy relies on unique theories to alleviate fatigue. The aim of this study is to evaluate the effect of acupuncture on exercise-induced fatigue utilizing transcranial magnetic stimulation (TMS). METHODS: A total of 20 participants with regular exercise habits were recruited for this study. All participants were randomly assigned to receive either acupuncture or sham acupuncture intervention for exercise-induced fatigue. TMS and a heart rate monitor were used to measure the amplitude and latency of motor evoked potential (MEP) as well as heart rate every 5 min over a 30-min period. The blood lactic acid (BLA) levels were measured using Lactate Scout+ at baseline, 0 min, and 30 min after fatigue. Two-way repeated measures analysis of variance was utilized to compare the differences between the effects of acupuncture method and time. Bonferroni post hoc tests were conducted to compare specific differences. Statistical significance was set at p < .05. RESULTS: Interaction effect was observed between acupuncture method and time effect in terms of amplitude (F(1, 38) = 5.40, p < .001, η2 = 0.12) and latency (F(1, 38) = 3.78, p = .008, η2 = .09) of MEP. The application of acupuncture can promote the recovery of heart rate especially at 30 min (p < .05), but which seem insufficient to generate significant difference in BLA (F(1, 38) = 0.067, p = .797, η2 = 0.002). CONCLUSIONS: Acupuncture can promote the increase of MEP amplitude, shorten MEP latency, and restore heart rate. Preliminary findings provide novel insights for individuals with exercise habits to alleviate fatigue and enhance sports performance.


Subject(s)
Acupuncture Therapy , Evoked Potentials, Motor , Exercise , Fatigue , Heart Rate , Transcranial Magnetic Stimulation , Humans , Transcranial Magnetic Stimulation/methods , Male , Acupuncture Therapy/methods , Exercise/physiology , Heart Rate/physiology , Female , Young Adult , Adult , Evoked Potentials, Motor/physiology , Fatigue/therapy , Fatigue/physiopathology , Fatigue/etiology , Lactic Acid/blood
12.
J Neuroeng Rehabil ; 21(1): 101, 2024 Jun 13.
Article in English | MEDLINE | ID: mdl-38872209

ABSTRACT

BACKGROUND: In post-stroke rehabilitation, functional connectivity (FC), motor-related cortical potential (MRCP), and gait activities are common measures related to recovery outcomes. However, the interrelationship between FC, MRCP, gait activities, and bipedal distinguishability have yet to be investigated. METHODS: Ten participants were equipped with EEG devices and inertial measurement units (IMUs) while performing lower limb motor preparation (MP) and motor execution (ME) tasks. MRCP, FCs, and bipedal distinguishability were extracted from the EEG signals, while the change in knee degree during the ME phase was calculated from the gait data. FCs were analyzed with pairwise Pearson's correlation, and the brain-wide FC was fed into support vector machine (SVM) for bipedal classification. RESULTS: Parietal-frontocentral connectivity (PFCC) dysconnection and MRCP desynchronization were related to the MP and ME phases, respectively. Hemiplegic limb movement exhibited higher PFCC strength than nonhemiplegic limb movement. Bipedal classification had a short-lived peak of 75.1% in the pre-movement phase. These results contribute to a better understanding of the neurophysiological functions during motor tasks, with respect to localized MRCP and nonlocalized FC activities. The difference in PFCCs between both limbs could be a marker to understand the motor function of the brain of post-stroke patients. CONCLUSIONS: In this study, we discovered that PFCCs are temporally dependent on lower limb gait movement and MRCP. The PFCCs are also related to the lower limb motor performance of post-stroke patients. The detection of motor intentions allows the development of bipedal brain-controlled exoskeletons for lower limb active rehabilitation.


