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Exploration of genetically encoded voltage indicators based on a chimeric voltage sensing domain

机译:基于嵌合电压感应域的遗传编码电压指示器的探索

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摘要

Deciphering how the brain generates cognitive function from patterns of electrical signals is one of the ultimate challenges in neuroscience. To this end, it would be highly desirable to monitor the activities of very large numbers of neurons while an animal engages in complex behaviors. Optical imaging of electrical activity using genetically encoded voltage indicators (GEVIs) has the potential to meet this challenge. Currently prevalent GEVIs are based on the voltage-sensitive fluorescent protein (VSFP) prototypical design or on the voltage-dependent state transitions of microbial opsins. We recently introduced a new VSFP design in which the voltage-sensing domain (VSD) is sandwiched between a fluorescence resonance energy transfer pair of fluorescent proteins (termed VSFP-Butterflies) and also demonstrated a series of chimeric VSD in which portions of the VSD of Ciona intestinalis voltage-sensitive phosphatase are substituted by homologous portions of a voltage-gated potassium channel subunit. These chimeric VSD had faster sensing kinetics than that of the native Ci-VSD. Here, we describe a new set of VSFPs that combine chimeric VSD with the Butterfly structure. We show that these chimeric VSFP-Butterflies can report membrane voltage oscillations of up to 200 Hz in cultured cells and report sensory evoked cortical population responses in living mice. This class of GEVIs may be suitable for imaging of brain rhythms in behaving mammalians.
机译:破解大脑如何根据电信号模式产生认知功能是神经科学的终极挑战之一。为此,非常需要在动物从事复杂行为的同时监视大量神经元的活动。使用遗传编码的电压指示器(GEVI)对电活动进行光学成像有可能解决这一挑战。当前流行的GEVI基于电压敏感荧光蛋白(VSFP)原型设计或微生物视蛋白的电压依赖性状态转变。我们最近推出了一种新的VSFP设计,其中电压感测域(VSD)夹在荧光蛋白的荧光共振能量转移对之间(称为VSFP-蝴蝶),并且还展示了一系列嵌合VSD,其中VSD的一部分肠小肠电压敏感的磷酸酶被电压门控的钾通道亚基的同源部分取代。这些嵌合的VSD具有比天然Ci-VSD更快的传感动力学。在这里,我们描述了一组将嵌合VSD与Butterfly结构结合在一起的VSFP。我们显示这些嵌合VSFP蝴蝶可以报告培养的细胞中高达200 Hz的膜电压振荡,并报告在活的小鼠中感觉诱发皮层的人口反应。这类GEVI可能适合对行为哺乳动物的脑节律进行成像。

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