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首页> 外文期刊>Journal of neural engineering >A munne model of a novel surgical architecture for proprioceptive muscle feedback and its potential application to control of advanced limb prostheses
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A munne model of a novel surgical architecture for proprioceptive muscle feedback and its potential application to control of advanced limb prostheses

机译:一种用于本体感受肌反馈的新型外科手术结构的munne模型及其在控制晚期假肢中的潜在应用

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摘要

Objective. Proprioceptive mechanisms play a critical role in both reflexive and volitional lower extremity control. Significant strides have been made in the development of bionic limbs that are capable of bi-directional communication with the peripheral nervous system, but none of these systems have been capable of providing physiologically-relevant muscle-based proprioceptive feedback through natural neural pathways. In this study, we present the agonist-antagonist myoneural interface (AMI), a surgical approach with the capacity to provide graded kinesthetic feedback from a prosthesis through mechanical activation of native mechanoreceptors within residual agonist-antagonist muscle pairs. Approach. (1) Sonomicrometery and electroneurography measurement systems were validated using a servo-based muscle tensioning system. (2) A heuristic controller was implemented to modulate functional electrical stimulation of an agonist muscle, using sonomicrometric measurements of stretch from a mechanically-coupled antagonist muscle as feedback. (3) One AMI was surgically constructed in the hindlimb of each rat. (4) The gastrocnemius-soleus complex of the rat was cycled through a series of ramp-and-hold stretches in two different muscle architectures: native (physiologically-intact) and AMI (modified). Integrated electroneurography from the tibial nerve was compared across the two architectures. Main results. Correlation between stretch and afferent signal demonstrated that the AMI is capable of provoking graded afferent signals in response to ramp-and-hold stretches, in a manner similar to the native muscle architecture. The response magnitude in the AMI was reduced when compared to the native architecture, likely due to lower stretch amplitudes. The closed-loop control system showed robustness at high stretch magnitudes, with some oscillation at low stretch magnitudes. Significance. These results indicate that the AMI has the potential to communicate meaningful kinesthetic feedback from a prosthetic limb by replicating the agonist-antagonist relationships that are fundamental to physiological proprioception.
机译:目的。本体感受机制在反射性和自愿性下肢控制中均起关键作用。能够与周围神经系统进行双向通讯的仿生肢体的开发取得了长足的进步,但是这些系统都没有一个能够通过自然神经通路提供与生理相关的基于肌肉的本体感受反馈。在这项研究中,我们提出了激动剂-拮抗剂的肌神经接口(AMI),这是一种外科手术方法,能够通过机械激活残余残余激动剂-拮抗剂肌肉对中的天然机械感受器来提供假体的分级运动感觉反馈。方法。 (1)使用基于伺服的肌肉张紧系统验证了体表和电描记术测量系统。 (2)实施启发式控制器来调节激动剂肌肉的功能性电刺激,使用来自机械耦合拮抗肌的拉伸的体测法测量作为反馈。 (3)通过手术在每只大鼠的后肢中构建一个AMI。 (4)大鼠的腓肠肌-比目鱼肌复合体在两种不同的肌肉结构:天然的(生理上完好无损的)和AMI(改良的)上经过一系列的斜压伸展运动。在两种结构中比较了来自胫神经的集成电子神经电图。主要结果。伸展与传入信号之间的相关性表明,AMI能够以类似于天然肌肉结构的方式,响应斜拉保持伸展而激发渐变的传入信号。与原始架构相比,AMI中的响应幅度有所降低,这可能是由于较低的拉伸幅度所致。闭环控制系统在高拉伸强度下表现出鲁棒性,在低拉伸强度下表现出一些振荡。意义。这些结果表明,AMI有可能通过复制对生理本体感受至关重要的激动剂-拮抗剂关系来传达来自假肢的有意义的运动感觉反馈。

著录项

  • 来源
    《Journal of neural engineering》 |2017年第3期|036002.1-036002.12|共12页
  • 作者单位

    Center for Extreme Bionics, Massachusetts Institute of Technology, Cambridge, MA, United States of America;

    Center for Extreme Bionics, Massachusetts Institute of Technology, Cambridge, MA, United States of America,Department of Plastic and Reconstructive Surgery, Brigham and Women's Hospital, Boston, MA, United States of America;

    Center for Extreme Bionics, Massachusetts Institute of Technology, Cambridge, MA, United States of America;

    Center for Extreme Bionics, Massachusetts Institute of Technology, Cambridge, MA, United States of America;

    Center for Extreme Bionics, Massachusetts Institute of Technology, Cambridge, MA, United States of America;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    proprioception; afferent feedback; prosthetic control; amputation; peripheral nerve interface; bionics; surgery;

    机译:本体感受反馈假肢控制;截肢周围神经接口仿生学;手术;

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