PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

The effect of selected lower limb muscle activities on a level of imbalance in reaction on anterior-posterior ground perturbation

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
We investigated whether an increase in muscular tone induced by the information about imminent posture destabilisation brings a positive result and prevents such destabilisation. Methods: We measured forward and backwards movements of 38 participates (27 females and 11 males, aged 23 (SD 2.6)) on the treadmill (forward and backward movements). All participants were subjected to three test condition trials (Tr): 1) subject did not know the nature and time of perturbation (Tr1); 2) subject knew the nature of perturbation but did not know time (Tr2); 3) both the time and nature of perturbation were known precisely (Tr3). The tests resulted in the determination of muscular activity connected with a postural adjustment as well as values of pressure exerted by the forefoot on the ground, and the angle of flexion in the knee joint. Results: In terms of postural adjustments, it was possible to observe statistically significant differences in muscular activity between Tr1 and Tr2 with reference to Tr3. No statistically significant differences were identified in all phases regarding values of forefoot pressure and those concerning the angle of flexion in the knee joint. An increase in the muscle tone before perturbation was correlated with the displacement and the velocity of the COP after perturbation. Conclusions: The results obtained indicate that knowledge of the expected time of perturbation is responsible for postural adjustment. Furthermore, muscle tone resulting from an adjustment of perturbation and responsible for the stiffening of lower limbs triggered greater displacement of the COP after perturbation.
Rocznik
Strony
135--146
Opis fizyczny
Bibliogr. 44 poz., rys., tab., wykr.
Twórcy
  • Department of Biomechatronics, Faculty of Biomedical Engineering, Silesian University of Technology, Gliwice, Poland.
autor
  • Department of Biomechatronics, Faculty of Biomedical Engineering, Silesian University of Technology, Gliwice, Poland.
  • Silesian Fizjosport Medical Center, Association of Neurophysiological-Orthopedic Maniupulative Physical Therapists, Gliwice, Poland.
  • Department of Biomechatronics, Faculty of Biomedical Engineering, Silesian University of Technology, Gliwice, Poland.
  • Department of Biomechatronics, Faculty of Biomedical Engineering, Silesian University of Technology, Gliwice, Poland.
  • Department of Biomechatronics, Faculty of Biomedical Engineering, Silesian University of Technology, Gliwice, Poland.
Bibliografia
  • [1] BAX A.M., JOHNSON K.J., WATSON A.M., ADKIN A.L., CARPENTER M.G., TOKUNO C.D., The effects of perturbation type and direction on threat-related changes in anticipatory postural control, Human Movement Science, 2020, 73, 102674.
  • [2] BERG W.P., HUGHES M.R., The Effect of Load Uncertainty on Neuromotor Control in Catching: Gender Differences and Short Foreperiods, Journal of Motor Behavior, 2020, 52 (3), 318–332.
  • [3] BIBROWICZ K., SZURMIK T., MICHNIK R., WODARSKI P., MYŚLIWIEC A., MITAS A., Application of Zebris dynamometric platform and arch index in assessment of the longitudinal arch of the foot, Technology and Health Care, 2018, 26 (2), 543–551.
  • [4] BIBROWICZ K., SZURMIK T., WODARSKI P., MICHNIK R., MYŚLIWIEC A., BARSZCZ J., MIKOŁAJOWSKI G., MITAS A., Quality of body posture and postural stability in people with intellectual disability playing volleyball, Acta Bioeng. Biomech., 2019, 21 (1), 23–30.
  • [5] BOCHENEK A., REICHER M., Human Anathomy (Anatomia człowieka), Vol. 1, 1965.
  • [6] HORSLEN B.C., MURNAGHAN C.D., INGLIS J.T., CHUA R., CARPENTER M.G., Effects of postural threat on spinal stretch reflexes: evidence for increased muscle spindle sensitivity?, Neurophysiology, 2013, 110, 899–906.
  • [7] CLEWORTH T.W., CHUA R., INGLIS T., CARPENTER M.G., Influence of virtual height exposure on postural reactions to support surface translations, Gait and Posture, 2016, 47, 96–102.
  • [8] CURUK E., ARUIN A.S., The effect of a textured insole on anticipatory postural adjustments, Somatosensory and Motor Research, 2021, 38 (3), 188–193.
  • [9] CURUK E., YUNJU LEE Y., ARUIN A.S., Individuals with stroke improve anticipatory postural adjustments after a single session of targeted, Human Movement Science, 2020, 69, 102559.
