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(1) : Neuromuscular electrical stimulation (NMES) has beneficial effects on physical functions in Multiple sclerosis (MS) patients. However, the neurophysiological mechanisms underlying these functional improvements are still unclear. This study aims at comparing acute responses in spinal excitability, as measured by soleus Hoffmann reflex (H-reflex), between MS patients and healthy individuals, under three experimental conditions involving the ankle planta flexor muscles: (1) passive NMES (pNMES); (2) NMES superimposed onto isometric voluntary contraction (NMES+); and (3) isometric voluntary contraction (ISO). (2) : In total, 20 MS patients (MS) and 20 healthy individuals as the control group (CG) took part in a single experimental session. Under each condition, participants performed 15 repetitions of 6 s at 20% of maximal voluntary isometric contraction, with 6 s of recovery between repetitions. Before and after each condition, H-reflex amplitudes were recorded. (3) : In MS, H-reflex amplitude did not change under any experimental condition (ISO: = 0.506; pNMES: = 0.068; NMES+: = 0.126). In CG, H-reflex amplitude significantly increased under NMES+ ( = 0.01), decreased under pNMES ( < 0.000) and was unaltered under ISO ( = 0.829). (4) : The different H-reflex responses between MS and CG might reflect a reduced ability of MS patients in modulating spinal excitability.
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http://dx.doi.org/10.3390/jcm13030704 | DOI Listing |
Eur J Neurosci
September 2025
Department of Anesthesiology and Pain Medicine, University of California Davis, Davis, California, USA.
Voltage-gated K channels of the Kv2 family coassemble with electrically silent KvS subunits in specific subpopulations of brain neurons, forming heteromeric Kv2/KvS channels with distinct functional properties. Little is known about the composition and function of Kv2 channels in spinal cord neurons, however. Here, we show that while Kv2.
View Article and Find Full Text PDFPain Rep
October 2025
Physiology, Pharmacology and Neuroscience, School of Life Sciences, The University of Nottingham, Nottingham, United Kingdom.
Introduction: The dorsal horn (DH) of the spinal cord is physiologically immature at birth. Spinal excitability increases and wide dynamic range (WDR) neurons in lamina V have lowered activation thresholds and larger receptive field sizes.
Objective: The DH is composed of 5 laminae containing diverse interneuronal populations yet our understanding of the physiology of the DH is based on behavioural studies or extrapolation of single cell WDR recordings to the whole network.
Sci Adv
September 2025
Center for Motor Neuron Biology and Disease, Columbia University, New York, NY 10032, USA.
Movement is executed through balanced excitation-inhibition in spinal motor circuits. Short-term perturbations in one type of neurotransmission are homeostatically counteracted by the opposing type, but prolonged excitation-inhibition imbalance causes dysfunction at both single neuron and circuit levels. However, whether dysfunction in one or both types of neurotransmission leads to pathogenicity in neurodegenerative diseases characterized by select synaptic deficits is not known.
View Article and Find Full Text PDFAnesth Analg
September 2025
From the Department of Neurosurgery, University Medical Center Groningen, University of Groningen, Groningen, the Netherlands.
Background: Transcranial electrical stimulation muscle-recorded motor evoked potentials (Tc-mMEPs) are used to monitor the spinal cord motor tracts during spinal surgery. There is considerable intra- and interindividual variability in the signals recorded, causing a high incidence of false positive warnings. Inadequate blood pressure is commonly blamed for false positive warnings and is usually managed with fluid and vasopressor therapy.
View Article and Find Full Text PDFJ Physiol
September 2025
Marion Murray Spinal Cord Injury Research Center, Department of Neurobiology and Anatomy, Drexel University College of Medicine, Philadelphia, PA, USA.
Within a year after a spinal cord injury (SCI), 75% of individuals develop spasticity. While normal movement relies on the ability to adjust reflexes appropriately, and on reciprocal inhibition of antagonistic muscles, spastic individuals display hyperactive spinal reflexes and involuntary muscle co-contractions. Current anti-spastic medications can suppress uncontrolled movements, but by acting on GABAergic signalling, these medications lead to severe side-effects and weakened muscle force, making them incompatible with activity-based therapies.
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