Characterizing the Cerebrovascular Physiology of Circulatory Death During Withdrawal of Life Sustaining Therapies in Humans
试验速览
- 阶段
- 不适用
- 状态
- 招募中
- 入组人数
- 50
- 试验地点
- 1
- 主要终点
- Cerebral Hemodynamics
研究概览
简要总结
The purpose of this study is to better understand what happens in the brain during the dying process.
This is a prospective observational study conducted at the end of life in the ICU at VGH. At the time of withdrawal of life sustaining therapies the investigators will monitor brain blood flow and oxygenation. The investigators will also collect blood samples to measure biomarkers of brain dysfunction.
This may help us to determine when blood flow to the brain stops and when brain function ceases. This information may provide researchers and the medical community as a whole with important information as to the best timing for organ donation. This study is the first step in commencing a research program related to improving the organ donation process. Our goal is to determine how best to provide high quality organs to those who would otherwise die without an organ transplant.
详细描述
MAIN STUDY
PURPOSE The goal of this project is to characterize the cerebrovascular physiology of circulatory death during withdrawal of life sustaining measures in humans.
JUSTIFICATION Death is defined as the permanent loss of brain function following absence of cerebral blood flow (CBF). Such physiology can result from two clinical scenarios: a) absent CBF in patients with a beating heart (neurological brain death) or b) after natural circulatory arrest. In the latter scenario, eventual cessation of innate cardiac output leads to absent CBF, brain tissue oxygenation and irreversible loss of brain function. Pertinent to solid organ transplantation, death must occur prior to consideration of organ donation. In the setting of circulatory death, withdrawal of life-sustaining measures (WLSM) is undertaken and organ donation commences after the declaration of death. This process is termed controlled donation after cardiac death (DCD). Due to the scarcity of available organ donation opportunities, the emergence of DCD has provided increased access to life-saving solid organ transplants for recipients. However, challenges remain with respect to successes of DCD graft organ function and optimal recipient outcomes. Principally, the timeliness from WLSM to circulatory death declaration is crucial to graft viability with prolonged periods associated with worse graft organ ischemia, function and adverse recipient outcomes. To this extent, the determination of the precise timing of death determination during DCD is imperative to inform timely diagnosis of death and optimize retrieval of high-quality grafts for solid organ transplant recipients.
The characterization of the cerebrovascular physiology of circulatory death in humans has knowledge gaps. Current guidelines define a pulse pressure < 5mmHg (systolic - diastolic blood pressure) using radial arterial line monitoring as the acceptable threshold for timing of circulatory death. Although pragmatic, this definition assumes that in vivo hemodynamic physiology generated by the heart (reflected by the arterial line) is simultaneously reflected in the cerebral circulation. It is well known that systemic hemodynamics do not necessarily correlate with cerebral hemodynamics during critical illness. Pathophysiologic sequelae (e.g. elevated intracranial pressure) in critically ill acutely brain injured patients who undergo WLSM suggest that cerebral perfusion may cease before systemic hemodynamics (detected by radial arterial line monitoring) deteriorate irreversibly. As such, it is plausible that cerebral perfusion ceases before a pulse pressure < 5mmHg is achieved thereby setting the conditions by which the physiologic requirement of circulatory death is present (absent CBF) but the clinical definition has not (pulse pressure < 5mmHg) been reached. Clinically, this scenario would expose viable graft organs to prolonged ischemia and negatively affect solid organ transplant recipient outcomes
HYPOTHESES AND AIMS
研究设计
- 研究类型
- Observational
- 观察模型
- Cohort
- 时间视角
- Prospective
入排标准
- 年龄范围
- 19 Years 至 —(Adult, Older Adult)
- 性别
- All
- 接受健康志愿者
- 否
入选标准
- •a) Age > 18 years
- •b) anticipated withdrawal of life-sustaining measures (WLSM) within the next 24 hours
排除标准
- •No in-situ arterial line
- •No legal authorized representative
- •Neurological brain death declared
结局指标
主要结局
Cerebral Hemodynamics
时间窗: Up to 52 weeks
To describe the timing and physiologic relationships between brain perfusion relative to cardiovascular function. Specifically, we will assess the pulse pressure (measured with an in situ radial arterial catheter) at which cerebral hemodynamics cease (measured with transcranial Doppler derived middle \[MCA-Fv\] and posterior cerebral artery blood flow velocities \[PCA-Fv\]) following withdrawal of life sustaining measures.
次要结局
- Feasibility(Up to 52 weeks)
- Brain and Systemic Physiology(Up to 52 weeks)
- Oxygen Extraction Fraction(Up to 52 weeks)
- Brain Biomarker(Up to 52 weeks)
研究者
Myp Sekhon
Principal Investigator
University of British Columbia
