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Metabolic costs of activities of daily living in persons with a lower limb amputation: A systematic review and meta-analysis 원문보기

PloS one, v.14 no.3, 2019년, pp.e0213256 -   

van Schaik, Loeke (Department of Rehabilitation Medicine, University Medical Center Groningen, University of Groningen, the Netherlands) ,  Geertzen, Jan H. B. (Department of Rehabilitation Medicine, University Medical Center Groningen, University of Groningen, the Netherlands) ,  Dijkstra, Pieter U. (Department of Rehabilitation Medicine, University Medical Center Groningen, University of Groningen, the Netherlands) ,  Dekker, Rienk (Department of Rehabilitation Medicine, University Medical Center Groningen, University of Groningen, the Netherlands)

Abstract AI-Helper 아이콘AI-Helper

ObjectiveTo systematically review the literature on the metabolic costs of activities of daily living (ADL) in persons with a lower limb amputation (LLA).Data sourcesA literature search was undertaken in the Pubmed, Embase, CINAHL, CENTRAL, and PsycINFO databases using keywords and synonyms for LLA,...

참고문헌 (82)

  1. 1 Matsen SL , Malchow D , Matsen FA . Correlations with patients’ perspectives of the result of lower-extremity amputation . J Bone Joint Surg Am . 2000 ; 82–A ( 8 ): 1089 – 95 . 10954097 

  2. 2 Jones L , Hall M , Schuld W . Ability or disability? a study of the functional outcome of 65 consecutive lower limb amputees treated at the royal south Sydney hospital in 1988–1989 . Disabil Rehabil . 1993 ; 15 ( 4 ): 184 – 8 . 8219247 

  3. 3 Fortington LV , Rommers GM , Geertzen JHB , Postema K , Dijkstra PU . Mobility in Elderly People With a Lower Limb Amputation: A Systematic Review . J Am Med Dir Assoc [Internet] . 2012 5 ; 13 ( 4 ): 319 – 25 . 

  4. 4 Waters RL , Perry J , Antonelli D , Hislop H . Energy cost of walking of amputees: the influence of level of amputation . J Bone Joint Surg Am . 1976 ; 58 ( 1 ): 42 – 6 . 1249111 

  5. 5 Traugh G , Corcoran P , Reyes R . Energy expenditure of ambulation in patients with above-knee amputations . Arch Phys Med Rehabil . 1975 ; 56 ( 2 ): 67 – 71 . 1124978 

  6. 6 Fortington LV , Rommers GM , Postema K , van Netten JJ , Geertzen JHB , Dijkstra PU . Lower limb amputation in Northern Netherlands: Unchanged incidence from 1991–1992 to 2003–2004 . Prosthet Orthot Int [Internet] . 2013 8 17 ; 37 ( 4 ): 305 – 10 . 

  7. 7 Rommers GM , Vos LDW , Groothoff JW , Schuiling CH , Eisma WH . Epidemiology of lower limb amputees in the north of the Netherlands: aetiology, discharge destination and prosthetic use . Prosthet Orthot Int . 1997 ; 21 : 92 – 9 . 10.3109/03093649709164536 9285952 

  8. 8 Cumming J , Barr S , Howe TE . Prosthetic rehabilitation for older dysvascular people following a unilateral transfemoral amputation . Vol. 2017 , Cochrane Database of Systematic Reviews . 2015 . 

  9. 9 Chin T , Sawamura S , Fujita H , Nakajima S , Ojima I , Oyabu H , et al Effect of endurance training program based on anaerobic threshold (AT) for lower limb amputees . J Rehabil Res Dev [Internet] . 2001 ; 38 ( 1 ): 7 – 11 . 

  10. 10 Chin T , Sawamura H , Fujita I , Ojima H , Oyabu Y , Nagakura Otsuka H ., Nakagawa A . %VO2max as an indicator of prosthetic rehabilitation outcome after dysvascular amputation . Prosthet Orthot Int . 2002 ; 26 : 44 – 9 . 10.1080/03093640208726620 12043925 

  11. 11 Isakov E , Susak Z , Becker E . Energy expenditure and cardiac response in above-knee amputees while using prostheses with open and locked knee mechanisms . Scand J Rehabil Med Suppl . 1985 ; 12 ( 12 ): 108 – 11 . 3868034 

