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中脑和小脑发育的经典胚胎学研究与现代遗传学分析

Classical embryological studies and modern genetic analysis of midbrain and cerebellum development.

作者信息

Zervas Mark, Blaess Sandra, Joyner Alexandra L

机构信息

Howard Hughes Medical Institute, Department of Cell Biology, New York University School of Medicine, New York, New York 10016, USA.

出版信息

Curr Top Dev Biol. 2005;69:101-38. doi: 10.1016/S0070-2153(05)69005-9.

Abstract

The brain is a remarkably complex anatomical structure that contains a diverse array of subdivisions, cell types, and synaptic connections. It is equally extraordinary in its physiological properties, as it constantly evaluates and integrates external stimuli as well as controls a complicated internal environment. The brain can be divided into three primary broad regions: the forebrain, midbrain (Mb), and hindbrain (Hb), each of which contain further subdivisions. The regions considered in this chapter are the Mb and most-anterior Hb (Mb/aHb), which are derived from the mesencephalon (mes) and rhombomere 1 (r1), respectively. The dorsal Mb consists of the laminated superior colliculus and the globular inferior colliculus (Fig. 1A and B), which modulate visual and auditory stimuli, respectively. The dorsal component of the aHb is the highly foliated cerebellum (Cb), which is primarily attributed to controlling motor skills (Fig. 1A and B). In contrast, the ventral Mb/aHb (Fig. 1B) consists of distinct clusters of neurons that together comprise a network of nuclei and projections-notably, the Mb dopaminergic and Hb serotonergic and Mb/aHb cholinergic neurons (Fig. 1G and H), which modulate a collection of behaviors, including movement, arousal, feeding, wakefulness, and emotion. Historically, the dorsal Mb and Cb have been studied using the chick as a model system because of the ease of performing both cell labeling and tissue transplants in the embryo in ovo; currently DNA electroporation techniques are also used. More recently the mouse has emerged as a powerful genetic system with numerous advantages to study events underpinning Mb/aHb development. There is a diverse array of spontaneous mutants with both Mb- and Cb-related phenotypes. In addition, numerous gene functions have been enumerated in mouse, gene expression is similar across vertebrates, and powerful genetic tools have been developed. Finally, additional insight into Mb/aHb function has been gained from studies of genetic diseases, such as Parkinson's disease, schizophrenia, cancer, and Dandy Walker syndrome, that afflict the Mb/aHb in humans and have genetic counterparts in mouse. Accordingly, this chapter discusses a spectrum of experiments, including classic embryology, in vitro assays, sophisticated genetic methods, and human diseases. We begin with an overview of Mb and aHb anatomy and physiology and mes/r1 gene expression patterns. We then provide a summary of fate-mapping studies that collectively demonstrate the complex cell behaviors that occur while the Mb and aHb primordia are established during embryogenesis and discuss the integration of both anterior-posterior (A-P) and dorsal-ventral (D-V) patterning. Finally, we describe some aspects of postnatal development and some of the insights gained from human diseases.

摘要

大脑是一个极其复杂的解剖结构,包含各种各样的亚区域、细胞类型和突触连接。其生理特性同样非凡,因为它不断评估和整合外部刺激,并控制复杂的内部环境。大脑可分为三个主要的宽泛区域:前脑、中脑(Mb)和后脑(Hb),每个区域又包含进一步的亚区域。本章所讨论的区域是中脑和最前端的后脑(Mb/aHb),它们分别源自中脑(mes)和菱脑节1(r1)。中脑背侧由分层的上丘和球状的下丘组成(图1A和B),分别调节视觉和听觉刺激。最前端后脑的背侧部分是高度褶皱的小脑(Cb),主要负责控制运动技能(图1A和B)。相比之下,中脑/最前端后脑的腹侧部分(图1B)由不同的神经元簇组成,这些神经元共同构成一个核与投射的网络——值得注意的是,中脑多巴胺能神经元、后脑5-羟色胺能神经元以及中脑/最前端后脑胆碱能神经元(图1G和H),它们调节一系列行为,包括运动、觉醒、进食、清醒和情绪。从历史上看,由于易于在鸡胚中进行细胞标记和组织移植,中脑背侧和小脑一直以鸡作为模型系统进行研究;目前也使用DNA电穿孔技术。最近,小鼠已成为一个强大的遗传系统,在研究中脑/最前端后脑发育的相关事件方面具有众多优势。有各种各样具有中脑和小脑相关表型的自发突变体。此外,在小鼠中已经列举了许多基因功能,基因表达在脊椎动物中相似,并且已经开发出强大的遗传工具。最后,通过对帕金森病、精神分裂症、癌症和丹迪 - 沃克综合征等遗传疾病的研究,对中脑/最前端后脑的功能有了更多深入了解,这些疾病在人类中影响中脑/最前端后脑,并且在小鼠中有对应的遗传情况。因此,本章讨论了一系列实验,包括经典胚胎学、体外测定、复杂的遗传方法和人类疾病。我们首先概述中脑和最前端后脑的解剖学和生理学以及中脑/菱脑节1基因表达模式。然后我们总结命运图谱研究,这些研究共同证明了在胚胎发生过程中中脑和最前端后脑原基形成时发生的复杂细胞行为,并讨论前后(A - P)和背腹(D - V)模式的整合。最后,我们描述出生后发育的一些方面以及从人类疾病中获得的一些见解。

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