DocumentCode :
189646
Title :
Force-sensing microneedle for assisted retinal vein cannulation
Author :
Gonenc, Berk ; Taylor, Russell H. ; Iordachita, Iulian ; Gehlbach, Peter ; Handa, James
Author_Institution :
CISST ERC, Johns Hopkins Univ., Baltimore, MD, USA
fYear :
2014
fDate :
2-5 Nov. 2014
Firstpage :
698
Lastpage :
701
Abstract :
Retinal vein cannulation (RVC) is a challenging procedure proposed for drug delivery into the very small retinal veins. The available glass cannulas for this procedure are both hard to visualize and fragile thereby limiting the feasibility of both robot-assisted and manual RVC approaches. In this study, we develop and test a new force-sensing RVC instrument that can be easily integrated with the existing manual and robotic devices. The tool enables (1) the measurement of the forces required for puncturing retinal veins in vivo and (2) an assistive method to inform the operator of the needle piercing the vessel wall. The fiber Bragg grating based sensor can be inserted into the eye through a small (Ø 0.9 mm) opening and provides a quantitative assessment at the tool tip with a resolution smaller than 0.25 mN. Assessment of forces during vessel penetration in the chorioallantoic membranes of chicken embryos have revealed a consistent sharp drop in tool tip force upon vessel puncture that has been used as a signature to provide auditory feedback to the user to stop needle advancement and begin drug delivery.
Keywords :
Bragg gratings; blood vessels; drug delivery systems; eye; fibre optic sensors; force sensors; medical robotics; needles; neurophysiology; assisted retinal vein cannulation; auditory feedback; chicken embryos; chorioallantoic membranes; drug delivery; fiber Bragg grating based sensor; force-sensing RVC instrument; force-sensing microneedle; glass cannulas; manual RVC approaches; retinal vein puncturing; robot-assisted RVC approaches; robotic devices; tool tip; very small retinal veins; vessel penetration; Force; Needles; Retina; Robot sensing systems; Surgery; Veins; fiber Bragg grating; force sensing; vein cannulation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
SENSORS, 2014 IEEE
Conference_Location :
Valencia
Type :
conf
DOI :
10.1109/ICSENS.2014.6985095
Filename :
6985095
Link To Document :
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