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1.
Neurodegener Dis Manag ; 14(3-4): 75-85, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-39155765

RESUMO

Aim: To determine whether walking performance differed between people with multiple sclerosis (MS) who performed distinct types, volumes and intensities of exercise.Materials & methods: Forty-five people with relapsing-remitting MS performed two trials of the 2-min walk test, one at a preferred speed and another at a fast speed. Gait metrics were measured by wireless inertial sensors. Participants reported the type (aerobic, resistance), volume and intensity of exercise performed.Results: Walking speed reserve and gait variability were better in participants who performed combined aerobic and resistance exercises compared with those who performed aerobic-only exercise.Conclusion: Walking performance differs in people with mild MS disability based on the type and volume of exercise performed.


Exercise improves many symptoms in people living with multiple sclerosis (MS). However, the best type, intensity and amount of exercise to improve walking in people living with MS are not clear. This study aimed to determine whether walking performance differed in people with MS who performed different types and amounts of exercise. A total of 45 people with relapsing-remitting MS participated in this study. The participants reported the average amount, intensity and types (aerobic, resistance) of exercise performed on a weekly basis. The participants also performed two walking tests, one at their normal walking speed and the other at their fastest walking speed. The results showed that participants who performed both aerobic and resistance types of exercise were more stable and were able to increase their walking speed more than participants who only performed aerobic types of exercise. Regardless of exercise type, participants who performed at least 150 min of exercise per week were more stable when walking at a fast speed compared with participants who performed less than 150 min of exercise per week. These findings underscore the importance for people living with MS to perform aerobic and resistance types of exercise for at least 150 min per week to help maintain walking performance.


Assuntos
Exercício Físico , Caminhada , Humanos , Masculino , Feminino , Adulto , Caminhada/fisiologia , Pessoa de Meia-Idade , Esclerose Múltipla Recidivante-Remitente/fisiopatologia , Esclerose Múltipla Recidivante-Remitente/reabilitação , Esclerose Múltipla/fisiopatologia , Marcha/fisiologia , Teste de Caminhada
2.
Exp Brain Res ; 242(7): 1761-1772, 2024 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-38822825

RESUMO

BACKGROUND: Multiple sclerosis is a neurodegenerative disease that damages the myelin sheath within the central nervous system. Axonal demyelination, particularly in the corpus callosum, impacts communication between the brain's hemispheres in persons with multiple sclerosis (PwMS). Changes in interhemispheric communication may impair gait coordination which is modulated by communication across the corpus callosum to excite and inhibit specific muscle groups. To further evaluate the functional role of interhemispheric communication in gait and mobility, this study assessed the ipsilateral silent period (iSP), an indirect marker of interhemispheric inhibition and how it relates to gait adaptation in PwMS. METHODS: Using transcranial magnetic stimulation (TMS), we assessed interhemispheric inhibition differences between the more affected and less affected hemisphere in the primary motor cortices in 29 PwMS. In addition, these same PwMS underwent a split-belt treadmill walking paradigm, with the faster paced belt moving under their more affected limb. Step length asymmetry (SLA) was the primary outcome measure used to assess gait adaptability during split-belt treadmill walking. We hypothesized that PwMS would exhibit differences in iSP inhibitory metrics between the more affected and less affected hemispheres and that increased interhemispheric inhibition would be associated with greater gait adaptability in PwMS. RESULTS: No statistically significant differences in interhemispheric inhibition or conduction time were found between the more affected and less affected hemisphere. Furthermore, SLA aftereffect was negatively correlated with both average percent depth of silent period (dSP%AVE) (r = -0.40, p = 0.07) and max percent depth of silent period (dSP%MAX) r = -0.40, p = 0.07), indicating that reduced interhemispheric inhibition was associated with greater gait adaptability in PwMS. CONCLUSION: The lack of differences between the more affected and less affected hemisphere indicates that PwMS have similar interhemispheric inhibitory capacity irrespective of the more affected hemisphere. Additionally, we identified a moderate correlation between reduced interhemispheric inhibition and greater gait adaptability. These findings may indicate that interhemispheric inhibition may in part influence responsiveness to motor adaptation paradigms and the need for further research evaluating the neural mechanisms underlying the relationship between interhemispheric inhibition and motor adaptability.


