Spiral-Wave Turbulence and Its Control in the Presence of Inhomogeneities in Four Mathematical Models of Cardiac Tissue

被引:65
|
作者
Shajahan, T. K. [1 ,2 ]
Nayak, Alok Ranjan [1 ]
Pandit, Rahul [1 ,3 ]
机构
[1] Indian Inst Sci, Dept Phys, Ctr Condensed Matter Theory, Bangalore 560012, Karnataka, India
[2] IISER, CET Campus, Thiruvananthapuram, Kerala, India
[3] Jawaharlal Nehru Ctr Advanced Sci Res, Bangalore, Karnataka, India
来源
PLOS ONE | 2009年 / 4卷 / 03期
关键词
VENTRICULAR-FIBRILLATION; IONIC CURRENTS; BREAKUP; OBSTACLE; CHAOS; HETEROGENEITY; ELIMINATION; TACHYCARDIA; ATTACHMENT; MOVEMENT;
D O I
10.1371/journal.pone.0004738
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Regular electrical activation waves in cardiac tissue lead to the rhythmic contraction and expansion of the heart that ensures blood supply to the whole body. Irregularities in the propagation of these activation waves can result in cardiac arrhythmias, like ventricular tachycardia (VT) and ventricular fibrillation (VF), which are major causes of death in the industrialised world. Indeed there is growing consensus that spiral or scroll waves of electrical activation in cardiac tissue are associated with VT, whereas, when these waves break to yield spiral- or scroll-wave turbulence, VT develops into life-threatening VF: in the absence of medical intervention, this makes the heart incapable of pumping blood and a patient dies in roughly two-and-a-half minutes after the initiation of VF. Thus studies of spiral- and scroll-wave dynamics in cardiac tissue pose important challenges for in vivo and in vitro experimental studies and for in silico numerical studies of mathematical models for cardiac tissue. A major goal here is to develop low-amplitude defibrillation schemes for the elimination of VT and VF, especially in the presence of inhomogeneities that occur commonly in cardiac tissue. We present a detailed and systematic study of spiral- and scroll-wave turbulence and spatiotemporal chaos in four mathematical models for cardiac tissue, namely, the Panfilov, Luo-Rudy phase 1 (LRI), reduced Priebe-Beuckelmann (RPB) models, and the model of ten Tusscher, Noble, Noble, and Panfilov (TNNP). In particular, we use extensive numerical simulations to elucidate the interaction of spiral and scroll waves in these models with conduction and ionic inhomogeneities; we also examine the suppression of spiral- and scroll-wave turbulence by low-amplitude control pulses. Our central qualitative result is that, in all these models, the dynamics of such spiral waves depends very sensitively on such inhomogeneities. We also study two types of control schemes that have been suggested for the control of spiral turbulence, via low amplitude current pulses, in such mathematical models for cardiac tissue; our investigations here are designed to examine the efficacy of such control schemes in the presence of inhomogeneities. We find that a local pulsing scheme does not suppress spiral turbulence in the presence of inhomogeneities; but a scheme that uses control pulses on a spatially extended mesh is more successful in the elimination of spiral turbulence. We discuss the theoretical and experimental implications of our study that have a direct bearing on defibrillation, the control of life-threatening cardiac arrhythmias such as ventricular fibrillation.
引用
收藏
页数:21
相关论文
共 17 条
  • [1] Spiral-wave dynamics depend sensitively on inhomogeneities in mathematical models of ventricular tissue
    Shajahan, T. K.
    Sinha, Sitabhra
    Pandit, Rahul
    PHYSICAL REVIEW E, 2007, 75 (01):
  • [2] An In Silico Study of Electrophysiological Parameters That Affect the Spiral-Wave Frequency in Mathematical Models for Cardiac Tissue
    Mulimani, Mahesh Kumar
    Zimik, Soling
    Pandit, Rahul
    FRONTIERS IN PHYSICS, 2022, 9
  • [3] Spiral-wave dynamics in ionically realistic mathematical models for human ventricular tissue: the effects of periodic deformation
    Nayak, Alok R.
    Pandit, Rahul
    FRONTIERS IN PHYSIOLOGY, 2014, 5
  • [4] Spiral-Wave Dynamics in a Mathematical Model of Human Ventricular Tissue with Myocytes and Fibroblasts
    Nayak, Alok Ranjan
    Shajahan, T. K.
    Panfilov, A. V.
    Pandit, Rahul
    PLOS ONE, 2013, 8 (09):
  • [5] Spiral-wave dynamics in a mathematical model of human ventricular tissue with myocytes and Purkinje fibers
    Nayak, Alok Ranjan
    Panfilov, A. V.
    Pandit, Rahul
    PHYSICAL REVIEW E, 2017, 95 (02)
  • [6] Delay differential equation-based models of cardiac tissue: Efficient implementation and effects on spiral-wave dynamics
    Gomes, Johnny Moreira
    Lobosco, Marcelo
    dos Santos, Rodrigo Weber
    Cherry, Elizabeth M.
    CHAOS, 2019, 29 (12)
  • [7] In silico thermal control of spiral wave dynamics in excitable cardiac tissue
    Majumder, Rupamanjari
    BIOPHYSICAL REPORTS, 2024, 4 (03):
  • [8] Bepridil Destabilizes Spiral-Wave Reentry and Facilitates Its Early Termination in Cardiac Muscle Through an Increase of Intercellular Coupling
    Takanari, Hiroki
    Kato, Sara
    Takemoto, Yoshio
    Ishiguro, Yuko S.
    Harada, Masahide
    Okuno, Yusuke
    Honjo, Haruo
    Sakuma, Ichiro
    Kamiya, Kaichiro
    Kodama, Itsuo
    CIRCULATION, 2009, 120 (18) : S681 - S681
  • [9] Controlling Spiral Turbulence in Simulated Cardiac Tissue by Low-Amplitude Traveling Wave Stimulation
    Sinha, Sitabhra
    Sridhar, S.
    COMPLEX DYNAMICS IN PHYSIOLOGICAL SYSTEMS: FROM HEART TO BRAIN, 2009, : 69 - 87
  • [10] Deep-learning-assisted detection and termination of spiral and broken-spiral waves in mathematical models for cardiac tissue
    Mulimani, Mahesh Kumar
    Alageshan, Jaya Kumar
    Pandit, Rahul
    PHYSICAL REVIEW RESEARCH, 2020, 2 (02):