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Integrating Optogenetic and Pharmacological Approaches to Study Neural Circuit Function: Current Applications and Future Directions

机译:整合光遗传学和药理学方法研究神经回路功能:当前应用和未来方向

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Optogenetic strategies to control genetically distinct populations of neurons with light have been rapidly evolving and widely adopted by the neuroscience community as one of the most important tool sets to study neural circuit function. Although optogenetics have already reshaped neuroscience by allowing for more precise control of circuit function compared with traditional techniques, current limitations of these approaches should be considered. Here, we discuss several strategies that combine optogenetic and contemporary pharmacological techniques to further increase the specificity of neural circuit manipulation. We also discuss recent advances that allow for the selective modulation of cellular function and gene expression with light. In addition, we outline a novel application of optogenetic circuit analysis for causally addressing the role of pathway-specific neural activity in mediating alterations in postsynaptic transcriptional processing in genetically defined neurons. By determining how optogenetic activation of specific neural circuits causally contributes to alterations in gene expression in a high-throughput fashion, novel biologic targets for future pharmacological intervention may be uncovered. Lastly, extending this experimental pipeline to selectively target pharmacotherapies to genetically defined neuronal populations or circuits will not only provide more selective control of neural circuits, but also may lead to the development of neural circuit specific pharmacological therapeutics.
机译:用光控制遗传上不同的神经元种群的光遗传学策略已经迅速发展,并被神经科学界广泛地用作研究神经回路功能的最重要工具之一。尽管与传统技术相比,光遗传学已经通过允许更精确地控制电路功能来重塑神经科学,但应考虑这些方法的当前局限性。在这里,我们讨论了将光遗传学和当代药理学技术相结合以进一步提高神经回路操纵特异性的几种策略。我们还讨论了允许用光选择性调节细胞功能和基因表达的最新进展。此外,我们概述了光遗传学电路分析的一种新应用,用于因果解决途径特定的神经活动在介导遗传定义的神经元中的突触后转录加工中的变化中的作用。通过确定特定神经回路的光遗传学激活如何以高通量方式在因果关系上促进基因表达的改变,可以发现用于未来药理干预的新型生物学靶标。最后,扩展该实验流程以将药物治疗选择性地靶向遗传定义的神经元群体或回路不仅将提供对神经回路的更多选择性控制,而且可能导致神经回路特异性药理疗法的发展。

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