Measurement of ventilation and cardiac related impedance changes with electrical impedance tomography

被引:48
|
作者
Grant, Caroline A. [1 ,2 ]
Trang Pham [1 ]
Hough, Judith [1 ]
Riedel, Thomas [1 ,3 ]
Stocker, Christian [1 ]
Schibler, Andreas [1 ]
机构
[1] Mater Childrens Hosp, Paediat Crit Care Res Grp, Paediat Intens Care Unit, Brisbane, Qld 4101, Australia
[2] Queensland Univ Technol, Inst Hlth & Biomed Innovat, Kelvin Grove, Qld 4059, Australia
[3] Univ Bern, Dept Paediat, Inselspital, Univ Childrens Hosp, CH-3010 Bern, Switzerland
来源
CRITICAL CARE | 2011年 / 15卷 / 01期
关键词
REGIONAL LUNG VENTILATION; PULMONARY PERFUSION; BODY POSITION; VOLUME; EIT;
D O I
10.1186/cc9985
中图分类号
R4 [临床医学];
学科分类号
1002 ; 100602 ;
摘要
Introduction: Electrical impedance tomography (EIT) has been shown to be able to distinguish both ventilation and perfusion. With adequate filtering the regional distributions of both ventilation and perfusion and their relationships could be analysed. Several methods of separation have been suggested previously, including breath holding, electrocardiograph (ECG) gating and frequency filtering. Many of these methods require interventions inappropriate in a clinical setting. This study therefore aims to extend a previously reported frequency filtering technique to a spontaneously breathing cohort and assess the regional distributions of ventilation and perfusion and their relationship. Methods: Ten healthy adults were measured during a breath hold and while spontaneously breathing in supine, prone, left and right lateral positions. EIT data were analysed with and without filtering at the respiratory and heart rate. Profiles of ventilation, perfusion and ventilation/perfusion related impedance change were generated and regions of ventilation and pulmonary perfusion were identified and compared. Results: Analysis of the filtration technique demonstrated its ability to separate the ventilation and cardiac related impedance signals without negative impact. It was, therefore, deemed suitable for use in this spontaneously breathing cohort. Regional distributions of ventilation, perfusion and the combined.ZV/.ZQ were calculated along the gravity axis and anatomically in each position. Along the gravity axis, gravity dependence was seen only in the lateral positions in ventilation distribution, with the dependent lung being better ventilated regardless of position. This gravity dependence was not seen in perfusion. When looking anatomically, differences were only apparent in the lateral positions. The lateral position ventilation distributions showed a difference in the left lung, with the right lung maintaining a similar distribution in both lateral positions. This is likely caused by more pronounced anatomical changes in the left lung when changing positions. Conclusions: The modified filtration technique was demonstrated to be effective in separating the ventilation and perfusion signals in spontaneously breathing subjects. Gravity dependence was seen only in ventilation distribution in the left lung in lateral positions, suggesting gravity based shifts in anatomical structures. Gravity dependence was not seen in any perfusion distributions.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] Measurement of ventilation and cardiac related impedance changes with electrical impedance tomography
    Caroline A Grant
    Trang Pham
    Judith Hough
    Thomas Riedel
    Christian Stocker
    Andreas Schibler
    Critical Care, 15
  • [2] Ventilation and cardiac/perfusion related impedance changes of the lung determined by Electrical Impedance Tomography in cystic fibrosis
    Krueger-Ziolek, S.
    Schullcke, B.
    Gong, B.
    Mueller-Lisse, U.
    Moeller, K.
    IFAC PAPERSONLINE, 2017, 50 (01): : 9938 - 9942
  • [3] Electrical impedance tomography: Amplitudes of cardiac related impedance changes in the lung are highly position dependent
    Graf, Michael
    Riedel, Thomas
    PLOS ONE, 2017, 12 (11):
  • [4] ORIGIN OF IMPEDANCE CHANGES RELATED TO LUNG PERFUSION IN ELECTRICAL IMPEDANCE TOMOGRAPHY
    Sondergaard, S.
    Tesselaar, E.
    Samuelsson, A.
    Fagerberg, A.
    Orman, J.
    Viksten, J. L.
    Hallen, K.
    Einarsson, H.
    Sjoberg, F.
    Aneman, A.
    INTENSIVE CARE MEDICINE, 2010, 36 : S95 - S95
  • [5] Cardiac-related impedance changes obtained by electrical impedance tomography: an acceptable parameter for assessment of pulmonary perfusion?
    Hellige, Gerhard
    Hahn, Guenter
    CRITICAL CARE, 2011, 15 (03):
  • [6] Cardiac-related impedance changes obtained by electrical impedance tomography: an acceptable parameter for assessment of pulmonary perfusion?
    Gerhard Hellige
    Guenter Hahn
    Critical Care, 15
  • [7] Recursive estimation of fast impedance changes in electrical impedance tomography and a related problem
    Kaipio, JP
    Somersalo, E
    Karjalainen, PA
    Vauhkonen, M
    COMPUTATIONAL, EXPERIMENTAL, AND NUMERICAL METHODS FOR SOLVING ILL-POSED INVERSE IMAGING PROBLEMS: MEDICAL AND NONMEDICAL APPLICATIONS, 1997, 3171 : 208 - 216
  • [8] Electrical Impedance Tomography detects changes in lung expansion during ventilation
    Fisher, P
    Barron, N
    Mills, GH
    INTENSIVE CARE MEDICINE, 2002, 28 : S142 - S142
  • [9] Dynamic separation of pulmonary and cardiac changes in electrical impedance tomography
    Deibele, J. M.
    Luepschen, H.
    Leonhardt, S.
    PHYSIOLOGICAL MEASUREMENT, 2008, 29 (06) : S1 - S14
  • [10] Protective ventilation using electrical impedance tomography
    Luepschen, H.
    Meier, T.
    Grossherr, M.
    Leibecke, T.
    Karsten, J.
    Leonhardt, S.
    PHYSIOLOGICAL MEASUREMENT, 2007, 28 (07) : S247 - S260