  12. 12 Fleg JL , Morrell CH , Bos AG , Brant LJ , Talbot LA , Wright JG , et al Accelerated longitudinal decline of aerobic capacity in healthy older adults . Circulation . 2005 ; 112 ( 5 ): 674 – 82 . 10.1161/CIRCULATIONAHA.105.545459 16043637 

  13. 13 Wezenberg D , De Haan A , Faber WX , Slootman HJ , Van Der Woude LH , Houdijk H . Peak oxygen consumption in older adults with a lower limb amputation . Arch Phys Med Rehabil . 2012 ; 93 ( 11 ): 1924 – 9 . 10.1016/j.apmr.2012.05.020 22684050 

  14. 14 Stickland MK , Butcher SJ , Marciniuk DD , Bhutani M . Assessing exercise limitation using cardiopulmonary exercise testing . Pulm Med [Internet] . 2012 ; 2012 : 1 – 13 . 

  15. 15 Starholm IM , Gjovaag T , Mengshoel AM . Energy expenditure of transfemoral amputees walking on a horizontal and tilted treadmill simulating different outdoor walking conditions . Prosthet Orthot Int . 2010 ; 34 ( 2 ): 184 – 94 . 10.3109/03093640903585016 20141493 

  16. 16 Gjovaag T , Starholm IM , Mirtaheri P , Hegge FW , Skjetne K . Assessment of aerobic capacity and walking economy of unilateral transfemoral amputees . Prosthet Orthot Int . 2014 ; 38 ( 2 ): 140 – 7 . 10.1177/0309364613490444 23798044 

  17. 17 Van Velzen J , Van Bennekom C , Polomski W , Slootman J , Van der Woude L , Houdijk H . Physical capacity an walking ability after lower limb amputation: a systematic review . Clin Rehabil . 2006 ; 20 : 999 – 1016 . 10.1177/0269215506070700 17065543 

  18. 18 Kahle JT , Highsmith MJ , Schaepper H , Johannesson A , Orendurff MS , Kaufman K . Predicting Walking Ability Following Lower Limb Amputation: An Updated Systematic Literature Review . Technol Innov [Internet] . 2016 ; 18 ( 2 ): 125 – 37 . 

  19. 19 Wezenberg D , Van Der Woude LH , Faber WX , De Haan A , Houdijk H . Relation between Aerobic Capacity and Walking Ability in Older Adults with a Lower-Limb Amputation . Arch Phys Med Rehabil . 2013 ; 94 ( 9 ): 1714 – 20 . 10.1016/j.apmr.2013.02.016 23466292 

  20. 20 Ainsworth BE , Haskell WL , Herrmann SD , Meckes N , Bassett DR , Tudor-Locke C , et al 2011 Compendium of Physical Activities: a second update of codes and MET values . Med Sci Sports Exerc [Internet] . 2011 8 ; 43 ( 8 ): 1575 – 81 . 

  21. 21 Kramer S , Johnson L , Bernhardt J , Cumming T . Energy Expenditure and Cost During Walking After Stroke: A Systematic Review . Arch Phys Med Rehabil [Internet] . 2016 4 ; 97 ( 4 ): 619 – 632 .e1. 

  22. 22 Moher D , Liberati A TJ and AD. The PRISMA Group . Preferred Reporting Items for Systematic Reviews and Meta-Analyses: The PRISMA Statement . Ann Intern Med . 2009 ; 151 ( 4 ): 264 – 9 . 19622511 

  23. 23 Zeng X , Zhang Y , Kwong JSW , Zhang C , Li S , Sun F , et al The methodological quality assessment tools for preclinical and clinical studies, systematic review and meta-analysis, and clinical practice guideline: A systematic review . J Evid Based Med . 2015 ; 8 ( 1 ): 2 – 10 . 10.1111/jebm.12141 25594108 

  24. 24 Paysant J , Beyaert C , Dati A-M , Martinet N , Andr J-M . Influence of terrain on metabolic and temporal gait characteristics of unilateral transtibial amputees . J Rehabil Res Dev [Internet] . 2006 ; 43 ( 2 ): 153 . 

  25. 25 Gailey RS , Wenger MA , Raya M , Kirk N , Erbs K , Spyropoulos P , et al Energy expenditure of trans-tibial amputees during ambulation at self-selected pace . Prosthet Orthot Int . 1994 ; 18 ( 2 ): 84 – 91 . 10.3109/03093649409164389 7991365 

  26. 26 Schnall BL , Wolf EJ , Bell JC , Gambel J , Bensel CK . Metabolic analysis of male servicemembers with transtibial amputations carrying military loads . J Rehabil Res Dev [Internet] . 2012 ; 49 ( 4 ): 535 . 

