Literature DB >> 31422454

A probabilistic atlas of the human inner ear's bony labyrinth enables reliable atlas-based segmentation of the total fluid space.

Valerie Kirsch1,2,3, F Nejatbakhshesfahani4, S-A Ahmadi5,6,7, M Dieterich5,6,7,8, B Ertl-Wagner7,4,8,9.   

Abstract

Intravenous contrast agent-enhanced magnetic resonance imaging of the endolymphatic space (ELS) of the inner ear permits direct, in-vivo, non-invasive visualization of labyrinthine structures and thus verification of endolymphatic hydrops (ELH). However, current volumetric assessment approaches lack normalization. The aim of this study was to develop a probabilistic atlas of the inner ear's bony labyrinth as a first step towards an automated and reproducible volume-based quantification of the ELS. The study included three different datasets: a source dataset (D1) to build the probabilistic atlas and two testing sets (D2, D3). D1 included 24 right-handed patients (12 females; mean age 51.5 ± 3.9 years) and D2 5 patients (3 female; mean age 48.8 ± 5.01 years) with vestibular migraine without ELH or any measurable vestibular deficits. D3 consisted of five patients (one female; mean age 46 ± 5.2 years) suffering from unilateral Menière's disease and ELH. Data processing comprised three steps: preprocessing using an affine and deformable fusion registration pipeline, computation of an atlas for the left and right inner ear using a label-assisted approach, and validation of the atlas based on localizing and segmenting previously unseen ears. The three-dimensional probabilistic atlas of the inner ear's bony labyrinth consisted of the internal acoustic meatus and inner ears (including cochlea, otoliths, and semicircular canals) for both sides separately. The analyses showed a high level of agreement between the atlas-based segmentation and the manual gold standard with an overlap of 89% for the right ear and 86% for the left ear (measured by dice scores). This probabilistic in vivo atlas of the human inner ear's bony labyrinth and thus of the inner ear's total fluid space for both ears represents a necessary step towards a normalized, easily reproducible and reliable volumetric quantification of the perilymphatic and endolymphatic space in view of MR volumetric assessment of ELH. The proposed atlas lays the groundwork for state-of-the-art approaches (e.g., deep learning) and will be provided to the scientific community.

Entities:  

Keywords:  Automatic segmentation; Bony labyrinth; Deformable registration; Endolymphatic hydrops; Endolymphatic space; Inner ear; Probabilistic atlas; Total fluid space

Mesh:

Year:  2019        PMID: 31422454     DOI: 10.1007/s00415-019-09488-6

Source DB:  PubMed          Journal:  J Neurol        ISSN: 0340-5354            Impact factor:   4.849


  64 in total

1.  Automatic measurement of the labyrinth using image registration and a deformable inner ear atlas.

Authors:  Gary E Christensen; Jianchun He; John A Dill; Jay T Rubinstein; Michael W Vannier; Ge Wang
Journal:  Acad Radiol       Date:  2003-09       Impact factor: 3.173

2.  Clinical nystagmography. A detailed study of electro-nystagmography in 341 patients with vertigo.

Authors:  L B JONGKEES; J P MAAS; A J PHILIPSZOON
Journal:  Pract Otorhinolaryngol (Basel)       Date:  1962

3.  Hierarchical and asymmetric temporal sensitivity in human auditory cortices.

Authors:  Anthony Boemio; Stephen Fromm; Allen Braun; David Poeppel
Journal:  Nat Neurosci       Date:  2005-02-20       Impact factor: 24.884

4.  Atlas-based hippocampus segmentation in Alzheimer's disease and mild cognitive impairment.

Authors:  Owen T Carmichael; Howard A Aizenstein; Simon W Davis; James T Becker; Paul M Thompson; Carolyn Cidis Meltzer; Yanxi Liu
Journal:  Neuroimage       Date:  2005-10-01       Impact factor: 6.556

5.  Volume of components of labyrinth: magnetic resonance imaging study.

Authors:  Tuba Karagulle Kendi; Osman Kursat Arikan; Can Koc
Journal:  Otol Neurotol       Date:  2005-07       Impact factor: 2.311

6.  Statistical validation of image segmentation quality based on a spatial overlap index.

Authors:  Kelly H Zou; Simon K Warfield; Aditya Bharatha; Clare M C Tempany; Michael R Kaus; Steven J Haker; William M Wells; Ferenc A Jolesz; Ron Kikinis
Journal:  Acad Radiol       Date:  2004-02       Impact factor: 3.173

7.  Fgf3 is required for dorsal patterning and morphogenesis of the inner ear epithelium.

Authors:  Ekaterina P Hatch; C Albert Noyes; Xiaofen Wang; Tracy J Wright; Suzanne L Mansour
Journal:  Development       Date:  2007-09-12       Impact factor: 6.868

8.  Separate visualization of endolymphatic space, perilymphatic space and bone by a single pulse sequence; 3D-inversion recovery imaging utilizing real reconstruction after intratympanic Gd-DTPA administration at 3 Tesla.

