Mathematical Modeling, In-Human Evaluation and Analysis of Volume Kinetics and Kidney Function after Burn Injury and Resuscitation
Ghazal ArabiDarrehDor, Ali Tivay, Chris Meador, George C. Kramer,, Jin-Oh Hahn, and Jose Salinas

TL;DR
This study develops and validates a physics-based mathematical model to simulate physiological responses in burn patients, aiding protocol optimization and understanding of burn pathophysiology across diverse demographics.
Contribution
The paper introduces a validated mathematical model that replicates burn patient responses and explores demographic differences, enhancing non-clinical testing and knowledge of burn injury mechanisms.
Findings
Model accurately replicates physiological responses across diverse patient groups.
Increased inflammatory response linked to higher mortality risk.
Demographic factors influence fluid retention and injury outcomes.
Abstract
Existing burn resuscitation protocols exhibit large variability in treatment efficacy. Hence, they must be further optimized based on comprehensive knowledge of burn pathophysiology. A physics-based mathematical model that can replicate physiological responses in diverse burn patients can serve as an attractive basis to perform non-clinical testing of burn resuscitation protocols and to expand knowledge on burn pathophysiology. We intend to develop, optimize, validate, and analyze a mathematical model to replicate physiological responses in burn patients. Using clinical datasets collected from 233 burn patients receiving burn resuscitation, we developed and validated a mathematical model applicable to computer-aided in-human burn resuscitation trial and knowledge expansion. Using the validated mathematical model, we examined possible physiological mechanisms responsible for the…
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Taxonomy
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