bioRxiv · 10.1101/2025.11.25.690435
Chromatin priming and Hunchback recruitment integrate spatial and temporal cues in Drosophila neuroblasts
Abstract
Neural stem cells generate diverse cell types by integrating spatial and temporal cues to activate neuron-specific terminal selector (TS) genes. In Drosophila neuroblasts (NBs), spatial patterning sets lineage identity, while a temporal transcription factor (TTF) cascade sets birth order. Two proposed mechanisms could integrate these inputs. In direct regulation, spatial transcription factors (STFs) and TTFs co-occupy and regulate TS enhancers within NBs. In epigenetic regulation, STFs first prime NB-specific chromatin, creating selected enhancers that can later recruit TTFs. We tested these models in the NB5-6 and NB7-4 lineages using their candidate STFs, Gooseberry (Gsb) and Engrailed (En), together with the first TTF, Hunchback (Hb). We find that En preferentially occupies pre-accessible chromatin in the NB7-4 lineage, including highly accessible En-Hb co-bound sites. This is consistent with En acting within an already established chromatin landscape whose formation likely depends on additional NB7-4 factors. In contrast, Gsb binds both accessible and less-accessible chromatin in the NB5-6 lineage and can remodel accessibility bidirectionally when ectopically expressed in NB7-4 lineage, with corresponding changes in Hb occupancy. However, Gsb binding alone does not determine which sites become accessible or recruit Hb, indicating that productive Gsb-Hb regulatory states require additional NB5-6-specific inputs. Thus, direct and epigenetic regulation are not alternative mechanisms, but distinct steps within the integration process. We therefore propose a third possibility: distributed STF code model in which these steps -- chromatin priming and direct STF-Hb engagement -- are distributed across the members of each NB-specific STF code. The STF code therefore shapes the enhancer landscape available to Hb and enables productive Hb engagement at lineage-appropriate enhancers.
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Bhattacharya, A., Rao, H., Sen, S. Q.. 2025-11-27. Chromatin priming and Hunchback recruitment integrate spatial and temporal cues in Drosophila neuroblasts. https://doi.org/10.1101/2025.11.25.690435
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