$\require{mediawiki-texvc}$

연합인증

연합인증 가입 기관의 연구자들은 소속기관의 인증정보(ID와 암호)를 이용해 다른 대학, 연구기관, 서비스 공급자의 다양한 온라인 자원과 연구 데이터를 이용할 수 있습니다.

이는 여행자가 자국에서 발행 받은 여권으로 세계 각국을 자유롭게 여행할 수 있는 것과 같습니다.

연합인증으로 이용이 가능한 서비스는 NTIS, DataON, Edison, Kafe, Webinar 등이 있습니다.

한번의 인증절차만으로 연합인증 가입 서비스에 추가 로그인 없이 이용이 가능합니다.

다만, 연합인증을 위해서는 최초 1회만 인증 절차가 필요합니다. (회원이 아닐 경우 회원 가입이 필요합니다.)

연합인증 절차는 다음과 같습니다.

최초이용시에는
ScienceON에 로그인 → 연합인증 서비스 접속 → 로그인 (본인 확인 또는 회원가입) → 서비스 이용

그 이후에는
ScienceON 로그인 → 연합인증 서비스 접속 → 서비스 이용

연합인증을 활용하시면 KISTI가 제공하는 다양한 서비스를 편리하게 이용하실 수 있습니다.

Effect of tendon vibration during wide-pulse neuromuscular electrical stimulation (NMES) on muscle force production in people with spinal cord injury (SCI) 원문보기

BMC neurology, v.18, 2018년, pp.17 -   

Bochkezanian, Vanesa (Department of Exercise and Health Sciences, School of Health, Medical and Applied Sciences, Central Queensland University, Building 34.1.02, Bruce Highway, North Rockhampton, Qld 4702 Australia) ,  Newton, Robert U. (Exercise Medicine Research Clinic, Edith Cowan University, Perth, Australia) ,  Trajano, Gabriel S. (School of Exercise and Nutrition Sciences, Institute of Health and Biomedical Innovation, Queensland University of Technology (QUT), Brisbane, Australia) ,  Vieira, Amilton (UDF-University Centre, Brasilia, Brazil) ,  Pulverenti, Timothy S. (Centre for Sports and Exercise Science, School of Medical and Health Sciences, Edith Cowan University, Joondalup, Australia) ,  Blazevich, Anthony J. (Centre for Sports and Exercise Science, School of Medical and Health Sciences, Edith Cowan University, Joondalup, Australia)

Abstract AI-Helper 아이콘AI-Helper

BackgroundNeuromuscular electrical stimulation (NMES) is commonly used in skeletal muscles in people with spinal cord injury (SCI) with the aim of increasing muscle recruitment and thus muscle force production. NMES has been conventionally used in clinical practice as functional electrical stimulati...

참고문헌 (71)

  1. 1. Tewarie RDS Hurtado A Bartels RHMA Grotenhuis JA Oudega M A clinical perspective of spinal cord injury Neurorehabil. 2010 27 2 129 139 

  2. 2. Oyster ML Karmarkar AM Patrick M Read MS Nicolini L Boninger ML Investigation of factors associated with manual wheelchair mobility in persons with spinal cord injury Arch of Phys Med and Rehab 2011 92 3 484 490 10.1016/j.apmr.2010.09.025 

  3. 3. Hosseini SM Oyster ML Kirby RL Harrington AL Boninger ML Manual wheelchair skills capacity predicts quality of life and community integration in persons with spinal cord injury Arch of Phys Med and Rehab. 2012 93 12 2237 2243 10.1016/j.apmr.2012.05.021 

  4. 4. Schaap LA Pluijm SM Deeg DJ Harris TB Kritchevsky SB Newman AB Higher inflammatory marker levels in older persons: associations with 5-year change in muscle mass and muscle strength J Gerontol A Biol Sci Med Sci 2009 64( 11 1183 1189 10.1093/gerona/glp097 19622801 

  5. 5. Srikanthan P Karlamangla AS Muscle mass index as a predictor of longevity in older adults Am J Med 2014 127 6 547 553 10.1016/j.amjmed.2014.02.007 24561114 

  6. 6. Orlando G Balducci S Bazzucchi I Pugliese G Sacchetti M Neuromuscular dysfunction in type 2 diabetes: underlying mechanisms and effect of resistance training Diabetes-Metab Res Rev 2016 32 1 40 50 10.1002/dmrr.2658 25950170 

