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HOX Loci Focused CRISPR/sgRNA Library Screening Identifying Critical CTCF Boundaries
Published on: March 31, 2019
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Sequential and directional insulation by conserved CTCF sites underlies the Hox timer in stembryos
Hocine Rekaik1, Lucille Lopez-Delisle1, Aurélie Hintermann2
1School of Life Sciences, École Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.
Nature Genetics
|June 15, 2023
Summary
Hox gene activation timing is controlled by cohesin loading and CTCF sites, ensuring proper body development. This mechanism uses chromatin extrusion to progressively activate genes along the rostrocaudal axis.
Area of Science:
- Developmental biology
- Genetics
- Molecular biology
Background:
- Hox genes are crucial for establishing body plan patterning along the rostrocaudal axis during embryonic development.
- Their temporal activation, dictated by their cluster positions, ensures correct structural identities.
Purpose of the Study:
- To elucidate the molecular mechanism underlying the Hox gene temporal activation timer.
- To investigate the role of cohesin and CTCF sites in regulating Hox gene expression timing.
Main Methods:
- Utilized mouse embryonic stem cell-derived stembryos for experimental analysis.
- Investigated gene activation patterns following Wnt signaling.
- Analyzed cohesin complex distribution and CTCF site interactions.
Main Results:
- Identified asymmetric cohesin loading favoring the anterior of the Hox cluster during transcriptional initiation.
- Demonstrated chromatin extrusion mediated by progressively engaged posterior CTCF sites.
- Showcased how CTCF sites act as transient insulators, creating time delays for posterior gene activation.
Conclusions:
- Proposed a model where cohesin loading and CTCF-mediated chromatin extrusion govern Hox gene temporal activation.
- Highlighted the importance of conserved, regularly spaced CTCF sites for precise temporal control.
- Established a link between chromatin architecture and the developmental timing of Hox gene expression.
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