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高原缺氧环境下临床合理应用抗高血压药物的新策略。

New strategy for rational use of antihypertensive drugs in clinical practice in high-altitude hypoxic environments.

机构信息

Research Center for High Altitude Medicine, Qinghai University Medical College, Xining, China.

Qinghai Provincial People's Hospital, Xining, China.

出版信息

Drug Metab Rev. 2023 Nov;55(4):388-404. doi: 10.1080/03602532.2023.2250930. Epub 2023 Aug 24.

Abstract

High-altitude hypoxic environments have critical implications on cardiovascular system function as well as blood pressure regulation. Such environments place patients with hypertension at risk by activating the sympathetic nervous system, which leads to an increase in blood pressure. In addition, the high-altitude hypoxic environment alters the metabolism and antihypertensive effects of antihypertensive drugs, which changes the activity and expression of drug-metabolizing enzymes and drug transporters. The present study reviewed the pharmacodynamics and pharmacokinetics of antihypertensive drugs and its effects on patients with hypertension in a high-altitude hypoxic environment. It also proposes a new strategy for the rational use of antihypertensive drugs in clinical practice in high-altitude hypoxic environments. The increase in blood pressure on exposure to a high-altitude hypoxic environment was mainly dependent on increased sympathetic nervous system activity. Blood pressure also increased proportionally to altitude, whilst ambulatory blood pressure increased more than conventional blood pressure, especially at night. High-altitude hypoxia can reduce the activities and expression of drug-metabolizing enzymes, such as CYP1A1, CYP1A2, CYP3A1, and CYP2E1, while increasing those of CYP2D1, CYP2D6, and CYP3A6. Drug transporter changes were related to tissue type, hypoxic degree, and hypoxic exposure time. Furthermore, the effects of high-altitude hypoxia on drug-metabolism enzymes and transporters altered drug pharmacokinetics, causing changes in pharmacodynamic responses. These findings suggest that high-altitude hypoxic environments affect the blood pressure, pharmacokinetics, and pharmacodynamics of antihypertensive drugs. The optimal hypertension treatment plan and safe and effective medication strategy should be formulated considering high-altitude hypoxic environments.

摘要

高海拔低氧环境对心血管系统功能和血压调节有重要影响。这种环境通过激活交感神经系统使高血压患者面临风险,导致血压升高。此外,高海拔低氧环境改变了降压药物的代谢和降压作用,从而改变了药物代谢酶和药物转运体的活性和表达。本研究综述了降压药物在高海拔低氧环境中的药效学和药代动力学及其对高血压患者的影响,并提出了在高海拔低氧环境中临床合理使用降压药物的新策略。在高海拔低氧环境中,血压升高主要依赖于交感神经系统活性的增加。血压也随海拔的升高而升高,而动态血压升高幅度超过常规血压,尤其是在夜间。高海拔低氧可降低细胞色素 P450(CYP)1A1、CYP1A2、CYP3A1 和 CYP2E1 等药物代谢酶的活性和表达,同时增加 CYP2D1、CYP2D6 和 CYP3A6 的活性和表达。药物转运体的变化与组织类型、缺氧程度和缺氧暴露时间有关。此外,高海拔低氧对药物代谢酶和转运体的影响改变了药物的药代动力学,导致药效学反应的变化。这些发现表明,高海拔低氧环境会影响降压药物的血压、药代动力学和药效学。应考虑高海拔低氧环境制定最佳高血压治疗方案和安全有效的用药策略。

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