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Development and Ex Vivo Validation of Novel Force-Sensing Neochordae for Measuring Chordae Tendineae Tension in the Mitral Valve Apparatus Using Optical Fibers With Embedded Bragg Gratings

Few technologies exist that can provide quantitative data on forces within the mitral valve apparatus. Marker-based strain measurements can be performed, but chordal geometry and restricted optical access are limitations. Foil-based strain sensors have been described and work well, but the sensor fo...

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Autores principales: Paulsen, Michael J., Bae, Jung Hwa, Imbrie-Moore, Annabel M., Wang, Hanjay, Hironaka, Camille E., Farry, Justin M., Lucian, Haley, Thakore, Akshara D., Cutkosky, Mark R., Joseph Woo, Y.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society of Mechanical Engineers 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7104756/
https://www.ncbi.nlm.nih.gov/pubmed/31253992
http://dx.doi.org/10.1115/1.4044142
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author Paulsen, Michael J.
Bae, Jung Hwa
Imbrie-Moore, Annabel M.
Wang, Hanjay
Hironaka, Camille E.
Farry, Justin M.
Lucian, Haley
Thakore, Akshara D.
Cutkosky, Mark R.
Joseph Woo, Y.
author_facet Paulsen, Michael J.
Bae, Jung Hwa
Imbrie-Moore, Annabel M.
Wang, Hanjay
Hironaka, Camille E.
Farry, Justin M.
Lucian, Haley
Thakore, Akshara D.
Cutkosky, Mark R.
Joseph Woo, Y.
author_sort Paulsen, Michael J.
collection PubMed
description Few technologies exist that can provide quantitative data on forces within the mitral valve apparatus. Marker-based strain measurements can be performed, but chordal geometry and restricted optical access are limitations. Foil-based strain sensors have been described and work well, but the sensor footprint limits the number of chordae that can be measured. We instead utilized fiber Bragg grating (FBG) sensors—optical strain gauges made of 125 μm diameter silica fibers—to overcome some limitations of previous methods of measuring chordae tendineae forces. Using FBG sensors, we created a force-sensing neochord (FSN) that mimics the natural shape and movement of native chordae. FBG sensors reflect a specific wavelength of light depending on the spatial period of gratings. When force is applied, the gratings move relative to one another, shifting the wavelength of reflected light. This shift is directly proportional to force applied. The FBG sensors were housed in a protective sheath fashioned from a 0.025 in. flat coil, and attached to the chordae using polytetrafluoroethylene suture. The function of the force-sensing neochordae was validated in a three-dimensional (3D)-printed left heart simulator, which demonstrated that FBG sensors provide highly sensitive force measurements of mitral valve chordae at a temporal resolution of 1000 Hz. As ventricular pressures increased, such as in hypertension, chordae forces also increased. Overall, FBG sensors are a viable, durable, and high-fidelity sensing technology that can be effectively used to measure mitral valve chordae forces and overcome some limitations of other such technologies.
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spelling pubmed-71047562021-01-01 Development and Ex Vivo Validation of Novel Force-Sensing Neochordae for Measuring Chordae Tendineae Tension in the Mitral Valve Apparatus Using Optical Fibers With Embedded Bragg Gratings Paulsen, Michael J. Bae, Jung Hwa Imbrie-Moore, Annabel M. Wang, Hanjay Hironaka, Camille E. Farry, Justin M. Lucian, Haley Thakore, Akshara D. Cutkosky, Mark R. Joseph Woo, Y. J Biomech Eng Technical Briefs Few technologies exist that can provide quantitative data on forces within the mitral valve apparatus. Marker-based strain measurements can be performed, but chordal geometry and restricted optical access are limitations. Foil-based strain sensors have been described and work well, but the sensor footprint limits the number of chordae that can be measured. We instead utilized fiber Bragg grating (FBG) sensors—optical strain gauges made of 125 μm diameter silica fibers—to overcome some limitations of previous methods of measuring chordae tendineae forces. Using FBG sensors, we created a force-sensing neochord (FSN) that mimics the natural shape and movement of native chordae. FBG sensors reflect a specific wavelength of light depending on the spatial period of gratings. When force is applied, the gratings move relative to one another, shifting the wavelength of reflected light. This shift is directly proportional to force applied. The FBG sensors were housed in a protective sheath fashioned from a 0.025 in. flat coil, and attached to the chordae using polytetrafluoroethylene suture. The function of the force-sensing neochordae was validated in a three-dimensional (3D)-printed left heart simulator, which demonstrated that FBG sensors provide highly sensitive force measurements of mitral valve chordae at a temporal resolution of 1000 Hz. As ventricular pressures increased, such as in hypertension, chordae forces also increased. Overall, FBG sensors are a viable, durable, and high-fidelity sensing technology that can be effectively used to measure mitral valve chordae forces and overcome some limitations of other such technologies. American Society of Mechanical Engineers 2020-01-01 2019-10-01 /pmc/articles/PMC7104756/ /pubmed/31253992 http://dx.doi.org/10.1115/1.4044142 Text en http://creativecommons.org/licenses/by-nc/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Technical Briefs
Paulsen, Michael J.
Bae, Jung Hwa
Imbrie-Moore, Annabel M.
Wang, Hanjay
Hironaka, Camille E.
Farry, Justin M.
Lucian, Haley
Thakore, Akshara D.
Cutkosky, Mark R.
Joseph Woo, Y.
Development and Ex Vivo Validation of Novel Force-Sensing Neochordae for Measuring Chordae Tendineae Tension in the Mitral Valve Apparatus Using Optical Fibers With Embedded Bragg Gratings
title Development and Ex Vivo Validation of Novel Force-Sensing Neochordae for Measuring Chordae Tendineae Tension in the Mitral Valve Apparatus Using Optical Fibers With Embedded Bragg Gratings
title_full Development and Ex Vivo Validation of Novel Force-Sensing Neochordae for Measuring Chordae Tendineae Tension in the Mitral Valve Apparatus Using Optical Fibers With Embedded Bragg Gratings
title_fullStr Development and Ex Vivo Validation of Novel Force-Sensing Neochordae for Measuring Chordae Tendineae Tension in the Mitral Valve Apparatus Using Optical Fibers With Embedded Bragg Gratings
title_full_unstemmed Development and Ex Vivo Validation of Novel Force-Sensing Neochordae for Measuring Chordae Tendineae Tension in the Mitral Valve Apparatus Using Optical Fibers With Embedded Bragg Gratings
title_short Development and Ex Vivo Validation of Novel Force-Sensing Neochordae for Measuring Chordae Tendineae Tension in the Mitral Valve Apparatus Using Optical Fibers With Embedded Bragg Gratings
title_sort development and ex vivo validation of novel force-sensing neochordae for measuring chordae tendineae tension in the mitral valve apparatus using optical fibers with embedded bragg gratings
topic Technical Briefs
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7104756/
https://www.ncbi.nlm.nih.gov/pubmed/31253992
http://dx.doi.org/10.1115/1.4044142
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