光遗传学
突触后电位
神经科学
抑制性突触后电位
被盖腹侧区
兴奋性突触后电位
生物
受体
多巴胺
多巴胺能
生物化学
作者
Brenda C. Shields,Hai Yan,Shaun S.X. Lim,Sasha Burwell,Celine Cammarata,Elizabeth Fleming,S. Aryana Yousefzadeh,Victoria Z. Goldenshtein,Elizabeth Kahuno,Purav P. Vagadia,Marie H. Loughran,Zhiquan Lei,Mark E. McDonnell,Miranda L. Scalabrino,Mishek Thapa,Tammy M. Hawley,Greg D. Field,Court Hull,Gary E. Schiltz,Lindsey L. Glickfeld
出处
期刊:Nature Methods
[Springer Nature]
日期:2024-06-14
卷期号:21 (7): 1288-1297
被引量:17
标识
DOI:10.1038/s41592-024-02292-9
摘要
Precision pharmacology aims to manipulate specific cellular interactions within complex tissues. In this pursuit, we introduce DART.2 (drug acutely restricted by tethering), a second-generation cell-specific pharmacology technology. The core advance is optimized cellular specificity-up to 3,000-fold in 15 min-enabling the targeted delivery of even epileptogenic drugs without off-target effects. Additionally, we introduce brain-wide dosing methods as an alternative to local cannulation and tracer reagents for brain-wide dose quantification. We describe four pharmaceuticals-two that antagonize excitatory and inhibitory postsynaptic receptors, and two that allosterically potentiate these receptors. Their versatility is showcased across multiple mouse-brain regions, including cerebellum, striatum, visual cortex and retina. Finally, in the ventral tegmental area, we find that blocking inhibitory inputs to dopamine neurons accelerates locomotion, contrasting with previous optogenetic and pharmacological findings. Beyond enabling the bidirectional perturbation of chemical synapses, these reagents offer intersectional precision-between genetically defined postsynaptic cells and neurotransmitter-defined presynaptic partners.
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