Investigating Neurochemistry, Connectivity, and Audio Stimuli Relationship Among Surface and Depth Cortical Neurons
Vahidi, N. W.; kassegne, S.
Show abstract
In this study, we investigate the simultaneous recording of electrical and chemical signals within both the cortical surface and deep regions of the brain. This is made possible through the utilization of an innovative carbon based three-dimensional multi-functional neural probe. Our primary objectives are to explore in-depth the mechanisms of signal propagation among neuronal cells particularly within a three-dimensional framework and demonstrate initial progress in elucidating the interplay between electrical and chemical signals and their responsiveness to external stimuli variability. ApproachOur innovative probe integrates epi-cortical (surface) and intra-cortical (depth) microelectrode arrays utilizing a two-dimensional thin-film microfabrication technique. This probe referred to as "epi-intra" has origami-like configuration and transforms from a two-dimensional structure into a three-dimensional configuration during implantation. Neural electrical signal recordings were conducted in the auditory region of an anesthetized European starling songbirds, whereas neurochemistry (dopamine) recordings were done simultaneously at Area X, with the animal subjected to conspecific songs as auditory stimuli. Main Results(i) This study introduces surface and depth neural recording in response to complex stimuli, such as bird songs using a three-dimensional probe with surface and depth microelectrodes. (ii) employing a transfer entropy model, a comprehensive connectivity map is established for neurons which are located on the surface of the brain, at a depth, or a combination of both, (iii) significantly, distinct spiking behavior in certain NCM (caudomedial nidopallium) neurons is observed during a specific phase of the stimulation coinciding with a peak in dopamine levels, which occurs with few milliseconds delay. This finding strongly indicates stimulus selectivity among specific neurons. SignificanceThese findings demonstrate the creation of a connectivity map for neurons, whether located on the surface, at a depth, or a combination of both, derived from neuron recordings in response to a complex stimulus. Importantly, our study reveals that the strength of correlation and connectivity among neurons is most pronounced within surface neurons, followed by depth neurons, and comparatively weaker between surface and depth neurons. These discoveries hold significant promise in various applications, including the promise of large-scale neural electrical and electrochemical circuit mapping. Furthermore, they offer potential technology and therapeutic avenues for assisting, augmenting, or repairing human cognitive or sensory-motor functions.
Matching journals
The top 1 journal accounts for 50% of the predicted probability mass.
Similar papers in this journal
- Robust and accurate decoding of hand kinematics from entire spiking activity using deep learning 95%
- Biohybrid restoration of the hippocampal loop re-establishes the non-seizing state in an in vitro model of limbic seizures 94%
- An automated method for precise axon reconstruction from recordings of high-density micro-electrode arrays 94%
Similar papers in this journal
- HectoSTAR microLED optoelectrodes for large-scale, high-precision in invo opto-electrophysiology 94%
- Micromotion derived fluid shear stress mediates peri-electrode gliosis through mechanosensitive ion channels 92%
- Stiffness-tunable neurotentacles for minimally invasive implantation and long-term neural activity recordings 92%
Similar papers in this journal
- Behavioral relevance of category selectivity revealed by human ECoG data 93%
- Steady state evoked potential (SSEP) responses in the primary and secondary somatosensory cortices of anesthetized cats: nonlinearity characterized by harmonic and intermodulation frequencies 93%
- Diffusion model-based image generation from rat brain activity 93%
Similar papers in this journal
- Adaptive delayed feedback control disrupts unwanted neuronal oscillations and adjusts to network synchronization dynamics 92%
- Patch-walking: Coordinated multi-pipette patch clamp for efficiently finding synaptic connections 92%
- Phasic oxygen dynamics underlies fast choline-sensitive biosensor signals in the brain of behaving rodents 92%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.