Subject(s)
Electroencephalography , Gait , Parietal Lobe , Stroke Rehabilitation , Stroke , Humans , Male , Stroke/physiopathology , Stroke/complications , Female , Middle Aged , Gait/physiology , Parietal Lobe/physiopathology , Parietal Lobe/physiology , Evoked Potentials, Motor/physiology , Frontal Lobe/physiopathology , Frontal Lobe/physiology , Aged , Adult , Motor Cortex/physiopathology , Motor Cortex/physiology , Support Vector Machine
13.
Cereb Cortex ; 34(6)2024 Jun 04.
Article in English | MEDLINE | ID: mdl-38879808

ABSTRACT

Navigated repetitive transmagnetic stimulation is a non-invasive and safe brain activity modulation technique. When combined with the classical rehabilitation process in stroke patients it has the potential to enhance the overall neurologic recovery. We present a case of a peri-operative stroke, treated with ultra-early low frequency navigated repetitive transmagnetic stimulation over the contralesional hemisphere. The patient received low frequency navigated repetitive transmagnetic stimulation within 12 hours of stroke onset for seven consecutive days and a significant improvement in his right sided weakness was noticed and he was discharge with normal power. This was accompanied by an increase in the number of positive responses evoked by navigated repetitive transmagnetic stimulation and a decrease of the resting motor thresholds at a cortical level. Subcortically, a decrease in the radial, axial, and mean diffusivity were recorded in the ipsilateral corticospinal tract and an increase in fractional anisotropy, axial diffusivity, and mean diffusivity was observed in the interhemispheric fibers of the corpus callosum responsible for the interhemispheric connectivity between motor areas. Our case demonstrates clearly that ultra-early low frequency navigated repetitive transmagnetic stimulation applied to the contralateral motor cortex can lead to significant clinical motor improvement in patients with subcortical stroke.


Subject(s)
Stroke , Transcranial Magnetic Stimulation , Humans , Male , Transcranial Magnetic Stimulation/methods , Stroke/physiopathology , Stroke/surgery , Motor Cortex/physiopathology , Motor Cortex/diagnostic imaging , Middle Aged , Aged , Pyramidal Tracts/physiopathology , Pyramidal Tracts/diagnostic imaging , Pyramidal Tracts/physiology , Stroke Rehabilitation/methods , Evoked Potentials, Motor/physiology
14.
BMC Neurol ; 24(1): 213, 2024 Jun 22.
Article in English | MEDLINE | ID: mdl-38909175

ABSTRACT

BACKGROUND: After spinal cord injury (SCI), a large number of survivors suffer from severe motor dysfunction (MD). Although the injury site is in the spinal cord, excitability significantly decreases in the primary motor cortex (M1), especially in the lower extremity (LE) area. Unfortunately, M1 LE area-targeted repetitive transcranial magnetic stimulation (rTMS) has not achieved significant motor improvement in individuals with SCI. A recent study reported that the M1 hand area in individuals with SCl contains a compositional code (the movement-coding component of neural activity) that links matching movements from the upper extremities (UE) and the LE. However, the correlation between bilateral M1 hand area excitability and overall functional recovery is unknown. OBJECTIVE: To clarify the changes in the excitability of the bilateral M1 hand area after SCI and its correlation with motor recovery, we aim to specify the therapeutic parameters of rTMS for SCI motor rehabilitation. METHODS: This study is a 12-month prospective cohort study. The neurophysiological and overall functional status of the participants will be assessed. The primary outcomes included single-pulse and paired-pulse TMS. The second outcome included functional near-infrared spectroscopy (fNIRS) measurements. Overall functional status included total motor score, modified Ashworth scale score, ASIA Impairment Scale grade, spinal cord independence measure and modified Barthel index. The data will be recorded for individuals with SCI at disease durations of 1 month, 2 months, 4 months, 6 months and 12 months. The matched healthy controls will be measured during the same period of time after recruitment. DISCUSSION: The present study is the first to analyze the role of bilateral M1 hand area excitability changes in the evaluation and prediction of overall functional recovery (including motor function and activities of daily living) after SCI, which will further expand the traditional theory of the predominant role of M1, optimize the current rTMS treatment, and explore the brain-computer interface design for individuals with SCI. TRIAL REGISTRATION NUMBER: ChiCTR2300068831.


