Badura Aleksandra, Sun Xiaonan Richard, Giovannucci Andrea, Lynch Laura A, Wang Samuel S-H
Princeton University, Princeton Neuroscience Institute and Department of Molecular Biology, Princeton, New Jersey 08544, United States.
Neurophotonics. 2014 Oct;1(2):025008. doi: 10.1117/1.NPh.1.2.025008.
A major goal of the BRAIN Initiative is the development of technologies to monitor neuronal network activity during active information processing. Toward this goal, genetically encoded calcium indicator proteins have become widely used for reporting activity in preparations ranging from invertebrates to awake mammals. However, slow response times, the narrow sensitivity range of Ca and in some cases, poor signal-to-noise ratio still limit their usefulness. Here, we review recent improvements in the field of neural activity-sensitive probe design with a focus on the GCaMP family of calcium indicator proteins. In this context, we present our newly developed Fast-GCaMPs, which have up to 4-fold accelerated off-responses compared with the next-fastest GCaMP, GCaMP6f. Fast-GCaMPs were designed by destabilizing the association of the hydrophobic pocket of calcium-bound calmodulin with the RS20 binding domain, an intramolecular interaction that protects the green fluorescent protein chromophore. Fast-GCaMP6f-RS06 and Fast-GCaMP6f-RS09 have rapid off-responses in stopped-flow fluorimetry, in neocortical brain slices, and in the intact cerebellum . Fast-GCaMP6f variants should be useful for tracking action potentials closely spaced in time, and for following neural activity in fast-changing compartments, such as axons and dendrites. Finally, we discuss strategies that may allow tracking of a wider range of neuronal firing rates and improve spike detection.
“大脑计划”的一个主要目标是开发在活跃信息处理过程中监测神经网络活动的技术。为实现这一目标,基因编码钙指示剂蛋白已被广泛用于报告从无脊椎动物到清醒哺乳动物等各种标本中的活动。然而,响应时间慢、钙的敏感范围窄以及在某些情况下信噪比差,仍然限制了它们的实用性。在这里,我们回顾了神经活动敏感探针设计领域的最新进展,重点是钙指示剂蛋白的GCaMP家族。在这种背景下,我们展示了我们新开发的快速GCaMP,与下一个最快的GCaMP即GCaMP6f相比,其关闭反应速度加快了4倍。快速GCaMP是通过破坏钙结合钙调蛋白的疏水口袋与RS20结合结构域之间的结合而设计的,这种分子内相互作用保护绿色荧光蛋白发色团。快速GCaMP6f-RS06和快速GCaMP6f-RS09在停流荧光测定法、新皮质脑片和完整小脑中具有快速关闭反应。快速GCaMP6f变体可用于紧密跟踪时间上间隔很近的动作电位,以及跟踪快速变化的区室(如轴突和树突)中的神经活动。最后,我们讨论了可能允许跟踪更广泛的神经元放电率并改善尖峰检测的策略。