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Assessment of Neurologic Injury Subsequent to Transcatheter Aortic Valve Replacement: A Feasibility Study (TAVR-Neuro)

2016年10月24日 更新者:Dr. Donald Likosky、University of Michigan
The investigators seek to determine the feasibility of assessing neurologic injuries subsequent to transcathether aortic valve replacement (TAVR). Such a model has been applied previously by the principal investigator to assess and improve neurologic outcomes for other cardiac surgical procedures. The investigators shall assess patients during the following intervals: pre-procedure, within 72-96 hours post-procedure, and 3 months post-procedure. Case videos will be established to assist in identifying and associating emboli (using transcranial Doppler) and processes of clinical care during the TAVR procedure. Neurologic injury will be assessed in the following ways: stroke (neurologic exam, NIH Stroke Scale), silent infarcts (diffusion-weighted MRI, diffusion-tensor imaging), and neurobehavioral deficits (a battery of neuropsychological tests). Secondly, the investigators will investigate changes in the apnea-hypopnea index (AHI), a measure of sleep-disordered breathing, before vs after surgery between those subjects who develop post-operative acute brain infarction and those who do not. The investigators hypothesize that subjects who develop acute brain infarction will have an increase in AHI between baseline and post-op measurements compared with those subjects who do not develop acute brain infarction. A research coordinator will coordinate the testing.

研究概览

地位

撤销

详细说明

Nearly 1 in 10 adults over 65 years have aortic valve stenosis (AS), defined as an obstruction of blood flow across the aortic valve.(Faggiano, Antonini-Canterin et al. 2006) AS is a life-threatening disease, and one whose incidence increases with age. Natural history studies suggest that the long-term survival among patients with severe AS is unfavorable, even among patients who are asymptomatic, with event-free survival for AS being 64% at 1-year, 36% at 2-years, 12% at 4-years, and 3% at 6-years.(Rosenhek, Zilberszac et al. 2010) Until recently surgery has been the gold standard approach for treatment for severe AS. Recently, a less invasive approach, transcathether aortic valve replacement (TAVR) has emerged as a viable treatment alternative, including among those previously not thought of as suitable candidates for surgery. Unlike its surgical counterpart that utilizes cardiopulmonary bypass and direct vision by a cardiothoracic surgeon, TAVR is performed (by a surgeon in conjunction with an interventional cardiologist) by threading a wire mesh valve through a catheter using fluoroscopy while the heart is still beating. Concern regarding broader adoption of TAVR often revolves around the higher stroke rate relative to surgery (5.5% vs. 2.4%, p = 0.04).(Leon, Smith et al. 2010) Much of the risk associated with neurologic injuries (whether stroke, neurocognitive deficits or silent infarcts) revolves around embolically-generated sources, including: threading a guidewire across diseased vessels, removal of the native valve, or insertion/expansion of the new valve.(Miller, Blackstone et al. 2012) Among 47 patients studied by Miller within a neurologic sub-study of the PARTNER Trial, there were 49 (n=31 TAVR, 16 AVR) neurologic events (defined as a transient ischemic attack or stroke).(Miller, Blackstone et al. 2012) In a recent review article, Daneault cited risk of post-procedural cerebral infarcts within 5-7 days (using Diffusion-weighted MRI) of 38-47% with standard aortic valve surgery vs. 68-84% with TAVR.(Daneault, Kirtane et al. 2011) Given the growing interest and anticipated broadening of indications for TAVR in and outside of the United States, it is increasingly important to develop a sound methodological approach for evaluating the safety and effectiveness of this emerging treatment modality. In the absence of such information, it is impossible for a patient or clinician to estimate the likelihood for developing a neurologic injury subsequent to TAVR. Additionally, linkage of processes of care with embolism detection (through transcranial Doppler) would provide evidence to support targeted quality improvement efforts. Such a strategy has been useful in prior studies applied to coronary artery bypass grafting (CABG) surgery.(Groom, Quinn et al. 2009) Indeed, early studies evaluating TAVR have found periods of the TAVR procedure which may be more prone to the generation of embolic debris, although they have used varied methodological approaches. Importantly, the relationship between these emboli and development of neurobehavioral or ischemic lesions has not been explored in this setting.

The overlap between sleep disorders and stroke is an emerging field. Sleep apnea is a serious medical condition that is very common after stroke, affecting over half of acute ischemic stroke patients. (Broadley, Jorgensen et al. 2007) Recently, sleep apnea has been recognized as an independent risk factor for stroke. (Munoz, Martinez-Vila et al. 2006; Redline, Gottlieb et al. 2010; Yaggi, Kernan et al. 2005) Furthermore, sleep apnea has been identified as an important predictor of both poor functional outcome and death following stroke. (Sahlin, Sandberg et al. 2008; Turkington, Allgar et al. 2004) There remains controversy over whether OSA predates stroke, whether stroke predates sleep apnea, and whether stroke exacerbates sleep apnea severity. To answer the questions definitely, sleep apnea testing would have to be performed just prior to and again after stroke. Because stroke is typically unpredictable, this has been logistically challenging to pursue. The current study however provides a rare opportunity to study patients for sleep-disordered breathing just prior to and after a type of procedure that has an association with acute cerebral infarction identified on MRI. (Kalert, Knipp et al. 2010) Within this context, we seek to determine the feasibility of assessing neurologic injuries subsequent to TAVR. Such a model has been applied previously by the principal investigator to assess and improve neurologic outcomes for other cardiac surgical procedures.(Groom, Quinn et al. 2009) We shall assess patients during the following intervals: pre-procedure, within 72-96 hours post-procedure, and 3 months post-procedure (see Appendix). Case videos will be established to assist in identifying and associating emboli (using transcranial Doppler) and processes of clinical care during the TAVR procedure. Neurologic injury will be assessed in the following ways: stroke (neurologic exam, NIH Stroke Scale), silent infarcts (diffusion-weighted MRI, diffusion-tensor imaging), and neurobehavioral deficits (a battery of neuropsychological tests). Secondly, we will investigate changes in the apnea-hypopnea index (AHI), a measure of sleep-disordered breathing, before vs after surgery between those subjects who develop post-operative acute brain infarction and those who do not. We hypothesize that subjects who develop acute brain infarction will have an increase in AHI between baseline and post-op measurements compared with those subjects who do not develop acute brain infarction. A research coordinator will coordinate the testing.

