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Nayuta Yakushiji-Kaminatsui

@nayutayk.bsky.social
141 followers 246 following 12 posts

Research Scientist at Haruhiko Koseki lab. at RIKEN IMS🇯🇵 My research has focused on limb development, Polycomb group proteins, Hox and chromatin organization🐓🐀🧬 Opinions are my own

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Reposted by Nayuta Yakushiji-Kaminatsui
Genes & Development @genesdev.bsky.social · 19h
📽️ G&D Tapes 📽️ G&D Author, Kei Ishiguro, tells us about how the MEIOSIN-STRA8 interaction reinforces meiotic transcription and facilitates meiotic progression. Read the full story: ➡️ genesdev.cshlp.org/content/40/19-20… Ishiguro Lab #celldivision #transcription #development
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Reposted by Nayuta Yakushiji-Kaminatsui
Genes & Development @genesdev.bsky.social · 06/10/2026
RESEARCH PAPER: MEIOSIN retains a STRA8-independent activity that contributes to meiotic gene activation across vertebrates By Shimada et al. and Kei-ichiro Ishiguro ➡️ genesdev.cshlp.org/content/40/19-20… Ishiguro Lab #celldivision #transcription #vertebratedevelopment
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Reposted by Nayuta Yakushiji-Kaminatsui
bioRxiv Molecular Biology @biorxiv-molbio.bsky.social · 05/10/2026
A Structural Model of Transcriptional Activation by Mediator www.biorxiv.org/content/10.64898/20…
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Reposted by Nayuta Yakushiji-Kaminatsui
bioRxiv Molecular Biology @biorxiv-molbio.bsky.social · 05/10/2026
A contact-mediated transfer mechanism directs in cis localization and spread of Xist RNA www.biorxiv.org/content/10.64898/20…
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Nayuta Yakushiji-Kaminatsui @nayutayk.bsky.social · 01/10/2026
I just ordered the plasmids for CoCUT&Tag! Looking forward to receiving them🤩
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Reposted by Nayuta Yakushiji-Kaminatsui
Rob Klose @robklose.bsky.social · 30/09/2026
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...)
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Reposted by Nayuta Yakushiji-Kaminatsui
Genes & Development @genesdev.bsky.social · 21/09/2026
🆕 ADVANCE ONLINE 🆕 RESEARCH PAPER: MEIOSIN retains a STRA8-independent activity that contributes to meiotic gene activation across vertebrates By Shimada et al. and Kei-ichiro Ishiguro ➡️ ow.ly/zmPg50ZPSkH Ishiguro Lab #celldivision #transcription #vertebratedevelopment
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Reposted by Nayuta Yakushiji-Kaminatsui
bioRxiv Genetics @biorxiv-genetic.bsky.social · 20/09/2026
Hierarchical chromatin polyvalency governs robust gene regulation and organogenesis www.biorxiv.org/content/10.64898/20…
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Reposted by Nayuta Yakushiji-Kaminatsui
Lopes_Lab @lopeslab.bsky.social · 16/09/2026
Thrilled to share a new important study from the lab, published today in @nature.com, showing how cohesin mediates efficient replication fork plasticity and stress response, using its loop extrusion activity to promote 3D contacts on replicating DNA: www.nature.com/articles/s41...
nature.com
Cohesin reshapes replication fork contacts to aid fork slowing and reversal - Nature
Cohesin-mediated loop extrusion limits sister-fork coupling and tethers nearby replication forks under replication stress, promoting fork reversal and slowing fork progression to safeguard genome...
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Reposted by Nayuta Yakushiji-Kaminatsui
Nezar Abdennur @nvictus.bsky.social · 19/09/2026
The 4DN Center for 3D Structure and Physics of the Genome proudly presents: "Stepwise reorganization of chromosome conformation and nuclear organization during stem cell differentiation". www.biorxiv.org/content/10.6...
