Luca Giorgetti lab @FMI

@lucagiorgetti.bsky.social

We study transcriptional regulation and chromosome folding using an interdisciplinary approach combining wet- and dry-lab methods. https://giorgettilab.org @fmiscience.bsky.social

Come join us April 2027 for the next instalment of the EMBL Chromatin and Epigenetics meeting. Great invited speakers and lots of talks selected from abstracts! It will be a fantastic meeting (despite the egregious nucleosome images...)

EMBL Events@events.embl.org · last wk.

Registration is now open for the EMBL Conference 'Chromatin and epigenetics' 🧬 Explore how epigenetic mechanisms shape human health and disease, and hear renowned speakers discuss the latest advances in the field #EMBLChromatin Submit your abstract by 19 January: s.embl.org/chr27-01-bl

I am looking for a lab manager for my group that I will be starting at the @fmiscience.bsky.social in February! We will use in situ structural biology to investigate dynamic ciliary processes. More info here —> bsky.app/profile/comp... #cilia #teamtomo #proteomics #protistsky

FMI science@fmiscience.bsky.social · last mo.

📢 We’re hiring! Join Caitlyn McCafferty’s (@computingcaitie.bsky.social) new group as Lab Manager and help shape lab operations, develop protocols and support research on the structure and dynamics of motile cilia. Apply by October 9: www.fmi.ch/education-ca...

📣 Interested in non-coding disease-causing variants? Check out our review "Mechanisms underlying disease-causing variants in promoters and enhancers". Interesting mechanisms, challenges and future perspectives. Great to work with @wbickmor.bsky.social, Kun and Ryan! www.nature.com/articles/s41...

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...

nature.com

Wendy Bickmore@wbickmor.bsky.social · last mo.

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...

How many TFs to you need to open chromatin at enhancers? Very excited to see this one out! Check out the augmented version with combinatorial motif mutant libraries in Figure 5! Very proud of @guidobarzaghi.bsky.social @valentinabaderna.bsky.social @embl.org

Guido Barzaghi@guidobarzaghi.bsky.social · 2mo ago

📄 That's a wrap 📄 we're excited to share that the latest from @arnaudkr.bsky.social 's lab and Judith Zaugg's lab is at last online at doi.org/10.1038/s415.... Many thanks to my co-first @valentinabaderna.bsky.social and to @embl.org for the wonderful research environment.

our field may finally be cracking the puzzle of cohesin loop extrusion's role in enhancer! Careful biophysical measurements, engineered loci, and first-principle biophysical thinking are a powerful combo. An overview of Nora/Mirny lab's preprint+important context by @lucagiorgetti.bsky.social

Luca Giorgetti lab @FMI@lucagiorgetti.bsky.social · 5mo ago

Beautiful new study from @elphegenoralab.bsky.social and Leonid Mirny's lab: Cohesin-bridged encounters mediate enhancer-promoter communication, predicting how enhancer effect scales with genomic distance and - for the first time - how CTCF sites modulate enhancer-promoter communciation! 🧵 below

Beautiful new study from @elphegenoralab.bsky.social and Leonid Mirny's lab: Cohesin-bridged encounters mediate enhancer-promoter communication, predicting how enhancer effect scales with genomic distance and - for the first time - how CTCF sites modulate enhancer-promoter communciation! 🧵 below

Elphege Nora Lab at UCSF@elphegenoralab.bsky.social · 5mo ago

Why can't we explain enhancer action despite 2 decades of chromosome conformation technologies? 😬 Our new study spearheaded by Leonid Mirny's group points to a flaw in our assumptions, and to a solution from physical principles By @timothyfoldes.bsky.social 💻& @karissalhansen.bsky.social 🧪 🧵👇

Want to know how histone marks regulate your favorite gene? Go single molecule with ChromSMF: integrated measure of chromatin accessibility and histone marks + DNA methylation, TF footprints and genotype for free! Very proud of @mpalamin.bsky.social ! @embl.org

Michela Palamin@mpalamin.bsky.social · 7mo ago

ChromSMF preprint is out!🚀 tinyurl.com/ChromSMF We often piece together chromatin regulation layer by layer from separate assays. But this can be limiting! In @arnaudkr.bsky.social's lab, we developed a method to directly study multiple layers on the same DNA molecule! 🧬 What does this unlock? ⬇️

🧵 CTCF is essential for embryonic development, but why has remained unclear. By combining gastruloids with a temporal degron system, we uncovered a surprising dual function — and it changes how we think about CTCF's role in development. 1/8 www.biorxiv.org/content/10.6...

A dual role for CTCF in development

CTCF is an essential DNA binding protein whose absence leads to embryonic lethality. CTCF is primarily known for its role in 3D genome organization where its N-terminal domain interacts with cohesin to anchor chromatin loops. How CTCF facilitates proper embryonic development remains unclear, necessitating temporal control to resolve its stage-specific functions. By combining gastruloids, an in vitro model of embryonic development, with a degron system to rapidly deplete CTCF at defined timepoints, we show that early CTCF depletion impairs early gastruloid morphogenesis. Surprisingly, ATAC-seq and time-resolved RNA-seq revealed that differentiation was unaffected. CTCF binding is strongly enriched at promoters of downregulated genes. Re-expression of a CTCF variant with an N-terminal truncation, incapable of looping, was sufficient to rescue the expression of CTCF-promoter bound genes and the defects in morphogenesis. However, extended culture (up to 168 hours) of gastruloids reconstituted with N-terminal truncated CTCF led to their collapse. Our work shows that CTCF has a dual function in early mammalian development: at early stages CTCF regulates developmentally important genes through promoter binding, while at later stages its looping function is required for correct development. ### Competing Interest Statement The authors have declared no competing interest. European Research Council, https://ror.org/0472cxd90, 637587, 865459 Dutch Research Council, https://ror.org/04jsz6e67, 016.161.316, VI.C.222.049 Dutch Cancer Society, https://ror.org/0368jnd28, N/A

biorxiv.org