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Updated: Mar 9, 2026

In-Nucleus Hi-C in Drosophila Cells
Published on: September 15, 2021
In the loop: how chromatin topology links genome structure to function in mechanisms underlying learning and memory
L Ashley Watson1, Li-Huei Tsai2
1Picower Institute for Learning and Memory, USA.
Abstract:
Different aspects of learning, memory, and cognition are regulated by epigenetic mechanisms such as covalent DNA modifications and histone post-translational modifications. More recently, the modulation of chromatin architecture and nuclear organization is emerging as a key factor in dynamic transcriptional regulation of the post-mitotic neuron. For instance, neuronal activity induces relocalization of gene loci to 'transcription factories', and specific enhancer-promoter looping contacts allow for precise transcriptional regulation. Moreover, neuronal activity-dependent DNA double-strand break formation in the promoter of immediate early genes appears to overcome topological constraints on transcription. Together, these findings point to a critical role for genome topology in integrating dynamic environmental signals to define precise spatiotemporal gene expression programs supporting cognitive processes.
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