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Reposted by Nayuta Yakushiji-Kaminatsui
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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Current Biology @currentbiology.bsky.social · 17/09/2026
New #cat just dropped! 😻 A first in over 100 years, a genomic study in CB by Eduardo Eizirik and team reveals a new species of 'tiger cat'. 👉 www.cell.com/current-biol... Meet the Tilcayo (Leopardus tilcayo)! (photo: Fernando Faciole/National Geographic) #cats
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bioRxiv Genomics @biorxiv-genomic.bsky.social · 17/09/2026
Developmentally programmed loss of long-range Polycomb interactions is regulated by cohesin www.biorxiv.org/content/10.64898/20…
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Nature Structural & Molecular Biology @natsmb.nature.com · 15/09/2026
ICYMI: New online: Cryo-EM structure, enzymatic activity and genome targeting of canonical PRC1
dlvr.it
Cryo-EM structure, enzymatic activity and genome targeting of canonical PRC1
Nature Structural & Molecular Biology, Published online: 14 September 2026; doi:10.1038/s41594-026-01885-6Ciapponi et al. determine the cryo-electron microscopy structure of the canonical Polycomb repressive complex 1 holocomplex and show how its architecture coordinates complex assembly, H2A monoubiquitination and genomic targeting.
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Reposted by Nayuta Yakushiji-Kaminatsui
Kazuhiro Maeshima @kazu-maeshima.bsky.social · 15/09/2026
How are mitotic chromosomes built? Our Review @cp-trendsgenetics.bsky.social revisits the classical chromosome scaffold model and connects it to condensins, topoIIα, and physical forces. We propose interphase chromatin domains as “building blocks”🧩of chromosomes: authors.elsevier.com/a/1nmwrcQbJI...
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Reposted by Nayuta Yakushiji-Kaminatsui
Joy Jeongyoon Choi @joyjoychoi.bsky.social · 14/09/2026
Excited to share our new preprint on in situ chromatin structure of the inactive X chromosome in differentiated female mouse embryonic stem cells. www.biorxiv.org/content/10.6... 🧵1/8
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Cell - a Cell Press journal @cp-cell.bsky.social · 08/09/2026
Now online! Structural basis of a SWI/SNF-associated transcription pre-initiation complex
dlvr.it
Structural basis of a SWI/SNF-associated transcription pre-initiation complex
Cryo-EM and genetic analyses reveal that the SWI/SNF chromatin remodeler is an integral component of the transcription pre-initiation complex. The structures demonstrate how SWI/SNF facilitates transcription initiation through stabilization of PIC organization and concerted remodeling of the +1 nucleosome.
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Shiori Iida @shiori-iida.bsky.social · 08/09/2026
Happy to share that this paper is now published in Nature Genetics! Grateful to everyone who supported this work throughout this long journey. I’m proud to see it out! www.nature.com/articles/s41...
nature.com
Cohesin prevents local mixing of condensed euchromatic domains in living human cells - Nature Genetics
Single-nucleosome imaging/tracking and super-resolution three-dimensional structured illumination microscopy within euchromatic regions show that cohesin-mediated loops constrain condensed euchromatic...
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Kazuhiro Maeshima @kazu-maeshima.bsky.social · 08/09/2026
Is euchromatin really “open”? 🧬 Using super-resolution imaging🔬 our new study @natgenet.nature.com reveals: Euchromatin forms condensed domains in live cells. Cohesin constrains them and prevents domain mixing for proper transcriptional insulation🚧 🔗 www.nature.com/articles/s41... (1/2)
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canaztekin.bsky.social @canaztekin.bsky.social · 07/09/2026
Our step-by-step protocol for generating mesodermal/limb bud organoids (“budoids”) from mouse stem cells or primary limb buds is now out! 🧫🦵 We hope it makes the system easier to adopt and build on in other labs! bio-protocol.org/en/bpdetail?...
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Molecular Cell @cp-molcell.bsky.social · 04/09/2026
Molecular co-accessibility identifies coordinated regulation between distant cis-regulatory elements
dlvr.it
Molecular co-accessibility identifies coordinated regulation between distant cis-regulatory elements
Boulanger et al. study the coordination between cis-regulatory elements by simultaneously measuring their chromatin accessibility on the same kilobase-long DNA molecules. They show that co-accessibility identifies functionally dependent enhancers and promoters that have coordinated activity across cell types.
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bioRxiv Genetics @biorxiv-genetic.bsky.social · 01/09/2026
X-inactivation escapee domains are CTCF-cohesin independent chromatin compartments www.biorxiv.org/content/10.64898/20…
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Evgeny Kvon @evgenykvon.bsky.social · 25/08/2026
First synthetic mouse enhancers active in defined embryonic tissues! Great collaboration led by @alex-stark.bsky.social lab now at @natgenet.nature.com
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Reposted by Nayuta Yakushiji-Kaminatsui
Job Dekker @jobdekker.bsky.social · 24/08/2026
How do nuclear compartments form inside cell nuclei? We show RNA glues certain loci together to form a nuclear compartment. This involves special GC-rich regions of highly expressed genes that also associate with nuclear speckles, but interactions between these loci are independent of speckles!
