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果蝇生殖腺中的抗体染色

Antibody Staining in Drosophila Germaria.

作者信息

Lie-Jensen Anette, Haglund Kaisa

机构信息

Department of Molecular Cell Biology, Institute for Cancer Research, Oslo University Hospital, Montebello, N-0379, Oslo, Norway.

Centre for Cancer Biomedicine, Faculty of Medicine, University of Oslo, Montebello, N-0379, Oslo, Norway.

出版信息

Methods Mol Biol. 2016;1457:19-33. doi: 10.1007/978-1-4939-3795-0_3.

Abstract

Drosophila oogenesis is a powerful model for studying a wide spectrum of cellular and developmental processes in vivo. Oogenesis starts in a specialized structure called the germarium, which harbors the stem cells for both germ and somatic cells. The germarium produces egg chambers, each of which will develop into an egg. Active areas of research in Drosophila germaria include stem cell self-renewal, division, and maintenance, cell cycle control and differentiation, oocyte specification, intercellular communication, and signaling, among others. The solid knowledge base, the genetic tractability of the Drosophila model, as well as the availability and fast development of tools and imaging techniques for oogenesis research ensure that studies in this model will keep being instrumental for novel discoveries within cell and developmental biology also in the future. This chapter focuses on antibody staining in Drosophila germaria and provides a protocol for immunostaining as well as an overview of commonly used antibodies for visualization of different cell types and cellular structures. The protocol is well-suited for subsequent confocal microscopy analyses, and in addition we present key adaptations of the protocol that are useful when performing structured illumination microscopy (SIM) super-resolution imaging.

摘要

果蝇卵子发生是研究体内多种细胞和发育过程的有力模型。卵子发生始于一种称为生殖腺的特殊结构,其中包含生殖细胞和体细胞的干细胞。生殖腺产生卵室,每个卵室都会发育成一个卵子。果蝇生殖腺的活跃研究领域包括干细胞自我更新、分裂和维持、细胞周期控制和分化、卵母细胞特化、细胞间通讯和信号传导等。坚实的知识基础、果蝇模型的遗传易处理性,以及卵子发生研究工具和成像技术的可用性和快速发展,确保了该模型的研究在未来细胞和发育生物学的新发现中仍将发挥重要作用。本章重点介绍果蝇生殖腺中的抗体染色,并提供免疫染色方案以及用于可视化不同细胞类型和细胞结构的常用抗体概述。该方案非常适合后续的共聚焦显微镜分析,此外,我们还介绍了在进行结构光照显微镜(SIM)超分辨率成像时该方案的关键调整。

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