Department of Genetics, Harvard Medical School, Boston, MA 02115.
School of Life Science and Technology, Tongji University, Shanghai 200092, China.
Proc Natl Acad Sci U S A. 2017 May 23;114(21):5467-5472. doi: 10.1073/pnas.1703205114. Epub 2017 May 10.
Detection and manipulation of direct cell-cell contact in complex tissues is a fundamental and challenging problem in many biological studies. Here, we report an optimized Notch-based synthetic receptor (synNQ) useful to study direct cell-cell interactions in With the synNQ system, cells expressing a synthetic receptor, which contains Notch activation machinery and a downstream transcriptional activator, QF, are activated by a synthetic GFP ligand expressed by contacting neighbor cells. To avoid -inhibition, mutually exclusive expression of the synthetic ligand and receptor is achieved using the "flippase-out" system. Expression of the synthetic GFP ligand is controlled by the Gal4/UAS system for easy and broad applications. Using synNQ, we successfully visualized cell-cell interactions within and between most fly tissues, revealing previously undocumented cell-cell contacts. Importantly, in addition to detection of cells in contact with one another, synNQ allows for genetic manipulation in all cells in contact with a targeted cell population, which we demonstrate in the context of cell competition in developing wing disks. Altogether, the synNQ genetic system will enable a broad range of studies of cell contact in developmental biology.
在许多生物学研究中,检测和操纵复杂组织中的直接细胞-细胞接触是一个基本且具有挑战性的问题。在这里,我们报告了一种经过优化的基于 Notch 的合成受体(synNQ),可用于研究 通过 synNQ 系统,表达包含 Notch 激活机制和下游转录激活剂 QF 的合成受体的细胞可被相邻细胞表达的合成 GFP 配体激活。为了避免 -抑制,合成配体和受体的相互排斥表达是通过“翻转酶出”系统实现的。合成 GFP 配体的表达受 Gal4/UAS 系统的控制,便于广泛应用。使用 synNQ,我们成功地可视化了大多数蝇组织内和组织之间的细胞-细胞相互作用,揭示了以前未记录的细胞-细胞接触。重要的是,除了检测相互接触的细胞之外,synNQ 还允许对与靶细胞群接触的所有细胞进行遗传操作,我们在发育中的翅膀盘细胞竞争的背景下证明了这一点。总之,synNQ 遗传系统将能够广泛研究发育生物学中的细胞接触。