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Reposted by Nayuta Yakushiji-Kaminatsui
bioRxiv Molecular Biology @biorxiv-molbio.bsky.social · 21/08/2026
SPIN1 selectively silences evolutionarily young transposable elements through chromatin regulation www.biorxiv.org/content/10.64898/20…
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bioRxivpreprint @biorxivpreprint.bsky.social · 20/08/2026
BARe-seq enables high-throughput dissection of cis-regulatory control of transcriptional bursting www.biorxiv.org/content/10.64898/20…
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Reposted by Nayuta Yakushiji-Kaminatsui
Development @dev-journal.bsky.social · 18/08/2026
A primitive endoderm-centric view of mammalian development In this Review, @rpkimyip.bsky.social, Denis Faerberg and @eposfai.bsky.social give an overview of mammalian primitive endoderm development, focusing on the mouse and, where appropriate, the human context. 🐭 doi.org/10.1242/dev....
Outline of primitive endoderm/hypoblast lineage development in mouse and human at the embryonic days (E) indicated. The primitive endoderm (PE) (mouse) and hypoblast (human) lineages emerge during pre-implantation development, forming single-layered epithelium lining the blastocoel cavity before implantation. The PE/hypoblast expands following implantation to form the visceral endoderm (VE) and parietal endoderm (ParE). In mouse, part of the VE (indicated by a dashed line) contributes to the embryonic gut, while the remaining VE contributes to the visceral yolk sac (YS); the ParE contributes to the parietal YS. In humans, the primary YS is formed from the VE and the ParE, which is then later replaced by a VE-derived secondary YS.
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Evgeny Kvon @evgenykvon.bsky.social · 18/08/2026
“Super-enhancer hubs are rare, nonspecific, and neither necessary nor sufficient for transcriptional bursting” www.cell.com/cell-genomic...
cell.com
Single-cell 3D genome imaging shows super-enhancer hubs are rare, nonspecific, and neither necessary nor sufficient for transcriptional bursting
Super-enhancers have been proposed to cluster in the nucleus when compared to other genomic elements. Le et al. found that super-enhancer clustering was rare and driven by non-specific interactions. P...
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Reposted by Nayuta Yakushiji-Kaminatsui
Bas van Steensel lab (NKI) @basvansteensellab.bsky.social · 18/08/2026
Inferring transcription factor activity: use ATAC-seq, reporter assays, or both? link.springer.com/article/10.1...
link.springer.com
Systematic comparison of estimates of transcription factor activity by ATAC-seq and multiplexed reporter assays - Molecular Systems Biology
Transcription factors (TFs) are central to gene regulation and play critical roles in development, cellular homeostasis and disease. The ability to accurately measure TF activity is essential to under...
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Reposted by Nayuta Yakushiji-Kaminatsui
Nature Biotechnology @natbiotech.nature.com · 12/08/2026
Simultaneous single-cell profiling of chromatin, transcriptome and surface markers with OneCell CUT&Tag captures epigenomic reprogramming - @institutcurie.bsky.social www.nature.com/articles/s41...
nature.com
Simultaneous single-cell profiling of chromatin, transcriptome and surface markers with OneCell CUT&Tag captures epigenomic reprogramming - Nature Biotechnology
OneCell CUT&Tag enables multiomic analysis of a single cell without computation.
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bioRxiv Molecular Biology @biorxiv-molbio.bsky.social · 11/08/2026
Tethering-mediated recruitment of pioneer factors by NuRD enables signal dependent gene activation and protects cell identity www.biorxiv.org/content/10.64898/20…
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Science Magazine @science.org · 08/08/2026
The domestic cat may be a far more recent arrival to Europe than previously thought, according to a 2025 Science study. The findings offer new insight into one of humanity’s most enigmatic animal companions. scim.ag/44kov1S #InternationalCatDay
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Nature @nature.com · 07/08/2026
Nature research paper: An expanded codebook of human transcription factor DNA-binding specificity go.nature.com/4wMUZ15
go.nature.com
An expanded codebook of human transcription factor DNA-binding specificity - Nature
Results from a panel of assays that analyse different aspects of DNA sequence specificity reveal more than 100 new motifs to aid the characterization of putative human transcription factors.