Assuntos
Adaptação Fisiológica , Córtex Motor , Esclerose Múltipla , Estimulação Magnética Transcraniana , Humanos , Feminino , Masculino , Adulto , Adaptação Fisiológica/fisiologia , Pessoa de Meia-Idade , Esclerose Múltipla/fisiopatologia , Córtex Motor/fisiopatologia , Inibição Neural/fisiologia , Marcha/fisiologia , Corpo Caloso/fisiopatologia , Corpo Caloso/fisiologia , Lateralidade Funcional/fisiologia , Transtornos Neurológicos da Marcha/fisiopatologia , Transtornos Neurológicos da Marcha/etiologia , Potencial Evocado Motor/fisiologia
3.
Brain Imaging Behav ; 18(4): 852-862, 2024 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-38530517

RESUMO

Reactive steps are rapid responses after balance challenges. People with Parkinson's Disease (PwPD) demonstrate impaired reactive stepping, increasing fall-risk. Although PwPD can improve steps through practice, the neural mechanisms contributing to improved reactive stepping are poorly understood. This study investigated white-matter correlates of responsiveness to reactive step training in PwPD. In an eighteen-week multiple-baseline study, participants (n = 22) underwent baseline assessments (B1 and B2 two-weeks apart), a two-week training protocol, and post-training assessments immediately (P1) and two-months (P2) post-training. Assessments involved three backward reactive step trials, measuring anterior-posterior margin of stability (AP MOS), step length, and step latency. Tract-Based Spatial Statistics correlated white-matter integrity (fractional anisotropy (FA) and radial diffusivity (RD)) with retained (P2-B2) and immediate improvements (P1-B2) in stepping. Significant and sustained improvements in step length and AP MOS were observed. Greater retention of step length improvement correlated with increased FA in the left anterior thalamic radiation (ATR), left posterior thalamic radiation (PTR), left superior longitudinal fasciculus (SLF), and right inferior longitudinal fasciculus (ILF). Step latency retention was associated with lower RD in the left posterior corona radiata and left PTR. Immediate improvements in AP MOS correlated with increased FA of the right ILF, right SLF, and right corticospinal tract. Immediate step length improvements were associated with increased FA in right and left ATR and right SLF. These findings highlight the importance of white-matter microstructural integrity in motor learning and retention processes in PD and could aid in identifying individuals with PD who would benefit most from balance rehabilitation.


Assuntos
Imagem de Tensor de Difusão , Doença de Parkinson , Equilíbrio Postural , Substância Branca , Humanos , Substância Branca/diagnóstico por imagem , Doença de Parkinson/diagnóstico por imagem , Doença de Parkinson/fisiopatologia , Masculino , Feminino , Idoso , Equilíbrio Postural/fisiologia , Imagem de Tensor de Difusão/métodos , Pessoa de Meia-Idade , Encéfalo/diagnóstico por imagem , Anisotropia
4.
Sensors (Basel) ; 24(4)2024 Feb 06.
Artigo em Inglês | MEDLINE | ID: mdl-38400224

RESUMO

Most people with multiple sclerosis (PwMS) experience significant gait asymmetries between their legs during walking, leading to an increased risk of falls. Split-belt treadmill training, where the speed of each limb is controlled independently, alters each leg's stepping pattern and can improve gait symmetry in PwMS. However, the biomechanical mechanisms of this adaptation in PwMS remain poorly understood. In this study, 32 PwMS underwent a 10 min split-belt treadmill adaptation paradigm with the more affected (MA) leg moving twice as fast as the less affected (LA) leg. The most noteworthy biomechanical adaptation observed was increased peak propulsion asymmetry between the limbs. A kinematic analysis revealed that peak dorsiflexion asymmetry and the onset of plantarflexion in the MA limb were the primary contributors to the observed increases in peak propulsion. In contrast, the joints in the LA limb underwent only immediate reactive adjustments without subsequent adaptation. These findings demonstrate that modulation during gait adaptation in PwMS occurs primarily via propulsive forces and joint motions that contribute to propulsive forces. Understanding these distinct biomechanical changes during adaptation enhances our grasp of the rehabilitative impact of split-belt treadmill training, providing insights for refining therapeutic interventions aimed at improving gait symmetry.


