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Synthesisand Biological Evaluation of Bis-CNB-GABAa Photoactivatable Neurotransmitter with Low Receptor Interferenceand Chemical Two-Photon Uncaging Properties

机译:合成-CNB-GABA的合成和生物学评价具有低受体干扰的光活化神经递质和化学双光子解笼性质

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摘要

Photoactivatable “caged” neurotransmitters allow optical control of neural tissue with high spatial and temporal precision. However, the development of caged versions of the chief vertebrate inhibitory neurotransmitter, γ-amino butyric acid (GABA), has been limited by the propensity of caged GABAs to interact with GABA receptors. We describe herein the synthesis and application of a practically useful doubly caged GABA analog, termed bis-α-carboxy-2-nitrobenzyl-GABA (bis-CNB-GABA). Uncaging of bis-CNB-GABA evokes inward GABAergic currents in cerebellar molecular layer interneurons with rise times of 2 ms, comparable to flash duration. Response amplitudes depend on the square of flash intensity, as expected for a chemical two-photon uncaging effect. Importantly, prior to uncaging, bis-CNB-GABA is inactive at the GABAA receptor, evoking no changes in holding current in voltage-clamped neurons and showing an IC50 of at least 2.5 mM as measured using spontaneous GABAergic synaptic currents. Bis-CNB-GABA is stable in solution, with an estimated half-life of98 days in the light. We expect that bis-CNB-GABA will prove to bean effective tool for high-resolution chemical control of brain circuits.
机译:可光活化的“笼状”神经递质允许以高时空精度对神经组织进行光学控制。但是,笼养型主要脊椎动物抑制性神经递质γ-氨基丁酸(GABA)的开发受到笼养型GABA与GABA受体相互作用的倾向的限制。我们在本文中描述了称为双-α-羧基-2-硝基苄基-GABA(双-CNB-GABA)的实用双笼GABA类似物的合成和应用。 bis-CNB-GABA的解笼引发小脑分子层中神经元的内向GABA能电流,上升时间为2 ms,与闪光持续时间相当。响应幅度取决于闪光强度的平方,如化学双光子解笼效应所预期的那样。重要的是,在解封之前,bis-CNB-GABA对GABAA受体无活性,在电压钳制的神经元中保持电流没有变化,并且使用自发GABA能突触电流测得的IC50至少为2.5 mM。 Bis-CNB-GABA在溶液中稳定,估计半衰期为光照98天。我们预计bis-CNB-GABA将被证明是高分辨率化学控制脑回路的有效工具。

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