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在完整的豚鼠耳蜗中成像生物发光的外源性干细胞。

Imaging Bioluminescent Exogenous Stem Cells in the Intact Guinea Pig Cochlea.

机构信息

Auditory Neurobiology Laboratory, Department of Otorhinolaryngology and Head and Neck Surgery, Leiden University Medical Center, Leiden, The Netherlands.

Optical Molecular Imaging, Department of Radiology, Erasmus Medical Center Rotterdam, Rotterdam, The Netherlands.

出版信息

Anat Rec (Hoboken). 2020 Mar;303(3):427-440. doi: 10.1002/ar.24068. Epub 2019 Feb 6.

Abstract

Stem-cell-based therapy may be used to replace damaged or lost neurons in the cochlear nerve of patients suffering from severe-to-profound sensorineural hearing loss. In order to achieve functional recovery in future clinical trials, knowledge about survival of grafted cells and their differentiation into functional neurons is a prerequisite. This calls for non-invasive in vivo visualization of cells and long-term monitoring of their survival and fate after cochlear transplantation. We have investigated if molecular optical imaging enables visualization of exogenous cells in the intact cochlea of guinea pig cadaver heads. Transduced (stem) cells, stably co-expressing fluorescent (copGFP) and bioluminescent (Luc2) reporter molecules, were injected into the internal auditory meatus or directly into the cochlea through the round window. After injection of the cells into the internal auditory meatus, a bright bioluminescent signal was observed in the cavum conchae of the auricle, indicating that light generated by Luc2 is passing through the tympanic membrane and the external auditory meatus. Similar results were obtained after injection of the cells through the round window membrane, either directly into the scala tympani or in Rosenthal's canal within the modiolus of the basal cochlear turn. Imaging of the auditory bulla demonstrated that the bioluminescent signal passes through the tympanic membrane and crevices in the bony wall of the bulla. After opening the auditory bulla, the bioluminescent signal was emanating from the round window. This is the first study demonstrating that bioluminescence imaging enables visualization of luciferase-expressing cells injected into the intact guinea pig cochlea. Anat Rec, 303:427-440, 2020. © 2019 The Authors. The Anatomical Record published by Wiley Periodicals, Inc. on behalf of American Association of Anatomists.

摘要

基于干细胞的疗法可用于治疗患有严重至深度感觉神经性听力损失的患者的耳蜗神经中受损或丢失的神经元。为了在未来的临床试验中实现功能恢复,了解移植细胞的存活及其分化为功能性神经元是前提。这就需要对细胞进行非侵入性的体内可视化,并长期监测其在耳蜗移植后的存活和命运。我们研究了分子光学成像是否能够在豚鼠尸体头的完整耳蜗中可视化外源性细胞。转导(干细胞)细胞稳定地共表达荧光(copGFP)和生物发光(Luc2)报告分子,通过圆窗或直接经圆窗将细胞注入内耳。将细胞注入内耳后,在外耳的鼓室腔中观察到明亮的生物发光信号,表明由 Luc2 产生的光正在穿过鼓膜和外耳道。通过圆窗膜直接将细胞注入鼓阶或耳蜗基底回的 Rosenthal 管也得到了类似的结果。鼓室的成像表明生物发光信号穿过鼓膜和鼓室壁上的骨缝。打开鼓室后,生物发光信号从圆窗发出。这是首次证明生物发光成像能够可视化注入完整豚鼠耳蜗的荧光素酶表达细胞的研究。解剖记录,303:427-440,2020。©2019 作者。解剖记录由 Wiley 期刊出版,代表美国解剖学家协会出版。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aae8/7065152/7cf2de953666/AR-303-427-g001.jpg

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