IABP versus Impella Support in Cardiogenic Shock: “In Silico” Study
Abstract
:1. Introduction
- ✓
- Intra-aortic balloon pump (IABP), consisting of a balloon positioned in the descending thoracic aorta that inflates (diastole) and deflates (systole) leading to an increase in coronary perfusion and a reduction in afterload;
- ✓
- Impella 2.5 [3], a coaxial pump that is retrogradely advanced in the aortic transvalvular position and works by aspirating blood from the left ventricle to expel it directly into the ascending aorta. This pump can deliver a flow of up to 2.5 L per minute;
- ✓
- Extracorporeal membrane oxygenation (ECMO), which can simultaneously provide mechanical support for the heart and oxygenation of the lungs.
2. Materials and Methods
2.1. The Cardiovascular and Heart Numerical Models
2.2. Intra-Aortic Balloon Pump Numerical Model
- the balloon inflates in diastole and the flow is positive;
- the balloon deflates in the following systole and the flow is negative.
- the air outflow from the high-pressure tank connected to the pressure source;
- the air outflow from the lower-pressure tank connected to the vacuum source (Figure 2).
2.3. Impella 2.5 Numerical Model
2.4. Simulation Protocol
3. Results
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Pump Rotational Speed (rpm) | K1 | K2 | K3 | K4 | K5 |
---|---|---|---|---|---|
25,000 | −1.157·10−7 | 1.622·10−5 | −0.0009846 | −0.002613 | 1.102 |
35,000 | −2.065·10−8 | 3.849·10−6 | −0.0004192 | 0.001435 | 1.612 |
38,000 | −1.668·10−8 | 2.976·10−6 | −0.0002915 | 0.002004 | 1.812 |
40,000 | −1.497·10−8 | 3.849·10−6 | −0.000417 | 0.0005987 | 1.898 |
43,000 | −1.084·10−8 | 2.59·10−6 | −0.0002857 | 0.0006554 | 2.071 |
45,000 | −4.085·10−9 | 9.128·10−7 | −0.0001425 | −0.002385 | 2.201 |
47,000 | −3.011·10−9 | 6.504·10−7 | −0.0001116 | −0.0026555 | 2.31 |
50,000 | −1.742·10−9 | 3.015·10−7 | −6.007·10−5 | −0.004055 | 2.446 |
51,000 | −1.845·10−10 | −2.204·10−7 | −1.528·10−5 | −0.000537 | 2.554 |
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De Lazzari, B.; Capoccia, M.; Badagliacca, R.; Bozkurt, S.; De Lazzari, C. IABP versus Impella Support in Cardiogenic Shock: “In Silico” Study. J. Cardiovasc. Dev. Dis. 2023, 10, 140. https://doi.org/10.3390/jcdd10040140
De Lazzari B, Capoccia M, Badagliacca R, Bozkurt S, De Lazzari C. IABP versus Impella Support in Cardiogenic Shock: “In Silico” Study. Journal of Cardiovascular Development and Disease. 2023; 10(4):140. https://doi.org/10.3390/jcdd10040140
Chicago/Turabian StyleDe Lazzari, Beatrice, Massimo Capoccia, Roberto Badagliacca, Selim Bozkurt, and Claudio De Lazzari. 2023. "IABP versus Impella Support in Cardiogenic Shock: “In Silico” Study" Journal of Cardiovascular Development and Disease 10, no. 4: 140. https://doi.org/10.3390/jcdd10040140
APA StyleDe Lazzari, B., Capoccia, M., Badagliacca, R., Bozkurt, S., & De Lazzari, C. (2023). IABP versus Impella Support in Cardiogenic Shock: “In Silico” Study. Journal of Cardiovascular Development and Disease, 10(4), 140. https://doi.org/10.3390/jcdd10040140