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Vijay Ramani

@vram142.bsky.social
1.8K followers 644 following 125 posts

PI @ Gladstone Institutes & UCSF. Molecular technologies & the genomics / molecular biology / biochemistry of gene regulation. Views here mine & do not represent those of my affiliated institutions.

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Reposted by Vijay Ramani
Pravrutha Raman @pravrutharaman.bsky.social · 08/10/2026
Now that we have moved coasts, I am thrilled to share that the ChromEvo (Raman) lab is officially open at UMass Boston 🎉 We ask how CHROMatin EVOlution leads to functional innovation and we are hiring at multiple levels. Read on and share with folks who maybe interested chromevoramanlab.github.io
The logo with a phylogenetic tree, a budding yeast, a fly and a nucleosome that has Raman lab Chrom Evo written in the middle
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Srinivas Ramachandran @4everbiochemist.bsky.social · 06/10/2026
Fragmentation patterns of human telomeric chromatin in plasma cfDNA www.nature.com/articles/s41...
nature.com
Fragmentation patterns of human telomeric chromatin in plasma cfDNA - Nature Communications
Telomeres protect the ends of chromosomes, but their structure has been hard to study non-invasively. Here, the authors show that DNA fragments in blood plasma capture this structure, revealing change...
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Tineke Lenstra @tinekelenstra.bsky.social · 17/08/2026
Sign up now for the EMBO meeting 'quantitative biology to molecular mechanisms'. Fantastic speaker lineup and plenty of speakers slots selected from abstracts. Submit your abstract before Sept 11!
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Vijay Ramani @vram142.bsky.social · 24/09/2026
😅😆😂😭
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Jessica Mella @jmella.bsky.social · 21/09/2026
First Bluesky post for my new preprint! Super fun project with guidance from @abbybuch.bsky.social and @willowcoyote.bsky.social. We applied saturation mutagenesis to the Lamin A protein in #hiPSC derived cardiac cells to uncover cell type-specific mutation effects 1/ www.biorxiv.org/content/10.6...
biorxiv.org
Cardiomyocyte vulnerability to lamin polymer disruption revealed by saturation mutagenesis
Hundreds of mutations to the broadly expressed LMNA gene cause disease primarily within cardiac, muscular, and adipose tissues (1). Tissue-specific pathogenesis arises when mutant protein dysfunction ...
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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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Andre Rendeiro @andre-rendeiro.com · 15/09/2026
🚨 New preprint from the Rendeiro lab! We mapped human tissue aging at single-cell resolution: 3.5 billion cells, 16 organs, 980 donors, spanning the adult lifespan. Led by @e-abila.bsky.social 📄 www.biorxiv.org/content/10.6...
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Jens Schmidt @jenscs83.bsky.social · 15/09/2026
We are recruiting a postdoctoral fellow to study DNA damage repair via the homologous recombination pathway using quantitative cell biology approaches. The position will be initially supported for two years by the MSU Research Foundation Postdoctoral Scholars program. Please share! 1/5
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Arnaud Krebs @arnaudkr.bsky.social · 14/09/2026
your starter pack for Single Molecule Genomics! Why you should do it (or not) - How you should do it. Collective effort with @vram142.bsky.social @stirlingchurchman.bsky.social @naltemose.bsky.social A Stergachis M Stadler W Greenleaf @embl.org rdcu.be/PmzSEV529GRa
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Vijay Ramani @vram142.bsky.social · 14/09/2026
Everything you wanted to know about single-molecule epigenomics but were too afraid to ask! Wonderful to co-write (h/t ENORMOUS lift by @arnaudkr.bsky.social) this primer on our nascent field. Also, a 💯 example of wonderful colleagues building something *together*, not in competition =)
nature.com
A practical guide to studying genome function using single-molecule genomics
Nature Reviews Molecular Cell Biology - Single-molecule genomics methods are used to study the activity of regulatory factors on individual DNA molecules genome-wide, thereby enabling...
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Mike Dorrity @mwdorr.bsky.social · 13/09/2026
🧫 We’re hiring a staff/research scientist to develop new experimental approaches that capture cell state dynamics. Join us in Heidelberg, details + application here: embl.wd103.myworkdayjobs.com/EMBL/job/Hei... Closes September 30th
embl.wd103.myworkdayjobs.com
Laboratory Officer
The Dorrity group at EMBL Heidelberg is seeking a motivated and skilled molecular biologist to join as a Laboratory Officer. Our group uses cutting-edge single-cell genomic techniques to study how cel...
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janeskok.bsky.social @janeskok.bsky.social · 07/09/2026
Excited to share our new paper
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Mark Pownall @mpownall.bsky.social · 17/08/2026
First preprint from the lab 🚨 We asked when and how global chromatin organization emerges during early development 🐟
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Crow @abbyjane.cloverdalelane.com · 14/08/2026
I think about this a lot.
