Bajd T, Munih M, Kralj A (1999) Problems associated with FES-standing in paraplegia. Technol Health Care 7(4):301–308
CAS
PubMed
Article
Google Scholar
Bellemare F, Woods JJ, Johansson R, Bigland-Ritchie B (1983) Motor-unit discharge rates in maximal voluntary contractions of three human muscles. J Neurophysiol 50(6):1380–1392
CAS
PubMed
Google Scholar
Bergquist AJ, Clair JM, Lagerquist O, Mang CS, Okuma Y, Collins DF (2011) Neuromuscular electrical stimulation: implications of the electrically evoked sensory volley. Eur J Appl Physiol 111(10):2409–2426. doi:10.1007/s00421-011-2087-9
CAS
PubMed
Article
Google Scholar
Bickel CS, Gregory CM, Dean JC (2011) Motor unit recruitment during neuromuscular electrical stimulation: a critical appraisal. Eur J Appl Physiol 111(10):2399–2407. doi:10.1007/s00421-011-2128-4
PubMed
Article
Google Scholar
Biering-Sorensen B, Kristensen IB, Kjaer M, Biering-Sorensen F (2009) Muscle after spinal cord injury. Muscle Nerve 40(4):499–519. doi:10.1002/mus.21391
PubMed
Article
Google Scholar
Bigland-Ritchie B, Johansson R, Lippold OC, Woods JJ (1983) Contractile speed and EMG changes during fatigue of sustained maximal voluntary contractions. J Neurophysiol 50(1):313–324
CAS
PubMed
Google Scholar
Binder-Macleod SA, McLaughlin WA (1997) Effects of asynchronous stimulation on the human quadriceps femoris muscle. Arch Phys Med Rehabil 78(3):294–297. doi:S0003-9993(97)90037-X
CAS
PubMed
Article
Google Scholar
Cady EB, Elshove H, Jones DA, Moll A (1989) The metabolic causes of slow relaxation in fatigued human skeletal muscle. J Physiol 418:327–337
CAS
PubMed Central
PubMed
Google Scholar
Castro MJ, Apple DF Jr, Hillegass EA, Dudley GA (1999) Influence of complete spinal cord injury on skeletal muscle cross-sectional area within the first 6 months of injury. Eur J Appl Physiol Occup Physiol 80(4):373–378
CAS
PubMed
Article
Google Scholar
Chantraine A, Nusgens B, Lapiere CM (1986) Bone remodeling during the development of osteoporosis in paraplegia. Calcif Tissue Int 38(6):323–327
CAS
PubMed
Article
Google Scholar
Crameri RM, Weston AR, Rutkowski S, Middleton JW, Davis GM, Sutton JR (2000) Effects of electrical stimulation leg training during the acute phase of spinal cord injury: a pilot study. Eur J Appl Physiol 83(4–5):409–415
CAS
PubMed
Article
Google Scholar
Dalton BH, Harwood B, Davidson AW, Rice CL (2009) Triceps surae contractile properties and firing rates in the soleus of young and old men. J Appl Physiol 107(6):1781–1788
PubMed
Article
Google Scholar
De Luca CJ (1984) Myoelectrical manifestations of localized muscular fatigue in humans. Crit Rev Biomed Eng 11(4):251–279
PubMed
Google Scholar
Dudley-Javoroski S, Shields RK (2008) Muscle and bone plasticity after spinal cord injury: review of adaptations to disuse and to electrical muscle stimulation. J Rehabil Res Dev 45(2):283–296
PubMed Central
PubMed
Article
Google Scholar
Edwards RH, Hill DK, Jones DA (1972) Effect of fatigue on the time course of relaxation from isometric contractions of skeletal muscle in man. J Physiol 227(2):26P–27P
CAS
PubMed
Google Scholar
Edwards RH, Hill DK, Jones DA (1975) Metabolic changes associated with the slowing of relaxation in fatigued mouse muscle. J Physiol 251(2):287–301
CAS
PubMed Central
PubMed
Google Scholar
Enoka RM, Stuart DG (1992) Neurobiology of muscle fatigue. J Appl Physiol 72(5):1631–1648
CAS
PubMed
Google Scholar
Garber SL, Krouskop TA (1982) Body build and its relationship to pressure distribution in the seated wheelchair patient. Arch Phys Med Rehabil 63(1):17–20
CAS
PubMed
Google Scholar
Gauthier JM, Theriault R, Theriault G, Gelinas Y, Simoneau JA (1992) Electrical stimulation-induced changes in skeletal muscle enzymes of men and women. Med Sci Sports Exerc 24(11):1252–1256
CAS
PubMed
Google Scholar
Gerrits HL, De Haan A, Hopman MT, van Der Woude LH, Jones DA, Sargeant AJ (1999) Contractile properties of the quadriceps muscle in individuals with spinal cord injury. Muscle Nerve 22(9):1249–1256
CAS
PubMed
Article
Google Scholar
Gerrits HL, Hopman MT, Offringa C, Engelen BG, Sargeant AJ, Jones DA, Haan A (2003) Variability in fibre properties in paralysed human quadriceps muscles and effects of training. Pflugers Arch 445(6):734–740
