IP Library Granted Patent US 10,517,678
Granted Patent B2
US 10,517,678 · App. 15/192,286 · Granted Dec 31, 2019

System and method for diagnosis and assessment of cardiovascular disease by comparing arterial supply capacity to end-organ demand

Inventors: Charles A. Taylor (Menlo Park, CA); Hyun Jin Kim (San Mateo, CA); Sophie Khem (San Francisco, CA); Sethuraman Sankaran (Palo Alto, CA); David Spain (San Mateo, CA); Nan Xiao (Redwood City, CA)
Assignee: HeartFlow, Inc.
A61B34/10A61B5/0044A61B5/02028A61B5/0263A61B6/032A61B6/037A61B6/503A61B6/504A61B6/507A61B6/5217A61B8/065A61B8/12A61B8/5223G16H50/20G16H50/50G16H50/70A61B5/0035A61B5/0042A61B5/02007A61B5/7275A61B8/0883A61B8/0891A61B2034/105A61B2576/023
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Quick Facts
Patent No.
US 10,517,678
App. No.
15/192,286
Granted
Dec 31, 2019
Kind
B2
Abstract

Systems and methods are disclosed for to determining a blood supply and blood demand. One method includes receiving a patient-specific model of vessel geometry of at least a portion of a coronary artery, wherein the model is based on patient-specific image data of at least a portion of a patient's heart having myocardium; determining a coronary blood supply based on the patient-specific model; determining at least a portion of the myocardium corresponding to the coronary artery; determining a myocardial blood demand based on either a mass or a volume of the portion of the myocardium, or based on perfusion imaging of the portion of the myocardium; and determining a relationship between the coronary blood supply and the myocardial blood demand.

Claims (50)

1. A computer-implemented method of analyzing a relationship between a blood supply and a blood demand of a patient, the method comprising:

receiving a patient-specific vascular model of vessel geometry of at least a portion of a coronary artery of the patient's heart, wherein the patient-specific vascular model is generated from patient-specific image data of at least a portion of the patient's heart;

modeling a volume-based supply capacity of the patient's coronary artery based on the patient-specific vascular model, the volume-based supply capacity being the volume of the patient's coronary artery;

determining a mass or a volume of at least a portion of a myocardium receiving blood from the patient's coronary artery;

determining an amount of blood demanded by the determined mass or volume of the portion of the myocardium;

comparing the modeled volume-based supply capacity of the patient's coronary artery to the determined amount of blood demanded by the determined mass or volume;

generating a patient-specific simulation of blood flow through the patient-specific vascular model of at least the portion of the patient's coronary artery;

updating the patient-specific simulation of blood flow by modifying a parameter of the patient-specific simulation of blood flow based on the comparison; and

evaluating the patient based on the updated patient-specific simulation of blood flow.

2. The method of claim 1 , wherein evaluating the patient includes determining a disease state of the patient based upon the comparison between an amount of blood supplied and the amount of blood demanded.

3. The method of claim 1 , wherein the comparison includes one or more of:

determining a difference between the modeled volume-based supply capacity of the patient's coronary artery and the determined amount of blood demanded, and

comparing the modeled volume-based supply capacity of the patient's coronary artery to a reference value, or comparing the determined amount of blood demanded to a reference value.

4. The method of claim 3 , wherein the comparison includes comparing the modeled volume-based supply capacity of the patient's coronary artery to a reference value determined from a population of patients, or comparing the determined amount of blood demanded to a reference value determined from a population of patients.

5. The method of claim 1 , further comprising:

receiving a second patient-specific vascular model representing coronary arterial vasculature downstream from the portion of the patient's coronary artery; and

determining an amount of blood supplied by the patient's coronary artery, based on the patient-specific vascular model and the second patient-specific vascular model.

6. The method of claim 5 , wherein the second patient-specific vascular model is generated based upon boundaries of a tissue associated with at least a portion of the patient's coronary artery.

7. The method of claim 1 , wherein the mass of the portion of the myocardium is calculated by measuring or computing a tissue density of the portion of the myocardium, and multiplying the tissue density by the volume of the portion of the myocardium.

8. The method of claim 1 , wherein the patient-specific vascular model is generated by modifying a generic model of vessel geometry.

