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本文引用的文献

1
Load-displacement-time characteristics of the spine under posteroanterior mobilisation.脊柱在前后向松动术下的负荷-位移-时间特征
Aust J Physiother. 1992;38(2):115-23. doi: 10.1016/S0004-9514(14)60556-0.
2
Comparison of force development strategies of spinal manipulation used for thoracic pain.用于治疗胸痛的脊柱推拿手法中力量发展策略的比较。
Man Ther. 2012 Jun;17(3):241-5. doi: 10.1016/j.math.2012.02.003. Epub 2012 Mar 2.
3
Learning spinal manipulation: a comparison of two teaching models.学习脊柱推拿术:两种教学模式的比较
J Chiropr Educ. 2011 Fall;25(2):125-31. doi: 10.7899/1042-5055-25.2.125.
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Maturation in rate of high-velocity, low-amplitude force development.
J Manipulative Physiol Ther. 2011 Mar-Apr;34(3):173-80. doi: 10.1016/j.jmpt.2011.02.007.
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Preliminary investigation of the mechanisms underlying the effects of manipulation: exploration of a multivariate model including spinal stiffness, multifidus recruitment, and clinical findings.手法效应作用机制的初步研究:包括脊柱刚度、多裂肌募集和临床发现的多变量模型的探索。
Spine (Phila Pa 1976). 2011 Oct 1;36(21):1772-81. doi: 10.1097/BRS.0b013e318216337d.
6
Performance and reliability of a variable rate, force/displacement application system.可变速率、力/位移施加系统的性能与可靠性
J Manipulative Physiol Ther. 2010 Oct;33(8):585-93. doi: 10.1016/j.jmpt.2010.08.020.
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Identification of spinal tissues loaded by manual therapy: a robot-based serial dissection technique applied in porcine motion segments.手动治疗加载的脊柱组织的识别:一种应用于猪运动节段的基于机器人的连续解剖技术。
Spine (Phila Pa 1976). 2010 Oct 15;35(22):1983-90. doi: 10.1097/BRS.0b013e3181ddd0a3.
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The effects of thoracic manipulation on posteroanterior spinal stiffness.胸椎手法对脊柱前后向刚度的影响。
J Orthop Sports Phys Ther. 2010 Nov;40(11):685-93. doi: 10.2519/jospt.2010.3271.
9
The biomechanics of spinal manipulation.脊柱推拿的生物力学
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10
Comparison of the effectiveness of three manual physical therapy techniques in a subgroup of patients with low back pain who satisfy a clinical prediction rule: a randomized clinical trial.满足临床预测规则的腰痛亚组患者中三种手动物理治疗技术有效性的比较:一项随机临床试验。
Spine (Phila Pa 1976). 2009 Dec 1;34(25):2720-9. doi: 10.1097/BRS.0b013e3181b48809.

脊柱手法治疗(SMT)的持续时间和幅度对脊柱僵硬程度的影响。

The effect of duration and amplitude of spinal manipulative therapy (SMT) on spinal stiffness.

作者信息

Vaillant Michèle, Edgecombe Tiffany, Long Cynthia R, Pickar Joel G, Kawchuk Gregory N

机构信息

University of Alberta, Edmonton, Alberta, Canada.

出版信息

Man Ther. 2012 Dec;17(6):577-83. doi: 10.1016/j.math.2012.06.006. Epub 2012 Jul 17.

DOI:10.1016/j.math.2012.06.006
PMID:22809745
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3477278/
Abstract

The aim of this study was to determine the effect of spinal manipulative therapy (SMT) force magnitude and force duration on the spinal stiffness of a feline preparation. A mechanical device performed simulated SMTs at the L6 spinous process in 22 anesthetised felines. Animals were divided into four groups. Two groups (no preload, preload) received SMT having maximal displacements of 1.0 mm, 2.0 mm and 3.0 mm of total displacement (displacement control). In two other groups (preload, no preload), SMTs were applied with maximal loads of 25%, 55% and 85% body weight (force control). Each of the SMTs were applied in order of increasing displacement or force amplitudes, at increasing durations ranging from 25 to 250 ms. Spinal stiffness was quantified by applying an indentation load to external surface of the back. Linear mixed effects models were fit for post-SMT stiffness variables. When SMT was applied under displacement control with and without a preceding preload, a significant interactive effect occurred between force magnitude and force duration (p ≤ 0.05) for some of the stiffness variables. The findings from this experiment demonstrate that spinal stiffness in a feline model was affected by the interaction of the force amplitude and force duration parameters but the exact nature of this interaction remains unclear. This study provides guidance for further investigation given other SMT parameters not tested here may facilitate the ability of SMT to alter spinal stiffness.

摘要

本研究的目的是确定脊柱推拿疗法(SMT)的力大小和力持续时间对猫科动物脊柱刚度的影响。一种机械设备在22只麻醉的猫的L6棘突处进行模拟SMT。动物被分为四组。两组(无预加载、预加载)接受总位移最大为1.0毫米、2.0毫米和3.0毫米的SMT(位移控制)。另外两组(预加载、无预加载),SMT的最大负荷为体重的25%、55%和85%(力控制)。每个SMT按位移或力幅度增加的顺序应用,持续时间从25毫秒增加到250毫秒。通过对背部外表面施加压痕负荷来量化脊柱刚度。对SMT后的刚度变量拟合线性混合效应模型。当在有和没有先前预加载的情况下进行位移控制的SMT时,某些刚度变量在力大小和力持续时间之间出现了显著的交互作用(p≤0.05)。该实验结果表明,猫科动物模型中的脊柱刚度受力量幅度和力持续时间参数相互作用的影响,但这种相互作用的确切性质仍不清楚。鉴于此处未测试的其他SMT参数可能有助于SMT改变脊柱刚度的能力,本研究为进一步研究提供了指导。

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