Assuntos
Esclerose Múltipla , Humanos , Adaptação Fisiológica , Caminhada , Marcha , Fenômenos Mecânicos , Teste de Esforço , Fenômenos Biomecânicos
5.
Sensors (Basel) ; 23(17)2023 Sep 03.
Artigo em Inglês | MEDLINE | ID: mdl-37688084

RESUMO

Multiple sclerosis is accompanied by decreased mobility and various adaptations affecting neural structure and function. Therefore, the purpose of this project was to understand how motor cortex thickness and corticospinal excitation and inhibition contribute to turning performance in healthy controls and people with multiple sclerosis. In total, 49 participants (23 controls, 26 multiple sclerosis) were included in the final analysis of this study. All participants were instructed to complete a series of turns while wearing wireless inertial sensors. Motor cortex gray matter thickness was measured via magnetic resonance imaging. Corticospinal excitation and inhibition were assessed via transcranial magnetic stimulation and electromyography place on the tibialis anterior muscles bilaterally. People with multiple sclerosis demonstrated reduced turning performance for a variety of turning variables. Further, we observed significant cortical thinning of the motor cortex in the multiple sclerosis group. People with multiple sclerosis demonstrated no significant reductions in excitatory neurotransmission, whereas a reduction in inhibitory activity was observed. Significant correlations were primarily observed in the multiple sclerosis group, demonstrating lateralization to the left hemisphere. The results showed that both cortical thickness and inhibitory activity were associated with turning performance in people with multiple sclerosis and may indicate that people with multiple sclerosis rely on different neural resources to perform dynamic movements typically associated with fall risk.


Assuntos
Esclerose Múltipla , Neuroanatomia , Humanos , Neurofisiologia , Aclimatação , Eletromiografia
6.
Sensors (Basel) ; 23(12)2023 Jun 09.
Artigo em Inglês | MEDLINE | ID: mdl-37420623

RESUMO

Multiple sclerosis (MS) is a neurodegenerative disease characterized by degradation of the myelin sheath resulting in impaired neural communication throughout the body. As a result, most people with MS (PwMS) experience gait asymmetries between their legs leading to an increased risk of falls. Recent work indicates that split-belt treadmill adaptation, where the speed of each leg is controlled independently, can decrease gait asymmetries for other neurodegenerative impairments. The purpose of this study was to test the efficacy of split-belt treadmill training to improve gait symmetry in PwMS. In this study, 35 PwMS underwent a 10 min split-belt treadmill adaptation paradigm, with the faster paced belt moving under the more affected limb. Step length asymmetry (SLA) and phase coordination index (PCI) were the primary outcome measures used to assess spatial and temporal gait symmetries, respectively. It was predicted that participants with a worse baseline symmetry would have a greater response to split-belt treadmill adaptation. Following this adaptation paradigm, PwMS experienced aftereffects that improved gait symmetry, with a significant difference between predicted responders and nonresponders in both SLA and PCI change (p < 0.001). Additionally, there was no correlation between SLA and PCI change. These findings suggest that PwMS retain the ability for gait adaptation, with those most asymmetrical at baseline demonstrating the greatest improvement, and that there may be separate neural mechanisms for spatial and temporal locomotor adjustments.


Assuntos
Esclerose Múltipla , Doenças Neurodegenerativas , Humanos , Marcha/fisiologia , Adaptação Fisiológica/fisiologia , Aclimatação , Teste de Esforço/métodos , Caminhada/fisiologia
7.
J Mot Behav ; 55(5): 453-474, 2023.
Artigo em Inglês | MEDLINE | ID: mdl-37245865

RESUMO

Historically, research aimed at improving motor performance has largely focused on the neural processes involved in motor execution due to their role in muscle activation. However, accompanying somatosensory and proprioceptive sensory information is also vitally involved in performing motor skills. Here we review research from interdisciplinary fields to provide a description for how somatosensation informs the successful performance of motor skills as well as emphasize the need for careful selection of study methods to isolate the neural processes involved in somatosensory perception. We also discuss upcoming strategies of intervention that have been used to improve performance via somatosensory targets. We believe that a greater appreciation for somatosensation's role in motor learning and control will enable researchers and practitioners to develop and apply methods for the enhancement of human performance that will benefit clinical, healthy, and elite populations alike.