  • [10] FALLA D., DALL’ALBA P., RAINOLDI A., MERLETTI R., JULL G., Location of innervation zones of sternocleidomastoid and scalene muscles – a basis for clinical and research electromyography applications, Clinical Neurophysiology, 2002, 113 (1), 57–63.
  • [11] GARCEZ D.R., DA SILVA ALMEIDA G.C., OLIVEIRA SILVA C.F., DE SOUZA NASCIMENTO T., DE ATHAYDE COSTA SILVA E.A., ROZIN KLEINER A.F., DA SILVA SOUZA G., YAMADA E.S., CALLEGARI B., Postural adjustments impairments in elderly people with chronic low back pain, Scientific Reports, 2021, 11 (1), 4783.
  • [12] GEBEL A., LUDER B., GRANACHER U., Efects of Increasing Balance Task Dificulty on Postural Sway and Muscle Activity Healthy Adolescents, Frontiers in Pysiology, 2019, 10, 1135.
  • [13] HORAK F.B., DIENER H.C., NASHNER L.M., Influence of central set on human postural responses, Journal of Neurophysiology, 1989, 62 (4), 841–853.
  • [14] HORAK F.B., MOORE S.P., The effect of prior leaning on human postural responses, Gait and Posture, 1993, 1 (4), 203–210.
  • [15] HORSLEN B.C., DAKIN C.J., INGLIS J.T., BLOUIN J.S., CARPENTER M.G., Modulation of human vestibular reflexes with increased postural threat, Journal of Physiology and Pharmacology, 2014, 592 (16), 3671–3685.
  • [16] JAHANMIRI-NEZHAD F., BARKHAUS P.E., RYMER W.Z., ZHOU P., Innervation zones of fasciculating motor units: observations by a linear electrode array, Front. Hum. Neurosci., 2015, 9, 239.
  • [17] JIN TAE HAN, HYUN MO KOO, JAE MIN JUNG, YEUN JUNG KIM, Differences in Plantar Foot Pressure and COP between Flat and Normal Feet During Walking, Journal of Physical Therapy Science, 2011, 23 (4), 683–685.
  • [18] JOHANSSON H., Role of knee ligaments in proprioception and regulation of muscle stiffness, Journal of Electromyography and Kinesiology, 1991, 1 (3), 158–179.
  • [19] JURAS G., BRACHMAN A., MARSZALEK W., KAMIENIARZ A., MICHALSKA J., PAWLOWSKI M., SLOMKA, K., Using Virtual Reality To Improve Postural Stability In Elderly Women, Medicine and Science in Sports and Exercise, 2020, 52 (17), 553–553.
  • [20] JURKOJĆ J., Balance disturbances coefficient as a new value to assess ability to maintain balance on the basis of FFT curves, Acta Bioeng. Biomech., 2018, 20 (1), 143–151.
  • [21] KRISHNAN V., KANEKAR N., ARUIN A.S., Anticipatory postural adjustments in individuals with multiple sclerosis, Neuroscience Letters, 2012, 506 (2), 256–260.
  • [22] LAPRADE R.F., MORGAN P.M., FRED A., The Anatomy of the Posterior Aspect of the Knee. An Anatomic Study, Journal of Bone and Joint Surgery, 2007, 89, 758–764.
  • [23] LEE Y.-J., LIANG J.-N., CHEN B., GANESAN M., ARUIN A.S., Standing on wedges modifies side-specific postural control in the presence of lateral external perturbations, Journal of Electromyography and Kinesiology, 2017, 36, 16–24.
  • [24] LEMOS T., IMBIRIBA L.A., VARGAS C.D., VIEIRA T.M., Modulation of tibialis anterior muscle activity changes with upright stance width, Journal of Electromyography and Kinesiology, 2015, 25 (1), 168–174.
  • [25] MOHAPATRA S., KRISHNAN V., ARUIN A.S., Postural control in response to an external perturbation: effect of altered proprioceptive information, Experimental Brain Research, 2012, 217 (2), 197–208.
  • [26] OEFFINGER D.J., SHAPIRO R., NYLAND J., PIENKOWSKI D., CABORN D.N.M., Delayed gastrocnemius muscle response to sudden perturbation in rehabilitated patients with anterior cruciate ligament reconstruction, Knee Surgery, Sports Traumatology, Arthroscopy, 2001, 9, 19–27.
