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Updated: Mar 8, 2026

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Published on: June 21, 2016
Rfx2 Stabilizes Foxj1 Binding at Chromatin Loops to Enable Multiciliated Cell Gene Expression
Ian K Quigley1, Chris Kintner1
1Molecular Neurobiology Laboratory, Salk Institute for Biological Studies La Jolla, California, United States of America.
Cooperative transcription factors Foxj1 and Rfx2 regulate cilia gene expression by binding enhancers and promoters. Rfx2 acts as a scaffold, looping distal enhancers to proximal promoters for coordinated gene activation.
Area of Science:
- Genomics
- Molecular Biology
- Developmental Biology
Background:
- Cooperative transcription factor binding is crucial for eukaryotic gene expression.
- Motile cilia formation requires Forkhead (Fox) and Rfx transcription factors, which co-localize to cilia gene promoters.
- The precise regulatory mechanisms and genomic context of these factors remain unclear.
Purpose of the Study:
- To investigate the genome-wide targets of Foxj1 and Rfx2 in cilia gene regulation.
- To elucidate the direct vs. indirect binding mechanisms of Foxj1 and Rfx2.
- To understand how these factors function within the 3D genome architecture.
Main Methods:
- Genome-wide approaches to identify cis-regulatory sites.
- Analysis of transcription factor binding (Foxj1, Rfx2) at promoters and enhancers.
- Chromatin conformation capture (3C) to identify looping interactions.
Main Results:
- Cilia genes are located at topological domain boundaries with low enhancer density.
- Foxj1 and Rfx2 bind to more cilia gene promoters than other known factors.
- Rfx2 binds promoters and enhancers equally, while Foxj1 prefers enhancers and is stabilized by Rfx2 at promoters.
- Rfx2 and Foxj1 anchor chromatin loops, suggesting Rfx2 facilitates distal enhancer-promoter communication.
Conclusions:
- Rfx2 acts as a scaffolding factor, stabilizing distal enhancers and proximal promoters.
- This scaffolding function brings regulatory domains into proximity, enabling coordinated cilia gene expression.
- Foxj1 and Rfx2 cooperatively regulate motile cilia formation through 3D genome organization.
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