A synergistic core for human brain evolution and cognition
Presentation
Abstract
How does the organization of neural information processing enable humans’ sophisticated cognition? Here we decompose functional interactions between brain regions into synergistic and redundant components, revealing their distinct information-processing roles. Combining functional, structural, and diffusion-weighted MRI with meta-analytic results from NeuroSynth, we demonstrate that redundant interactions are predominantly associated with structurally coupled, modular sensorimotor processing. Synergistic interactions instead support integrative processes and complex cognition across higher-order brain networks. The human brain leverages synergistic information to a greater extent than nonhuman primates, with high-synergy association cortices exhibiting the highest degree of evolutionary cortical expansion. Synaptic density mapping from in vivo positron emission tomography and convergent transcriptomic, molecular, and metabolic evidence demonstrate that synergistic interactions are supported by receptor diversity and human-accelerated genes underpinning synaptic function. This information-resolved approach provides analytic tools to illuminate how the human neurocognitive architecture navigates the trade-off between robustness and integration.
Details
- Cite
- Andrea Luppi (2022). A synergistic core for human brain evolution and cognition. Neuromatch 5 2022. https://doi.org/10.57736/nmc-5fc8-eff3 (opens in a new tab)
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