Title :
Needle-Electrode-Based Electromechanical Reshaping of Rabbit Septal Cartilage: A Systematic Evaluation
Author :
Wu, E.C. ; Protsenko, D.E. ; Khan, A.Z. ; Dubin, S. ; Karimi, K. ; Wong, B.J.F.
Author_Institution :
Beckman Laser Inst. & Med. Clinic, Irvine, CA, USA
Abstract :
Electromechanical reshaping (EMR) provides a means of producing shape change in the cartilage by initiating oxidation-reduction reactions in mechanically deformed specimens. This paper evaluates the effect of voltage and application time on specimen shape change using needle electrodes. Rabbit septal cartilage specimens (20 mm × 8 mm × 1 mm, n = 200) were bent 90° in a precision-machined plastic jig. Optimal electrode placement and the range of applied voltages were estimated using numerical modeling of the initial electric field within the cartilage sample. A geometric configuration of three platinum needle electrodes 2 mm apart from each other and inserted 6 mm from the bend axis on opposite ends was selected. One row of electrodes served as the anode and the other as the cathode. Constant voltage was applied at 1, 2, 4, 6, and 8 V for 1, 2, and 4 min, followed by rehydration in phosphate buffered saline. Samples were then removed from the jig and bend angle was measured. In accordance with previous studies, bend angle increased with increasing voltage and application time. Below a voltage threshold of 4 V, 4 min, no clinically significant reshaping was observed. The maximum bend angle obtained was 35.7 ± 1.7° at 8 V, 4 min.
Keywords :
biochemistry; bioelectric phenomena; biological tissues; biomechanics; biomedical electrodes; oxidation; radiation therapy; reduction (chemical); EMR application time effects; applied voltage range; bend angle measurement; bend axis; cartilage shape change; geometric configuration; initial electric field; mechanically deformed specimens; needle electrode based EMR; numerical modeling; optimal electrode placement; oxidation-reduction reaction initiation; phosphate buffered saline; platinum needle electrodes; precision machined plastic jig; rabbit septal cartilage; rehydration; septal cartilage electromechanical reshaping; size 1 mm; size 20 mm; size 8 mm; specimen shape change; time 1 min; time 2 min; time 4 min; voltage 1 V; voltage 2 V; voltage 4 V; voltage 6 V; voltage 8 V; voltage effects; Electric fields; Electrodes; Geometry; Injuries; Needles; Shape; Threshold voltage; Electromechanical cartilage reshaping; needle-electrode geometry; Animals; Electric Stimulation; Electrodes; Equipment Design; Equipment Failure Analysis; Micro-Electrical-Mechanical Systems; Nasal Septum; Organ Culture Techniques; Rabbits; Radiation Dosage;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2011.2157155