Young Paul, Qiu Li, Wang Dongqing, Zhao Shengli, Gross James, Feng Guoping
Department of Neurobiology, Duke University Medical Center, Research Drive, Durham, North Carolina 27710, USA.
Nat Neurosci. 2008 Jun;11(6):721-8. doi: 10.1038/nn.2118. Epub 2008 May 4.
To facilitate a functional analysis of neuronal connectivity in a mammalian nervous system that is tightly packed with billions of cells, we developed a new technique that uses inducible genetic manipulations in fluorescently labeled single neurons in mice. Our technique, single-neuron labeling with inducible Cre-mediated knockout (SLICK), is achieved by coexpressing a drug-inducible form of Cre recombinase and a fluorescent protein in a small subsets of neurons, thus combining the powerful Cre recombinase system for conditional genetic manipulation with fluorescent labeling of single neurons for imaging. Here, we demonstrate efficient inducible genetic manipulation in several types of neurons using SLICK. Furthermore, we applied SLICK to eliminate synaptic transmission in a small subset of neuromuscular junctions. Our results provide evidence for the long-term stability of inactive neuromuscular synapses in adult animals and demonstrate a Cre-loxP compatible system for dissecting gene functions in single identifiable neurons.
为了便于对一个由数十亿个细胞紧密堆积而成的哺乳动物神经系统中的神经元连接进行功能分析,我们开发了一种新技术,该技术利用小鼠中荧光标记的单个神经元中的诱导性基因操作。我们的技术,即诱导型Cre介导的敲除单神经元标记(SLICK),是通过在一小部分神经元中共表达药物诱导型Cre重组酶和一种荧光蛋白来实现的,从而将用于条件性基因操作的强大的Cre重组酶系统与用于成像的单个神经元的荧光标记相结合。在这里,我们展示了使用SLICK在几种类型的神经元中进行高效的诱导性基因操作。此外,我们应用SLICK消除了一小部分神经肌肉接头处的突触传递。我们的结果为成年动物中无活性神经肌肉突触的长期稳定性提供了证据,并展示了一种用于剖析单个可识别神经元中基因功能的Cre-loxP兼容系统。