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Research PaperResearchia:202609.04017

Enhancer-promoter proximity predicts transcriptional competence but not transcriptional output in the Drosophila brain

Olivier Messina

Abstract

How 3D genome architecture contributes to transcriptional specificity across neuronal cell types remains unclear. Here, we used multiplexed chromatin tracing to map chromatin architecture and cell identity at single-cell resolution in the adult Drosophila brain. We found that enhancer-promoter (E-P) proximity was increased in transcriptionally active compared with inactive neurons. Analysis of single traces revealed the existence of distinct proximal and distal E-P states, with active neurons en...

Submitted: September 4, 2026Subjects: Biology; Biotechnology

Description / Details

How 3D genome architecture contributes to transcriptional specificity across neuronal cell types remains unclear. Here, we used multiplexed chromatin tracing to map chromatin architecture and cell identity at single-cell resolution in the adult Drosophila brain. We found that enhancer-promoter (E-P) proximity was increased in transcriptionally active compared with inactive neurons. Analysis of single traces revealed the existence of distinct proximal and distal E-P states, with active neurons enriched in the proximal state. However, this relationship broke down across active neuronal subtypes, where neither E-P proximity nor chromatin accessibility predicted transcriptional output. Thus, 3D genome organization distinguishes transcriptionally competent from inactive neuronal states without quantitatively specifying transcriptional output. Our findings support a model in which E-P proximity establishes a permissive structural state, while additional cell-type-specific regulatory mechanisms tune transcriptional output.


Source: arXiv:2609.03058v1 - http://arxiv.org/abs/2609.03058v1 PDF: https://arxiv.org/pdf/2609.03058v1 Original Link: http://arxiv.org/abs/2609.03058v1

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Date:
Sep 4, 2026
Topic:
Biotechnology
Area:
Biology
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