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Decompression illness: a comprehensive overview.减压病:全面概述。
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2
A systematic review of electroencephalography in acute cerebral hypoxia: clinical and diving implications.急性脑缺氧的脑电图系统评价:临床和潜水意义。
Diving Hyperb Med. 2023 Sep 30;53(3):268-280. doi: 10.28920/dhm53.3.268-280.
3
Paperfetcher: A tool to automate handsearching and citation searching for systematic reviews.文献获取器:一种用于系统评价的手工检索和引文检索自动化工具。
Res Synth Methods. 2023 Mar;14(2):323-335. doi: 10.1002/jrsm.1604. Epub 2022 Oct 26.
4
The O-sensitive brain stem, hyperoxic hyperventilation, and CNS oxygen toxicity.对氧敏感的脑干、高氧性过度通气与中枢神经系统氧中毒
Front Physiol. 2022 Jul 26;13:921470. doi: 10.3389/fphys.2022.921470. eCollection 2022.
5
Does hyperbaric oxygen cause narcosis or hyperexcitability? A quantitative EEG analysis.高压氧是否会引起麻醉或过度兴奋?一项定量脑电图分析。
Physiol Rep. 2022 Jul;10(14):e15386. doi: 10.14814/phy2.15386.
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EEG functional connectivity is sensitive for nitrogen narcosis at 608 kPa.脑电图功能连接对 608kPa 下的氮麻醉敏感。
Sci Rep. 2022 Mar 22;12(1):4880. doi: 10.1038/s41598-022-08869-8.
7
Seizures Caused by Exposure to Hyperbaric Oxygen in Rats Can Be Predicted by Early Changes in Electrodermal Activity.大鼠暴露于高压氧引起的癫痫发作可通过早期皮肤电活动变化来预测。
Front Physiol. 2022 Jan 5;12:767386. doi: 10.3389/fphys.2021.767386. eCollection 2021.
8
Neurovascular and cortical responses to hyperoxia: enhanced cognition and electroencephalographic activity despite reduced perfusion.神经血管和皮质对高氧的反应:尽管灌注减少,但认知能力增强和脑电图活动增强。
J Physiol. 2020 Sep;598(18):3941-3956. doi: 10.1113/JP279453. Epub 2020 Jul 6.
9
Electrophysiological correlates of hyperoxia during resting-state EEG in awake human subjects.静息态脑电图清醒人体实验中高氧状态的电生理相关性。
Psychophysiology. 2019 Oct;56(10):e13401. doi: 10.1111/psyp.13401. Epub 2019 May 30.
10
CNS function and dysfunction during exposure to hyperbaric oxygen in operational and clinical settings.在作业和临床环境中暴露于高压氧时的中枢神经系统功能和障碍。
Redox Biol. 2019 Oct;27:101159. doi: 10.1016/j.redox.2019.101159. Epub 2019 Mar 9.

健康成年人在吸入高浓度氧气(高氧通气)正常呼吸时的脑电图(EEG)变化:一项系统综述。

Electroencephalographic (EEG) changes accompanying normal breathing of concentrated oxygen (hyperoxic ventilation) by healthy adults: a systematic review.

作者信息

Barnes Lachlan D, Hallum Luke E, Vrijdag Xavier Ce

机构信息

Department of Anaesthesiology, School of Medicine, University of Auckland, Auckland, New Zealand.

Department of Mechanical Engineering, University of Auckland, Auckland, New Zealand.

出版信息

Diving Hyperb Med. 2025 Jun 30;55(2):154-163. doi: 10.28920/dhm55.2.154-163.

DOI:10.28920/dhm55.2.154-163
PMID:40544143
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12267071/
Abstract

INTRODUCTION

Divers often increase their fraction of inspired oxygen (FIO₂) to decrease their risk of decompression sickness. However, breathing elevated pressures of oxygen can cause central nervous system oxygen toxicity (CNS-OT). This study aimed to review the literature describing the effect of hyperoxia on the electroencephalogram (EEG), thus exploring the potential for real-time detection of an impending CNS-OT seizure.

METHODS

We searched Medline, Embase, Scopus, and Web of Science for articles that reported EEG measures accompanying hyperoxic ventilation (FIO₂ = 1.0 ± hyperbaric pressure) in healthy participants. We included peer-reviewed journal articles, books, and government reports with no language or date restrictions. Randomised controlled trials and cross-over studies were included; case reports were excluded. We used the Newcastle-Ottawa scale to evaluate evidence quality.

RESULTS

Our search strategy returned 1,025 unique abstracts; we analysed the full text of 46 articles; 22 articles (16 studies) were included for review. Study cohorts were typically small and comprised of male non-divers. We discovered a variety of EEG analysis methods: studies performed spectral analysis (n = 12), the analysis of sensory-evoked potentials (n = 4), connectivity/complexity analysis (n = 3), source localisation (n = 1), and expert qualitative analyses (n = 4). Studies of severe exposures (long duration at hyperbaric pressure) typically reported qualitative measures, and studies of mild exposures typically reported quantitative measures.

CONCLUSIONS

There is a need for a large randomised controlled trial reporting quantitative measures to better understand the effect of hyperoxia on the EEG, thus enabling the development of real-time monitoring of CNS-OT risk.

摘要

引言

潜水员常增加其吸入氧分数(FIO₂)以降低减压病风险。然而,呼吸高压氧可导致中枢神经系统氧中毒(CNS-OT)。本研究旨在回顾描述高氧对脑电图(EEG)影响的文献,从而探索实时检测即将发生的CNS-OT发作的可能性。

方法

我们在Medline、Embase、Scopus和Web of Science中检索报告健康参与者在高氧通气(FIO₂ = 1.0 ± 高压)时EEG测量结果的文章。我们纳入了无语言或日期限制的同行评审期刊文章、书籍和政府报告。纳入随机对照试验和交叉研究;排除病例报告。我们使用纽卡斯尔-渥太华量表评估证据质量。

结果

我们的检索策略返回了1025篇独特的摘要;我们分析了46篇文章的全文;纳入22篇文章(16项研究)进行综述。研究队列通常较小,且由男性非潜水员组成。我们发现了多种EEG分析方法:进行频谱分析的研究(n = 12)、感觉诱发电位分析(n = 4)、连通性/复杂性分析(n = 3)、源定位(n = 1)和专家定性分析(n = 4)。重度暴露(高压下长时间暴露)的研究通常报告定性测量结果,轻度暴露的研究通常报告定量测量结果。

结论

需要进行一项大型随机对照试验,报告定量测量结果,以更好地了解高氧对EEG的影响,从而能够开发CNS-OT风险的实时监测方法。