利用腋窝神经丛阻断验证无有意或反应性收缩的被动腕关节肌肉僵硬度测量方法

IF 1.4 3区 医学 Q4 ENGINEERING, BIOMEDICAL Clinical Biomechanics Pub Date : 2024-02-01 DOI:10.1016/j.clinbiomech.2024.106190
Thibaut Libert , Christine Detrembleur , Francois Melebeck , Anh Phong Nguyen
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引用次数: 0

摘要

背景被动僵硬度描述了关节被动移动的容易程度。为了准确测量腕关节僵硬度,我们开发了一种电子振荡装置。方法在这项前瞻性研究中,该装置在腕部屈伸时产生低振幅正弦运动,以量化自愿骨科患者的弹性和粘性被动僵硬度。第一轮测量在自主放松状态下进行,第二轮测量在腋窝神经丛麻醉阻滞后进行。研究结果机电振荡法能有效测量被动关节僵硬度,因为获得的僵硬度值在麻醉前和麻醉后没有明显的统计学差异。僵硬度值与健康人的僵硬度值相当。根据前臂周长估算的前臂被动结构影响了手腕的被动僵硬度,主要是粘性成分。这项研究为今后研究以腕关节异常被动僵硬为特征的骨科和/或神经科病症奠定了基础。它为将其用作这些病症的诊断、预后和监测工具铺平了道路。
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Validating the measurement of passive Musculo-articular wrist stiffness without intentional or reactive contraction using axillary plexus block

Background

Passive stiffness describes how easily a joint may move passively. To accurately measure wrist stiffness, an electro-oscillation device was developed. The objectives were to 1) ensuring that the measurement are free from intentional or reflex contraction, 2) analyzing how forearm anatomy affects the passive stiffness of the wrist and 3) determining the clinical practical relevance of the device.

Methods

In this prospective study, the device generated low amplitude sinusoidal motions in flexion and extension on the wrist to quantify elastic and viscous passive stiffness in voluntary orthopaedic patients. The first series of measurements was carried out in the state of voluntary relaxation, the second series of measurements was carried out after an axillary plexus anesthetic block. A matched group of healthy subjects were use for control.

Findings

The Electromechanical Oscillation methods effectively enable the measurement of passive joint stiffness since the stiffness values obtained show no statistically significant difference pre-post the anesthesia. The stiffness values are comparable to those of healthy subjects. The effect of forearm passive structure, estimated by the perimeter of the forearm, influences the passive stiffness of the wrist, mainly the viscous component.

Interpretation

The use of sinusoidal oscillation was well accepted by the participants, demonstrating its usefulness and applicability in a clinical setting. This work serves as a foundation for future investigations of orthopaedic and/or neurological pathological conditions characterized by abnormal passive joint stiffness of the wrist. It paves the way for its use as a diagnostic, prognostic, and monitoring tool in these pathologies.

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来源期刊
Clinical Biomechanics
Clinical Biomechanics 医学-工程:生物医学
CiteScore
3.30
自引率
5.60%
发文量
189
审稿时长
12.3 weeks
期刊介绍: Clinical Biomechanics is an international multidisciplinary journal of biomechanics with a focus on medical and clinical applications of new knowledge in the field. The science of biomechanics helps explain the causes of cell, tissue, organ and body system disorders, and supports clinicians in the diagnosis, prognosis and evaluation of treatment methods and technologies. Clinical Biomechanics aims to strengthen the links between laboratory and clinic by publishing cutting-edge biomechanics research which helps to explain the causes of injury and disease, and which provides evidence contributing to improved clinical management. A rigorous peer review system is employed and every attempt is made to process and publish top-quality papers promptly. Clinical Biomechanics explores all facets of body system, organ, tissue and cell biomechanics, with an emphasis on medical and clinical applications of the basic science aspects. The role of basic science is therefore recognized in a medical or clinical context. The readership of the journal closely reflects its multi-disciplinary contents, being a balance of scientists, engineers and clinicians. The contents are in the form of research papers, brief reports, review papers and correspondence, whilst special interest issues and supplements are published from time to time. Disciplines covered include biomechanics and mechanobiology at all scales, bioengineering and use of tissue engineering and biomaterials for clinical applications, biophysics, as well as biomechanical aspects of medical robotics, ergonomics, physical and occupational therapeutics and rehabilitation.
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