Subject(s)
Hand , Motor Cortex , Recovery of Function , Spinal Cord Injuries , Transcranial Magnetic Stimulation , Humans , Spinal Cord Injuries/rehabilitation , Spinal Cord Injuries/physiopathology , Spinal Cord Injuries/therapy , Recovery of Function/physiology , Hand/physiopathology , Transcranial Magnetic Stimulation/methods , Motor Cortex/physiopathology , Prospective Studies , Evoked Potentials, Motor/physiology , Male , Adult , Female , Cohort Studies , Middle Aged , Spectroscopy, Near-Infrared/methods
15.
J Neural Eng ; 21(3)2024 Jun 13.
Article in English | MEDLINE | ID: mdl-38834060

ABSTRACT

Objective.The corticospinal responses of the motor network to transcranial magnetic stimulation (TMS) are highly variable. While often regarded as noise, this variability provides a way of probing dynamic brain states related to excitability. We aimed to uncover spontaneously occurring cortical states that alter corticospinal excitability.Approach.Electroencephalography (EEG) recorded during TMS registers fast neural dynamics-unfortunately, at the cost of anatomical precision. We employed analytic Common Spatial Patterns technique to derive excitability-related cortical activity from pre-TMS EEG signals while overcoming spatial specificity issues.Main results.High corticospinal excitability was predicted by alpha-band activity, localized adjacent to the stimulated left motor cortex, and suggesting a travelling wave-like phenomenon towards frontal regions. Low excitability was predicted by alpha-band activity localized in the medial parietal-occipital and frontal cortical regions.Significance.We established a data-driven approach for uncovering network-level neural activity that modulates TMS effects. It requires no prior anatomical assumptions, while being physiologically interpretable, and can be employed in both exploratory investigation and brain state-dependent stimulation.


Subject(s)
Electroencephalography , Evoked Potentials, Motor , Motor Cortex , Nerve Net , Pyramidal Tracts , Transcranial Magnetic Stimulation , Humans , Transcranial Magnetic Stimulation/methods , Male , Pyramidal Tracts/physiology , Adult , Female , Motor Cortex/physiology , Electroencephalography/methods , Nerve Net/physiology , Evoked Potentials, Motor/physiology , Young Adult , Alpha Rhythm/physiology
16.
Med Sci Monit ; 30: e943748, 2024 Jun 10.
Article in English | MEDLINE | ID: mdl-38853414

ABSTRACT

BACKGROUND This study embarked on an innovative exploration to elucidate the effects of integrating electroacupuncture (EA) with motor training (MT) on enhancing corticospinal excitability and motor learning. Central to this investigation is the interplay between homeostatic and non-homeostatic metaplasticity processes, providing insights into how these combined interventions may influence neural plasticity and motor skill acquisition. MATERIAL AND METHODS The investigation enrolled 20 healthy volunteers, subjecting them to 4 distinct interventions to parse out the individual and combined effects of EA and MT. These interventions were EA alone, MT alone, EA-priming followed by MT, and MT-priming followed by EA. The assessment of changes in primary motor cortex (M1) excitability was conducted through motor-evoked potentials (MEPs), while the grooved pegboard test (GPT) was used to evaluate alterations in motor performance. RESULTS The findings revealed that EA and MT independently contributed to enhanced M1 excitability and motor performance. However, the additional priming with EA or MT did not yield further modulation in MEPs amplitudes. Notably, EA-priming was associated with improved GPT completion times, underscoring its potential in facilitating motor learning. CONCLUSIONS The study underscores that while EA and MT individually augment motor cortex excitability and performance, their synergistic application does not further enhance or inhibit cortical excitability. This points to the involvement of non-homeostatic metaplasticity mechanisms. Nonetheless, EA emerges as a critical tool in preventing M1 overstimulation, thereby continuously fostering motor learning. The findings call for further research into the strategic application of EA, whether in isolation or with MT, within clinical settings to optimize rehabilitation outcomes.


