跳至主要内容
临床试验/NCT03443700
NCT03443700Unknown不适用

Randomized Controlled Trial on Rehabilitation Training With a Robotic Anthropomorphic Exoskeleton in Patients With Motor Incomplete Spinal Cord Injury: Clinical Outcomes and Cortical Plasticity Indicators

Azienda Usl di Bologna2 个研究点 分布在 1 个国家目标入组 50 人开始时间: 2020年12月10日最近更新:
适应症

试验速览

阶段
不适用
入组人数
50
试验地点
2
主要终点
Change in walking performance

研究概览

简要总结

The recent introduction of robotics for locomotor training in paraplegic patients, and in particular the use of anthropomorphic exoskeletons, has opened new frontiers in rehabilitation. Existing literature, though encouraging, is still scarce and studies demonstrating efficacy are highly heterogeneous and have a small sample size. Evidence is also needed about cortical plasticity after SCI, in conjunction with the use of innovative rehabilitation devices, through indicators like neurophysiological and neuroradiological markers, as the knowledge of such mechanisms is crucial to improve clinical outcomes. Cortical circuits controlling prosthetic devices are different from those controlling normal parts of the body and remodeling mechanisms following prosthetic use have been documented, but in conditions other than SCI.

The aims of this randomized controlled trial, with a 2-arm parallel-group design, are:

  1. to evaluate and quantify the efficacy of locomotor rehabilitation with a robotic anthropomorphic exoskeleton (EKSO-GT) in terms of clinical and functional outcomes, and the persistence of such efficacy;
  2. to investigate the presence and persistence of brain neuronal plasticity and cortical remodeling mechanisms underlying the robotic rehabilitation approach.

Fifty patients will be recruited and randomly assigned to 2 treatment arms. Both groups will follow a program of standard locomotor rehabilitation for 8 weeks. One group will also undergo an overground locomotor training with the EKSO-GT during the first 4 weeks.

详细描述

The increasing incidence of incomplete Spinal Cord Injury (SCI) has raised new rehabilitation challenges. Recovery of walking is one of the top priorities in SCI persons and growing efforts have been pursued aimed at identifying effective alternative techniques for improving gait performance.

Standard rehabilitation approach has been so far the most widely used, but the recent introduction of anthropomorphic exoskeletons may open new frontiers in the field. Anthropomorphic exoskeletons have been developed to assist SCI patients with mobility, but there is also a certain optimism that they may have potentialities to improve walking patterns of incomplete SCI persons after a rehabilitation period with such devices is terminated. So far, however, while different systematic reviews and meta-analyses have reported on the safety of the training with such exoskeletons, there are no significant Fiftystudies on its efficacy. Along with this, central mechanisms underlying the anatomical and functional changes induced by these approaches have never been investigated in SCI.

This longitudinal randomized controlled trial, with a 2-arm parallel group design, aims at evaluating the efficacy of the training with an anthropomorphic, robotized exoskeleton (EKSO-GT, by Ekso Bionics), as "add-on" to the standard locomotor rehabilitation, in improving walking performance, when compared to the standard locomotor rehabilitation alone, in a population of patients with non-acute motor incomplete SCI. Along with this and other clinical outcomes, neurophysiological and structural markers of Central Nervous System (CNS) plasticity will be explored, aimed at capturing mechanisms underlying how anthropomorphic exoskeletons affect CNS plasticity.

Fifty patients will be recruited in 3 Italian rehabilitation hospitals setting and assigned to 2 groups, with an allocation ratio of 1:1, through a block randomization approach. One group will perform a 4-week standard locomotor training (sLT) alone, while the other will perform a 4-week period sLT plus a training with the EKSO-GT (sLT + EX-T). Afterwards, both groups will undergo a further 4-week sLT alone.

Patients will be evaluated at several time points (always when the exoskeleton is not worn): clinical outcomes will be assessed by means of clinical examinations, standardized tests and validated scales; neurophysiological modulations will be evaluated by means of paired Motor and Sensory Evoked Potentials and a study of Electroencephalographic (EEG) slow waves oscillations and signal coherence during sleep; anatomical and structural cortical modifications will be studied with brain functional Magnetic Resonance Imaging (fMRI).

