Title :
Feasibility of a hybrid elastographic-microfluidic device to rapidly process and assess pancreatic cancer biopsies for pathologists
Author :
Das, Ronnie ; Thu-Mai Nguyen ; Lim, Saniel D. ; O´Donnell, Matt ; Wang, Ruikang K. ; Seibel, Eric J.
Author_Institution :
UW Mech. Eng., Seattle, WA, USA
Abstract :
In this study, our collaborative research group explored the possibility of incorporating ultrasound elastography technology with a microfluidic device that is designed to prepare fine needle core biopsies (CBs; L=0.5-2.0 cm, D=0.4-1.2 mm) for pancreatic cancer diagnosis. For the first time, elastographic techniques were employed to measure shear wave velocity in fresh (3.7 m/s) and formalin-fixed (14.7 m/s) pancreatic CBs. Shear wave velocity did not vary whether fixed specimens were free on a microscope slide, or constrained within glass microfluidic channels: 11.5±1.9 v. 11.8±2.1 m/s. 4% agarose inclusions were also embedded within 1% agarose hydrogels to simulate cysts, neoplastic, or necrotic tissue within CBs. Inclusions were successfully visualized and measured using optical coherence elastography. These preliminary experiments demonstrate in a rudimentary fashion that elastographic measurements of pancreatic CBs may be incorporated with our microfluidic device. The rapid mapping of CB stiffness may provide qualitative spatial information for pathologists to determine a more accurate diagnosis for patients.
Keywords :
biological organs; biomedical ultrasonics; cancer; microfluidics; agarose hydrogels; cysts; elastographic microfluidic device; fine needle core biopsies; necrotic tissue; neoplastic tissue; pancreatic cancer biopsy; pathologists; shear wave velocity; ultrasound elastography; velocity 14.7 m/s; velocity 3.7 m/s; Biomedical optical imaging; Cancer; Microfluidics; Optical imaging; Pancreas; Three-dimensional displays;
Conference_Titel :
Healthcare Innovation Conference (HIC), 2014 IEEE
Conference_Location :
Seattle, WA
DOI :
10.1109/HIC.2014.7038927