Wireless multi-lateral optofluidic microsystems for real-time programmable optogenetics and photopharmacology.
Yixin WuMingzheng WuAbraham Vázquez-GuardadoJoohee KimXin ZhangRaudel AvilaJin-Tae KimYujun DengYongjoon YuSarah MelzerYun BaiHyoseo YoonLingzi MengYi ZhangHexia GuoLiu HongEvangelos E KanatzidisChad R HaneyEmily Alexandria WatersAnthony R BanksZiying HuFerrona LieLeonardo P ChamorroBernardo L SabatiniYonggang HuangYevgenia KozorovitskiyJohn A RogersPublished in: Nature communications (2022)
In vivo optogenetics and photopharmacology are two techniques for controlling neuronal activity that have immense potential in neuroscience research. Their applications in tether-free groups of animals have been limited in part due to tools availability. Here, we present a wireless, battery-free, programable multilateral optofluidic platform with user-selected modalities for optogenetics, pharmacology and photopharmacology. This system features mechanically compliant microfluidic and electronic interconnects, capabilities for dynamic control over the rates of drug delivery and real-time programmability, simultaneously for up to 256 separate devices in a single cage environment. Our behavioral experiments demonstrate control of motor behaviors in grouped mice through in vivo optogenetics with co-located gene delivery and controlled photolysis of caged glutamate. These optofluidic systems may expand the scope of wireless techniques to study neural processing in animal models.