Assuntos
Destreza Motora , Propriocepção , Humanos , Destreza Motora/fisiologia , Propriocepção/fisiologia , Córtex Somatossensorial/fisiologia
8.
Arch Phys Med Rehabil ; 104(9): 1456-1464, 2023 09.
Artigo em Inglês | MEDLINE | ID: mdl-37037293

RESUMO

OBJECTIVE: To develop a multiple sclerosis (MS)-specific model of balance and examine differences between (1) MS and neurotypical controls and (2) people with MS (PwMS) with (MS-F) and without a fall history (MS-NF). DESIGN AND SETTING: A cross-sectional study was conducted at the Gait and Balance Laboratory at the University of Kansas Medical Center. Balance was measured from the instrumented sway system (ISway) assessment. PARTICIPANTS: In total, 118 people with relapsing-remitting MS (MS-F=39; MS-NF=79) and 46 age-matched neurotypical controls. INTERVENTION: Not applicable. OUTCOME MEASURES: A total of 22 sway measures obtained from the ISway were entered into an exploratory factor analysis to identify underlying balance domains. The model-derived balance domains were compared between (1) PwMS and age-matched, neurotypical controls and (2) MS-F and MS-NF. RESULTS: Three distinct balance domains were identified: (1) sway amplitude and velocity, (2) sway frequency and jerk mediolateral, and (3) sway frequency and jerk anteroposterior, explaining 81.66% of balance variance. PwMS exhibited worse performance (ie, greater amplitude and velocity of sway) in the sway velocity and amplitude domain compared to age-matched neurotypical controls (P=.003). MS-F also exhibited worse performance in the sway velocity and amplitude domain compared to MS-NF (P=.046). The anteroposterior and mediolateral sway frequency and jerk domains were not different between PwMS and neurotypical controls nor between MS-F and MS-NF. CONCLUSIONS: This study identified a 3-factor, MS-specific balance model, demonstrating that PwMS, particularly those with a fall history, exhibit disproportionate impairments in sway amplitude and velocity. Identifying postural stability outcomes and domains that are altered in PwMS and clinically relevant (eg, related to falls) would help isolate potential treatment targets.


Assuntos
Acidentes por Quedas , Marcha , Esclerose Múltipla Recidivante-Remitente , Equilíbrio Postural , Adulto , Feminino , Humanos , Masculino , Pessoa de Meia-Idade , Estudos Transversais , Modelos Neurológicos , Esclerose Múltipla Recidivante-Remitente/complicações , Esclerose Múltipla Recidivante-Remitente/fisiopatologia
9.
OTJR (Thorofare N J) ; 43(2): 313-321, 2023 04.
Artigo em Inglês | MEDLINE | ID: mdl-36377233

RESUMO

The purpose of this exploratory qualitative study was to provide insight on the use of yoga in occupational therapy (OT) for people with multiple sclerosis (PwMS). This study aimed to answer how and why OT practitioners (OTPs) integrate yoga into clinical practice for PwMS. Eight OTPs, half of whom have also completed yoga teacher training, participated in a semi-structured telephone interview. Interviews were transcribed verbatim, inductively open-coded, and analyzed using thematic data analysis. Themes that emerged were: (a) OT and yoga are a natural fit; (b) improved performance and participation; (c) leveraging personal ties to yoga; and (d) influenced by client factors and clinical environment. The qualitative data provide valuable information about OTPs' justification for, and unique application of, yoga in clinical practice for PwMS. Future researchers should further explore the use of yoga for OT-related outcomes and the experience of PwMS.


Assuntos
Esclerose Múltipla , Terapia Ocupacional , Yoga , Humanos , Pesquisa Qualitativa
10.
Sensors (Basel) ; 22(14)2022 Jul 21.
Artigo em Inglês | MEDLINE | ID: mdl-35891122

RESUMO

Transcutaneous electric nerve stimulation (TENS) is a method of electrical stimulation that elicits activity in sensory nerves and leads to improvements in the clinical metrics of mobility. However, the underlying perceptual mechanisms leading to this improvement are unknown. The aim of this study was to apply a Bayesian inference model to understand how TENS impacts sensorimotor uncertainty during full body stepping movements. Thirty healthy adults visited the lab on two occasions and completed a motor learning protocol in virtual reality (VR) on both visits. Participants were randomly assigned to one of three groups: TENS on first visit only (TN), TENS on second visit only (NT), or a control group where TENS was not applied on either visit (NN). Using methods of Bayesian inference, we calculated the amount of uncertainty in the participants' center of mass (CoM) position estimates on each visit. We found that groups TN and NT decreased the amount of uncertainty in the CoM position estimates in their second visit while group NN showed no difference. The least amount of uncertainty was seen in the TN group. These results suggest that TENS reduces the amount of uncertainty in sensory information, which may be a cause for the observed benefits with TENS.


Assuntos
Estimulação Elétrica Nervosa Transcutânea , Adulto , Teorema de Bayes , Humanos , Movimento , Estimulação Elétrica Nervosa Transcutânea/métodos , Incerteza
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