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Optical monitoring of spinal cord hemodynamics, a feasibility study

机译:光学监测脊髓血流动力学,可行性研究

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摘要

Background: After an acute traumatic spinal cord injury (SCI), the spinal cord is subjected to ischemia, hypoxia, and increased hydrostatic pressure which exacerbate further secondary damage and neuronal deficit. The purpose of this pilot study was to explore the use of near infrared spectroscopy (NIRS) for non-invasive and real-time monitoring of these changes within the injured spinal cord in an animal model. NIRS is a non-invasive optical technique that utilizes light in the near infrared spectrum to monitor changes in the concentration of tissue chromophores from which alterations in tissues oxygenation and perfusion can be inferred in real time. Methods: A custom-made miniaturized NIRS sensor was developed to monitor spinal cord hemodynamics and oxygenation noninvasively and in real time simultaneously with invasive, intraparenchymal monitoring in a pig model of SCI. The spinal cord around the T10 injury site was instrumented with intraparenchymal probes inserted directly into the spinal cord to measure oxygen pressure, blood flow, and hydrostatic pressure, and the same region of the spinal cord was monitored with the custom-designed extradural NIRS probe. We investigated how well the extradural NIRS probe detected intraparenchymal changes adjacent to the injury site after alterations in systemic blood pressure, global hypoxia, and traumatic injury generated by a weight-drop contusion. Results: The NIRS sensor successfully identified periods of systemic hypoxia, re-ventilation and changes in spinal cord perfusion and oxygenation during alterations of mean arterial pressure and following spinal cord injury. Conclusion: This pilot study indicates that extradural NIRS monitoring of the spinal cord is feasible as a non-invasive optical method to identify changes in spinal cord hemodynamics and oxygenation in real time. Further development of this technique would allow clinicians to monitor real-time physiologic changes within the injured spinal cord during the acute post-injury period.
机译:背景:急性外伤性脊髓损伤(SCI)后,脊髓遭受缺血,缺氧和静水压力增加,加剧了进一步的继发性损伤和神经元缺陷。这项初步研究的目的是探索使用近红外光谱(NIRS)对动物模型中受损脊髓内的这些变化进行无创实时监测。 NIRS是一种非侵入性光学技术,利用近红外光谱中的光来监视组织发色团浓度的变化,从中可以实时推断组织的充氧和灌注变化。方法:开发了一种定制的微型NIRS传感器,可在SCI猪模型中无创地,实时地同时监测脊髓血流动力学和氧合以及有创,实质内监测。在T10损伤部位周围的脊髓上直接插入实质内探针,以测量氧气压力,血流量和静水压,并使用定制设计的硬膜外NIRS探针监测脊髓的同一区域。我们调查了硬膜外NIRS探头在全身血压,整体性缺氧和体重减轻挫伤所致的创伤性变化后,在损伤部位附近检测到实质内变化的情况。结果:NIRS传感器成功识别出系统性缺氧,换气换气的时期以及平均动脉压改变和脊髓损伤后脊髓灌注和氧合的变化。结论:这项初步研究表明,硬膜外NIRS监测作为一种非侵入性光学方法是可行的,以实时识别脊髓血流动力学和氧合的变化。这项技术的进一步发展将使临床医生能够在急性损伤后期实时监测受损脊髓内的实时生理变化。

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  • 来源
  • 会议地点 San Francisco(US)
  • 作者单位

    Centre for International Collaboration on Repair Discoveries, Vancouver, Canada,Department of Orthopaedics, University of British Columbia, Vancouver, Canada;

    Centre for International Collaboration on Repair Discoveries, Vancouver, Canada,Department of Orthopaedics, University of British Columbia, Vancouver, Canada;

    Centre for International Collaboration on Repair Discoveries, Vancouver, Canada;

    Centre for International Collaboration on Repair Discoveries, Vancouver, Canada;

    Centre for International Collaboration on Repair Discoveries, Vancouver, Canada;

    Centre for International Collaboration on Repair Discoveries, Vancouver, Canada;

    Centre for International Collaboration on Repair Discoveries, Vancouver, Canada,Department of Mechanical Engineering, University of British Columbia, Vancouver, Canada;

    Stellenbosch Inst, for Advanced Study, Wallenberg Research Centre, Stellenbosch, South Africa;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Near-infrared Spectroscopy; NIRS; Spinal Cord; Spinal Cord Injury; Hemodynamics;

    机译:近红外光谱; NIRS;脊髓;脊髓损伤;血液动力学;

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