  27. 27 Jarvis HL , Bennett AN , Twiste M , Phillip RD , Etherington J , Baker R . Temporal Spatial and Metabolic Measures of Walking in Highly Functional Individuals With Lower Limb Amputations . Arch Phys Med Rehabil [Internet] . 2017 ; 98 ( 7 ): 1389 – 99 . 

  28. 28 Gjovaag T , Mirtaheri P , Starholm IM . Carbohydrate and fat oxidation in persons with lower limb amputation during walking with different speeds . Prosthet Orthot Int [Internet] . 2017 ; 1 : 1 – 7 . 

  29. 29 Ganguli S , Datta SR , Chatterjee BB , Roy BN . Performance evaluation of an amputee prosthesis system in below knee amputees . Ergonomics . 1973 ; 16 ( 6 ): 797 – 810 . 10.1080/00140137308924571 4782575 

  30. 30 Ganguli S. Datta S . Prediction of energy cost from peak heart rate in lower extremity amputees . Bio-medical Eng . 1975 ; 10 ( 2 ): 52 – 5 . 

  31. 31 Sokhangoei Y , Abbasabadi A , Akhbari B , Bahadoran MR . Investigating the relation of walking speed changes with the metabolic energy consumption index in traumatic unilateral below knee amputees . Eur J Exp Biol . 2013 ; 3 ( 3 ): 173 – 7 . 

  32. 32 Dubrow LL , Witt PL , Kadaba MP , Reyes R , Cochran GVB . Oxygen consumption of elderly persons with bilateral below knee amputations: ambulation vs wheelchair propulsion . Arch Phys Med Rehabil . 1983 ; 6 ( 6 ): 255 – 9 . 

  33. 33 James U . Oxygen uptake and heart rate during prosthetic walking in healthy male unilateral above-knee amputees . Scand J Rehabil Med . 1973 ; 5 : 71 – 80 . 4695243 

  34. 34 Tekin L , Safaz Ý , Göktepe AS , Yazýcýodlu K . Comparison of quality of life and functionality in patients with traumatic unilateral below knee amputation and salvage surgery . Prosthet Orthot Int . 2009 ; 33 ( 1 ): 17 – 24 . 10.1080/03093640802482542 19235062 

  35. 35 Göktepe AS , Cakir B , Yilmaz B , Yazicioglu K . Energy expenditure of walking with prostheses: Comparison of three amputation levels . Prosthet Orthot Int . 2010 ; 34 ( 1 ): 31 – 6 . 10.3109/03093640903433928 20196687 

  36. 36 Vllasolli TO , Orovcanec N , Zafirova B , Krasniqi B , Murtezani A , Krasniqi V , et al Physiological cost index and comfort walking speed in two level lower limb amputees having no vascular disease . Acta Inform Medica . 2015 ; 23 ( 1 ): 12 – 7 . 

  37. 37 Vllasolli TO , Zafirova B , Orovcanec N , Poposka A , Murtezani A , Krasniqi B . Energy expenditure and walking speed in lower limb amputees: A cross sectional study . Ortop Traumatol Rehabil . 2014 ; 16 ( 4 ): 419 – 26 . 10.5604/15093492.1119619 25404631 

  38. 38 Nowroozi F , Salvanelli ML , Gerber LH . Energy expenditure in hip disarticulation and hemipelvectomy amputees . Arch Phys Med Rehabil . 1983 ; 64 ( 7 ): 300 – 3 . 6860105 

  39. 39 Chin T , Sawamura S , Shiba R . Effect of physical fitness on prosthetic ambulation in elderly amputees . Am J Phys Med Rehabil . 2006 ; 85 ( 12 ): 992 – 6 . 10.1097/01.phm.0000247653.11780.0b 17117003 

  40. 40 Hamamura S , Chin T , Kuroda R , Akisue T , Iguchi T , Kohno H , et al Factors Affecting Prosthetic Rehabilitation Outcomes in Amputees of Age 60 Years and Over . J Int Med Res [Internet] . 2009 ; 37 ( 6 ): 1921 – 7 . 