  • [27] PĘKALA P.A., MIZIA E., MANN M.R., WAGNER-OLSZEWSKA I., The popliteofibular ligament: a cadaveric ultrasound study, Skeletal Radiology, 2022, 51 (1), 183–189.
  • [28] PĘKALA P.A., MANN M.R., PĘKALA J.R., The gastrocnemiofibular ligament: A new, more anatomically accurate name for the fabellofibular ligament – An original magnetic resonance imaging study and meta-analysis, Clinical Anatomy, 2020, 419–427.
  • [29] SCARIOT V., RIOS J.L, CLAUDINO R., DOS SANTOS E.C., ANGULSKI H.B.B., DOS SANTOS M.J., Both anticipatory and compensatory postural adjustments are adapted while catch ing a ball in unstable standing posture, Journal of Bodywork and Movement Therapies, 2016, 20 (1), 90–97.
  • [30] SHUMWAY-COOK A., WOOLLACOTT M.H., Motor Control: Translating Research Into Clinical Practice, Lippincott Williams & Wilkins, 2011.
  • [31] SIBLEY B.A., ETNIER J.L., The Relationship between Physical Activity and Cognition in Children: A Meta-Analysis, Pediatric Exercise Science, 2003, 15, 243–256.
  • [32] SMITH J.A., IGNASIAK N.K, JACOBS J.V., Task-invariance and reliability of anticipatory postural adjustments in healthy young adults, Gait and Posture, 2020, 76, 396–402.
  • [33] SOUCHARD P., Żak M. (red.), Physiotherapeutic method of global postural patterns (Fizjoterapeutyczna metoda globalnych wzorców posturalnych), Elsevier Urban and Partner, 2014.
  • [34] RAINOLDI A., MELCHIORRI G., CARUSO I., A method for positioning electrodes during surface EMG recordings in lower limb muscles, Journal of Neuroscience Methods, 2004, 134 (1), 37–43.
  • [35] REA L.M., PARKER R.A., Designing and conducting survey research: a comprehensive guide, San Francisco: Jossey-Bass Publishers, 1992.
  • [36] RITZMANN R., LEE K., KRAUSE A., GOLLHOFER A., FREYLER K., Stimulus Prediction and Postural Reaction: Phase-Specific Modulation of Soleus H-Reflexes Is Related to Changes in Joint Kinematics and Segmental Strategy in Perturbed Upright Stance, Frontiers in Integrative Neuroscience, 2018, 12, 62.
  • [37] WADIA F.D., PIMPLE M., GAJJAR M., NARVEKAR D., An anatomic study of the popliteofibular ligament, International Orthopaedics (SICOT), 2003, 27, 172–174.
  • [38] WODARSKI P., JURKOJĆ J., POLECHOŃSKI J., BIENIEK A., CHRZAN M., MICHNIK R., GZIK M., Assessment of gait stability and preferred walking speed in virtual reality, Acta Bioeng. Biomech., 2020, 22 (1), 127–134.
  • [39] WODARSKI P., JURKOJĆ J., GZIK M., Wavelet Decomposition in Analysis of Impact of Virtual Reality Head Mounted Display Systems on Postural Stability, Sensors, 2020, 20 (24), 7138.
  • [40] WODARSKI P., JURKOJĆ J., CHMURA M., GRUSZKA G., GZIK M., Analysis of center of pressure displacements and head movements triggered by a visual stimulus created using the virtual reality technology, Acta Bioeng. Biomech., 2022, 24 (1), 19–28.
  • [41] XIE L., WANG J., Anticipatory and compensatory postural adjustments in response to loading perturbation of unknown magnitude, Experimental Brain Research, 2019, 237 (1), 173–180.
  • [42] YOUNGJU SHIN, SO YOUNG AHN, SOO-KYUNG BOK, Relationships Between Relative Ankle Muscle Ratios, Severity of Symptoms, and Radiologic Parameters in Adolescent Patients With Symptomatic Flexible Flat Feet, Annals of Rehabilitation Medicine, 2021, 45 (2), 123–130.
  • [43] ŻMIJEWSKA K., FĄFARA A., FELUŚ J., MIKOS M., NAWARA J., GĄDEK A., Changes in postural stability on balance platform in patients after meniscal repair – two years follow up, Acta Bioeng. Biomech., 2021, 23 (4), 75–83.
  • [44] MyoMotion System User Manual, https://www.noraxon.com/noraxon-download/myomotion-system-user-manual/, [Accessed: 25.04.2022].
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-9fda8a84-ed81-470e-abbd-f987619caa82
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.