研究设计

研究类型
Interventional
分配方式
Randomized
干预模型
Parallel
主要目的
Treatment
盲法
Single (Outcomes Assessor)

盲法说明

Because of the use of an evident Medical Device (exoskeleton), enrolled subjects cannot be blind about their assignment group, however objective and standardized clinical measure scales will be employed; moreover, assessments (also neurophysiological and neuroimaging ones) will be conducted by blind experts.

入排标准

年龄范围
18 Years 至 65 Years(Adult, Older Adult)
性别
All
接受健康志愿者

入选标准

  • SCI due to traumatic or vascular etiology;
  • Incomplete motor SCI (C or D in ASIA Impairment Scale);
  • T1-L1 (included) neurological level;
  • 1-5 years since injury;
  • Functional gait ability (also with braces or orthoses);
  • Sufficient Range of Motion (ROM) of lower limbs joints to achieve a reciprocal gait pattern and allow transition from sitting to vertical position;
  • Stable clinical conditions;
  • Minimum height of 157 cm;
  • Maximum height of 188 cm;
  • Maximum weight of 100 Kg;
  • Maximum intertrochanteric distance of 46 cm;
  • Cognitive integrity and full collaboration of the subject.
  • Specific research informed consent signed.

排除标准

  • Intensive walking rehabilitation training undergone in the last 3 months;
  • Previous use of a robotic exoskeleton;
  • Instability or major deformity of the spine;
  • Lower limbs joints instability;
  • Indication to spinal orthosis;
  • Uncontrolled spasticity (score > 3 of the Modified Ashworth Scale) in the majority of the muscle groups of the lower limbs;
  • History of traumatic brain injury;
  • Recent significant bone fractures, traumatic and/or pathological for the required training;
  • Presence of neurogenic paraosteoarthropathies (POAN) at the onset or phlogistic phase;
  • Discrepancy in femurs length (> 1.3 cm) and legs length (> 1.9 cm);
  • Symptomatic orthostatic hypotension;
  • Severe and recurrent uncontrolled autonomic dysreflexia;
  • Cardiopulmonary comorbidities limiting physical effort;
  • Skin lesions that can interfere with the study rehabilitation trainings;
  • Documented psychiatric pathology;
  • Contraindications to fMRI and polygraphic EEG execution;
  • Contraindications to TMS;
  • Ongoing pregnancy.

结局指标

主要结局

Change in walking performance

时间窗: Baseline (initial visit post-randomization); week 4

10-meter walk test

次要结局

  • Change in walking endurance(Baseline (initial visit post-randomization); week 4; week 8)
  • Change in spasticity(Baseline (initial visit post-randomization); week 4; week 8)
  • Change in pain(Baseline (initial visit post-randomization); every day, twice a day for the whole study period; overall appraisal at week 4 and week 8)
  • Change in lower limbs muscle activation pattern(Baseline (initial visit post-randomization); week 4; week 8)
  • Change in functional walking capacity(Baseline (initial visit post-randomization); week 4; week 8)
  • Change in lower limbs muscle strength(Baseline (initial visit post-randomization); week 4; week 8)
  • Change in entity of neuronal plasticity and cortical remodelling of motor cortical areas(Baseline (initial visit post-randomization); after the first locomotor training session; week 4; week 8)
  • Evaluation of patient's satisfaction for the training received(Week 4)
  • Change in walking performance(Baseline (initial visit post-randomization); week 8)
  • Change in mood state(Baseline (initial visit post-randomization); week 4; week 8)
  • Change in brain anatomy and cortical structure(Baseline (initial visit post-randomization); week 4; week 8)
  • Change in entity of neuronal plasticity and cortical remodelling of sensory cortical areas(Baseline (initial visit post-randomization); after the first locomotor training session; week 4; week 8)
  • Change in synaptic potentiation (neuroprosthetic learning)(Baseline (initial visit post-randomization); after the first locomotor training session; week 4)

研究者

申办方类型
Other Gov
责任方
Sponsor

研究点 (2)

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