  41. 41 Erjavec T , Vidmar G , Burger H . Exercise testing as a screening measure for ability to walk with aprosthesis after transfemoral amputation due to peripheral vascular disease . Disabil Rehabil . 2014 ; 36 ( 14 ): 1148 – 55 . 10.3109/09638288.2013.833307 24020425 

  42. 42 Pinzur MS , Gold J , Schwartz D , Gross N . Energy demands for walking in dysvascular amputees as related to the level of amputation . Orthopedics . 1992 ; 15 ( 9 ): 1033 – 6 ; discussion 1036–7. 1437862 

  43. 43 Torburn L , Powers CM , Guiterrez R , Perry J . Energy expenditure during ambulation in dysvascular and traumatic below-knee amputees: a comparison of five prosthetic feet . J Rehabil Res Dev [Internet] . 1995 ; 32 ( 2 ): 111 – 9 . 

  44. 44 Traballesi M , Porcacchia P , Averna T , Brunelli S . Energy cost of walking measurements in subjects with lower limb amputations: A comparison study between floor and treadmill test . Gait Posture . 2008 ; 27 ( 1 ): 70 – 5 . 10.1016/j.gaitpost.2007.01.006 17360186 

  45. 45 Guirao L , Samitier CB , Costea M , Camos JM , Majo M , Pleguezuelos E . Improvement in walking abilities in transfemoral amputees with a distal weight bearing implant . Prosthet Orthot Int [Internet] . 2017 ; 41 ( 1 ): 26 – 32 . 

  46. 46 Datta D , Heller B , Howitt J . A comparative evaluation of oxygen consumption and gait pattern in amputees using Intelligent Prostheses and conventionally damped knee swing-phase control . Clin Rehabil . 2005 ; 19 ( 4 ): 398 – 403 . 10.1191/0269215505cr805oa 15929508 

  47. 47 Heller BW , Datta D , Howitt J . A pilot study comparing the cognitive demand of walking for transfemoral amputees using the intelligent prosthesis with that using conventionally damped knees . Clin Rehabil . 2000 ; 14 ( 5 ): 518 – 22 . 10.1191/0269215500cr345oa 11043877 

  48. 48 Ganguli S , Datta SR , Chatterjee BB , Roy BN . Metabolic cost of walking at different speeds with patellar tendon bearing prosthesis . J Appl Physiol . 1974 ; 36 ( 4 ): 440 – 3 . 10.1152/jappl.1974.36.4.440 4820326 

  49. 49 Huang CT , Jackson JR , Moore NB , Fine PR , Kuhlemeier K V , Traugh GH , et al Amputation: energy cost of ambulation . Arch Phys Med Rehabil [Internet] . 1979 ; 60 ( 1 ): 18 – 24 . 

  50. 50 Pagliarulo MA , Waters R , Hislop HJ . Energy cost of walking of below-knee amputees having no vascular disease . Phys Ther [Internet] . 1979 ; 59 ( 5 ): 538 – 43 . 

  51. 51 Gailey RS , Lawrence D , Burditt C , Spyropoulos P , Newell C , Nash MS . The CAT-CAM socket and quadriteral socket: a comparison of energy cost during ambulation . Prosthet Orthot Int . 1993 ; 17 ( 3 ): 95 – 100 . 8233775 

  52. 52 Jaegers SMHJ Vos LDW , Rispens P Hof AL . The relationship between comfortable and most metabolically efficient walking speed in persons with unilateral above-knee amputation . Arch Phys Med Rehabil . 1993 ; 74 ( 5 ): 521 – 5 . 8489363 

  53. 53 Boonstra AM , Schrama IJ , Fidler V , Eisma WH . The gait of unilateral transfemoral amputees . Scand J Rehab Med . 1994 ; 26 : 217 – 23 . 

  54. 54 Hoffman MD , Sheldahl LM , Buley KJ , Sandford PR . Physiological comparison of walking among bilateral above-knee amputee and able-bodied subjects, and a model to account for the differences in metabolic cost . Arch Phys Med Rehabil . 1997 ; 78 ( 4 ): 385 – 92 . 9111458 

  55. 55 Schmalz T , Blumentritt S , Jarasch R . Energy expenditure and biomechanical characteristics of lower limb amputee gait: The influence of prosthetic alignment and different prosthetic components . Gait Posture . 2002 ; 16 ( 3 ): 255 – 63 . 12443950 