  7. 7. Andrade SD da Silva JN The effects of resistance training in osteoporosis: a systematic review RBNE 2015 9 50 144 149 

  8. 8. Clark JE Goon DT The role of resistance training for treatment of obesity related health issues and for changing health status of the individual who is overfat or obese: a review J Sports Med Phys Fitness 2015 55 3 205 222 25303063 

  9. 9. Caserotti P Aagaard P Larsen JB Puggaard L Explosive heavy-resistance training in old and very old adults: changes in rapid muscle force, strength and power Scand J Med Sci Sports 2008 18 6 773 782 10.1111/j.1600-0838.2007.00732.x 18248533 

  10. 10. Barbeau H Ladouceur M Mirbagheri MM Kearney RE The effect of locomotor training combined with functional electrical stimulation in chronic spinal cord injured subjects: walking and reflex studies Brain Res 2002 40 1–3 274 291 10.1016/S0165-0173(02)00210-2 

  11. 11. Harvey LA Fornusek C Bowden JL Pontifex N Glinsky J Middleton JW Electrical stimulation plus progressive resistance training for leg strength in spinal cord injury: a randomized controlled trial Spinal Cord 2010 48 7 570 575 10.1038/sc.2009.191 20065991 

  12. 12. Thrasher TA Ward JS Fisher S Strength and endurance adaptations to functional electrical stimulation leg cycle ergometry in spinal cord injury Neurorehabil 2013 33 1 133 138 

  13. 13. American College of Sports Medicine Progression models in resistance training for healthy adults Med Sci Sports Exerc 2009 41 3 687 708 10.1249/MSS.0b013e3181915670 19204579 

  14. 14. Ahtiainen JP Pakarinen A Alen M Kraemer WJ Hakkinen K Muscle hypertrophy, hormonal adaptations and strength development during strength training in strength-trained and untrained men Eur J Appl Physiol 2003 89 6 555 563 10.1007/s00421-003-0833-3 12734759 

  15. 15. Enoka R Neuromechanics of human movement 2002 

  16. 16. Hortobagyi T Maffiuletti NA Neural adaptations to electrical stimulation strength training Eur J Appl Physiol 2011 111 10 2439 2449 10.1007/s00421-011-2012-2 21643920 

  17. 17. Alon G Guest editorial - Use of neuromuscular electrical stimulation in neureorehabilitation: A challenge to all J Rehabil Res Dev 2003 40 6 IX XII 10.1682/JRRD.2003.11.0009 15077655 

  18. 18. Hillegass EA Dudley GA Surface electrical stimulation of skeletal muscle after spinal cord injury Spinal Cord 1999 37 4 251 257 10.1038/sj.sc.3100792 10338344 

  19. 19. Gregory CM Recruitment BCS Patterns in human skeletal muscle during electrical stimulation Phys Ther 2005 85 4 358 364 15794706 

  20. 20. Gorgey AS Mahoney E Kendall T Dudley GA Effects of neuromuscular electrical stimulation parameters on specific tension Eur J Appl Physiol 2006 97 6 737 744 10.1007/s00421-006-0232-7 16821023 

  21. 21. Ibitoye MO Hamzaid NA Hasnan N Abdul Wahab AK Davis GM Strategies for rapid muscle fatigue reduction during fes exercise in individuals with spinal cord injury: a systematic review PLoS One 2016 11 2 e0149024 10.1371/journal.pone.0149024 26859296 

  22. 22. Bickel CS Gregory CM Dean JC Motor unit recruitment during neuromuscular electrical stimulation: a critical appraisal Eur J Appl Physiol 2011 111 10 2399 2407 10.1007/s00421-011-2128-4 21870119 

  23. 23. Bickel CS Slade JM VanHiel LR Warren GL Dudley GA Variable-frequency-train stimulation of skeletal muscle after spinal cord injury J Rehabil Res Dev 2004 41 1 33 40 10.1682/JRRD.2004.01.0033 15273895 

  24. 24. Adams GR Harris RT Woodard D Dudley GA Mapping of electrical muscle stimulation using MRI J Appl Physiol 1993 74 2 532 537 10.1152/jappl.1993.74.2.532 8458767 

