Ashley N Slaviero, Nipun Gorantla, Jacob Simkins, Emmanuel L Crespo, Ebenezer C Ikefuama, Maya O Tree, Mansi Prakash, Andreas Björefeldt, Lauren M Barnett, Gerard G Lambert, Diane Lipscombe, Christopher I Moore, Nathan C Shaner, Ute Hochgeschwender
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引用次数: 0
摘要
意义重大:发光体蛋白(LMOs)是一种生物发光-光遗传工具,其荧光素酶与眼动蛋白相融合,可通过光遗传和化学遗传两种途径对神经元进行双模控制。目的:我们研究了荧光素酶亮度、光学视蛋白灵敏度、发射和吸收波长配对以及分子排列对 LMO 功能的相对影响:方法:我们通过在 HEK293 细胞中进行全细胞膜片钳记录来量化 LMOs 的功效,方法是确定耦合效率,即生物发光激活蛋白时 LED 诱导的最大光电流的百分比。我们通过在原代神经元中进行多电极阵列记录确认了主要结果:结果:荧光素酶亮度和光蛋白敏感性对 LMO 的功效影响最大,荧光素酶与光蛋白的 N 端融合优于 C 端和多端融合。荧光素酶发射光谱和蛋白吸收光谱的精确匹配似乎并不那么关键:全细胞膜片钳记录使我们能够量化 LMOs 不同特性对其功能的影响。我们的研究结果表明,将更亮的生物发光源与更灵敏的眼动蛋白耦合将改善 LMO 的功能。由于荧光蛋白的生物发光激活很可能是基于福斯特共振能量转移,因此进一步改进 LMO 的最有效策略将是荧光素酶-荧光蛋白-荧光蛋白融合的分子进化。
Engineering luminopsins with improved coupling efficiencies.
Significance: Luminopsins (LMOs) are bioluminescent-optogenetic tools with a luciferase fused to an opsin that allow bimodal control of neurons by providing both optogenetic and chemogenetic access. Determining which design features contribute to the efficacy of LMOs will be beneficial for further improving LMOs for use in research.
Aim: We investigated the relative impact of luciferase brightness, opsin sensitivity, pairing of emission and absorption wavelength, and arrangement of moieties on the function of LMOs.
Approach: We quantified efficacy of LMOs through whole cell patch clamp recordings in HEK293 cells by determining coupling efficiency, the percentage of maximum LED induced photocurrent achieved with bioluminescent activation of an opsin. We confirmed key results by multielectrode array recordings in primary neurons.
Results: Luciferase brightness and opsin sensitivity had the most impact on the efficacy of LMOs, and N-terminal fusions of luciferases to opsins performed better than C-terminal and multi-terminal fusions. Precise paring of luciferase emission and opsin absorption spectra appeared to be less critical.
Conclusions: Whole cell patch clamp recordings allowed us to quantify the impact of different characteristics of LMOs on their function. Our results suggest that coupling brighter bioluminescent sources to more sensitive opsins will improve LMO function. As bioluminescent activation of opsins is most likely based on Förster resonance energy transfer, the most effective strategy for improving LMOs further will be molecular evolution of luciferase-fluorescent protein-opsin fusions.
期刊介绍:
At the interface of optics and neuroscience, Neurophotonics is a peer-reviewed journal that covers advances in optical technology applicable to study of the brain and their impact on the basic and clinical neuroscience applications.