Program in Neuroscience and Behavioral Disorders, Duke-NUS Medical School, Singapore, 138673, Singapore.
Agency for Science Technology and Research, Institute for Molecular and Cell Biology, Singapore, Singapore.
Mol Brain. 2018 Aug 20;11(1):46. doi: 10.1186/s13041-018-0390-7.
The analysis of behavior requires that the underlying neuronal circuits are identified and genetically isolated. In several major model species-most notably Drosophila-neurogeneticists identify and isolate neural circuits with a binary heterologous expression-control system: Gal4-UASG. One limitation of Gal4-UASG is that expression patterns are often too broad to map circuits precisely. To help refine the range of Gal4 lines, we developed an intersectional genetic AND operator. Interoperable with Gal4, the new system's key component is a fusion protein in which the DNA-binding domain of Gal4 has been replaced with a zinc finger domain with a different DNA-binding specificity. In combination with its cognate binding site (UASZ) the zinc-finger-replaced Gal4 ('Zal1') was functional as a standalone transcription factor. Zal1 transgenes also refined Gal4 expression ranges when combined with UASGZ, a hybrid upstream activation sequence. In this way, combining Gal4 and Zal1 drivers captured restricted cell sets compared with single drivers and improved genetic fidelity. This intersectional genetic AND operation presumably derives from the action of a heterodimeric transcription factor: Gal4-Zal1. Configurations of Zal1-UASZ and Zal1-Gal4-UASGZ are versatile tools for defining, refining, and manipulating targeted neural expression patterns with precision.
行为分析需要确定潜在的神经元回路,并将其进行基因分离。在几个主要的模式生物中——最显著的是果蝇——神经遗传学家使用二元异源表达控制系统 Gal4-UASG 来识别和分离神经回路。Gal4-UASG 的一个局限性是表达模式通常过于广泛,无法精确地绘制回路。为了帮助缩小 Gal4 线的范围,我们开发了一个可交叉遗传的 AND 操作。与 Gal4 兼容,这个新系统的关键组件是一种融合蛋白,其中 Gal4 的 DNA 结合域被替换为具有不同 DNA 结合特异性的锌指域。与它的同源结合位点(UASZ)结合,锌指替换的 Gal4('Zal1')可以作为一个独立的转录因子发挥作用。当与 UASGZ(一种混合的上游激活序列)结合时,Zal1 转基因也可以细化 Gal4 的表达范围。通过这种方式,与单个驱动程序相比,Gal4 和 Zal1 驱动程序的组合可以捕获更受限制的细胞集,并提高遗传保真度。这种可交叉遗传的 AND 操作可能源自异源二聚体转录因子的作用:Gal4-Zal1。Zal1-UASZ 和 Zal1-Gal4-UASGZ 的配置是用于精确定义、细化和操纵靶向神经表达模式的多功能工具。