Monitoring techniques: neuromuscular blockade and depth of anaesthesia

被引:0
|
作者
Verghese, Roshan Simon [1 ]
Raju, Sneha [1 ]
Chapman, Eleanor [2 ]
机构
[1] Yorkshire & Humber Deanery, Leeds, England
[2] Salford Care Org, Northern Care Alliance NHS Fdn Trust, Salford, England
关键词
Bispectral index; depth of anaesthesia; neuromuscular; blockade; TOF; RISK;
D O I
10.1016/j.mpaic.2023.01.009
中图分类号
R614 [麻醉学];
学科分类号
100217 ;
摘要
Monitoring has always played a pivotal role in anaesthesia. It reduces the risks of incidents or accidents by giving us early warning signs prior to their occurrence. Neuromuscular and depth of anaesthesia monitoring, once considered advanced monitoring techniques are now essential elements of our anaesthetic practice. This article de-scribes peripheral nerve stimulators and the importance of different patterns of stimulation to quantify the degree of neuromuscular blockade. The article will also focus on electroencephalogram analysis and stimulated evoked potentials for assessment of depth of anaes-thesia. The physical principles of these methodologies and their role and limitations within the clinical context will be discussed including the current clinical guidance and recommendations for neuromuscular blockade and depth of anaesthesia assessment.
引用
收藏
页码:307 / 312
页数:6
相关论文
共 50 条
  • [31] EEG signal processing in anaesthesia. Use of a neural network technique for monitoring depth of anaesthesia
    Ortolani, O
    Conti, A
    Di Filippo, A
    Adembri, C
    Moraldi, E
    Evangelisti, A
    Maggini, M
    Roberts, SJ
    BRITISH JOURNAL OF ANAESTHESIA, 2002, 88 (05) : 644 - 648
  • [32] Reversal of neuromuscular blockade by sugammadex does not affect EEG derived indices of depth of anesthesia
    Hanna Illman
    Heikki Antila
    Klaus T. Olkkola
    Journal of Clinical Monitoring and Computing, 2010, 24 : 371 - 376
  • [33] REVERSAL OF NEUROMUSCULAR BLOCKADE BY SUGAMMADEX DOES NOT AFFECT EEG DERIVED INDICES OF DEPTH OF ANESTHESIA
    Illman, Hanna
    Antila, Heikki
    Olkkola, Klaus T.
    JOURNAL OF CLINICAL MONITORING AND COMPUTING, 2010, 24 (05) : 371 - 376
  • [34] Fuzzy logic for auditory evoked response monitoring and control of depth of anaesthesia
    Elkfafi, M
    Shieh, JS
    Linkens, DA
    Peacock, JE
    FUZZY SETS AND SYSTEMS, 1998, 100 (1-3) : 29 - 43
  • [35] Intraoperative monitoring of cerebral oximetry and depth of anaesthesia during neuroanesthesia procedures
    Badenes, Rafael
    Garcia-Perez, Maria L.
    Bilotta, Federico
    CURRENT OPINION IN ANESTHESIOLOGY, 2016, 29 (05) : 576 - 581
  • [36] Automatic EEG analysis for monitoring depth of anaesthesia in year 2000.
    Billard, V
    Constant, I
    ANNALES FRANCAISES D ANESTHESIE ET DE REANIMATION, 2001, 20 (09): : 763 - 785
  • [37] Depth of anaesthesia monitors and the latest algorithms
    Li, Tian-Ning
    Li, Yan
    ASIAN PACIFIC JOURNAL OF TROPICAL MEDICINE, 2014, 7 (06) : 429 - 437
  • [38] Comparison of bispectral EEG analysis and auditory evoked potentials for monitoring depth of anaesthesia during propofol anaesthesia
    Gajraj, RJ
    Doi, M
    Mantzaridis, H
    Kenny, GNC
    BRITISH JOURNAL OF ANAESTHESIA, 1999, 82 (05) : 672 - 678
  • [39] A critical care monitoring system for depth of anaesthesia analysis based on entropy analysis and physiological information database
    Wei, Qin
    Li, Yang
    Fan, Shou-Zen
    Liu, Quan
    Abbod, Maysam F.
    Lu, Cheng-Wei
    Lin, Tzu-Yu
    Jen, Kuo-Kuang
    Wu, Shang-Ju
    Shieh, Jiann-Shing
    AUSTRALASIAN PHYSICAL & ENGINEERING SCIENCES IN MEDICINE, 2014, 37 (03) : 591 - 605
  • [40] Measuring the hypnotic depth of anaesthesia based on the EEG signal using combined wavelet transform, eigenvector and normalisation techniques
    Tai Nguyen-Ky
    Wen, Peng
    Li, Yan
    Malan, Mel
    COMPUTERS IN BIOLOGY AND MEDICINE, 2012, 42 (06) : 680 - 691