A Framework for the generation of digital twins of cardiac electrophysiology from clinical 12-leads ECGs

被引:99
作者
Gillette, Karli [1 ,2 ]
Gsell, Matthias A. F. [1 ]
Prassl, Anton J. [1 ]
Karabelas, Elias [1 ,3 ]
Reiter, Ursula [4 ]
Reiter, Gert [4 ,5 ]
Grandits, Thomas [6 ]
Payer, Christian [7 ]
Stern, Darko [1 ,6 ]
Urschler, Martin [7 ]
Bayer, Jason D. [8 ]
Augustin, Christoph M. [1 ]
Neic, Aurel [9 ]
Pock, Thomas [6 ]
Vigmond, Edward J. [9 ]
Plank, Gernot [1 ,2 ]
机构
[1] Med Univ Graz, Gottfried Schatz Res Ctr Biophys, Graz, Austria
[2] BioTechMed Graz, Graz, Austria
[3] Karl Franzens Univ Graz, Inst Math & Nat Sci, Graz, Austria
[4] Med Univ Graz, Dept Radiol, Graz, Austria
[5] Siemens Healthcare Diagnost, Res & Dev, Graz, Austria
[6] Graz Univ Technol, Inst Comp Graph & Vis, Graz, Austria
[7] Univ Auckland, Sch Comp Sci, Auckland, New Zealand
[8] Bordeaux Fdn, LIRYC Electrophysiol & Heart Modeling Inst, Pessac, France
[9] NumeriCor Gmbh, Graz, Austria
基金
奥地利科学基金会;
关键词
Forward ECG modeling; Cardiac digital twins; Parameter identification; Saltelli sampling; Multi-label image segmentation; Ventricular activation and repolarization sequence; REACTION-DIFFUSION MODELS; FIBER ORIENTATION; ACTION-POTENTIALS; TRANSMURAL HETEROGENEITY; CONDUCTION-VELOCITY; T-WAVE; HEART; TISSUE; REPOLARIZATION; PROPAGATION;
D O I
10.1016/j.media.2021.102080
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Cardiac digital twins (Cardiac Digital Twin (CDT)s) of human electrophysiology (Electrophysiology (EP)) are digital replicas of patient hearts derived from clinical data that match like-for-like all available clinical observations. Due to their inherent predictive potential, CDTs show high promise as a complementary modality aiding in clinical decision making and also in the cost-effective, saf e and ethical testing of novel EP device therapies. However, current workflows for both the anatomical and functional twinning phases within CDT generation, referring to the inference of model anatomy and parameters from clinical data, are not sufficiently efficient, robust and accurate for advanced clinical and industrial applications. Our study addresses three primary limitations impeding the routine generation of high-fidelity CDTs by introducing; a comprehensive parameter vector encapsulating all factors relating to the ventricular EP; an abstract reference frame within the model allowing the unattended manipulation of model parameter fields; a novel fast-forward electrocardiogram (Electrocardiogram (ECG)) model for efficient and biophysically-detailed simulation required for parameter inference. A novel workflow for the generation of CDTs is then introduced as an initial proof of concept. Anatomical twinning was performed within a reasonable time compatible with clinical workflows ( < 4h) for 12 subjects from clinically-attained magnetic resonance images. After assessment of the underlying fast forward ECG model against a gold standard bidomain ECG model, functional twinning of optimal parameters according to a clinically-attained 12 lead ECG was then performed using a forward Saltelli sampling approach for a single subject. The achieved results in terms of efficiency and fidelity demonstrate that our workflow is well-suited and viable for generating biophysically-detailed CDTs at scale. (c) 2021 The Author(s). Published by Elsevier B.V. This is an open access article under the CC BY license ( http://creativecommons.org/licenses/by/4.0/ )
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页数:20
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