  25. 25. Burnham R Martin T Stein R Bell G MacLean I Steadward R Skeletal muscle fibre type transformation following spinal cord injury Spinal Cord 1997 35 2 86 91 10.1038/sj.sc.3100364 9044514 

  26. 26. Pelletier CA Hicks AL Muscle fatigue characteristics in paralyzed muscle after spinal cord injury Spinal Cord 2011 49 1 125 130 10.1038/sc.2010.62 20531355 

  27. 27. Karu ZZ Durfee WK Barzilai AM Reducing muscle fatigue in fes applications by stimulating with N-let pulse trains IEEE Trans Biomed Eng 1995 42 8 809 817 10.1109/10.398642 7642195 

  28. 28. Gorgey AS Poarch HJ Dolbow DR Castillo T Gater DR Effect of adjusting pulse durations of functional electrical stimulation cycling on energy expenditure and fatigue after spinal cord injury J Rehab Res Dev 2014 51 9 1455 1468 10.1682/JRRD.2014.02.0054 

  29. 29. Borde R Hortobagyi T Granacher U Dose-response relationships of resistance training in healthy old adults: a systematic review and meta-analysis Sports Med 2015 45 12 1693 1720 10.1007/s40279-015-0385-9 26420238 

  30. 30. Schoenfeld BJ Ogborn D Krieger JW Dose-response relationship between weekly resistance training volume and increases in muscle mass: a systematic review and meta-analysis J Sports Sci 2017 35 11 1073 1082 10.1080/02640414.2016.1210197 27433992 

  31. 31. Bickel CS Yarar-Fisher C Mahoney ET McCully KK Neuromuscular electrical stimulation–induced resistance training after SCI: a review of the Dudley protocol Top Spinal Cord Inj Rehabil 2015 21 4 294 302 10.1310/sci2104-294 26689694 

  32. 32. Dudley GA Castro MJ Rogers S Apple DF A simple means of increasing muscle size after spinal cord injury: a pilot study Eur J Appl Physiol Occup Physiol 1999 80 4 394 396 10.1007/s004210050609 10483812 

  33. 33. Gorgey AS Mather KJ Cupp HR Gater DR Effects of resistance training on adiposity and metabolism after spinal cord injury Med Sci Sports Exerc 2012 44 1 165 174 10.1249/MSS.0b013e31822672aa 21659900 

  34. 34. Mahoney ET Bickel CS Elder C Black C Slade JM Apple D Changes in skeletal muscle size and glucose tolerance with electrically stimulated resistance training in subjects with chronic spinal cord injury Arch Phys Med Rehabil 2005 86 7 1502 1504 10.1016/j.apmr.2004.12.021 16003691 

  35. 35. Erickson ML, Ryan TE, Backus D, McCully KK. Endurance neuromuscular electrical stimulation training improves skeletal muscle oxidative capacity in individuals with motor-complete spinal cord injury. Muscle Nerve. 2017;55(5):669–75. 

  36. 36. Dudley-Javoroski S Muscle and bone plasticity after spinal cord injury: review of adaptations to disuse and to electrical muscle stimulation J Rehabil Res Dev 2008 45 2 283 296 10.1682/JRRD.2007.02.0031 18566946 

  37. 37. Hangartner TN Rodgers MM Glaser RM Barre PS Tibial bone density loss in spinal cord injured patients: effects of FES exercise J Rehabil Res Dev 1994 31 1 50 61 8035360 

  38. 38. Shields RK Dudley-Javoroski S Law LA Electrically induced muscle contractions influence bone density decline after spinal cord injury Spine 2006 31 5 548 553 10.1097/01.brs.0000201303.49308.a8 16508550 

  39. 39. Glinsky J Harvey L Van Es P Efficacy of electrical stimulation to increase muscle strength in people with neurological conditions: a systematic review Physiother Res Int 2007 12 3 175 194 10.1002/pri.375 17624871 

  40. 40. Harvey LA Physiotherapy rehabilitation for people with spinal cord injuries J Physiother 2016 62 1 4 11 10.1016/j.jphys.2015.11.004 26701156 

  41. 41. Ribot-Ciscar E Butler JE Thomas CK Facilitation of triceps brachii muscle contraction by tendon vibration after chronic cervical spinal cord injury J Appl Physiol 2003 94 6 2358 2367 10.1152/japplphysiol.00894.2002 12588789 

