Literature DB >> 33444268

Patient-specific 3D-printed coronary models based on coronary computed tomography angiography volumes to investigate flow conditions in coronary artery disease.

Kelsey N Sommer1, Lauren M Shepard, Dimitrios Mitsouras, Vijay Iyer, Erin Angel, Michael F Wilson, Frank J Rybicki, Kanako Kunishima Kumamaru, Umesh C Sharma, Abhinay Reddy, Shinichiro Fujimoto, Ciprian N Ionita.   

Abstract

BACKGROUND: 3D printed patient-specific coronary models have the ability to enable repeatable benchtop experiments under controlled blood flow conditions. This approach can be applied to CT-derived patient geometries to emulate coronary flow and related parameters such as Fractional Flow Reserve (FFR).
METHODS: This study uses 3D printing to compare such benchtop FFR results with a non-invasive CT-FFR research software algorithm and catheter based invasive FFR (I-FFR) measurements. Fifty-two patients with a clinical indication for I-FFR underwent a research Coronary CT Angiography (CCTA) prior to catheterization. CT images were used to measure CT-FFR and to generate patient-specific 3D printed models of the aortic root and three main coronary arteries. Each patient-specific model was connected to a programmable pulsatile pump and benchtop FFR (B-FFR) was derived from pressures measured proximal and distal to coronary stenosis using pressure transducers. B-FFR was measured for two coronary outflow rates ('normal', 250 ml min-1; and 'hyperemic', 500 ml min-1) by adjusting the model's distal coronary resistance.
RESULTS: Pearson correlations and ROC AUC were calculated using invasive I-FFR as reference. The Pearson correlation factor of CT-FFR and B-FFR-500 was 0.75 and 0.71, respectively. Areas under the ROCs for CT-FFR and B-FFR-500 were 0.80 (95%CI: 0.70-0.87) and 0.81 (95%CI: 0.64-0.91) respectively.
CONCLUSION: Benchtop flow simulations with 3D printed models provide the capability to measure pressure changes at any location in the model, for ultimately emulating the FFR at several simulated physiological blood flow conditions. CLINICAL TRIAL REGISTRATION: https://clinicaltrials.gov/show/NCT03149042.

Entities:  

Year:  2020        PMID: 33444268     DOI: 10.1088/2057-1976/ab8f6e

Source DB:  PubMed          Journal:  Biomed Phys Eng Express        ISSN: 2057-1976


  3 in total

1.  Evaluation of challenges and limitations of mechanical thrombectomy using 3D printed neurovascular phantoms.

Authors:  Kelsey N Sommer; Mohammad Mahdi Shiraz Bhurwani; Maxim Mokin; Ciprian N Ionita
Journal:  Proc SPIE Int Soc Opt Eng       Date:  2021-02-15

2.  Challenges in hemodynamics assessment in complex neurovascular geometries using computational fluid dynamics and benchtop flow simulation in 3D printed patient specific phantoms.

Authors:  Eric Paccione; Ciprian N Ionita
Journal:  Proc SPIE Int Soc Opt Eng       Date:  2021-02-15

3.  Comparison of fluid dynamics changes due to physical activity in 3D printed patient specific coronary phantoms with the Windkessel equivalent model of coronary flow.

Authors:  Kelsey N Sommer; Mohammad Mahdi Shiraz Bhurwani; Vijay Iyer; Ciprian N Ionita
Journal:  3D Print Med       Date:  2022-04-07
  3 in total

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