  56. 56 Bussmann JBJ , van den Berg-Emons HJG , Angulo SM , Stijnen T , Stam HJ . Sensitivity and reproducibility of accelerometry and heart rate in physical strain assessment during prosthetic gait . Eur J Appl Physiol . 2004 ; 91 ( 1 ): 71 – 8 . 10.1007/s00421-003-0916-1 13680239 

  57. 57 Chin T , Machida K , Sawamura S , Shiba R , Oyabu H , Nagakura Y , et al Comparison of different microprocessor controlled knee joints on the energy consumption during walking in trans-femoral amputees: Intelligent Knee Prosthesis (IP) versus C-Leg . Prosthet Orthot Int . 2006 ; 30 ( 1 ): 73 – 80 . 10.1080/03093640500533414 16739783 

  58. 58 Hagberg K , Häggström E , Brånemark R . Physiological cost index (PCI) and walking performance in individuals with transfemoral prostheses compared to healthy controls . Disabil Rehabil . 2007 ; 29 ( 8 ): 643 – 9 . 10.1080/09638280600902869 17453985 

  59. 59 Seymour R , Engbretson B , Kott K , Ordway N , Brooks G , Crannell J , et al Comparison between the C-leg 1 microprocessor-controlled prosthetic knee and non-microprocessor control prosthetic knees: A preliminary study of energy expenditure, obstacle course performance, and quality of life survey . Prosthetics Orthot Int 3 2007 ; 31 ( 1 ): 51 – 61 . 

  60. 60 Bussmann JB , Schrauwen HJ , Stam HJ . Daily physical activity and heart rate response in people with a unilateral traumatic transtibial amputation . Arch Phys Med Rehabil . 2008 ; 89 ( 3 ): 430 – 4 . 10.1016/j.apmr.2007.11.012 18295619 

  61. 61 Genin JJ , Bastien GJ , Franck B , Detrembleur C , Willems PA . Effect of speed on the energy cost of walking in unilateral traumatic lower limb amputees . Eur J Appl Physiol . 2008 ; 103 ( 6 ): 655 – 63 . 10.1007/s00421-008-0764-0 18478251 

  62. 62 Kaufman KR , Levine JA , Brey RH , McCrady SK , Padgett DJ , Joyner MJ . Energy Expenditure and Activity of Transfemoral Amputees Using Mechanical and Microprocessor-Controlled Prosthetic Knees . Arch Phys Med Rehabil . 2008 ; 89 ( 7 ): 1380 – 5 . 10.1016/j.apmr.2007.11.053 18586142 

  63. 63 Wright DA , Marks L , Payne RC . A comparative study of the physiological costs of walking in ten bilateral amputees . Prosthet Orthot Int . 2008 ; 32 ( 1 ): 57 – 67 . 10.1080/03093640701669108 18330804 

  64. 64 Houdijk H , Pollmann E , Groenewold M , Wiggerts H , Polomski W . The energy cost for the step-to-step transition in amputee walking . Gait Posture . 2009 ; 30 ( 1 ): 35 – 40 . 10.1016/j.gaitpost.2009.02.009 19321343 

  65. 65 Andrysek J , Klejman S , Torres-Moreno R , Heim W , Steinnagel B , Glasford S . Mobility function of a prosthetic knee joint with an automatic stance phase lock . Prosthet Orthot Int . 2011 ; 35 ( 2 ): 163 – 70 . 10.1177/0309364611408495 21697198 

  66. 66 Hagberg K , Tranberg R , Zugner R , Danielsson A . Reproducibility of the Physiological Cost Index among Individuals with a Lower-Limb Amputation and Healthy Adults . Physiother Res Int . 2011 ; 16 ( 2 ): 92 – 100 . 10.1002/pri.477 21608088 

  67. 67 Kark L , McIntosh AS , Simmons A . The use of the 6-min walk test as a proxy for the assessment of energy expenditure during gait in individuals with lower-limb amputation . Int J Rehabil Res . 2011 ; 34 ( 3 ): 227 – 34 . 10.1097/MRR.0b013e328346e893 21654324 

  68. 68 Mohanty RK , Lenka P , Equebal A , Kumar R . Comparison of energy cost in transtibial amputees using “prosthesis” and “crutches without prosthesis” for walking activities . Ann Phys Rehabil Med . 2012 ; 55 ( 4 ): 252 – 62 . 10.1016/j.rehab.2012.02.006 22534430 

  69. 69 Bell JC , Wolf EJ , Schnall BL , Tis JE , Potter BK . Transfemoral amputations: is there an effect of residual limb length and orientation on energy expenditure? Clin Orthop Relat Res . 2014 ; 472 ( 10 ): 3055 – 61 . 10.1007/s11999-014-3630-x 24752912 

  70. 70 Russell Esposito E , Rodriguez KM , Ràbago CA , Wilken JM . Does unilateral transtibial amputation lead to greater metabolic demand during walking? J Rehabil Res Dev [Internet] . 2014 ; 51 ( 8 ): 1287 – 96 . 