Tim Henke
@TimHenke9
eat shit, René Magritte
Translate Tweet
Mauv @ThatsMauvelous • 1d the machine refused to recognize my humanity until i professed to believe that a sign painted to look like a traffic light is indeed a traffic light.
Show this thread
Select all squares with traffic lights
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Arnaud Krebs @arnaudkr.bsky.social · 12/08/2026
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
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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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Kaushik Ragunathan @kaushikr.bsky.social · 03/08/2026
Our new study shows a CHD-family remodeler can nucleate and spread H3K9 methylation de novo, inverting the canonical hierarchy between writers and remodelers. www.biorxiv.org/content/10.6...
biorxiv.org
Nucleosome remodeling by a CHD enzyme promotes H3K9 methylation establishment and spreading via remodeler-writer feedback
In Schizosaccharomyces pombe , the conserved CHD remodeler Mit1 function within the SHREC remodeler-deacetylase complex (a homolog of the metazoan Mi-2/NuRD complex), which is essential for H3K9 methy...
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Jay Shendure @jshendure.bsky.social · 31/07/2026
Thrilled to post thread re: new single-cell lineage of mouse embryo reconstructed w/ DNA Typewriter. One animal, zygote to late organogenesis (E13.5). Tree has 1,340,794 transcriptionally profiled, annotated tips (cells), 1,142,588 dated internal nodes, rooted at zygote 1/n
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Jay Shendure @jshendure.bsky.social · 30/07/2026
New preprint from Shendure Lab on Locus-Scale aka Long-@$$ MPRAs led by the amazing Abby McGee & @carinabiar.bsky.social Most MPRAs test ~300 bp fragments next to a promoter. But real enhancers are bigger, act combinatorially and from a distance. 1/n www.biorxiv.org/content/10.6...
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Hiten Madhani @hitenmadhani.bsky.social · 30/07/2026
Next summer's Epigenetics GRC (I'm co-chairing with Deborah Bouch'is) is shaping up nicely with an all-star lineup of speakers working on a broad range of organisms and systems and everything from molecular mechanisms to new phenomena. Apply and put it on your calendar! www.grc.org/epigenetics-...
grc.org
2027 Epigenetics Conference GRC
The 2027 Gordon Research Conference on Epigenetics will be held in Holderness, New Hampshire. Apply today to reserve your spot.
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Elena Torlai Triglia @elett.bsky.social · 29/07/2026
1/ New paper alert! 🎉🧬 Our study on #9p21 gene regulation is out in #CellGenomics: "Chromatin topology and distal elements underlie divergent cell-type-specific regulation of 9p21 locus cell cycle genes" (Torlai Triglia, Miller, et al. www.cell.com/cell-genomic... 🧵
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Stirling Churchman @stirlingchurchman.bsky.social · 28/07/2026
RNA-seq tells us how much RNA is present in the cell. But to understand gene regulation, we need to easily measure the synthesis and decay rates driving this abundance. We introduce AIR-seq: analog intrinsic recoding sequencing. (1/6) www.biorxiv.org/content/10.6...
biorxiv.org
Analog intrinsic recoding measures RNA dynamics without chemical conversion
Steady-state RNA abundance measurements mask the synthesis and decay rates that shape gene expression. Analog intrinsic recoding sequencing (AIR-seq) repurposes the base-pairing properties of N4-hydro...
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Julio Abril Garrido @jabrilgarrido.bsky.social · 21/07/2026
Now online ahead of print in Molecular Cell @cp-molcell.bsky.social, congrats once again to all authors! For more info, see the paper online www.sciencedirect.com/science/arti... or the reposted thread below ⬇️
sciencedirect.com
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Jason Buenrostro @jbuenrostro.bsky.social · 18/07/2026
Thank you Broad Institute of MIT and Harvard for this profile. The last 2 years have been an extraordinary moment of creativity and inspiration. If you’re interested in joining us, PM me! We’re building new methods, models and ML tools - we’re recruiting at all levels!
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Ritu Raman @rituraman.bsky.social · 07/07/2026
Out today in PNAS: We show that dynamic "4D" forces can spatially pattern angiogenesis in a PIEZO1-dependent manner. Excitingly, changing force patterns over time enables redirecting sprouting trajectories, forming complex branched geometries: www.pnas.org/doi/10.1073/... #TissueEngineering
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Nitika Taneja @TanejaLab @nitikataneja.bsky.social · 01/07/2026
Very excited to share our new Nature study! We discovered that replication stress stabilizes CTCF-dependent chromatin loops enclosing stressed nascent DNA, where G9a-mediated heterochromatin protects it from nucleolytic degradation. rdcu.be/frzLg Huge thanks to all our collaborators and co-authors!
nature.com
Replication-stress-induced chromatin loops protect fork stability - Nature
Replication stress induces the formation of transient chromatin loops that enclose de novo heterochromatin-enriched stalled replication forks.
