Acute Effects of Foam Rolling on Viscoelastic Tissue Properties and Fascial Sliding: A Randomized, Controlled Crossover Trial
试验速览
- 阶段
- 不适用
- 状态
- 已完成
- 发起方
- 入组人数
- 16
- 试验地点
- 2
- 主要终点
- Passive-Resistive-Torque, Biodex System 3 Professional
研究概览
简要总结
Treatment or training of fascial tissues has moved into the focus of medical research in the last decade. In this context, the use of foam rollers or roller massagers for self-myofascial-release (SMR) techniques has become increasingly popular in health and fitness professionals. The primary objective of these techniques is to mimic manual massage or myofascial-release therapy with a self-usable tool. Recent studies suggest that SMR improves, inter alia, range of motion (ROM) without a decrease in neuromuscular performance (Cheatham et al. 2015).
Concurrent effects on the muscle and especially the surrounding connective tissue network have been proposed as underlying mechanisms for these observed changes in ROM after SMR. Several authors assume a positive effect of SMR on sliding properties of different independent fascial layers. Also, changes in passive tissue stiffness is suggested. Passive stiffness is thereby characterized by passive resistance in the tissues' (muscles') functional direction, the passive resistive torque (PRT).
In conclusion, for many of the proclaimed effects of SMR, such as improvements of sliding of fascial layers or decreases of passive stiffness, there is a lack of evidence in the literature. Therefore, the aim of the study is to evaluate acute effects of SMR on the viscoelastic properties of the muscles on the anterior thigh and the corresponding fascia.
In a cross over design, 16 subjects receive all of the following interventions after a familiarization session: a) 2x60 seconds of SMR at the anterior thigh, b) 2x60 seconds of static stretching at the anterior thigh, c) no intervention in a balanced permutated randomization sequence. Before and directly after each intervention, outcome parameters are collected.
Passive Resistive Torque is evaluated using a computerized isokinetic dynamometer. In passive mode, the lower leg is moved from full knee extension (0°) to the point of maximal knee flexion with a velocity of 5°/s. Torque and angle are recorded at 100 Hertz (Hz). Sliding of fascial layers is quantified with a frame-by-frame cross correlation algorithm of high-resolution ultrasound images (Dilley et al. 2001).
First stretch sensation is quantified using the passive mode in the isokinetic dynamometer.
Maximal ROM is detected using a an ultrasonographic movement analysis system in a prone position.
研究设计
- 研究类型
- Interventional
- 分配方式
- Randomized
- 干预模型
- Crossover
- 主要目的
- Treatment
- 盲法
- None
入排标准
- 年龄范围
- 20 Years 至 40 Years(Adult)
- 性别
- All
- 接受健康志愿者
- 是
入选标准
- •Age between 20-40 years
排除标准
- •History of orthopedic injuries in the lower extremity in the last 12 months
- •Any history of psychiatric, cardiovascular, endocrine, neurological, or metabolic disorders
- •Any current medication that might affect pain perception or proprioception
- •Muscle soreness
- •Pregnancy/nursing period
- •Nonspecific musculoskeletal disorders
研究组 & 干预措施
Self-Myofascial-Release
Two 60 seconds bouts of Self-Myofascial-Release performed at the anterior thigh; anticipated intensity of 7/10 on a 10 point numeric rating scale (0 representing no discomfort and 10 representing maximal discomfort)
干预措施: Self-Myofascial-Release (Other)
Stretching
Two 60 seconds bouts of static stretching performed at the anterior thigh; anticipated intensity of 7/10 on a 10 point numeric rating scale (0 representing no discomfort and 10 representing maximal discomfort)
干预措施: Stretching (Other)
Control
No Intervention
结局指标
主要结局
Passive-Resistive-Torque, Biodex System 3 Professional
时间窗: 1 minute
In passive mode, the lower leg is moved from full knee extension (0°) to the point of maximal knee flexion with a velocity of 5°/s. Torque and angle are recorded at 100 Hz, and passive stiffness can be calculated from the torque-angle relationship.
Fascial-Sliding, Siemens Acuson X300, Cross correlation
时间窗: 1 minute
Sliding of fascial layers is quantified with a frame-by-frame cross correlation algorithm of high-resolution ultrasound images. The cross-correlation method calculates the correlation coefficient between the pixel grey levels for selected rectangle-shaped regions of interest (ROIs) in two adjacent images. The pixel shift that gives the maximum correlation coefficient corresponds to the relative movement between two frames.
次要结局
- Maximal Range of Motion, Zebris CMS20(1 minute)
- First stretch sensation, Biodex System 3 Professional(1 minute)
研究者
Prof. Dr. Dr. Winfried Banzer
Head of Department
Goethe University