  71. 71 Rowe DA , McMinn D , Peacock L , Buis AWP , Sutherland R , Henderson E , et al Cadence, Energy Expenditure, and Gait Symmetry during Music-Prompted and Self-Regulated Walking in Adults with Unilateral Transtibial Amputation . J Phys Act Heal [Internet] . 2014 ; 11 ( 2 ): 320 – 9 . 

  72. 72 Delussu AS , Paradisi F , Brunelli S , Pellegrini R , Zenardi D , Traballesi M . Comparison between SACH foot and a new multiaxial prosthetic foot during walking in hypomobile transtibial amputees: physiological responses and functional assessment . Eur J Phys Rehabil Med [Internet] . 2016 ; 52 ( 3 ): 304 – 9 . 

  73. 73 Esposito ER , Whitehead JMA , Wilken JM . Step-to-step transition work during level and inclined walking using passive and powered ankle-foot prostheses . Prosthet Orthot Int . 2016 ; 40 ( 3 ): 311 – 9 . 10.1177/0309364614564021 25628378 

  74. 74 Starholm IM , Mirtaheri P , Kapetanovic N , Versto T , Skyttemyr G , Westby FT , et al Energy expenditure of transfemoral amputees during floor and treadmill walking with different speeds . Prosthet Orthot Int . 2016 ; 40 ( 3 ): 336 – 42 . 10.1177/0309364615588344 26450911 

  75. 75 Andrysek J , Wright FV , Rotter K , Garcia D , Valdebenito R , Mitchell CA , et al Long-term clinical evaluation of the automatic stance-phase lock-controlled prosthetic knee joint in young adults with unilateral above-knee amputation . Disabil Rehabil Assist Technol [Internet] . 2017 ; 12 ( 4 ): 378 – 84 . 

  76. 76 Russell Esposito E , Rábago CA , Wilken J . The influence of traumatic transfemoral amputation on metabolic cost across walking speeds . Prosthet Orthot Int [Internet] . 2018 4 27 ; 42 ( 2 ): 214 – 22 . 

  77. 77 Gardinier ES , Kelly BM , Wensman J , Gates DH . A controlled clinical trial of a clinically-tuned powered ankle prosthesis in people with transtibial amputation . Clin Rehabil [Internet] . 2018 3 27 ; 32 ( 3 ): 319 – 29 . 

  78. 78 Lacraz A , Armand S , Turcot K , Carmona G , Stern R , Borens O , et al Comparison of the Otto Bock solid ankle cushion heel foot with wooden keel to the low-cost CR-Equipements TM solid ankle cushion heel foot with polypropylene keel: A randomized prospective double-blind crossover study assessing patient satisfaction and energy expenditure . Prosthet Orthot Int . 2017 ; 41 ( 3 ): 258 – 65 . 10.1177/0309364616677649 27881551 

  79. 79 Ladlow P , Nightingale TE , McGuigan MP , Bennett AN , Phillip R , Bilzon JLJ . Impact of anatomical placement of an accelerometer on prediction of physical activity energy expenditure in lower-limb amputees . PLoS One . 2017 ; 12 ( 10 ): 1 – 15 . 

  80. 80 Mutlu A , Kharooty MD , Yakut Y . The effect of segmental weight of prosthesis on hemodynamic responses and energy expenditure of lower extremity amputees . Soc Phys Ther Sci . 2017 ;( 29 ): 629 – 34 . 

  81. 81 Weinert-Aplin RA , Twiste M , Jarvis HL , Baker RJ , Twiste M , Jarvis HL , et al Medial-lateral centre of mass displacement and base of support are equally good predictors of metabolic cost in amputee walking . Gait Posture [Internet] . 2017 ; 51 : 41 – 6 . 

  82. 82 Waters RL , Mulroy S . The energy expenditure of normal and pathologic gait . Gait Posture [Internet] . 1999 7 ; 9 ( 3 ): 207 – 31 . 

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