Authors:  Shinji Naganawa; Hiroko Satake; Minako Kawamura; Hiroshi Fukatsu; Michihiko Sone; Tsutomu Nakashima
Journal:  Eur Radiol       Date:  2008-03-07       Impact factor: 5.315

Review 9.  Lateralization of auditory-cortex functions.

Authors:  Mari Tervaniemi; Kenneth Hugdahl
Journal:  Brain Res Brain Res Rev       Date:  2003-12

10.  Dominance for vestibular cortical function in the non-dominant hemisphere.

Authors:  M Dieterich; S Bense; S Lutz; A Drzezga; T Stephan; P Bartenstein; T Brandt
Journal:  Cereb Cortex       Date:  2003-09       Impact factor: 5.357

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  7 in total

1.  IE-Vnet: Deep Learning-Based Segmentation of the Inner Ear's Total Fluid Space.

Authors:  Seyed-Ahmad Ahmadi; Johann Frei; Gerome Vivar; Marianne Dieterich; Valerie Kirsch
Journal:  Front Neurol       Date:  2022-05-11       Impact factor: 4.086

2.  Intravenous Delayed Gadolinium-Enhanced MR Imaging of the Endolymphatic Space: A Methodological Comparative Study.

Authors:  Rainer Boegle; Johannes Gerb; Emilie Kierig; Sandra Becker-Bense; Birgit Ertl-Wagner; Marianne Dieterich; Valerie Kirsch
Journal:  Front Neurol       Date:  2021-04-22       Impact factor: 4.003

3.  The Correlation of a 2D Volume-Referencing Endolymphatic-Hydrops Grading System With Extra-Tympanic Electrocochleography in Patients With Definite Ménière's Disease.

Authors:  Baihui He; Fan Zhang; Hui Zheng; Xiayu Sun; Junmin Chen; Jianyong Chen; Yupeng Liu; Lu Wang; Wei Wang; Shuna Li; Jun Yang; Maoli Duan
Journal:  Front Neurol       Date:  2021-01-20       Impact factor: 4.003

4.  Deep learning for the fully automated segmentation of the inner ear on MRI.

Authors:  Raymond van de Berg; Philippe Lambin; Akshayaa Vaidyanathan; Marly F J A van der Lubbe; Ralph T H Leijenaar; Marc van Hoof; Fadila Zerka; Benjamin Miraglio; Sergey Primakov; Alida A Postma; Tjasse D Bruintjes; Monique A L Bilderbeek; Hammer Sebastiaan; Patrick F M Dammeijer; Vincent van Rompaey; Henry C Woodruff; Wim Vos; Seán Walsh
Journal:  Sci Rep       Date:  2021-02-03       Impact factor: 4.379

5.  IE-Map: a novel in-vivo atlas and template of the human inner ear.

Authors:  Seyed-Ahmad Ahmadi; Theresa Marie Raiser; Ria Maxine Rühl; Virginia Lee Flanagin; Peter Zu Eulenburg
Journal:  Sci Rep       Date:  2021-02-08       Impact factor: 4.379

6.  Fully automated segmentation in temporal bone CT with neural network: a preliminary assessment study.

Authors:  Jiang Wang; Yi Lv; Junchen Wang; Furong Ma; Yali Du; Xin Fan; Menglin Wang; Jia Ke
Journal:  BMC Med Imaging       Date:  2021-11-09       Impact factor: 1.930

7.  Association of Lymphatic Fluid Volume in the Inner Ear of Beagle Dogs with the Susceptibility to Motion Sickness.

Authors:  Mingliang Cai; Lei Cui; Junfeng Xu; Lihua Xu; Chang Ren; Xin Zhou; Zhenglin Jiang
Journal:  J Int Adv Otol       Date:  2022-07       Impact factor: 1.316

  7 in total

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