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通过转核内注射碱性磷酸酶逆转录病毒载体和寡核苷酸文库对晚期耳囊期小鼠内耳进行谱系分析。

Lineage analysis of the late otocyst stage mouse inner ear by transuterine microinjection of a retroviral vector encoding alkaline phosphatase and an oligonucleotide library.

机构信息

Department of Otolaryngology, Oregon Hearing Research Center, Oregon Health & Science University, Portland, Oregon, United States of America.

出版信息

PLoS One. 2013 Jul 25;8(7):e69314. doi: 10.1371/journal.pone.0069314. Print 2013.

Abstract

The mammalian inner ear subserves the special senses of hearing and balance. The auditory and vestibular sensory epithelia consist of mechanically sensitive hair cells and associated supporting cells. Hearing loss and balance dysfunction are most frequently caused by compromise of hair cells and/or their innervating neurons. The development of gene- and cell-based therapeutics will benefit from a thorough understanding of the molecular basis of patterning and cell fate specification in the mammalian inner ear. This includes analyses of cell lineages and cell dispersals across anatomical boundaries (such as sensory versus nonsensory territories). The goal of this study was to conduct retroviral lineage analysis of the embryonic day 11.5(E11.5) mouse otic vesicle. A replication-defective retrovirus encoding human placental alkaline phosphatase (PLAP) and a variable 24-bp oligonucleotide tag was microinjected into the E11.5 mouse otocyst. PLAP-positive cells were microdissected from cryostat sections of the postnatal inner ear and subjected to nested PCR. PLAP-positive cells sharing the same sequence tag were assumed to have arisen from a common progenitor and are clonally related. Thirty five multicellular clones consisting of an average of 3.4 cells per clone were identified in the auditory and vestibular sensory epithelia, ganglia, spiral limbus, and stria vascularis. Vestibular hair cells in the posterior crista were related to one another, their supporting cells, and nonsensory epithelial cells lining the ampulla. In the organ of Corti, outer hair cells were related to a supporting cell type and were tightly clustered. By contrast, spiral ganglion neurons, interdental cells, and Claudius' cells were related to cells of the same type and could be dispersed over hundreds of microns. These data contribute new information about the developmental potential of mammalian otic precursors in vivo.

摘要

哺乳动物内耳服务于听觉和平衡的特殊感觉。听觉和前庭感觉上皮由机械敏感的毛细胞和相关的支持细胞组成。听力损失和平衡功能障碍最常由毛细胞及其支配神经元的损伤引起。基因和细胞治疗的发展将受益于对哺乳动物内耳模式形成和细胞命运特化的分子基础的深入了解。这包括对细胞谱系和跨解剖边界(如感觉与非感觉区域)的细胞扩散的分析。本研究的目的是对胚胎第 11.5 天(E11.5)的小鼠耳泡进行逆转录病毒谱系分析。将编码人胎盘碱性磷酸酶(PLAP)和可变 24 个碱基对寡核苷酸标签的复制缺陷型逆转录病毒微注射到 E11.5 小鼠耳泡中。从出生后内耳的冷冻切片中微分离出 PLAP 阳性细胞,并进行嵌套 PCR。假定具有相同序列标签的 PLAP 阳性细胞来自共同的祖细胞,并且是克隆相关的。在听觉和前庭感觉上皮、神经节、螺旋缘和血管纹中鉴定出 35 个由平均每个克隆 3.4 个细胞组成的多细胞克隆。后嵴前庭毛细胞彼此相关,它们的支持细胞以及围绕壶腹的非感觉上皮细胞也是如此。在柯蒂氏器中,外毛细胞与一种支持细胞类型相关,并且紧密聚集。相比之下,螺旋神经节神经元、间齿细胞和 Claudius 细胞与同一类型的细胞相关,并且可以分散在数百微米的范围内。这些数据为哺乳动物内耳前体在体内的发育潜力提供了新的信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9d6e/3723842/d609147c3580/pone.0069314.g001.jpg

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