研究类型

观察性的

联系人和位置

本节提供了进行研究的人员的详细联系信息,以及有关进行该研究的地点的信息。

学习地点

    • Michigan
      • Ann ARbor、Michigan、美国、48109
        • University of Michigan

参与标准

研究人员寻找符合特定描述的人,称为资格标准。这些标准的一些例子是一个人的一般健康状况或先前的治疗。

资格标准

适合学习的年龄

18年 及以上 (成人、年长者)

接受健康志愿者

有资格学习的性别

全部

取样方法

非概率样本

研究人群

Patients eligible for TAVR

描述

Inclusion Criteria:

  1. Adults > age 18 years old
  2. Able to give informed consent
  3. Meets criteria for implant of Sapien Aortic Valve
  4. Availability of transtemporal windows

Exclusion Criteria:

  1. Pregnancy
  2. Having a metallic foreign body in orbit
  3. Previous aneurysm surgery
  4. Unable or unwilling to give informed consent and follow up with study activities

学习计划

本节提供研究计划的详细信息,包括研究的设计方式和研究的衡量标准。

研究是如何设计的?

设计细节

研究衡量的是什么?

主要结果指标

结果测量
措施说明
大体时间
Emboli
大体时间:During the procedure
Measured through transcranial doppler
During the procedure

次要结果测量

结果测量
措施说明
大体时间
stroke
大体时间:pre-op, prior to discharge but within 10 days of the procedure, & 3 months post-discharge
The primary neurological outcome will be defined by the change in the NIH stroke scale from the pre-procedure examination. We will display this outcome visually using spaghetti plots labeled with emboli count for each patient. Using the method of mixed models with an empirical small-sample correction, a longitudinal model adjusted for follow-up time will be used to compare this outcome at each post-procedural assessment to emboli count. While tracked, we don't anticipate any strokes within this first set of 8 pilot patients.
pre-op, prior to discharge but within 10 days of the procedure, & 3 months post-discharge
Lesions on brain imaging
大体时间:pre-op, prior to discharge but within 10 days of the procedure, & 3 months post-discharge
The primary neurobehavioral outcome will be defined at each post-procedural visit by a 20% or greater decline on at least 20% of neurobehavioral tests relative to pre-procedural levels. A similar longitudinal model to that used for NIH stroke score will be used to generate odds ratios for the effect of emboli count on post-procedural neurobehavioral deficit. Secondary outcomes, including the change over time in the mini mental status examination (MMSE) and Montreal Cognitive Assessment (MoCA), will be assessed as continuous outcomes in longitudinal models predicted by emboli count as well as visually in plot form.
pre-op, prior to discharge but within 10 days of the procedure, & 3 months post-discharge
Neurobehavioral
大体时间:pre-op, prior to discharge but within 10 days of the procedure, & 3 months post-discharge
The primary neurobehavioral outcome will be defined at each post-procedural visit by a 20% or greater decline on at least 20% of neurobehavioral tests relative to pre-procedural levels. A similar longitudinal model to that used for NIH stroke score will be used to generate odds ratios for the effect of emboli count on post-procedural neurobehavioral deficit. Secondary outcomes, including the change over time in the mini mental status examination (MMSE) and Montreal Cognitive Assessment (MoCA), will be assessed as continuous outcomes in longitudinal models predicted by emboli count as well as visually in plot form.
pre-op, prior to discharge but within 10 days of the procedure, & 3 months post-discharge

合作者和调查者

在这里您可以找到参与这项研究的人员和组织。

研究记录日期

这些日期跟踪向 ClinicalTrials.gov 提交研究记录和摘要结果的进度。研究记录和报告的结果由国家医学图书馆 (NLM) 审查,以确保它们在发布到公共网站之前符合特定的质量控制标准。

研究主要日期

学习开始

2013年8月1日

初级完成 (预期的)

2016年11月1日

研究完成 (预期的)

2017年2月1日

研究注册日期

首次提交

2013年8月16日

首先提交符合 QC 标准的

2013年8月19日

首次发布 (估计)

2013年8月22日

研究记录更新

最后更新发布 (估计)

2016年10月26日

上次提交的符合 QC 标准的更新

2016年10月24日

最后验证

2016年10月1日

更多信息

与本研究相关的术语

关键字

其他研究编号

  • HUM00068534
  • Neuro-TAVR (其他标识符:University of Michigan)

计划个人参与者数据 (IPD)

计划共享个人参与者数据 (IPD)?

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