颞骨标本内淋巴积液的三维计算机模型。

Masaaki Teranishi, Tadao Yoshida, Naomi Katayama, Hideo Hayashi, Hironao Otake, Seiichi Nakata, Michihiko Sone, Patricia A Schachern, Michael M Paparella, Tsutomu Nakashima
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引用次数: 22

摘要

结论:淋巴内腔和淋巴周围腔的三维模型使我们能够获得各腔的正常和病理体积,并有助于我们了解内耳各部位和淋巴内积液的三维结构。目的:利用有积水和无积水的颞骨切片制作内耳三维模型。材料与方法:取2耳内淋巴积水和5耳无积水的颞骨每10 ~ 20 μ m厚切片。利用ZedView、3D Doctor、FreeForm作为分析软件,对这些切片进行重建,得到内耳的三维模型。计算了包括半规管在内的耳蜗和前庭器官各部位淋巴内腔(EV)和淋巴外腔(PV)的体积,但未计算淋巴内管和淋巴囊的体积。结果:正常耳(对照组)耳蜗平均EV为5.1微升,PV为41.9微升;前庭平均EV为24.0微升,PV为75.7微升。1耳积水耳蜗EV为17.5 μ l, PV为30.7 μ l,前庭EV为42.5 μ l,前庭PV为33.4 μ l。另一侧耳蜗EV为31.2微升,PV为30.1微升,前庭EV为25.6微升,前庭PV为71.8微升。
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3D computerized model of endolymphatic hydrops from specimens of temporal bone.

Conclusion: The 3D models of endolymphatic and perilymphatic spaces enabled us to obtain normal and pathological volumes of each space and helped us to understand the 3D structure of various parts of the inner ear and of endolymphatic hydrops.

Objective: To make a 3D model of the inner ear using sections of temporal bone with and without hydrops.

Materials and methods: Every 10th 20 microm thick section of temporal bone was collected from two ears with endolymphatic hydrops and five ears without hydrops. Using ZedView, 3D Doctor, FreeForm as analytical software, a 3D model of the inner ear was obtained by reconstruction of these sections. The volumes of the endolymphatic (EV) and perilymphatic spaces (PV) were calculated in each part of the cochlea and vestibular apparatus including the semicircular canals, but the endolymphatic duct and sac were not included.

Results: In normal ears (controls), the average cochlear EV was 5.1 microl and the PV was 41.9 microl, and the average vestibular EV was 24.0 microl and the PV 75.7 microl. In one hydropic ear, the cochlear EV was 17.5 microl, cochlear PV 30.7 microl, vestibular EV 42.5 microl, and vestibular PV 33.4 microl. In the other hydropic ear, cochlear EV was 31.2 microl, cochlear PV 30.1 microl, vestibular EV 25.6 microl, and vestibular PV 71.8 microl.

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