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Pado a fluorescent protein with proton channel activity can optically monitor membrane potential intracellular pH and map gap junctions

机译:Pado一种具有质子通道活性的荧光蛋白可以光学监测膜电位细胞内pH值并绘制缺口连接

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摘要

An in silico search strategy was developed to identify potential voltage-sensing domains (VSD) for the development of genetically encoded voltage indicators (GEVIs). Using a conserved charge distribution in the S2 α-helix, a single in silico search yielded most voltage-sensing proteins including voltage-gated potassium channels, voltage-gated calcium channels, voltage-gated sodium channels, voltage-gated proton channels, and voltage-sensing phosphatases from organisms ranging from mammals to bacteria and plants. A GEVI utilizing the VSD from a voltage-gated proton channel identified from that search was able to optically report changes in membrane potential. In addition this sensor was capable of manipulating the internal pH while simultaneously reporting that change optically since it maintains the voltage-gated proton channel activity of the VSD. Biophysical characterization of this GEVI, Pado, demonstrated that the voltage-dependent signal was distinct from the pH-dependent signal and was dependent on the movement of the S4 α-helix. Further investigation into the mechanism of the voltage-dependent optical signal revealed that inhibiting the dimerization of the fluorescent protein greatly reduced the optical signal. Dimerization of the FP thereby enabled the movement of the S4 α-helix to mediate a fluorescent response.
机译:开发了计算机搜索策略,以识别潜在的电压感应域(VSD),以开发遗传编码的电压指示器(GEVI)。使用S2α螺旋中的保守电荷分布,单个计算机模拟搜索即可产生大多数电压感应蛋白,包括电压门控钾通道,电压门控钙通道,电压门控钠通道,电压门控质子通道和电压哺乳动物,细菌和植物等生物体产生的敏感磷酸酶。利用从该搜索中识别出的电压门控质子通道利用VSD的GEVI能够光学报告膜电位的变化。另外,该传感器能够控制内部pH值,同时还能通过光学方式报告变化,因为它保持了VSD的电压门控质子通道活性。该GEVI Pado的生物物理特征表明,电压依赖性信号不同于pH依赖性信号,并且依赖于S4α-螺旋的运动。对电压依赖性光信号的机理的进一步研究表明,抑制荧光蛋白的二聚化大大降低了光信号。 FP的二聚化从而使得S4α-螺旋的运动能够介导荧光反应。

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