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Stefan Schoenfelder @stefanschoenfelder.bsky.social · 07/08/2026
Very happy to see this story finally out in @natbiotech.nature.com: www.nature.com/articles/s41... Fantastic collaboration with @lancasterlab.bsky.social on how to identify and ‘fix’ differentiation-compromised human pluripotent stem cells. @babrahaminst.bsky.social @mrclmb.ac.uk 🧵 below
nature.com
Reversible epiblast regionalization determines differentiation potential of human pluripotent stem cells - Nature Biotechnology
The differentiation variability of human pluripotent stem cell lines is diagnosed and corrected.
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Rob Klose @robklose.bsky.social · 06/08/2026
Finally understand what COMPASS means! www.biorxiv.org/content/10.6...
biorxiv.org
COMPASS: Component-Wise Inference of Shared and Gene-Specific Perturbation Response
Predicting how a genetic perturbation reshapes a cell's transcriptome is a central goal of computational biology. Previous studies report that the mean response across training perturbations rivals sp...
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Reposted by Nayuta Yakushiji-Kaminatsui
Anders Sejr Hansen @andersshansen.bsky.social · 06/08/2026
(1/n) Excited to share close collab w @bloodgenes.bsky.social led by Varshini & Chun-jie et al How to induce expression of key genes while silencing much of the genome during Erythropoiesis? A: Matchmaker CREs load cohesin near key genes to promote looping & exp: www.biorxiv.org/content/10.6...
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Genes & Development @genesdev.bsky.social · 05/08/2026
RESEARCH COMMUNICATION: The Bcl11–Cxxc1 axis regulates stage-specific chromatin accessibility during lymphocyte development By Okuyama et al., and Ichiro Taniuchi ➡️ genesdev.cshlp.org/content/40/15-16… RIKEN #transcriptionfactor #lymphocyte #Tcell #Bcell #chromatin
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Evgeny Kvon @evgenykvon.bsky.social · 05/08/2026
A really cool preprint from Joanna Wysocka's lab showing that housekeeping genes use distal enhancers as dosage buffers against TF fluctuations, but only during critical cell fate transitions. Makes so much sense! www.biorxiv.org/content/10.6...
biorxiv.org
Enhancer buffering protects dosage-sensitive housekeeping genes during vulnerable developmental transitions
Housekeeping genes maintain robust expression across cell types despite dynamic transcription factor fluctuations, yet their haploinsufficiency is associated with many tissue-specific developmental di...
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Cristel Carles @cristelcarles.bsky.social · 04/08/2026
Very happy to share that our story is now published in @natplants! 🥂 Check it out here: nature.com/articles/s41... A study by @UGrenobleAlpes @LPCV_Grenoble @IBS_Grenoble made possible thru significant collaboration with @institut_curie @iGred @uni_regensburg. 1000 thanks to all!
nature.com
The dual trxG/PcG protein ULTRAPETALA1 modulates H3K27me3 and directly enhances POLYCOMB REPRESSIVE COMPLEX 2 activity for fine-tuned reproductive transitions - Nature Plants
This study reports a bivalent factor, ULTRAPETALA1, that can counteract as well as promote PRC2 activity at hundreds of developmental genes in Arabidopsis thaliana. The pro-PRC2 activity of ULTRAPETAL...
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Reposted by Nayuta Yakushiji-Kaminatsui
Development @dev-journal.bsky.social · 03/08/2026
A resource defining the early stages of vertebrate forelimb development This Research Highlight showcases work by Vighnesh Ghatpande, Can Cenik, Steve Vokes and colleagues. journals.biologists.com/dev/article/...
Signature genes improve identification of somatic LPM. (C) Merged HCR image showing the expression of Tbx5, Unc5c and Plxna4, and Tbx5, Sema3a, Scube1, in 15-16 somite wholemount embryos.
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EMBL Events @events.embl.org · 31/07/2026
Get your calendars, because the new 2027 EMBL Annual Poster has arrived: s.embl.org/2027-poster Whether you'd like to enhance your skills in a practical course or engage with the latest research at one of our conferences, we've got you covered. See you at EMBL in 2027! 🙌 #LifeSciences #EMBL
The image depicts the 2027 EMBL Annual Poster featuring the new events programme for 2027. On the left side is a colorful banner, on the right is the list of events sorted by month
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Reposted by Nayuta Yakushiji-Kaminatsui
Nature Cell Biology @natcellbio.nature.com · 29/07/2026
☕Zhou, Wang et al. dissect the role of #PRC2 in early #embryogenesis through inducible degradation of EED, a core PRC2 subunit, and report that PRC2 is required for proper maternal-to-zygotic transition and promotes #epiblast specification. 👉https://rdcu.be/fwFjr www.nature.com/articles/s41...
nature.com
Decoding stage-specific functions of PRC2 in early embryogenesis uncovers roles in preimplantation development and primordial germ cell fate - Nature Cell Biology
Zhou, Wang et al. dissect the role of PRC2 in early embryogenesis through inducible degradation of EED, a core PRC2 subunit, and report that PRC2 is required for proper maternal-to-zygotic transition ...
