Uncoiling the Human Cochlea—Physical Scala Tympani Models to Study Pharmacokinetics Inside the Inner Ear
In the field of cochlear implantation, artificial/physical models of the inner ear are often employed to investigate certain phenomena like the forces occurring during implant insertions. Up to now, no such models are available for the analysis of diffusion processes inside the cochlea although drug...
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doaj-ed51e94f0da0466d9f032d462dab42502021-04-21T23:07:57ZengMDPI AGLife2075-17292021-04-011137337310.3390/life11050373Uncoiling the Human Cochlea—Physical Scala Tympani Models to Study Pharmacokinetics Inside the Inner EarDaniel Schurzig0Max Fröhlich1Stefan Raggl2Verena Scheper3Thomas Lenarz4Thomas S. Rau5MED-EL Research Center, 30625 Hannover, GermanyMED-EL Research Center, 30625 Hannover, GermanyMED-EL Medical Electronics, 6020 Innsbruck, AustriaDepartment of Otolaryngology, Hannover Medical School, 30625 Hannover, GermanyDepartment of Otolaryngology, Hannover Medical School, 30625 Hannover, GermanyDepartment of Otolaryngology, Hannover Medical School, 30625 Hannover, GermanyIn the field of cochlear implantation, artificial/physical models of the inner ear are often employed to investigate certain phenomena like the forces occurring during implant insertions. Up to now, no such models are available for the analysis of diffusion processes inside the cochlea although drug delivery is playing an increasingly important role in this field. For easy access of the cochlea along its whole profile, e.g., for sequential sampling in an experimental setting, such a model should ideally be longitudinal/uncoiled. Within this study, a set of 15 micro-CT imaging datasets of human cochleae was used to derive an average representation of the scala tympani. The spiral profile of this model was then uncoiled along different trajectories, showing that these trajectories influence both length and volume of the resulting longitudinal model. A volumetric analysis of the average spiral model was conducted to derive volume-to-length interrelations for the different trajectories, which were then used to generate two tubular, longitudinal scala tympani models with volume and length properties matching the original, spiral profile. These models can be downloaded for free and used for reproducible and comparable simulative and experimental investigations of diffusion processes within the inner ear.https://www.mdpi.com/2075-1729/11/5/373cochlear implantationcochlear modelscochlear volumedrug delivery |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Daniel Schurzig Max Fröhlich Stefan Raggl Verena Scheper Thomas Lenarz Thomas S. Rau |
spellingShingle |
Daniel Schurzig Max Fröhlich Stefan Raggl Verena Scheper Thomas Lenarz Thomas S. Rau Uncoiling the Human Cochlea—Physical Scala Tympani Models to Study Pharmacokinetics Inside the Inner Ear Life cochlear implantation cochlear models cochlear volume drug delivery |
author_facet |
Daniel Schurzig Max Fröhlich Stefan Raggl Verena Scheper Thomas Lenarz Thomas S. Rau |
author_sort |
Daniel Schurzig |
title |
Uncoiling the Human Cochlea—Physical Scala Tympani Models to Study Pharmacokinetics Inside the Inner Ear |
title_short |
Uncoiling the Human Cochlea—Physical Scala Tympani Models to Study Pharmacokinetics Inside the Inner Ear |
title_full |
Uncoiling the Human Cochlea—Physical Scala Tympani Models to Study Pharmacokinetics Inside the Inner Ear |
title_fullStr |
Uncoiling the Human Cochlea—Physical Scala Tympani Models to Study Pharmacokinetics Inside the Inner Ear |
title_full_unstemmed |
Uncoiling the Human Cochlea—Physical Scala Tympani Models to Study Pharmacokinetics Inside the Inner Ear |
title_sort |
uncoiling the human cochlea—physical scala tympani models to study pharmacokinetics inside the inner ear |
publisher |
MDPI AG |
series |
Life |
issn |
2075-1729 |
publishDate |
2021-04-01 |
description |
In the field of cochlear implantation, artificial/physical models of the inner ear are often employed to investigate certain phenomena like the forces occurring during implant insertions. Up to now, no such models are available for the analysis of diffusion processes inside the cochlea although drug delivery is playing an increasingly important role in this field. For easy access of the cochlea along its whole profile, e.g., for sequential sampling in an experimental setting, such a model should ideally be longitudinal/uncoiled. Within this study, a set of 15 micro-CT imaging datasets of human cochleae was used to derive an average representation of the scala tympani. The spiral profile of this model was then uncoiled along different trajectories, showing that these trajectories influence both length and volume of the resulting longitudinal model. A volumetric analysis of the average spiral model was conducted to derive volume-to-length interrelations for the different trajectories, which were then used to generate two tubular, longitudinal scala tympani models with volume and length properties matching the original, spiral profile. These models can be downloaded for free and used for reproducible and comparable simulative and experimental investigations of diffusion processes within the inner ear. |
topic |
cochlear implantation cochlear models cochlear volume drug delivery |
url |
https://www.mdpi.com/2075-1729/11/5/373 |
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