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The human brain's network architecture is genetically encoded by modular pleiotropy

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arxiv 1905.07606 v2 pith:URKANHBZ submitted 2019-05-18 q-bio.NC q-bio.GNq-bio.PE

classification q-bio.NCq-bio.GNq-bio.PE
keywords brainnetworksetsgenesarchitecturecommunitiesconnectivityencoded
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For much of biology, the manner in which genotype maps to phenotype remains a fundamental mystery. The few maps that are known tend to show modular pleiotropy: sets of phenotypes are determined by distinct sets of genes. One key map that has evaded discovery is that of the human brain's network architecture. Here, we determine the form of this map for gene coexpression and single nucleotide polymorphisms. We discover that mostly non-overlapping sets of genes encode the connectivity of brain network modules (or so-called communities), suggesting that brain network communities demarcate genetic transitions. We find that these clean boundaries break down at connector hubs, whose integrative connectivity is encoded by pleiotropic genes from mostly non-overlapping sets. Broadly, this study opens fundamentally new directions in the study of genetic encoding of brain development, evolution, and disease.

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Cited by 1 Pith paper

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  1. Is the brain relativistic?

    q-bio.NC 2019-08 reject novelty 5.0 of 10

    The paper argues by analogy that brain activity flows along geodesics in a curved 4D brain spacetime, governed by a brain speed limit and a relativistic pseudo-diffusion equation, and applies the idea to consciousness...

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