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Nature Genetics @natgenet.nature.com · 28/07/2026
📢PUBLISHED @natgenet.nature.com 📰Pioneer transcription factors direct tissue-specific cohesin chromatin entry and three-dimensional genome organization. By Song Wang, Haiyang Guo and colleagues. ⬇️ www.nature.com/articles/s41...
nature.com
Pioneer transcription factors direct tissue-specific cohesin chromatin entry and three-dimensional genome organization - Nature Genetics
Analyses in prostate cancer cell lines show that FOXA1 mediates tissue-specific recruitment of NIPBL to chromatin to orchestrate three-dimensional genome organization, acting in concert with ETS1 and ...
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Eric Conway @conwayer1.bsky.social · 27/07/2026
Preprint alert! 🚨 We are very excited to share our new manuscript on Bohring-Opitz syndrome, a devastating rare monogenic disorder driven by truncating variants in ASXL1. This project was led by PhD student Emma Doyle, one of the OG Conway lab members 💪. 1/6 www.biorxiv.org/content/10.6...
biorxiv.org
Divergent Pathogenic PR-DUB Complex Variants Converge Functionally Via PRC2 Displacement From Chromatin
The PR-DUB complex is responsible for erasing the repressive histone modification, H2AK119ub1. ASXL1-3 proteins are mutually exclusive catalytic partners of BAP1 in the PR-DUB complex. Somatic heteroz...
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Anders Sejr Hansen @andersshansen.bsky.social · 25/07/2026
We know little about proteins required for long-range compartment 3D interactions, but this @kyleeagen.bsky.social lab preprint shows that NSD3 can make Mb-scale long-range compartment-like interactions: www.biorxiv.org/content/10.6...
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Benoit Bruneau @benoitbruneau.bsky.social · 23/07/2026
4D Nucleome special issue of Science, featuring our paper "Dose-dependent sensitivity of human three-dimensional chromatin to a heart disease–linked transcription factor", led by Zoe Grant in my lab and Zhuzhen Kuang in Katie Pollard's lab @gladstoneinst.bsky.social www.science.org/toc/science/...
science.org
Contents | Science 393, 6809
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Anders Sejr Hansen @andersshansen.bsky.social · 23/07/2026
Masahiro and I were fortunate to contribute some RCMC analyses to this beautiful paper from Koska and Wysocka that comprehensively dissects the determinants of promoter competition: www.nature.com/articles/s41...
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Alfonso Martinez Arias @amartinezarias.bsky.social · 23/07/2026
Tribute to Gail Martin www.sciencedirect.com/science/arti... Discoverer of #EScells whose curiosity went beyond cells, genes / embryos. Good for younger generations to learn @ these giants. NB. Unfathomable why she was overlooked for a Nobel Prize, though this says more @ prizes than @ her.
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Cell - a Cell Press journal @cp-cell.bsky.social · 17/07/2026
Now online! Robust regulatory interplay of enhancers, facilitators, and promoters in a native chromatin context
dlvr.it
Robust regulatory interplay of enhancers, facilitators, and promoters in a native chromatin context
Using an in situ genome-rewriting platform, Zhou et al. demonstrate that precise transcriptional regulation of the NMU promoter is governed by a 3D regulatory hub comprising a core retroviral LTR enhancer, a decoy LTR promoter, and activity-boosting “facilitator” elements.
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Earl K. Miller @earlkmiller.bsky.social · 15/07/2026
MIT Professor Susumu Tonegawa, renowned molecular biologist and Nobel laureate, dies at 86 news.mit.edu/2026/mit-pro... #neuroscience
news.mit.edu
MIT Professor Susumu Tonegawa, renowned molecular biologist and Nobel laureate, dies at 86
Susumu Tonegawa, a renowned MIT professor of biology and neuroscience and a Nobel laureate, has died at the age of 86. His discovery of how the immune system generates many different antibodies earned...
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