  42. 42. Cotey D Hornby TG Gordon KE Schmit BD Increases in muscle activity produced by vibration of the thigh muscles during locomotion in chronic human spinal cord injury Exp Brain Res 2009 196 3 361 374 10.1007/s00221-009-1855-9 19479245 

  43. 43. Collins DF Central contributions to contractions evoked by tetanic neuromuscular electrical stimulation Exerc Sport Sci Rev 2007 35 3 102 109 10.1097/jes.0b013e3180a0321b 17620928 

  44. 44. Gondin J Giannesini B Vilmen C Dalmasso C le Fur Y Cozzone PJ Effects of stimulation frequency and pulse duration on fatigue and metabolic cost during a single bout of neuromuscular electrical stimulation Muscle Nerve 2010 41 5 667 678 20082417 

  45. 45. Wegrzyk J Foure A Vilmen C Ghattas B Maffiuletti NA Mattei JP Extra forces induced by wide-pulse, high-frequency electrical stimulation: occurrence, magnitude, variability and underlying mechanisms Clin Neurophysiol 2015 126 7 1400 1412 10.1016/j.clinph.2014.10.001 25454283 

  46. 46. Magalhaes FH, Kohn AF. Vibration-induced extra torque during electrically-evoked contractions of the human calf muscles. J NeuroEng Rehabil. 2010;7 

  47. 47. Trajano GS Seitz LB Nosaka K Blazevich AJ Can passive stretch inhibit motoneuron facilitation in the human plantar flexors? J Appl Physiol 2014 117 12 1486 1492 10.1152/japplphysiol.00809.2014 25342705 

  48. 48. Bongiovanni LG Hagbarth KE Tonic vibration reflexes elicited during fatigue from maximal voluntary contractions in man J Physiol-London 1990 423 1 14 10.1113/jphysiol.1990.sp018007 2388146 

  49. 49. Neyroud D Armand S De Coulon G Da Silva SRD Wegrzyk J Gondin J Wide-pulse-high-frequency neuromuscular electrical stimulation in cerebral palsy Clin Neurophysiol 2016 127 2 1530 1539 10.1016/j.clinph.2015.07.009 26232132 

  50. 50. Bochkezanian V Newton RU Trajano GS Vieira A Pulverenti TS Blazevich AJ Effect of tendon vibration during wide-pulse neuromuscular electrical stimulation (NMES) on the decline and recovery of muscle force BMC Neurol 2017 17 1 82 10.1186/s12883-017-0862-x 28464800 

  51. 51. Bergquist AJ Wiest MJ Collins DF Motor unit recruitment when neuromuscular electrical stimulation is applied over a nerve trunk compared with a muscle belly: quadriceps femoris J Appl Physiol 2012 113 1 78 89 10.1152/japplphysiol.00074.2011 22556395 

  52. 52. Bax L Staes F Verhagen A Does neuromuscular electrical stimulation strengthen the quadriceps femoris? Syst Rev Random Controlled Trials Sports Med 2005 35 3 191 212 

  53. 53. Edgerton VR Roy RR Activity-dependent plasticity of spinal locomotion: implications for sensory processing Exerc Sport Sci Rev 2009 37 4 171 178 19955866 

  54. 54. Edgerton VR Tillakaratne NJ Bigbee AJ de Leon RD Roy RR Plasticity of the spinal neural circuitry after injury Annu Rev Neurosci 2004 27 145 167 10.1146/annurev.neuro.27.070203.144308 15217329 

  55. 55. Bergquist AJ Clair JM Lagerquist O Mang CS Okuma Y Collins DF Neuromuscular electrical stimulation: implications of the electrically evoked sensory volley Eur J Appl Physiol 2011 111 10 2409 2426 10.1007/s00421-011-2087-9 21805156 

  56. 56. Collins DF Burke D Gandevia SC Large involuntary forces consistent with plateau-like behavior of human motoneurons J Neurosci 2001 21 11 4059 4065 11356893 

  57. 57. Fallon JB Macefield VG Vibration sensitivity of human muscle spindles and Golgi tendon organs Muscle Nerve 2007 36 1 21 29 10.1002/mus.20796 17471568 

