Author:
Piantadosi Sean C,Lee Min‐Kyu,Wu Mingzheng,Huynh Huong,Avila Raudel,Pizzano Carina,Zamorano Catalina A,Wu Yixin,Xavier Rachael,Stanslaski Maria,Kang Jiheon,Thai Sarah,Kim Youngdo,Zhang Jinglan,Huang Yonggang,Kozorovitskiy Yevgenia,Good Cameron H,Banks Anthony R,Rogers John A,Bruchas Michael R.
Abstract
AbstractNeurotechnologies and genetic tools for dissecting neural circuit functions have advanced rapidly over the past decade, although the development of complementary pharmacological method-ologies has comparatively lagged. Understanding the precise pharmacological mechanisms of neuroactive compounds is critical for advancing basic neurobiology and neuropharmacology, as well as for developing more effective treatments for neurological and neuropsychiatric disorders. However, integrating modern tools for assessing neural activity in large-scale neural networks with spatially localized drug delivery remains a major challenge. Here, we present a dual microfluidic-photometry platform that enables simultaneous intracranial drug delivery with neural dynamics monitoring in the rodent brain. The integrated platform combines a wireless, battery-free, miniaturized fluidic microsystem with optical probes, allowing for spatially and temporally specific drug delivery while recording activity-dependent fluorescence using genetically encoded calcium indicators (GECIs), neurotransmitter sensors GRABNEand GRABDA, and neuropeptide sensors. We demonstrate the performance this platform for investigating neuropharmacological mechanisms in vivo and characterize its efficacy in probing precise mechanistic actions of neuroactive compounds across several rapidly evolving neuroscience domains.
Publisher
Cold Spring Harbor Laboratory