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Philippe Batut

@philippebatut.bsky.social
167 followers 229 following 30 posts

Long-range #gene regulation: #enhancer, #transcription, 3D #genome, noncoding #RNA and #epigenetics | #LiveImaging & #Genomics | Asst Prof. at Columbia University www.batutlab.com

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Reposted by Philippe Batut
Joaquina Delas @joadelas.bsky.social · 22/09/2026
If you are curious about quantitative and predictive cell date decisions landscapes but our 14 figure paper seemed just a bit daunting, have a look at James' linked summary.
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Reposted by Philippe Batut
Angelika Feldmann @angelikafeldmann.bsky.social · 18/09/2026
1\ We know a bit about how 3D chromatin interactions are formed, but what do we know about how they are disrupted? We asked this question in our latest preprint: doi.org/10.64898/202..., focusing on the massive loss of promoter interactions during neuronal differentiation.
doi.org
Developmentally programmed loss of long-range Polycomb interactions is regulated by cohesin
Distal regulatory elements (DREs), such as enhancers, can regulate genes across megabase-long distances, presumably via coming into close spatial proximity. The establishment of new transcriptional programmes during cell type transitions is associated with widespread rewiring of the spatial organisation of the genome, including gain and loss of chromatin interactions. Extensive effort has been invested into understanding how chromatin interactions are formed during development, yet the mechanisms underlying their developmental loss remain largely unclear. By leveraging chromatin accessibility-assisted footprinting, acute protein degradation and chromatin conformation capture, we show that loss of promoter interactions cannot be explained by reduced binding of sequence-specific transcription factors (TFs). Instead, we identify a subset of interactions that depend on cohesin for programmed developmental disruption. These sites are characterized by high Polycomb enrichment and TF occupancy and engage in strong long-range interactions that undergo extensive differentiation-dependent rewiring. Preventing interaction loss by acute cohesin degradation results in the preferential downregulation of associated genes. Together, these results suggest that cohesin indirectly regulates developmental loss of Polycomb interactions by enabling the acquisition of other potentially regulatory contacts in a process that may shape transcriptional programs during cell type transitions. ### Competing Interest Statement The authors have declared no competing interest. European Research Council Helmholtz Society, VH-NG-1604
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Philippe Batut @philippebatut.bsky.social · 18/09/2026
A great thread about our new paper by science writer @philipcball.bsky.social! Thank you for writing about our story @science.org
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Philippe Batut @philippebatut.bsky.social · 17/09/2026
Scientific research is the driver of progress in medicine & technology & a remarkable engine of prosperity. Last but not least, it's a way to see the sheer beauty of our world by looking at it in ways we never did before Nikon 2026 Small World in Motion award Video @nytimes.com nikonsmallworld.com
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Philippe Batut @philippebatut.bsky.social · 10/09/2026
🧬🔬 Why are enhancers transcribed and how does that impact gene regulation? I’m really excited to share our new paper in @science.org showing that noncoding RNAs control the timing of gene activation in embryos. With Mike Levine #ScienceResearch @columbiamed.bsky.social A few highlights below... 🧵👇
science.org
Noncoding transcription controls the developmental dynamics of long-range gene regulation
The genomic regions regulating gene expression are often themselves transcribed into a variety of noncoding RNAs (ncRNAs). However, the regulatory roles of this noncoding transcription remain largely ...
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Philippe Batut @philippebatut.bsky.social · 10/09/2026
The Batut Lab is now on Bluesky! @columbiauniversity.bsky.social @columbiamed.bsky.social #3Dgenome #RNAsky #transcription #research #science #AcademicSky #NewPI Checkout our website: www.batutlab.com
batutlab.com
BATUT LAB | Columbia
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Philippe Batut @philippebatut.bsky.social · 10/09/2026
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Reposted by Philippe Batut
Rada-Iglesias Lab @radaiglesiaslab.bsky.social · 01/09/2026
Have you ever wondered why developmental genes are often regulated by enhancers located at long distances? In this @natgenet.nature.com perspective, we speculate that long-range enhancer positioning may provide regulatory properties essential for proper gene expression www.nature.com/articles/s41...
nature.com
Mechanisms and functional implications of long-range enhancer-dependent gene regulation - Nature Genetics
Development depends on gene regulation by enhancers across long genomic distances. This Perspective discusses mechanisms enabling long-range enhancer–promoter communication and the potential advantage...
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Reposted by Philippe Batut
Luca Giorgetti lab @FMI @lucagiorgetti.bsky.social · 15/07/2026
Our preprint is now out in @natgenet.nature.com ! doi.org/10.1038/s415... We measured Sox2 promoter bursting dynamics with the SCR enhancer positioned at different distances within a genomic locus devoid of confounding effects in mESC: Main findings in the 🧵 below:
doi.org
Enhancer control of promoter activity and variability via frequency modulation of clustered transcriptional bursts - Nature Genetics
Tünnermann et al. use live-cell imaging to study promoter activity under the control of an enhancer inserted at different genomic distances. RNA production from the promoter occurs in clusters of tran...
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Philippe Batut @philippebatut.bsky.social · 08/09/2026
Welcome to Columbia @begumaydin.bsky.social! Looking forward to having a great new colleague in our department.
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Reposted by Philippe Batut
Wendy Bickmore @wbickmor.bsky.social · 08/09/2026
It was great working with students Kun and Ryan and @hannahlong.bsky.social, combing the literature to try and find examples of bona fide disease-causing variants in non-coding elements - promoters, enhancers and silencers. www.nature.com/articles/s41...
nature.com
Mechanisms underlying disease-causing variants in promoters and enhancers - Nature Genetics
This Review discusses how rare-disease-causing variants in the noncoding genome impact gene regulation, why these examples are so few and how new approaches could accelerate discovery of noncoding var...
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Reposted by Philippe Batut
Claudia Mimoso @camimoso.bsky.social · 04/08/2026
Excited to share our latest review on transcript elongation out now at @natrevmcb.nature.com!! It was an absolute pleasure to work on this review with @isaacfianu.bsky.social and @adelmanlab.bsky.social!
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Reposted by Philippe Batut
Geoff Faulkner @faulknerlab.bsky.social · 31/07/2026
If you can't otherwise access it, here's a link to read our recent Science paper for free (valid for the first 2,000 clicks!): www.science.org/eprint/BYBPQ...
science.org
X-chromosome inactivation draws L1 mutagenesis to the human X chromosome
X-chromosome inactivation (XCI) enables gene dosage compensation in XX eutherians. Long interspersed element-1 (LINE-1 or L1) retrotransposons are unusually abundant on the human X chromosome and are ...
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Philippe Batut @philippebatut.bsky.social · 04/09/2026
A great story from our colleagues at Columbia! @columbiauniversity.bsky.social
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