CAS
PubMed
Google Scholar
Graham GM, Thrasher TA, Popovic MR (2006) The effect of random modulation of functional electrical stimulation parameters on muscle fatigue. IEEE Trans Neural Syst Rehabil Eng 14(1):38–45
PubMed
Article
Google Scholar
Graupe D, Suliga P, Prudian C, Kohn KH (2000) Stochastically-modulated stimulation to slow down muscle fatigue at stimulated sites in paraplegics using functional electrical stimulation for leg extension. Neurol Res 22(7):703–704
CAS
PubMed
Google Scholar
Grimby G, Broberg C, Krotkiewska I, Krotkiewski M (1976) Muscle fiber composition in patients with traumatic cord lesion. Scand J Rehabil Med 8(1):37–42
CAS
PubMed
Google Scholar
Henneman E, Somjen G, Carpenter DO (1965a) Excitability and inhibitability of motoneurons of different sizes. J Neurophysiol 28(3):599–620
CAS
PubMed
Google Scholar
Henneman E, Somjen G, Carpenter DO (1965b) Functional significance of cell size in spinal motoneurons. J Neurophysiol 28:560–580
CAS
PubMed
Google Scholar
Jones DA (2010) Changes in the force–velocity relationship of fatigued muscle: implications for power production and possible causes. J Physiol 588(Pt 16):2977–2986
CAS
PubMed Central
PubMed
Article
Google Scholar
Jones DA, de Ruiter CJ, de Haan A (2006) Change in contractile properties of human muscle in relationship to the loss of power and slowing of relaxation seen with fatigue. J Physiol 576(Pt 3):913–922
CAS
PubMed Central
PubMed
Article
Google Scholar
Lau HK, Liu J, Pereira BP, Kumar VP, Pho RW (1995) Fatigue reduction by sequential stimulation of multiple motor points in a muscle. Clin Orthop Relat Res 321:251–258
PubMed
Google Scholar
Lau B, Guevremont L, Mushahwar VK (2007) Strategies for generating prolonged functional standing using intramuscular stimulation or intraspinal microstimulation. IEEE Trans Neural Syst Rehabil Eng 15(2):273–285
PubMed
Article
Google Scholar
Lenman AJ, Tulley FM, Vrbova G, Dimitrijevic MR, Towle JA (1989) Muscle fatigue in some neurological disorders. Muscle Nerve 12(11):938–942
CAS
PubMed
Article
Google Scholar
Malesevic NM, Popovic LZ, Schwirtlich L, Popovic DB (2010) Distributed low-frequency functional electrical stimulation delays muscle fatigue compared to conventional stimulation. Muscle Nerve 42(4):556–562
PubMed
Article
Google Scholar
Marsden CC, Meadows JC, Merton PA (1983) ‘‘Muscular wisdom’’ that minimizes fatigue during prolonged effort in man: peak rates of motoneuron discharge and slowing of discharge during fatigue. Adv Neurol 39:169–211
Google Scholar
McDonnall D, Clark GA, Normann RA (2004) Interleaved, multisite electrical stimulation of cat sciatic nerve produces fatigue-resistant, ripple-free motor responses. IEEE Trans Neural Syst Rehabil Eng 12(2):208–215
PubMed
Article
Google Scholar
Merli GJ, Crabbe S, Paluzzi RG, Fritz D (1993) Etiology, incidence, and prevention of deep vein thrombosis in acute spinal cord injury. Arch Phys Med Rehabil 74(11):1199–1205
CAS
PubMed
Google Scholar
Mizrahi J, Levin O, Aviram A, Isakov E, Susak Z (1997) Muscle fatigue in interrupted stimulation: effect of partial recovery on force and EMG dynamics. J Electromyogr Kinesiol 7(1):51–65
CAS
PubMed
Article
Google Scholar
Mushahwar VK, Horch KW (1997) Proposed specifications for a lumbar spinal cord electrode array for control of lower extremities in paraplegia. IEEE Trans Rehabil Eng 5(3):237–243
CAS
PubMed
Article
Google Scholar
Nguyen R, Masani K, Micera S, Morari M, Popovic MR (2011) Spatially distributed sequential stimulation reduces fatigue in paralyzed triceps surae muscles: a case study. Artif Organs 35(12):1174–1180
PubMed
Article
Google Scholar
Peckham PH, Knutson JS (2005) Functional electrical stimulation for neuromuscular applications. Annu Rev Biomed Eng 7:327–360
CAS
PubMed
Article
Google Scholar
Pelletier CA, Hicks AL (2009) Muscle characteristics and fatigue properties after spinal cord injury. Crit Rev Biomed Eng 37(1–2):139–164
PubMed
Article
Google Scholar
Petrofsky JS (1978) Control of the recruitment and firing frequencies of motor units in electrically stimulated muscles in the cat. Med Biol Eng Comput 16(3):302–308
CAS
PubMed
Article
Google Scholar
