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Volumetric mesoscopic electrophysiology: a new imaging modality for the nonhuman primate.

Tobias Teichert, László Papp, Ferenc Vincze, Nioka Burns, Baldwin Goodell, Zabir Ahmed, Andrew Holmes, Maysam Chamanzar, Kate Gurnsey

Journal of neurophysiology April 1, 2025 DOI: 10.1152/jn.00399.2024 via PubMed

Summary

AI-generated from the abstract

A new imaging method called MePhys (mesoscopic electrophysiology) records local field potentials from 992 electrode contacts distributed across 62 shafts implanted throughout a monkey hemisphere, enabling simultaneous measurement of over 300,000 electrode pairs. This technique combines millisecond temporal resolution with millimeter spatial resolution across a large field of view. Administering a subanesthetic dose of ketamine, which can mimic aspects of psychosis, induced a pronounced state of functional disconnection and prevented the formation of stable large-scale intrinsic brain states. MePhys offers a complementary window into brain function that bridges the gaps between fMRI, EEG, and microscopic electrophysiology.

Study at a glance

Characteristics Experimental study Peer reviewed
Sample size 1
Population Nonhuman primate (monkey)
Intervention Ketamine
Dose subanesthetic dose
Topics Ketamine
Keywords EEG Local filed potentials Resting state Schizophrenia
Key finding A subanesthetic dose of ketamine creates a pronounced state of functional disconnection and prevents the formation of stable large-scale intrinsic states in the primate brain.

Abstract

The primate brain is a densely interconnected organ whose function is best understood by recording from the entire structure in parallel, rather than parts of it in sequence. However, available methods either have limited temporal resolution (functional magnetic resonance imaging; fMRI), limited spatial resolution (macroscopic electroencephalography), or a limited field of view (microscopic electrophysiology). To address this need, we developed a volumetric, mesoscopic recording approach (MePhys) by tessellating the volume of a monkey hemisphere with 992 electrode contacts that were distributed across 62 chronically implanted multielectrode shafts. We showcase the scientific promise of MePhys by describing the functional interactions of local field potentials between the more than 300,000 simultaneously recorded pairs of electrodes. We find that a subanesthetic dose of ketamine-believed to mimic certain aspects of psychosis-can create a pronounced state of functional disconnection and prevent the formation of stable large-scale intrinsic states. We conclude that MePhys provides a new and fundamentally distinct window into brain function whose unique profile of strengths and weaknesses complements existing approaches in synergistic ways.NEW & NOTEWORTHY We created a new imaging modality for the nonhuman primate, mesoscopic electrophysiology, or MePhys by sampling local field potentials (LFPs) in a dense three-dimensional grid from across the volume of one entire hemisphere. MePhys combines the millisecond temporal resolution of electrophysiology with the large field of view and millimeter spatial resolution of functional magnetic resonance imaging (fMRI). MePhys' unique profile of strengths and limitations makes it an ideal imaging method for the nonhuman primate brain observatories of the future.

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