An MRI Compatible Data Acquisition Device for Rat Brain Recording Inside 16.4T Magnet

Jian Xu, Anh Tuan Nguyen, Wenfeng Zhao, Wei Chen, Zhi Yang

Research output: Contribution to journalArticlepeer-review

Abstract

Concurrent recording of neural activities and functional magnetic resonance imaging (fMRI) data is useful for studying the neurovascular coupling relationship. This article presents a low-noise, frequency-shaping based neural recorder chip that is insensitive to radio frequency (RF) pulses and gradient echo artifacts under strong magnetic environment. To support simultaneous recording of local field potentials (LFPs), extracellular spikes, and fMRI data, a magnetic resonance imaging (MRI) compatible data acquisition (DAQ) device based on the designed recorder chip is developed with multiple circuit optimization techniques. Bench-top measurement shows that the designed DAQ device has 4.5 μV input-referred noise integrated from 300 Hz to 3000 Hz, which is not greatly affected by electromagnetic interference (EMI) at ultrahigh magnetic field (UMF, 16.4 T). In animal experiments, the designed DAQ device has been demonstrated to be capable of acquiring both the LFPs and extracellular spikes from a rat's brain before, during, and after MRI scanning. Besides, no obvious artifacts are seen from the designed DAQ device at multiple typical MRI scanning modes, and the system recovery time after gradient artifacts is reduced from more than 25 ms to less than 5 ms. The proposed DAQ device architecture based on the frequency-shaping neural recorder chip is MRI compatible and can provide highly competitive performance for concurrent recording of neural activities and fMRI data.

Original languageEnglish (US)
Pages (from-to)160-173
Number of pages14
JournalIEEE transactions on biomedical circuits and systems
Volume18
Issue number1
DOIs
StatePublished - Feb 1 2024

Bibliographical note

Publisher Copyright:
© 2007-2012 IEEE.

Keywords

  • brain recording
  • data acquisition (DAQ) device
  • frequency-shaping recorder
  • gradient echo artifacts
  • magnetic resonance imaging (MRI) compatible
  • radio frequency (RF) pulses

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