MECHANISMS OF HUMAN CEREBRAL BLOOD FLOW REGULATION IN ACUTE AND LIFELONG HYPOXIA IN LOWLANDERS AND INDIGENOUS POPULATIONS
MECHANISMS OF HUMAN CEREBRAL BLOOD FLOW REGULATION IN ACUTE AND LIFELONG HYPOXIA IN LOWLANDERS AND INDIGENOUS POPULATIONS
批准号:
RGPIN-2022-03496
负责人:
Ainslie, Philip
金额:
$4.01万
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2022
资助国家:
加拿大
项目状态:
已结题
起止时间:
2022-01-01 至 2023-12-31
中文摘要
背景技术背景:相对于其大小,大脑是体内最依赖氧的器官,但许多病理生理和环境过程可能导致或导致其氧供应受损。因此,研究急性和/或重复缺氧应激或高海拔下的大脑是研究低氧血症对脑血管功能的急性和慢性影响的合适模型。已经充分证明,脑血流量通过血管舒张响应于人类中缺氧刺激的严重性而增加。虽然在暴露于急性和常压和低压时脑血流量(CBF)增加(例如,高海拔)缺氧似乎足以维持脑氧输送,但目前对这些潜在机制的理解很差,尤其是在人类中。尽管有缺氧的生理压力,但一些土著居民在高海拔地区生存了数千年,这表明他们已经适应了缺氧条件。人类对高原低氧适应的成功模式有三种:安第斯模式、西藏模式和埃塞俄比亚模式。因此,急性和长时间的上升或居住在高海拔地区,代表了对大脑的复杂刺激,其性质还不清楚,特别是鉴于动脉酸碱平衡和代谢的持续改变和补偿。通过结合先进的金标准脑测量技术,这个研究计划的目标分为两个实际的主题,基于不同的人类反应急性和长期(主题一)和终身(主题二)缺氧,解决以下具体问题:问题1:什么是主要机制(S),急性缺氧诱导脑血管舒张和维持脑氧输送?问题2:长时间缺氧诱导脑血管舒张和维持脑氧输送的主要机制是什么? 问题3:CBF调节在不同的高原适应表型中是否有差异?重要性:解决本提案中概述的新问题将丰富我们对急性和/或终身缺氧条件下控制CBF的基本机制的理解。由于现代化和移民正在改变各地高地人的传统生活方式和暴露于环境的模式,因此迫切需要继续对土著高海拔和潜水人口进行实地调查。揭示低氧适应的生理基础将有助于了解血液学和其他适应缺氧耐受性,而且将促进人类进化到他们的环境的过程的解释。
英文摘要
BACKGROUND: Relative to its size, the brain is the most oxygen-dependent organ in the body, but many pathophysiological and environmental processes may either cause or result in a compromise to its oxygen supply. As such, studying the brain under acute and/or repetitive hypoxia stress or at high altitude is an appropriate model to investigate both acute and chronic effects of hypoxemia on cerebrovascular function. It has been well documented that cerebral blood flow increases in response to the severity of hypoxic stimuli in humans via vasodilation. Although the increases in cerebral blood flow (CBF) upon exposure to acute and normo- and hypobaric (e.g., high altitude) hypoxia seem adequate to maintain cerebral oxygen delivery, the current understanding of these underlying mechanisms is poor, especially in humans. Despite the physiological stress of hypoxia, several Indigenous populations have survived for millennia at high altitudes, suggesting they have adapted to hypoxic conditions. There are three successful patterns of human adaptation to high-altitude hypoxia: Andean, Tibetan and Ethiopian pattern. Acute and prolonged ascent or residency at high altitude, thus represents a complex stimulus to the brain, the nature of which is not well understood, particularly in light of sustained alterations and compensations in arterial acid-base balance and metabolism. By combining sophisticated gold-standard brain measurement techniques, this goal of this program of research is split into two practical themes based on the divergent human responses to acute and prolonged (theme one) and lifelong (theme two) hypoxia that address the following specific questions: QUESTION 1: What are the main mechanism(s) by which acute hypoxia induces cerebral vasodilation and maintenance of cerebral oxygen delivery? QUESTION 2:What are the main mechanism(s) by which prolonged hypoxia induces cerebral vasodilation and maintenance of cerebral oxygen delivery?. QUESTION 3: Has CBF regulation differentially evolved amongst the different phenotypes of adaptation to high altitude? SIGNIFICANCE: Addressing the novel questions outlined in this proposal will enrich our understanding of the fundamental mechanisms governing CBF in conditions of acute and/or, and lifelong hypoxia. Continuing fieldwork in Indigenous high altitude and diving populations is urgent since modernization and migration are changing the traditional ways of life and patterns of exposure to the environment among highlanders everywhere. Uncovering the physiological basis of hypoxic adaptation will inform understanding of hematological and other adaptations involved in hypoxia tolerance and will moreover facilitate explication of the processes by which humans have evolved to their environments.
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