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Nelson, A. D.

Publications and source records attributed to Nelson, A. D..

2 recordsLinked to original sources

Ankyrin-G Regulates Forebrain Connectivity and Network Synchronization via Interaction with GABARAP

GABAergic circuits are critical for the synchronization and higher order function of brain networks, and defects in this circuitry are linked to neuropsychiatric diseases, including bipolar disorder, schizophrenia, and autism. Work in cultured neurons has shown that ankyrin-G plays a key role in the regulation of GABAergic synapses on the axon initial segment and somatodendritic domain of pyramidal neurons where it interacts directly with the GABAO_SCPCAPAC_SCPCAP receptor associated protein (GABARAP) to stabilize cell surface GABAO_SCPCAPAC_SCPCAP receptors. Here, we generated a knock-in mouse model expressing a mutation that abolishes the ankyrin-G/GABARAP interaction (Ank3 W1989R) to understand how ankyrin-G and GABARAP regulate GABAergic circuitry in vivo. We found that Ank3 W1989R mice exhibit a striking reduction in forebrain GABAergic synapses resulting in pyramidal cell hyperexcitability and disruptions in network synchronization. In addition, we identified changes in pyramidal cell dendritic spines and axon initial segments consistent with compensation for hyperexcitability. Finally, we identified the ANK3 W1989R variant in a family with bipolar disorder, suggesting a potential role of this variant in disease. Our results highlight the importance of ankyrin-G in regulating forebrain circuitry and provide novel insights into how ANK3 loss-of-function variants may contribute to human disease.

neuroscience

Epistatic interactions drive biased gene retention in the face of massive nuclear introgression

Phylogenomic analyses are recovering previously hidden histories of hybridization, revealing the genomic consequences of these events on the architecture of extant genomes. We exploit a suite of genomic resources to show that introgressive hybridization occurred between close relatives of Arabidopsis, impacting our understanding of species relationships in the group. The composition of introgressed and retained genes indicates that selection against incompatible cytonuclear and nuclear-nuclear interactions likely acted during introgression, while neutral processes also contributed to genome composition through the retention of ancient haplotype blocks. We also developed a divergence-based test to distinguish donor from recipient lineages without the requirement of additional taxon-sampling. Finally, to our great surprise, we find that cytonuclear discordance appears to have arisen via extensive nuclear, rather than cytoplasmic, introgression, meaning that most of the genome was displaced during introgression, while only a small proportion of native alleles were retained.

evolutionary biology