Peters Nathaniel C, Berg Celeste A
Department of Genome Sciences, University of Washington, 3720 15th Ave NE, Seattle, WA, 98195-5065, USA.
Department of Physiology and Biophysics, University of Washington, 1705 NE Pacific St, Seattle, WA, 98195-7290, USA.
Methods Mol Biol. 2016;1457:35-68. doi: 10.1007/978-1-4939-3795-0_4.
The development of the Drosophila egg chamber encompasses a myriad of diverse germline and somatic events, and as such, the egg chamber has become a widely used and influential developmental model. Advantages of this system include physical accessibility, genetic tractability, and amenability to microscopy and live culturing, the last of which is the focus of this chapter. To provide adequate context, we summarize the structure of the Drosophila ovary and egg chamber, the morphogenetic events of oogenesis, the history of egg-chamber live culturing, and many of the important discoveries that this culturing has afforded. Subsequently, we discuss various culturing methods that have facilitated analyses of different stages of egg-chamber development and different types of cells within the egg chamber, and we present an optimized protocol for live culturing Drosophila egg chambers.We designed this protocol for culturing late-stage Drosophila egg chambers and live imaging epithelial tube morphogenesis, but with appropriate modifications, it can be used to culture egg chambers of any stage. The protocol employs a liquid-permeable, weighted "blanket" to gently hold egg chambers against the coverslip in a glass-bottomed culture dish so the egg chambers can be imaged on an inverted microscope. This setup provides a more buffered, stable, culturing environment than previously published methods by using a larger volume of culture media, but the setup is also compatible with small volumes. This chapter should aid researchers in their efforts to culture and live-image Drosophila egg chambers, further augmenting the impressive power of this model system.
果蝇卵室的发育包含了无数种不同的生殖系和体细胞事件,因此,卵室已成为一种广泛使用且具有影响力的发育模型。该系统的优点包括易于操作、遗传易处理性以及适合显微镜观察和活体培养,本章重点关注的是最后一点。为了提供足够的背景信息,我们总结了果蝇卵巢和卵室的结构、卵子发生的形态发生事件、卵室活体培养的历史以及这种培养所带来的许多重要发现。随后,我们讨论了有助于分析卵室发育不同阶段和卵室内不同类型细胞的各种培养方法,并给出了果蝇卵室活体培养的优化方案。我们设计这个方案是用于培养晚期果蝇卵室并对上皮管形态发生进行实时成像,但经过适当修改后,它可用于培养任何阶段的卵室。该方案采用一种液体可渗透的、有重量的“覆盖物”,将卵室轻轻地固定在玻璃底培养皿中的盖玻片上,以便在倒置显微镜下对卵室进行成像。与之前发表的方法相比,这种设置通过使用更大体积的培养基提供了一个更具缓冲性、更稳定的培养环境,但该设置也适用于小体积培养。本章应有助于研究人员培养果蝇卵室并对其进行实时成像,进一步增强这个模型系统令人印象深刻的强大功能。