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Effects of electrical stimulation and tendon vibration on muscle force in people with spinal cord injury

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

Status
Completed
Phases
Unknown
Study type
Interventional
Source
ANZCTR
Registry ID
ACTRN12618000022268
Enrollment
9
Registered
2018-01-11
Start date
2015-04-01
Completion date
2015-07-01
Last updated
2018-01-24

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

None listed

Brief summary

Ten subjects with SCI already involved in an activity-based exercise/rehabilitation program visited the Neuromuscular Physiology laboratory at Edith Cowan University on three occasions at the same time of day separated at least by 72 h. The experimental conditions were only be two in this Study 2. The first session was a familiarisation session and the following two were experimental sessions with conditions completed in a randomised order. The aim of this study was to replicate the most efficient NMES protocol found in Study 1 in healthy population to provide the greatest total impulse and lowest fatigue rate, imposed both with and without simultaneous tendon vibration, to investigate acute effects in people with SCI. Electrical stimulation protocol Participants sat on a test chair and will be given twitches of electrical stimulation of the thigh muscle while their leg was held stationary by a testing machine (isokinetic dynamometer). Two passive electrodes were placed on the skin over their stronger thigh muscle (quadriceps) and they were given one of the electrical stimulation protocols. All of these procedures were safe, and are commonly performed at Edith Cowan University. The purpose of the present study was to determine whether patellar tendon vibration superimposed onto wide-pulse width NMES under standard clinical conditions elicits a greater peak muscle force with less muscle fatigue (i.e. a greater total impulse) when compared to NMES applied without patellar tendon vibration in people with SCI. We hypothesised that patellar tendon vibration superimposed onto wide-pulse width NMES would elicit a greater peak muscle force with less muscle fatigue (i.e. a greater total impulse) that NMES applied without patellar tendon vibration in people with SCI.

Interventions

Neuromuscular electrical stimulation (NMES) to both quadriceps femoris muscles. It was delivered by the principal investigator, who was a Senior Physiotherapist, the mode of delivery was face to face. The number of times the intervention was delivered was 3 times, the duration was for one hour each session, once a week for 3 weeks. The experimental conditions were two. The first session was a familiarisation session and the following two were experimental sessions with conditions completed in a

Neuromuscular electrical stimulation (NMES) to both quadriceps femoris muscles. It was delivered by the principal investigator, who was a Senior Physiotherapist, the mode of delivery was face to face. The number of times the intervention was delivered was 3 times, the duration was for one hour each session, once a week for 3 weeks. The experimental conditions were two. The first session was a familiarisation session and the following two were experimental sessions with conditions completed in a randomised order. The aim of this study was to replicate the most efficient NMES protocol found in Study 1 in healthy population to provide the greatest total impulse and lowest fatigue rate, imposed both with and without simultaneous tendon vibration, to investigate acute effects in people with SCI. The "wash-out" period between the interventions was of a minimum of 72 hours. NMES was delivered by a high-voltage constant-current electrical stimulator (400 V, DS7A, Digitimer Ltd., Welwyn Garden City, UK) under the same conditons as the assessment through four self-adhesive stimulation electrodes (Axelgaard, PALS, USA) placed over the rectus femoris (RF), vastus lateralis (VL), and vastus medialis (VM). Two 5×10 cm electrodes were placed over RF and one 5×5 electrode was placed on each of the VM and VL approximately at their motor points using a split end cable, to increase the surface area of stimulation. The electrodes were placed to elicit the greatest twitch response with a low stimulation intensity. Long quadriceps muscle length was chosen to elicit greater hypertrophy. Each session commenced with a “warm-up” period consisting of paired electrical square-wave stimuli (two 1000 µs square-wave pulses with 5–ms interpulse interval) followed by a maximum of three tetanic trains delivered to each leg separately every 20 s while the stimulation current was increased from 30 mA in 10-mA increments until a plateau in the maximum peak twitch torque was observed or the maximal current intensity was 99 mA. This plateau was defined as the maximal peak twitch torque (?tw,p) and was used as the target torque during the training session. Subsequently, a tetanic train of NMES at 40 mA (?t,40mA) was delivered followed by a maximum of three trains of NMES performed at different stimulation current intensities until reaching the closest value to the target torque. After the warm-up period the NMES session commenced with electrically-evoked muscle contractions being elicited at the target torque for 5 sets of 10 repetitions on each leg, with a 1-min rest between sets. To determine the actual training intensity either one of two methods was used. The first method was by evoking the maximal peak (doublet) twitch torque and setting the current so the tetanic torque was equal to ?peak twitch torque. However, on some days the peak twitch torque showed a decrease compared to previous sessions. In these cases, a second method was used whereby the starting current was set to be equal to the highest current used in the previous training session. Within each session, the current was increased by 2 mA per each set of 10 repetitions to maintain a high torque production as fatigue developed; thus, if the second method was chosen, the current selected for set 1 was the same as that used in the final set of the previous session. Using this method, the torque produced in set 1 of training was always higher than that performed in any set of the previous session and thus the evoked torque increased incrementally.

Sponsors

Vanesa Bochkezanian
Lead SponsorIndividual

Study design

Allocation
Non-randomised trial
Intervention model
Crossover
Primary purpose
Treatment
Masking
Open (masking not used)

Eligibility

Sex/Gender
All
Age
18 Years to 65 Years
Healthy volunteers
No

Inclusion criteria

Inclusion criteria: age 18-65 years; SCI longer than 6 months that led to complete or incomplete paraplegia or tetraplegia; level of injury between C2 and L5; AIS (American Spinal Cord Injury Association Impairment Scale) A, B, C or D; have medical permission to enrol in an intensive exercise program; and able to participate in the program over a 14-week period.

Exclusion criteria

Acute phase of injury (less than 6 months from injury); ventilator dependent, other associated neurological disease; and complications such as severe urinary infection, pressure ulcers, previous lower-limb fractures or any other health condition that may constrain the participation in an exercise program.

Outcome results

None listed

Source: ANZCTR · Data processed: Mar 7, 2026