Related Experiment Video
Updated: May 20, 2026

Measuring Pressure Volume Loops in the Mouse
Published on: May 2, 2016
Intraoperative stroke volume optimization using stroke volume, arterial pressure, and heart rate: closed-loop
Joseph Rinehart1, Elena Chung, Cecilia Canales
1Department of Anesthesiology & Perioperative Care, University of California Irvine, Orange, CA 92868, USA. jrinehar@uci.edu
Objective:
The authors compared the performance of a group of anesthesia providers to closed-loop (Learning Intravenous Resuscitator [LIR]) management in a simulated hemorrhage scenario using cardiac output monitoring.
Design:
A prospective cohort study.
Setting:
In silico simulation.
Participants:
University hospital anesthesiologists and the LIR closed-loop fluid administration system.
Interventions:
Using a patient simulator, a 90-minute simulated hemorrhage protocol was run, which included a 1,200-mL blood loss over 30 minutes. Twenty practicing anesthesiology providers were asked to manage this scenario by providing fluids and vasopressor medication at their discretion. The simulation program was also run 20 times with the LIR closed-loop algorithm managing fluids and an additional 20 times with no intervention.
Measurements And Main Results:
Simulated patient weight, height, heart rate, mean arterial pressure, and cardiac output (CO) were similar at baseline. The mean stroke volume, the mean arterial pressure, CO, and the final CO were higher in the closed-loop group than in the practitioners group, and the coefficient of variance was lower. The closed-loop group received slightly more fluid (2.1 v 1.9 L, p < 0.05) than the anesthesiologist group.
Conclusions:
Despite the roughly similar volumes of fluid given, the closed-loop maintained more stable hemodynamics than the practitioners primarily because the fluid was given earlier in the protocol and CO optimized before the hemorrhage began, whereas practitioners tended to resuscitate well but only after significant hemodynamic change indicated the need. Overall, these data support the potential usefulness of this closed-loop algorithm in clinical settings in which dynamic predictors are not available or applicable.
Related Concept Videos
Cardiac Output II: Effect of Stroke Volume on Cardiac Output
Preload
Preload refers to the initial elongation of the cardiac myocytes before contraction and is related to the volume of blood filling the heart at the end of diastole, or end-diastolic volume. The...
Regulation of Stroke Volume
Preload refers to the degree of stretch on the heart before it contracts. It's analogous to the stretching of a rubber band; the more it's stretched, the more forcefully it snaps back. This concept is encapsulated in the Frank-Starling law of the...
Cardiac Output and Stroke Volume
In an average resting adult male, the typical cardiac output averages...
Cardiopulmonary Resuscitation II: ACLS Airway Management
Cardiopulmonary Resuscitation IV: Pharmacological Management
