Literature DB >> 17867342

Three-dimensional analysis of inner ear development in human embryos.

Megumi Yasuda1, Shigehito Yamada, Chigako Uwabe, Kohei Shiota, Yoshiko Yasuda.   

Abstract

The development of the inner ear is difficult to understand morphologically, because it proceeds in a complicated manner. Chronological 3-D reconstructed models of the inner ear primordium in human embryos (Carnegie stage 16-22) were created from the histological serial sections in the Kyoto Collection of Human Embryos using 3-D-reconstruction software on a personal computer. The endolymphatic duct begins to extend at stage 18 and continues to extend. The formation of the anterior and posterior semicircular ducts begins at stage 17. The upper lateral region of the otic pouch starts to sink inward at stage 17 and then the epithelia of both sides face and fuse with each other. The fusion disappears and the mesenchyme appears in the primordium, which looks like a hole in the otic pouch at stage 18. The mesenchyme begins to enlarge in the otic pouch at late stage 18, and continues to enlarge until the formation of the loop of semicircular ducts at stage 19. The lateral semicircular duct is formed similarly at stages 18 and 19. In the mesenchyme of the lateral semicircular duct, we found apoptotic death near the epithelium of the otic pouch at late stage 19. The cochlear duct already begins to extend at stage 16. First it extends to the opposite direction of the future cochlear rotation at stage 16 and 17, and then turns to the future rotating direction at stage 18. The cochlear duct initiates rotation at late stage 19. The cochlear duct continues to rotate and forms approximately one winding at stage 22.

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Year:  2007        PMID: 17867342     DOI: 10.1111/j.1447-073X.2007.00176.x

Source DB:  PubMed          Journal:  Anat Sci Int        ISSN: 1447-073X            Impact factor:   1.741


  7 in total

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Authors:  Benjamin Kopecky; Shane Johnson; Heather Schmitz; Peter Santi; Bernd Fritzsch
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2.  Recommendations for Measuring the Electrically Evoked Compound Action Potential in Children With Cochlear Nerve Deficiency.

Authors:  Shuman He; Xiuhua Chao; Ruijie Wang; Jianfen Luo; Lei Xu; Holly F B Teagle; Lisa R Park; Kevin D Brown; Michelle Shannon; Cynthia Warner; Angela Pellittieri; William J Riggs
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3.  The Effect of Interphase Gap on Neural Response of the Electrically Stimulated Cochlear Nerve in Children With Cochlear Nerve Deficiency and Children With Normal-Sized Cochlear Nerves.

Authors:  Shuman He; Lei Xu; Jeffrey Skidmore; Xiuhua Chao; Fuh-Cherng Jeng; Ruijie Wang; Jianfen Luo; Haibo Wang
Journal:  Ear Hear       Date:  2020 Jul/Aug       Impact factor: 3.570

4.  Auditory maturity and hearing performance in inner ear malformations: a histological and electrical stimulation approach.

Authors:  Manuel Sainz; Juan Garcia-Valdecasas; Elena Fernandez; Maria Teresa Pascual; Olga Roda
Journal:  Eur Arch Otorhinolaryngol       Date:  2011-10-12       Impact factor: 2.503

5.  Effect of Increasing Pulse Phase Duration on Neural Responsiveness of the Electrically Stimulated Cochlear Nerve.

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Review 6.  Regeneration of Hair Cells in the Human Vestibular System.

Authors:  Yikang Huang; Huanyu Mao; Yan Chen
Journal:  Front Mol Neurosci       Date:  2022-03-24       Impact factor: 5.639

7.  The Effect of Pulse Polarity on Neural Response of the Electrically Stimulated Cochlear Nerve in Children With Cochlear Nerve Deficiency and Children With Normal-Sized Cochlear Nerves.

Authors:  Lei Xu; Jeffrey Skidmore; Jianfen Luo; Xiuhua Chao; Ruijie Wang; Haibo Wang; Shuman He
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  7 in total

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