Petrofsky JS (1979) Sequential motor unit stimulation through peripheral motor nerves in the cat. Med Biol Eng Comput 17(1):87–93
CAS
PubMed
Article
Google Scholar
Pournezam M, Andrews BJ, Baxendale RH, Phillips GF, Paul JP (1988) Reduction of muscle fatigue in man by cyclical stimulation. J Biomed Eng 10(2):196–200
CAS
PubMed
Article
Google Scholar
Ragnarsson KT (2008) Functional electrical stimulation after spinal cord injury: current use, therapeutic effects and future directions. Spinal Cord 46(4):255–274
CAS
PubMed
Article
Google Scholar
Riess J, Abbas JJ (2001) Adaptive control of cyclic movements as muscles fatigue using functional neuromuscular stimulation. IEEE Trans Neural Syst Rehabil Eng 9(3):326–330
CAS
PubMed
Article
Google Scholar
Sheffler LR, Chae J (2007) Neuromuscular electrical stimulation in neurorehabilitation. Muscle Nerve 35(5):562–590
PubMed
Article
Google Scholar
Shields RK (1995) Fatigability, relaxation properties, and electromyographic responses of the human paralyzed soleus muscle. J Neurophysiol 73(6):2195–2206
CAS
PubMed
Google Scholar
Shields RK (2002) Muscular, skeletal, and neural adaptations following spinal cord injury. J Orthop Sports Phys Ther 32(2):65–74
PubMed
Article
Google Scholar
Shields RK, Cook TM (1992) Lumbar support thickness: effect on seated buttock pressure in individuals with and without spinal cord injury. Phys Ther 72(3):218–226
CAS
PubMed
Google Scholar
Shields RK, Dudley-Javoroski S (2003) Musculoskeletal deterioration and hemicorporectomy after spinal cord injury. Phys Ther 83(3):263–275
PubMed
Google Scholar
Shields RK, Dudley-Javoroski S (2006) Musculoskeletal plasticity after acute spinal cord injury: effects of long-term neuromuscular electrical stimulation training. J Neurophysiol 95(4):2380–2390
PubMed Central
PubMed
Article
Google Scholar
Shields RK, Law LF, Reiling B, Sass K, Wilwert J (1997) Effects of electrically induced fatigue on the twitch and tetanus of paralyzed soleus muscle in humans. J Appl Physiol 82(5):1499–1507
CAS
PubMed
Google Scholar
Slade JM, Bickel CS, Warren GL, Dudley GA (2003) Variable frequency trains enhance torque independent of stimulation amplitude. Acta Physiol Scand 177(1):87–92
CAS
PubMed
Article
Google Scholar
Stein RB, Gordon T, Jefferson J, Sharfenberger A, Yang JF, de Zepetnek JT, Belanger M (1992) Optimal stimulation of paralyzed muscle after human spinal cord injury. J Appl Physiol 72(4):1393–1400
CAS
PubMed
Google Scholar
Talmadge RJ, Castro MJ, Apple DF Jr, Dudley GA (2002) Phenotypic adaptations in human muscle fibers 6 and 24 wk after spinal cord injury. J Appl Physiol 92(1):147–154
CAS
PubMed
Google Scholar
Thomas CK (1997a) Contractile properties of human thenar muscles paralyzed by spinal cord injury. Muscle Nerve 20(7):788–799
CAS
PubMed
Article
Google Scholar
Thomas CK (1997b) Fatigue in human thenar muscles paralysed by spinal cord injury. J Electromyogr Kinesiol 7(1):15–26
CAS
PubMed
Article
Google Scholar
Thomas CK, Griffin L, Godfrey S, Ribot-Ciscar E, Butler JE (2003) Fatigue of paralyzed and control thenar muscles induced by variable or constant frequency stimulation. J Neurophysiol 89(4):2055–2064
PubMed
Article
Google Scholar
Thomsen M, Veltink PH (1997) Influence of synchronous and sequential stimulation on muscle fatigue. Med Biol Eng Comput 35(3):186–192
CAS
PubMed
Article
Google Scholar
Thrasher A, Graham GM, Popovic MR (2005) Reducing muscle fatigue due to functional electrical stimulation using random modulation of stimulation parameters. Artif Organs 29(6):453–458
PubMed
Article
Google Scholar
Westerblad H, Lannergren J (1991) Slowing of relaxation during fatigue in single mouse muscle fibres. J Physiol 434:323–336
CAS
PubMed Central
PubMed
Google Scholar
Yoshida K, Horch K (1993) Reduced fatigue in electrically stimulated muscle using dual channel intrafascicular electrodes with interleaved stimulation. Ann Biomed Eng 21(6):709–714
CAS
PubMed
Article
Google Scholar
Zonnevijlle ED, Somia NN, Stremel RW, Maldonado CJ, Werker PM, Kon M, Barker JH (2000) Sequential segmental neuromuscular stimulation: an effective approach to enhance fatigue resistance. Plast Reconstr Surg 105(2):667–673
CAS
PubMed
Article
Google Scholar