  58. 58. Rehabilitation LJS Following brain damage: some neurophysiological mechanisms. Physiological correlates of clinically observed changes in posture and tone following lesions of the central nervous system Int Rehabil Med 1981 4 4 195 199 

  59. 59. Xia R Rymer WZ Reflex reciprocal facilitation of antagonist muscles in spinal cord injury Spinal Cord 2005 43 1 14 21 10.1038/sj.sc.3101656 15289809 

  60. 60. Biering-Sorensen B Kristensen IB Kjaer M Biering-Sorensen F Muscle after spinal cord injury Muscle Nerve 2009 40 4 499 519 10.1002/mus.21391 19705475 

  61. 61. Kim HE Corcos DM Hornby TG Increased spinal reflex excitability is associated with enhanced central activation during voluntary lengthening contractions in human spinal cord injury J Neurophysiol 2015 114 1 427 439 10.1152/jn.01074.2014 25972590 

  62. 62. Gordon T Mao J Muscle atrophy and procedures for training after spinal-cord injury Phys Ther 1994 74 1 50 60 10.1093/ptj/74.1.50 8265728 

  63. 63. Li Y Li X Harvey P Bennett D Effects of baclofen on spinal reflexes and persistent inward currents in motoneurons of chronic spinal rats with spasticity J Neurophysiol 2004 92 5 2694 2703 10.1152/jn.00164.2004 15486423 

  64. 64. Magalhaes FH de Toledo DR Kohn AF Plantar flexion force induced by amplitude-modulated tendon vibration and associated soleus V/F-waves as an evidence of a centrally-mediated mechanism contributing to extra torque generation in humans J NeuroEng Rehabil 2013 10 32 10.1186/1743-0003-10-32 23531240 

  65. 65. Adams MM Hicks AL Spasticity after spinal cord injury Spinal Cord 2005 43 10 577 586 10.1038/sj.sc.3101757 15838527 

  66. 66. D'Amico JM Condliffe EG Martins KJB Bennett DJ Gorassini MA Recovery of neuronal and network excitability after spinal cord injury and implications for spasticity Front Integr Neurosci 2014 8 36 24860447 

  67. 67. Mizrahi J Fatigue in functional electrical stimulation in spinal cord injury J Electromyogr Kinesiol 1997 7 1 1 2 10.1016/S1050-6411(97)84509-9 20719686 

  68. 68. Binder-Macleod SA Snyder-Mackler L Muscle fatigue: clinical implications for fatigue assessment and neuromuscular electrical stimulation Phys Ther 1993 73 12 902 910 10.1093/ptj/73.12.902 8248298 

  69. 69. Kent-Braun JA Central and peripheral contributions to muscle fatigue in humans during sustained maximal effort Eur J Appl Physiol Occup Physiol 1999 80 1 57 63 10.1007/s004210050558 10367724 

  70. 70. Eklund G Hagbarth KE Hagglund JV Wallin EU The late reflex responses to muscle stretch - the resonance hypothesis versus the long-loop hypothesis J Physiol-London 1982 326 5 79 90 10.1113/jphysiol.1982.sp014178 7108810 

  71. 71. Kirshblum SC Burns SP Biering-Sorensen F Donovan W Graves DE Jha A International standards for neurological classification of spinal cord injury (revised 2011) J Spinal Cord Med 2011 34 6 535 546 10.1179/204577211X13207446293695 22330108 

관련 콘텐츠

원문 보기

원문 URL 링크

*원문 PDF 파일 및 링크정보가 존재하지 않을 경우 KISTI DDS 시스템에서 제공하는 원문복사서비스를 사용할 수 있습니다.

오픈액세스(OA) 유형

GOLD

오픈액세스 학술지에 출판된 논문

이 논문과 함께 이용한 콘텐츠

저작권 관리 안내
섹션별 컨텐츠 바로가기

AI-Helper ※ AI-Helper는 오픈소스 모델을 사용합니다.

AI-Helper 아이콘
AI-Helper
안녕하세요, AI-Helper입니다. 좌측 "선택된 텍스트"에서 텍스트를 선택하여 요약, 번역, 용어설명을 실행하세요.
※ AI-Helper는 부적절한 답변을 할 수 있습니다.

선택된 텍스트

맨위로