A Procedural Method for Modeling the Purkinje Fibers of the Heart

被引:32
作者
Ijiri, Takashi [1 ]
Ashihara, Takashi [2 ]
Yamaguchi, Takeshi [3 ]
Takayama, Kenshi
Igarashi, Takeo [4 ]
Shimada, Tatsuo [5 ]
Namba, Tsunetoyo [6 ]
Haraguchi, Ryo
Nakazawa, Kazuo
机构
[1] Univ Tokyo, Dept Comp Sci, Bunkyo Ku, Tokyo 1130033, Japan
[2] Shiga Univ Med Sci, Heart Rhythm Ctr, Dept Cardiovasc Med, Shiga, Japan
[3] Oita Univ, Grad Sch Med, Syst Res Course, Oita, Japan
[4] JST ERATO, Tokyo, Japan
[5] Oita Univ, Sch Nursing, Fac Med, Oita, Japan
[6] Himeji Dokkyo Univ, Dept Med Engn, Himeji, Hyogo, Japan
关键词
Purkinje fibers; L-system; heart simulation;
D O I
10.2170/physiolsci.RP003208
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
The Purkinje fibers are located in the ventricular walls of the heart, just beneath the endocardium and conduct excitation from the right and left bundle branches to the ventricular myocardium. Recently, anatomists succeeded in photographing the Purkinje fibers of a sheep, which clearly showed the mesh structure of the Purkinje fibers. In this study, we present a technique for modeling the mesh structure of Purkinje fibers semiautomatically using an extended L-system. The L-system is a formal grammar that defines the growth of a fractal structure by generating rules (or rewriting rules) and an initial structure. It was originally formulated to describe the growth of plant cells, and has subsequently been applied for various purposes in computer graphics such as modeling plants, buildings, streets, and ornaments. For our purpose, we extended the growth process of the L-system as follows: 1) each growing branch keeps away from existing branches as much as possible to create a uniform distribution, and 2) when branches collide, we connect the colliding branches to construct a closed mesh structure. We designed a generating rule based on observations of the photograph of Purkinje fibers and manually specified three terminal positions on a three-dimensional (3D) heart model: those of the right bundle branch, the anterior fascicle, and the left posterior fascicle of the left branch. Then, we grew fibers starting from each of the three positions based on the specified generating rule. We achieved to generate 3D models of Purkinje fibers of which physical appearances closely resembled the real photograph. The generation takes a few seconds. Variations of the Purkinje fibers could be constructed easily by modifying the generating rules and parameters.
引用
收藏
页码:481 / 486
页数:6
相关论文
共 16 条
[1]   Purkinje-muscle reentry as a mechanism of polymorphic ventricular arrhythmias in a 3-dimensional model of the ventricles [J].
Berenfeld, O ;
Jalife, J .
CIRCULATION RESEARCH, 1998, 82 (10) :1063-1077
[2]   Construction of a cardiac conduction system subject to extracellular stimulation [J].
Clements, Clyde J. ;
Vigmond, Edward J. .
2005 27TH ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY, VOLS 1-7, 2005, :4235-4238
[3]  
IGARASHI T, 2001, P 21 JOINT C MED INF
[4]  
IJIRI T, 2006, P SMART GRAPH 2006, P138
[5]   A three-dimensional model for arterial tree representation, generated by constrained constructive optimization [J].
Karch, R ;
Neumann, F ;
Neumann, M ;
Schreiner, W .
COMPUTERS IN BIOLOGY AND MEDICINE, 1999, 29 (01) :19-38
[7]  
MECH R, 1996, ACM SIGGRAPH 96, V96, P397
[8]  
NAKAZAWA K, 2000, CLIN APPL COMPUTATIO
[9]  
NAKAZAWA K, 2003, PHYSIOME CARDIOVASCU
[10]   THE CONSTRUCTION OF AN ANATOMICALLY BASED MODEL OF THE HUMAN VENTRICULAR CONDUCTION SYSTEM [J].
POLLARD, AE ;
BARR, RC .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1990, 37 (12) :1173-1185