Subject(s)
Electroacupuncture , Evoked Potentials, Motor , Healthy Volunteers , Learning , Motor Cortex , Transcranial Magnetic Stimulation , Humans , Electroacupuncture/methods , Male , Motor Cortex/physiology , Learning/physiology , Female , Evoked Potentials, Motor/physiology , Adult , Transcranial Magnetic Stimulation/methods , Neuronal Plasticity/physiology , Young Adult , Motor Skills/physiology , Pyramidal Tracts/physiology
17.
Sci Rep ; 14(1): 13057, 2024 06 06.
Article in English | MEDLINE | ID: mdl-38844650

ABSTRACT

Combined action observation and motor imagery (AOMI) facilitates corticospinal excitability (CSE) and may potentially induce plastic-like changes in the brain in a similar manner to physical practice. This study used transcranial magnetic stimulation (TMS) to explore changes in CSE for AOMI of coordinative lower-limb actions. Twenty-four healthy adults completed two baseline (BLH, BLNH) and three AOMI conditions, where they observed a knee extension while simultaneously imagining the same action (AOMICONG), plantarflexion (AOMICOOR-FUNC), or dorsiflexion (AOMICOOR-MOVE). Motor evoked potential (MEP) amplitudes were recorded as a marker of CSE for all conditions from two knee extensor, one dorsi flexor, and two plantar flexor muscles following TMS to the right leg representation of the left primary motor cortex. A main effect for experimental condition was reported for all three muscle groups. MEP amplitudes were significantly greater in the AOMICONG condition compared to the BLNH condition (p = .04) for the knee extensors, AOMICOOR-FUNC condition compared to the BLH condition (p = .03) for the plantar flexors, and AOMICOOR-MOVE condition compared to the two baseline conditions for the dorsi flexors (ps ≤ .01). The study findings support the notion that changes in CSE are driven by the imagined actions during coordinative AOMI.


Subject(s)
Evoked Potentials, Motor , Imagination , Lower Extremity , Motor Cortex , Muscle, Skeletal , Pyramidal Tracts , Transcranial Magnetic Stimulation , Humans , Male , Female , Evoked Potentials, Motor/physiology , Adult , Motor Cortex/physiology , Imagination/physiology , Young Adult , Pyramidal Tracts/physiology , Lower Extremity/physiology , Muscle, Skeletal/physiology , Electromyography
18.
Nat Commun ; 15(1): 5126, 2024 Jun 15.
Article in English | MEDLINE | ID: mdl-38879614

ABSTRACT

Motor learning relies on experience-dependent plasticity in relevant neural circuits. In four experiments, we provide initial evidence and a double-blinded, sham-controlled replication (Experiment I-II) demonstrating that motor learning involving ballistic index finger movements is improved by preceding paired corticospinal-motoneuronal stimulation (PCMS), a human model for exogenous induction of spike-timing-dependent plasticity. Behavioral effects of PCMS targeting corticomotoneuronal (CM) synapses are order- and timing-specific and partially bidirectional (Experiment III). PCMS with a 2 ms inter-arrival interval at CM-synapses enhances learning and increases corticospinal excitability compared to control protocols. Unpaired stimulations did not increase corticospinal excitability (Experiment IV). Our findings demonstrate that non-invasively induced plasticity interacts positively with experience-dependent plasticity to promote motor learning. The effects of PCMS on motor learning approximate Hebbian learning rules, while the effects on corticospinal excitability demonstrate timing-specificity but not bidirectionality. These findings offer a mechanistic rationale to enhance motor practice effects by priming sensorimotor training with individualized PCMS.


Subject(s)
Learning , Motor Neurons , Neuronal Plasticity , Humans , Male , Learning/physiology , Female , Adult , Neuronal Plasticity/physiology , Young Adult , Motor Neurons/physiology , Transcranial Magnetic Stimulation , Pyramidal Tracts/physiology , Evoked Potentials, Motor/physiology , Double-Blind Method , Motor Cortex/physiology , Fingers/physiology , Motor Skills/physiology , Synapses/physiology
19.
Int J Mol Sci ; 25(11)2024 May 23.
Article in English | MEDLINE | ID: mdl-38891875

