Title :
Investigation of Low-Voltage Pulse Parameters on Electroporation and Electrical Lysis Using a Microfluidic Device With Interdigitated Electrodes
Author :
Morshed, Bashir I. ; Shams, Maitham ; Mussivand, Tofy
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Memphis, Memphis, TN, USA
Abstract :
Electroporation (EP) of biological cells leads to the exchange of materials through the permeabilized cell membrane, while electrical lysis (EL) irreversibly disrupts the cell membrane. We report a microfluidic device to study these two phenomena with low-voltage excitation for lab-on-a-chip (LOC) applications. For systematic study of EP, we have employed a quantification metric: flow Index (FI) of EP. Simulation and experimental results with the microfluidic device containing interdigitated, coplanar, integrated electrodes to electroporate, and rapidly lyse biological cells are presented. H&E stained human buccal cells were subjected to various pulse magnitudes, pulsewidths, and number of pulses. Simulations show that an electric field of 25 kV/cm with a 20 V applied potential produced 1.3°C temperature rise for a 5 s of excitation. For a 20 V pulse-excitation with pulse-widths between 0.5 to 5 s, EL was observed, whereas for lower excitations, only EP was observed. FI of EP is found to be a direct function of pulse magnitudes, pulsewidths, and numbers of pulses. To release DNA from nucleus, excitation-pulses of 5 s were required. Quantification of EP would be useful for systematic study of EP toward optimization with various excitation pulses, while low-voltage requirement and high yield of EP and EL are critical to develop LOC for drug delivery and cell-sample preparation, respectively.
Keywords :
DNA; bioMEMS; bioelectric phenomena; biomedical electrodes; biomembranes; cellular biophysics; drug delivery systems; lab-on-a-chip; microfluidics; molecular biophysics; DNA; EP; H&E stained human buccal cells; LOC applications; cell-sample preparation; coplanar electrodes; drug delivery system; electric field; electrical lysis; electroporation; excitation pulses; flow Index; integrated electrodes; interdigitated electrodes; lab-on-a-chip applications; low-voltage excitation; low-voltage pulse parameters; material exchange; microfluidic device; permeabilized cell membrane; pulse magnitudes; rapidly lyse biological cells; Biomembranes; Electric potential; Electrodes; Loading; Microchannel; Plasmas; Electric field; electrical lysis (EL); electroporation (EP); flow index of electroporation; microfluidic device;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2013.2291794