Publication | Open Access
Multifunctional and Flexible Neural Probe with Thermally Drawn Fibers for Bidirectional Synaptic Probing in the Brain
27
Citations
27
References
2024
Year
EngineeringNeural RecodingSynaptic TransmissionBiofabricationNeurotransmissionBiomedical EngineeringNeurochipFlexible SensorBidirectional Synaptic ProbingBio-electronic InterfacesBiophysicsMedicineTransient Dopamine ReleaseFlexible Fiber ProbeFlexible Neural ProbeNervous SystemNeural InterfaceNeuroengineeringFlexible ElectronicsNeurophysiologyNeuroanatomyBioelectronicsNeuroscienceCentral Nervous SystemThermally Drawn FibersCarbon Fibers
Synapses in the brain utilize two distinct communication mechanisms: chemical and electrical. For a comprehensive investigation of neural circuitry, neural interfaces should be capable of both monitoring and stimulating these types of physiological interactions. However, previously developed interfaces for neurotransmitter monitoring have been limited in interaction modality due to constraints in device size, fabrication techniques, and the usage of flexible materials. To address this obstacle, we propose a multifunctional and flexible fiber probe fabricated through the microwire codrawing thermal drawing process, which enables the high-density integration of functional components with various materials such as polymers, metals, and carbon fibers. The fiber enables real-time monitoring of transient dopamine release in vivo, real-time stimulation of cell-specific neuronal populations via optogenetic stimulation, single-unit electrophysiology of individual neurons localized to the tip of the neural probe, and chemical stimulation via drug delivery. This fiber will improve the accessibility and functionality of bidirectional interrogation of neurochemical mechanisms in implantable neural probes.
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