A numerical model of permeabilized skin with local transport regions

被引:27
作者
Pavselj, Natasa [1 ]
Miklavcic, Damijan [1 ]
机构
[1] Univ Ljubljana, Fac Elect Engn, SI-1000 Ljubljana, Slovenia
关键词
conductivity changes; finite-element method; local transport regions; numerical modeling; skin electroporation;
D O I
10.1109/TBME.2008.919730
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The protective function of skin and hence its low permeability presents a formidable obstacle in therapeutical applications such as transdermal drug delivery and gene delivery in skin. One of the methods to temporarily increase skin permeability is electroporation, creating aqueous pathways across lipid-based structures by means of electric pulses. Also, the application of electric pulses to biological cells causes increased permeability of cell membrane, thus enabling the uptake of larger molecules that otherwise cannot cross the membrane, such as drug molecules or DNA, into the cell. The creation of localized sites of increased molecular transport termed local transport regions (LTRs) can be observed during electroporation, as well as changes in the bulk electric properties of skin layers. We modeled these phenomena with a numerical model and compared the output of the model with our own in vivo experiments and previously published results of skin electroporation and a good agreement was obtained. With the model presented, we used the available data to describe the nonlinear process of skin electropermeabilization from the aspect of tissue conductivity changes and the presence of local transport regions in the permeabilized stratum corneum. The observations derived from various in vivo experiments by different authors were thus confirmed theoretically.
引用
收藏
页码:1927 / 1930
页数:4
相关论文
共 19 条
[1]   Electrical properties of skin at moderate voltages: Contribution of appendageal macropores [J].
Chizmadzhev, YA ;
Indenbom, AV ;
Kuzmin, PI ;
Galichenko, SV ;
Weaver, JC ;
Potts, RO .
BIOPHYSICAL JOURNAL, 1998, 74 (02) :843-856
[2]   Skin electroporation for transdermal and topical delivery [J].
Denet, AR ;
Vanbever, R ;
Préat, V .
ADVANCED DRUG DELIVERY REVIEWS, 2004, 56 (05) :659-674
[3]   Therapeutic perspectives of in vivo cell electropermeabilization [J].
Mir, LM .
BIOELECTROCHEMISTRY, 2001, 53 (01) :1-10
[4]   Fundamentals of electroporative delivery of drugs and genes [J].
Neumann, E ;
Kakorin, S ;
Toensing, K .
BIOELECTROCHEMISTRY AND BIOENERGETICS, 1999, 48 (01) :3-16
[5]   DNA electrotransfer into the skin using a combination of one high- and one low-voltage pulse [J].
Pavselj, N ;
Préat, V .
JOURNAL OF CONTROLLED RELEASE, 2005, 106 (03) :407-415
[6]   The course of tissue permeabilization studied on a mathematical model of a subcutaneous tumor in small animals [J].
Pavselj, N ;
Bregar, Z ;
Cukjati, D ;
Batiuskaite, D ;
Mir, LM ;
Miklavcic, D .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2005, 52 (08) :1373-1381
[7]  
Pavselj N, 2007, ANN BIOMED ENG, V35, P2138, DOI [10.1007/s10439-007-9378-7, 10.1007/S10439-007-9378-7]
[8]   Electroporation of human skin: Simultaneous measurement of changes in the transport of two fluorescent molecules and in the passive electrical properties [J].
Pliquett, U ;
Weaver, JC .
BIOELECTROCHEMISTRY AND BIOENERGETICS, 1996, 39 (01) :1-12
[9]   Local and transient structural changes in stratum corneum at high electric fields: Contribution of Joule heating [J].
Pliquett, U ;
Gallo, S ;
Hui, SW ;
Gusbeth, C ;
Neumann, E .
BIOELECTROCHEMISTRY, 2005, 67 (01) :37-46
[10]   CHANGES IN THE PASSIVE ELECTRICAL-PROPERTIES OF HUMAN STRATUM-CORNEUM DUE TO ELECTROPORATION [J].
PLIQUETT, U ;
LANGER, R ;
WEAVER, JC .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 1995, 1239 (02) :111-121