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1.
Neuroimage ; 247: 118728, 2022 02 15.
Article in English | MEDLINE | ID: mdl-34923136

ABSTRACT

Resting-state functional MRI (rsfMRI) provides a view of human brain organization based on correlation patterns of blood oxygen level dependent (BOLD) signals recorded across the whole brain. The neural basis of resting-state BOLD fluctuations and their correlation remains poorly understood. We simultaneously recorded oxygen level, spikes, and local field potential (LFP) at multiple sites in awake, resting monkeys. Following a spike, the average local oxygen and LFP voltage responses each resemble a task-driven BOLD response, with LFP preceding oxygen by 0.5 s. Between sites, features of the long-range correlation patterns of oxygen, LFP, and spikes are similar to features seen in rsfMRI. Most of the variance shared between sites lies in the infraslow frequency band (0.01-0.1 Hz) and in the infraslow envelope of higher-frequency bands (e.g. gamma LFP). While gamma LFP and infraslow LFP are both strong correlates of local oxygen, infraslow LFP explains significantly more of the variance shared between correlated oxygen signals than any other electrophysiological signal. Together these findings are consistent with a causal relationship between infraslow LFP and long-range oxygen correlations in the resting state.


Subject(s)
Brain/physiology , Oxygen/blood , Primates/physiology , Rest/physiology , Animals , Brain Mapping , Electrophysiological Phenomena , Image Processing, Computer-Assisted , Magnetic Resonance Imaging
2.
Cereb Cortex ; 26(1): 346-57, 2016 Jan.
Article in English | MEDLINE | ID: mdl-25385710

ABSTRACT

The human default mode network (DMN) shows decreased blood oxygen level dependent (BOLD) signals in response to a wide range of attention-demanding tasks. Our understanding of the specifics regarding the neural activity underlying these "task-negative" BOLD responses remains incomplete. We paired oxygen polarography, an electrode-based oxygen measurement technique, with standard electrophysiological recording to assess the relationship of oxygen and neural activity in task-negative posterior cingulate cortex (PCC), a hub of the DMN, and visually responsive task-positive area V3 in the awake macaque. In response to engaging visual stimulation, oxygen, LFP power, and multi-unit activity in PCC showed transient activation followed by sustained suppression. In V3, oxygen, LFP power, and multi-unit activity showed an initial phasic response to the stimulus followed by sustained activation. Oxygen responses were correlated with LFP power in both areas, although the apparent hemodynamic coupling between oxygen level and electrophysiology differed across areas. Our results suggest that oxygen responses reflect changes in LFP power and multi-unit activity and that either the coupling of neural activity to blood flow and metabolism differs between PCC and V3 or computing a linear transformation from a single LFP band to oxygen level does not capture the true physiological process.


Subject(s)
Action Potentials/physiology , Brain Mapping , Magnetic Resonance Imaging , Oxygen/metabolism , Visual Cortex/physiology , Visual Perception/physiology , Animals , Attention/physiology , Evoked Potentials, Visual/physiology , Image Processing, Computer-Assisted/methods , Macaca , Neurons/physiology , Photic Stimulation/methods
3.
Proc Natl Acad Sci U S A ; 112(19): E2527-35, 2015 May 12.
Article in English | MEDLINE | ID: mdl-25918427

ABSTRACT

The mechanism underlying temporal correlations among blood oxygen level-dependent signals is unclear. We used oxygen polarography to better characterize oxygen fluctuations and their correlation and to gain insight into the driving mechanism. The power spectrum of local oxygen fluctuations is inversely proportional to frequency raised to a power (1/f) raised to the beta, with an additional positive band-limited component centered at 0.06 Hz. In contrast, the power of the correlated oxygen signal is band limited from ∼ 0.01 Hz to 0.4 Hz with a peak at 0.06 Hz. These results suggest that there is a band-limited mechanism (or mechanisms) driving interregional oxygen correlation that is distinct from the mechanism(s) driving local (1/f) oxygen fluctuations. Candidates for driving interregional oxygen correlation include rhythmic or pseudo-oscillatory mechanisms.


Subject(s)
Brain Mapping/methods , Brain/physiology , Magnetic Resonance Imaging/methods , Algorithms , Animals , Arrhythmias, Cardiac , Electrodes , Heart Rate , Learning , Macaca , Neural Pathways , Normal Distribution , Oscillometry , Oxygen/chemistry , Polarography , Rest , Signal Processing, Computer-Assisted
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