9. A system for image processing to analyzing a relationship between a blood supply and a blood demand, the system comprising:

a data storage device storing instructions for determining the blood supply and the blood demand; and

a processor configured to execute the instructions to perform a method including:

receiving a patient-specific vascular model of vessel geometry of at least a portion of a coronary artery of the patient's heart, wherein the patient-specific vascular model is generated from patient-specific image data of at least a portion of the patient's heart;

modeling a volume-based supply capacity of the patient's coronary artery based on the patient-specific vascular model, the volume-based supply capacity being the volume of the patient's coronary artery;

determining a mass or a volume of at least a portion of a myocardium receiving blood from the patient's coronary artery;

determining an amount of blood demanded by the determined mass or volume of the portion of the myocardium;

comparing the modeled volume-based supply capacity of the patient's coronary artery to the determined amount of blood demanded by the determined mass or volume;

generating a patient-specific simulation of blood flow through the patient-specific vascular model of at least the portion of the patient's coronary artery;

updating the patient-specific simulation of blood flow by modifying a parameter of the patient-specific simulation of blood flow based on the comparison; and

evaluating the patient based on the patient-specific simulation of blood flow.

10. The system of claim 9 , wherein evaluating the patient includes determining a disease state of the patient.

11. The system of claim 9 , wherein the comparison includes one or more of:

determining a difference between the modeled volume-based supply capacity of the patient's coronary artery and the determined amount of blood demanded, and

comparing the modeled volume-based supply capacity of the patient's coronary artery to a reference value, or comparing the determined amount of blood demanded to a reference value.

12. The system of claim 11 , wherein the comparison includes comparing the modeled volume-based supply capacity of the patient's coronary artery to a reference value determined from a population of patients, or comparing the determined amount of blood demanded to a reference value determined from a population of patients.

13. The system of claim 9 , wherein the system is further configured for:

receiving a second patient-specific vascular model representing coronary arterial vasculature downstream from the portion of the patient's coronary artery; and

determining an amount of blood supplied by the patient's coronary artery, based on the patient-specific vascular model and the second patient-specific vascular model.

14. The system of claim 13 , wherein the second patient-specific vascular model is generated based upon boundaries of a tissue associated with at least a portion of the patient's coronary artery.

15. The system of claim 9 , wherein the mass of the portion of the myocardium is calculated by measuring or computing a tissue density of the portion of the myocardium, and multiplying the tissue density by the volume of the portion of the myocardium.

16. A non-transitory computer readable medium for use on a computer system containing computer-executable programming instructions for performing a method of analyzing a relationship between a blood supply and a blood demand, the method comprising:

receiving a patient-specific vascular model of vessel geometry of at least a portion of a coronary artery of the patient's heart, wherein the patient-specific vascular model is generated from patient-specific image data of at least a portion of the patient's heart;

modeling a volume-based supply capacity of the patient's coronary artery based on the patient-specific vascular model, the volume-based supply capacity being the volume of the patient's coronary artery;

determining a mass or a volume of at least a portion of a myocardium receiving blood from the patient's coronary artery;

determining an amount of blood demanded by the determined mass or volume of the portion of the myocardium;

comparing the modeled volume-based supply capacity of the patient's coronary artery to the determined amount of blood demanded by the determined mass or volume;

generating a patient-specific simulation of blood flow through the patient-specific vascular model of at least the portion of the patient's coronary artery;

updating the patient-specific simulation of blood flow by modifying a parameter of the patient-specific simulation of blood flow based on the comparison; and

evaluating the patient based on the patient-specific simulation of blood flow.

Assignments (5)
RELEASE OF SECURITY INTEREST Recorded Sep 11, 2025
From: HAYFIN SERVICES LLP
To: HEARTFLOW, INC.
Reel/Frame 072876/0775 →
RELEASE OF SECURITY INTEREST Recorded Jun 21, 2024
From: HAYFIN SERVICES LLP
To: HEARTFLOW, INC.
Reel/Frame 067801/0032 →
SECURITY INTEREST Recorded Jun 18, 2024
From: HEARTFLOW, INC.
To: HAYFIN SERVICES LLP
Reel/Frame 067775/0966 →
SECURITY INTEREST Recorded Jan 20, 2021
From: HEARTFLOW, INC.
To: HAYFIN SERVICES LLP
Reel/Frame 055037/0890 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 16, 2017
From: TAYLOR, CHARLES A.; KIM, HYUN JIN; KHEM, SOPHIE; SANKARAN, SETHURAMAN; SPAIN, DAVID; XIAO, NAN
To: HEARTFLOW, INC.
Reel/Frame 041593/0721 →
Continuity (2)
Provisional Application 62236707 · Oct 2, 2015
Related Publication 20170095292A1 · Apr 6, 2017
Cited By (2)
US 12,383,336 US 12,670,998