Division of Biological Sciences, University of Missouri, Columbia, MO, 65211, USA.
Sci Rep. 2018 Jan 17;8(1):901. doi: 10.1038/s41598-017-19065-4.
Extrinsic control of single neurons and neuronal populations is a powerful approach for understanding how neural circuits function. Adding new thermogenetic tools to existing optogenetic and other forms of intervention will increase the complexity of questions that can be addressed. A good candidate for developing new thermogenetic tools is the Drosophila gustatory receptor family, which has been implicated in high-temperature avoidance behavior. We examined the five members of the Gr28b gene cluster for temperature-dependent properties via three approaches: biophysical characterization in Xenopus oocytes, functional calcium imaging in Drosophila motor neurons, and behavioral assays in adult Drosophila. Our results show that Gr28bD expression in Xenopus oocytes produces a non-specific cationic current that is activated by elevated temperatures. This current is non-inactivating and non-voltage dependent. When expressed in Drosophila motor neurons, Gr28bD can be used to change the firing pattern of individual cells in a temperature-dependent fashion. Finally, we show that pan-neuronal or motor neuron expression of Gr28bD can be used to alter fruit fly behavior with elevated temperatures. Together, these results validate the potential of the Gr28bD gene as a founding member of a new class of thermogenetic tools.
对单个神经元和神经元群体进行外在控制是理解神经回路功能的一种有力方法。在现有的光遗传学和其他形式的干预手段基础上添加新的热敏基因工具将增加可解决问题的复杂性。开发新的热敏基因工具的一个很好的候选者是果蝇味觉受体家族,该家族与高温回避行为有关。我们通过三种方法检查了 Gr28b 基因簇的五个成员的温度依赖性特性:在非洲爪蟾卵母细胞中的生物物理特性分析、在果蝇运动神经元中的功能性钙成像和成年果蝇中的行为测定。我们的结果表明,Gr28bD 在非洲爪蟾卵母细胞中的表达产生了一种非特异性的阳离子电流,该电流可被高温激活。这种电流是非失活和非电压依赖性的。当在果蝇运动神经元中表达时,Gr28bD 可用于以温度依赖性的方式改变单个细胞的发射模式。最后,我们表明 Gr28bD 的全神经元或运动神经元表达可用于改变果蝇的行为,使其在温度升高时发生改变。总之,这些结果验证了 Gr28bD 基因作为一类新的热敏基因工具的基础成员的潜力。