ABSTRACT

Transcranial focused ultrasound stimulation (tFUS) has emerged as a promising neuromodulation technique that delivers acoustic energy with high spatial resolution for inducing long-term potentiation (LTP)- or depression (LTD)-like plasticity. The variability in the primary effects of tFUS-induced plasticity could be due to different stimulation patterns, such as intermittent versus continuous, and is an aspect that requires further detailed exploration. In this study, we developed a platform to evaluate the neuromodulatory effects of intermittent and continuous tFUS on motor cortical plasticity before and after tFUS application. Three groups of rats were exposed to either intermittent, continuous, or sham tFUS. We analyzed the neuromodulatory effects on motor cortical excitability by examining changes in motor-evoked potentials (MEPs) elicited by transcranial magnetic stimulation (TMS). We also investigated the effects of different stimulation patterns on excitatory and inhibitory neural biomarkers, examining c-Fos and glutamic acid decarboxylase (GAD-65) expression using immunohistochemistry staining. Additionally, we evaluated the safety of tFUS by analyzing glial fibrillary acidic protein (GFAP) expression. The current results indicated that intermittent tFUS produced a facilitation effect on motor excitability, while continuous tFUS significantly inhibited motor excitability. Furthermore, neither tFUS approach caused injury to the stimulation sites in rats. Immunohistochemistry staining revealed increased c-Fos and decreased GAD-65 expression following intermittent tFUS. Conversely, continuous tFUS downregulated c-Fos and upregulated GAD-65 expression. In conclusion, our findings demonstrate that both intermittent and continuous tFUS effectively modulate cortical excitability. The neuromodulatory effects may result from the activation or deactivation of cortical neurons following tFUS intervention. These effects are considered safe and well-tolerated, highlighting the potential for using different patterns of tFUS in future clinical neuromodulatory applications.


Subject(s)
Evoked Potentials, Motor , Motor Cortex , Neuronal Plasticity , Transcranial Magnetic Stimulation , Animals , Motor Cortex/physiology , Rats , Male , Evoked Potentials, Motor/physiology , Transcranial Magnetic Stimulation/methods , Proto-Oncogene Proteins c-fos/metabolism , Ultrasonic Waves , Rats, Sprague-Dawley , Glial Fibrillary Acidic Protein/metabolism , Glutamate Decarboxylase/metabolism
20.
Exp Brain Res ; 242(8): 1999-2012, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38940961

ABSTRACT

Transcranial direct current stimulation (tDCS) is a non-invasive brain stimulation tool with potential for managing neuromuscular fatigue, possibly due to alterations in corticospinal excitability. However, inconsistencies in intra- and inter- individual variability responsiveness to tDCS limit its clinical use. Emerging evidence suggests harnessing homeostatic metaplasticity induced via tDCS may reduce variability and boost its outcomes, yet little is known regarding its influence on neuromuscular fatigue in healthy adults. We explored whether cathodal tDCS (ctDCS) prior to exercise combined with anodal tDCS (atDCS) could augment corticospinal excitability and attenuate neuromuscular fatigue. 15 young healthy adults (6 males, 22 ± 4 years) participated in four pseudo-randomised neuromodulation sessions: sham stimulation prior and during exercise, sham stimulation prior and atDCS during exercise, ctDCS prior and atDCS during exercise, ctDCS prior and sham stimulation during exercise. The exercise constituted an intermittent maximal voluntary contraction (MVC) of the right first dorsal interosseous (FDI) for 10 min. Neuromuscular fatigue was quantified as an attenuation in MVC force, while motor evoked potential (MEP) amplitude provided an assessment of corticospinal excitability. MEP amplitude increased during the fatiguing exercise, whilst across time, force decreased. There were no differences in MEP amplitudes or force between neuromodulation sessions. These outcomes highlight the ambiguity of harnessing metaplasticity to ameliorate neuromuscular fatigue in young healthy individuals.


Subject(s)
Evoked Potentials, Motor , Muscle Fatigue , Pyramidal Tracts , Transcranial Direct Current Stimulation , Humans , Transcranial Direct Current Stimulation/methods , Male , Female , Young Adult , Muscle Fatigue/physiology , Evoked Potentials, Motor/physiology , Pyramidal Tracts/physiology , Adult , Muscle, Skeletal/physiology , Neuronal Plasticity/physiology , Electromyography , Motor Cortex/physiology , Exercise/physiology
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