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Non-invasive biomarkers for detecting progression toward hypovolemic cardiovascular instability in a lower body negative pressure model
by
Paradis, Norman A.
, Elliott, Jonathan Thomas
, Bertsch, Spencer R.
, Sun, Yifei
, Joyner, Michael J.
, Shepherd, John R. A.
, Vaze, Vikrant S.
, Johnson, Christopher P.
, Halter, Ryan J.
, Rashedi, Navid
, Wiggins, Chad C.
, Regimbal, Riley J.
, Murphy, Ethan K.
, Klein, Samuel B.
, Senefeld, Jonathon W.
, Curry, Timothy B.
in
631/443/1338/2729
/ 639/166/985
/ 692/308/575
/ 692/53/2421
/ Biomarkers
/ Blood pressure
/ Cardiovascular System
/ EKG
/ Electrical impedance
/ Electrocardiography
/ Hemorrhage
/ Humanities and Social Sciences
/ Humans
/ Hypovolemia - diagnosis
/ Impedance
/ Instability
/ Learning algorithms
/ Lower Body Negative Pressure
/ Machine learning
/ multidisciplinary
/ Performance evaluation
/ Science
/ Science (multidisciplinary)
/ Spectroscopy
/ Vital Signs
2024
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Non-invasive biomarkers for detecting progression toward hypovolemic cardiovascular instability in a lower body negative pressure model
by
Paradis, Norman A.
, Elliott, Jonathan Thomas
, Bertsch, Spencer R.
, Sun, Yifei
, Joyner, Michael J.
, Shepherd, John R. A.
, Vaze, Vikrant S.
, Johnson, Christopher P.
, Halter, Ryan J.
, Rashedi, Navid
, Wiggins, Chad C.
, Regimbal, Riley J.
, Murphy, Ethan K.
, Klein, Samuel B.
, Senefeld, Jonathon W.
, Curry, Timothy B.
in
631/443/1338/2729
/ 639/166/985
/ 692/308/575
/ 692/53/2421
/ Biomarkers
/ Blood pressure
/ Cardiovascular System
/ EKG
/ Electrical impedance
/ Electrocardiography
/ Hemorrhage
/ Humanities and Social Sciences
/ Humans
/ Hypovolemia - diagnosis
/ Impedance
/ Instability
/ Learning algorithms
/ Lower Body Negative Pressure
/ Machine learning
/ multidisciplinary
/ Performance evaluation
/ Science
/ Science (multidisciplinary)
/ Spectroscopy
/ Vital Signs
2024
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Non-invasive biomarkers for detecting progression toward hypovolemic cardiovascular instability in a lower body negative pressure model
by
Paradis, Norman A.
, Elliott, Jonathan Thomas
, Bertsch, Spencer R.
, Sun, Yifei
, Joyner, Michael J.
, Shepherd, John R. A.
, Vaze, Vikrant S.
, Johnson, Christopher P.
, Halter, Ryan J.
, Rashedi, Navid
, Wiggins, Chad C.
, Regimbal, Riley J.
, Murphy, Ethan K.
, Klein, Samuel B.
, Senefeld, Jonathon W.
, Curry, Timothy B.
in
631/443/1338/2729
/ 639/166/985
/ 692/308/575
/ 692/53/2421
/ Biomarkers
/ Blood pressure
/ Cardiovascular System
/ EKG
/ Electrical impedance
/ Electrocardiography
/ Hemorrhage
/ Humanities and Social Sciences
/ Humans
/ Hypovolemia - diagnosis
/ Impedance
/ Instability
/ Learning algorithms
/ Lower Body Negative Pressure
/ Machine learning
/ multidisciplinary
/ Performance evaluation
/ Science
/ Science (multidisciplinary)
/ Spectroscopy
/ Vital Signs
2024
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Non-invasive biomarkers for detecting progression toward hypovolemic cardiovascular instability in a lower body negative pressure model
Journal Article
Non-invasive biomarkers for detecting progression toward hypovolemic cardiovascular instability in a lower body negative pressure model
2024
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Overview
Occult hemorrhages after trauma can be present insidiously, and if not detected early enough can result in patient death. This study evaluated a hemorrhage model on 18 human subjects, comparing the performance of traditional vital signs to multiple off-the-shelf non-invasive biomarkers. A validated lower body negative pressure (LBNP) model was used to induce progression towards hypovolemic cardiovascular instability. Traditional vital signs included mean arterial pressure (MAP), electrocardiography (ECG), plethysmography (Pleth), and the test systems utilized electrical impedance via commercial electrical impedance tomography (EIT) and multifrequency electrical impedance spectroscopy (EIS) devices. Absolute and relative metrics were used to evaluate the performance in addition to machine learning-based modeling. Relative EIT-based metrics measured on the thorax outperformed vital sign metrics (MAP, ECG, and Pleth) achieving an area-under-the-curve (AUC) of 0.99 (CI 0.95–1.00, 100% sensitivity, 87.5% specificity) at the smallest LBNP change (0–15 mmHg). The best vital sign metric (MAP) at this LBNP change yielded an AUC of 0.6 (CI 0.38–0.79, 100% sensitivity, 25% specificity). Out-of-sample predictive performance from machine learning models were strong, especially when combining signals from multiple technologies simultaneously. EIT, alone or in machine learning-based combination, appears promising as a technology for early detection of progression toward hemodynamic instability.
Publisher
Nature Publishing Group UK,Nature Publishing Group,Nature Portfolio
Subject
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