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- W3202783147 abstract "Abstract Hierarchical temporal dynamics are a fundamental computational property of the brain; however, there are no whole-brain, noninvasive investigations into timescales of neural processing in animal models. To that end, we used the spatial resolution and sensitivity of ultrahigh field fMRI performed at 10.5 Tesla to probe timescales across the whole macaque brain. We uncovered within-species consistency between timescales estimated from fMRI and electrophysiology. Crucially, we extended existing electrophysiological hierarchies to whole brain topographies. Our results validate the complementary use of hemodynamic and electrophysiological intrinsic timescales, establishing a basis for future translational work. Further, with these results in hand, we were able to show that one facet of the high-dimensional functional connectivity topography of any region in the brain is closely related to hierarchical temporal dynamics. We demonstrated that intrinsic timescales are organized along spatial gradients that closely match functional connectivity gradient topographies across the whole brain. We conclude that intrinsic timescales are a unifying organizational principle of neural processing across the whole brain. Declaration of Interests The authors declare no competing interests." @default.
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- W3202783147 date "2021-10-07" @default.
- W3202783147 modified "2023-10-12" @default.
- W3202783147 title "Intrinsic timescales as an organizational principle of neural processing across the whole rhesus macaque brain" @default.
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- W3202783147 doi "https://doi.org/10.1101/2021.10.05.463277" @default.
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