A statistical model for multidimensional irreversible electroporation cell death in tissue

被引:62
作者
Golberg, Alex [2 ]
Rubinsky, Boris [1 ]
机构
[1] Univ Calif Berkeley, Grad Program Biophys, Dept Mech Engn, Berkeley, CA 94720 USA
[2] Hebrew Univ Jerusalem, Sch Engn & Comp Sci, Ctr Bioengn Serv Humanity & Soc, IL-91904 Jerusalem, Israel
基金
以色列科学基金会;
关键词
ELECTRIC-FIELD DISTRIBUTION; ABLATION; ELECTROCHEMOTHERAPY; SURVIVAL; KINETICS; BACTERIA; PULSES;
D O I
10.1186/1475-925X-9-13
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Background: Irreversible electroporation (IRE) is a minimally invasive tissue ablation technique which utilizes electric pulses delivered by electrodes to a targeted area of tissue to produce high amplitude electric fields, thus inducing irreversible damage to the cell membrane lipid bilayer. An important application of this technique is for cancer tissue ablation. Mathematical modelling is considered important in IRE treatment planning. In the past, IRE mathematical modelling used a deterministic single value for the amplitude of the electric field required for causing cell death. However, tissue, particularly cancerous tissue, is comprised of a population of different cells of different sizes and orientations, which in conventional IRE are exposed to complex electric fields; therefore, using a deterministic single value is overly simplistic. Methods: We introduce and describe a new methodology for evaluating IRE induced cell death in tissue. Our approach employs a statistical Peleg-Fermi model to correlate probability of cell death in heterogeneous tissue to the parameters of electroporation pulses such as the number of pulses, electric field amplitude and pulse length. For treatment planning, the Peleg-Fermi model is combined with a numerical solution of the multidimensional electric field equation cast in a dimensionless form. This is the first time in which this concept is used for evaluating IRE cell death in multidimensional situations. Results: We illustrate the methodology using data reported in literature for prostate cancer cell death by IRE. We show how to fit this data to a Fermi function in order to calculate the critical statistic parameters. To illustrate the use of the methodology, we simulated 2-D irreversible electroporation protocols and produced 2-D maps of the statistical distribution of cell death in the treated region. These plots were compared to plots produced using a deterministic model of cell death by IRE and the differences were noted. Conclusions: In this work we introduce a new methodology for evaluation of tissue ablation by IRE using statistical models of cell death. We believe that the use of a statistical model rather than a deterministic model for IRE cell death will improve the accuracy of treatment planning for cancer treatment with IRE.
引用
收藏
页数:9
相关论文
共 60 条
[31]   The effect of the histological properties of tumors on transfection efficiency of electrically assisted gene delivery to solid tumors in mice [J].
Mesojednik, S. ;
Pavlin, D. ;
Sersa, G. ;
Coer, A. ;
Kranjc, S. ;
Grosel, A. ;
Tevz, G. ;
Cemazar, M. .
GENE THERAPY, 2007, 14 (17) :1261-1269
[32]   A validated model of in vivo electric field distribution in tissues for electrochemotherapy and for DNA electrotransfer for gene therapy [J].
Miklavcic, D ;
Semrov, D ;
Mekid, H ;
Mir, LM .
BIOCHIMICA ET BIOPHYSICA ACTA-GENERAL SUBJECTS, 2000, 1523 (01) :73-83
[33]   The importance of electric field distribution for effective in vivo electroporation of tissues [J].
Miklavcic, D ;
Beravs, K ;
Semrov, D ;
Cemazar, M ;
Demsar, F ;
Sersa, G .
BIOPHYSICAL JOURNAL, 1998, 74 (05) :2152-2158
[34]  
Miklavcic D., 2004, Bioelectromagnetic Medicine, P637
[35]   Cancer cells ablation with irreversible electroporation [J].
Miller, L ;
Leor, J ;
Rubinsky, B .
TECHNOLOGY IN CANCER RESEARCH & TREATMENT, 2005, 4 (06) :699-705
[36]   Standard operating procedures of the electrochemotherapy:: Instructions for the use of bleomycin or cisplatin administered either systemically or locally and electric pulses delivered by the Cliniporator™ by means of invasive or non-invasive electrodes [J].
Mir, Lluis M. ;
Gehl, Julie ;
Sersa, Gregor ;
Collins, Christopher G. ;
Garbay, Jean-Remi ;
Billard, Valerie ;
Geertsen, Poul F. ;
Rudolf, Z. ;
O'Sullivan, Gerald C. ;
Marty, Michel .
EJC SUPPLEMENTS, 2006, 4 (11) :14-25
[37]  
MIR LM, 1991, CR ACAD SCI III-VIE, V313, P613
[38]  
NEAL RE, 2009, ANN BIOMEDL ENG, P10439
[39]   GENE-TRANSFER INTO MOUSE LYOMA CELLS BY ELECTROPORATION IN HIGH ELECTRIC-FIELDS [J].
NEUMANN, E ;
SCHAEFERRIDDER, M ;
WANG, Y ;
HOFSCHNEIDER, PH .
EMBO JOURNAL, 1982, 1 (07) :841-845
[40]  
Neumann E., 1996, Electrical manipulation of cells, DOI [10.1007/978-1-4613-1159-1_8, DOI 10.1007/978-1-4613-1159-1_8]