Aerosp Med Hum Perform. 2021 May 1;92(5):326-332. doi: 10.3357/AMHP.5735.2021.
Hypoxia is an ever-present threat in tactical aviation and gained recent attention due to its putative role in physiological episodes. Previous work has demonstrated that hypoxia negatively impacts a variety of sensory, cognitive, and motor systems. In particular, the visual system is one of the earliest systems affected by hypoxia. While the majority of previous studies have relied on self-report and behavioral testing, the use of event-related potentials as a novel tool to monitor responses to low oxygen in humans has recently been investigated. Specifically, ERP components that are evoked passively in response to unattended changes in background sensory stimulation have been explored. Subjects ( 28) completed a continuous visuomotor tracking task while EEG was recorded. During the tracking task, a series of standard color checkerboard patterns were presented in the periphery while occasionally a deviant color checkerboard was presented. The visual mismatch negativity (MMN) component was assessed in response to the deviant compared to the standard stimuli. Subjects completed two sessions in counterbalanced order that only differed by the oxygen concentration breathed (10.6% vs. 20.4%). Results demonstrated a significant reduction in the amplitude of the visual MMN under hypoxic compared to normoxic conditions, showing a 50% reduction in amplitude during hypoxia. Our results suggest that during low-oxygen exposure the ability to detect environmental changes and process sensory information is impaired. The visual MMN may represent an early and reliable predictor of sensory and cognitive deficits during hypoxia exposure, which may be of great use to the aviation community.
缺氧是战术航空中一直存在的威胁,由于其在生理事件中的潜在作用,最近引起了人们的关注。以前的工作表明,缺氧会对各种感觉、认知和运动系统产生负面影响。特别是,视觉系统是最早受到缺氧影响的系统之一。虽然以前的大多数研究都依赖于自我报告和行为测试,但最近已经研究了使用事件相关电位作为监测人类低氧反应的新工具。具体来说,已经研究了被动响应背景感觉刺激变化而诱发的 ERP 成分。受试者(28 人)在记录脑电图的同时完成连续视觉运动跟踪任务。在跟踪任务中,标准彩色棋盘格图案在周边呈现,偶尔会出现一个偏差的彩色棋盘格图案。评估了视觉失匹配负波 (MMN) 成分,以响应与标准刺激相比的偏差刺激。受试者以平衡的方式完成两个会话,仅在呼吸的氧气浓度(10.6%与 20.4%)上有所不同。结果表明,与正常氧合条件相比,缺氧条件下视觉 MMN 的振幅显著降低,在缺氧期间振幅降低了 50%。我们的结果表明,在低氧暴露期间,检测环境变化和处理感觉信息的能力受损。视觉 MMN 可能代表缺氧暴露期间感觉和认知缺陷的早期和可靠预测指标,这可能对航空界有很大的用处。