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MwahahahahahadScientist @mads100tist.bsky.social · 26/06/2026
Don't use slop. Someone's trying to make money out of you and your colleagues and your friends. Do yourself a favor and read 100% human-crated content in @prelights.bsky.social Upload preprints. Read preprints. Cite preprints. Fuck AI 🧪
prelights.biologists.com
Homepage - preLights
Welcome to preLights, the preprint highlights service run by the biological community and supported by The Company of Biologists. Here, a team of scientists regularly review, highlight and comment on ...
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Anders Sejr Hansen @andersshansen.bsky.social · 22/06/2026
(1/n) Very excited to share tri-lab collab (Mirny & Zechner) led by Harvey, Henrik & Jack: Q: How do enhancers & promoters interact in space (contact vs. action-at-a-distance) and time (stable vs. transient)? A: Transient E-P contact (~25-42 nm lasting ~10-20 sec): www.biorxiv.org/content/10.6...
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Mike Dorrity @mwdorr.bsky.social · 19/06/2026
First pre-print from the lab, a collaborative effort led by Jess Bourn @bournsupremacy.bsky.social, a fantastic PhD in my group. We resolve a key problem in development + evolution: how do we quantify heterochrony and link temporal variation to phenotype? www.biorxiv.org/content/10.6...
biorxiv.org
Quantitative mapping of heterochrony to species-specific phenotypes
The genetic program of animal development is conserved, but its rate of execution varies across species. Heterochrony, shifts in the relative timing of developmental events, generates phenotypic varia...
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Vijay Ramani @vram142.bsky.social · 18/06/2026
This work was made possible by the NIH / Common Fund, & now-lapsed 4D Nucleome funding. Truly a tour de force by @kaitezhang.bsky.social bringing this together; we're excited to hear what y'all think! Relatedly, if you are in the US please please remember to comment on the OMB Register. (7/7)
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Vijay Ramani @vram142.bsky.social · 18/06/2026
Read preprint for experiments Kaite performed to assess how fiber homotypy & loop extrusion are linked! One final vignette for bsky, courtesy amazing @rcollepardo.bsky.social group! We performed MD simulations of fibers informed by LASSI data, & see signs of fiber homotypy in silico! (6/n)
MD simulations of chromatin fibers
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Vijay Ramani @vram142.bsky.social · 18/06/2026
Fiber homotypy is concomitant with genomic distance yet persists in trans and is not solely due to sharing genomic loci. Bona fide fibers have signal unseen in shuffled synthetic fibers that are distance matched. It also correlates with shared TADs, compartments, and chromatin types. (5/n)
Distance dependence of the fiber homotypy phenomenon.
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Vijay Ramani @vram142.bsky.social · 18/06/2026
Thru single-molecule autocorrelation analysis, leiden clustering, and then statistical analyses, Kaite finds that hybrid molecules more commonly share spacing than expected by chance, a phenomenon we term fiber homotypy. (4/n)
plots describing fiber homotypy
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Vijay Ramani @vram142.bsky.social · 18/06/2026
Kaite's core finding revolves around a measurement that simply wasn't possible with pre-existing methods. LASSI enables the joint measurement of nucleosome spacing on interacting chromatin fibers thru proximity ligation. A lot of method optimization, building on great work from other groups (3/n)
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Vijay Ramani @vram142.bsky.social · 18/06/2026
In short, we discover that chromatin in close spatial proximity share nucleosome spacing patterns in the nucleus. Discovery was made possible via latest in "SAMOSA suite": Ligation Analysis of Single-molecule Sequence Interactions, or LASSI. SAMOSA + 3C = LASSI (we couldn't help ourselves 😆) (2/n)
Schematic of the LASSI method
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Vijay Ramani @vram142.bsky.social · 18/06/2026
JIT 4 summer, the latest preprint from our lab, brilliantly led by @kaitezhang.bsky.social w/ support from Collepardo lab (@juliamaristany.bsky.social / @janhuemar.bsky.social). www.biorxiv.org/content/10.6... describes a new single-molecule epigenomic method, & discoveries it enables ... (1/n)
biorxiv.org
Single-molecule nucleosome spacing coordinates chromatin fiber interactions
Nucleosome spacing influences higher-order chromatin fiber organization in vitro but how this relates to cellular chromosome structure remains contentious. To address this, we developed Ligation Analy...
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Heng Li @lh3lh3.bsky.social · 16/06/2026
Minibwa is a hybrid of bwa-mem and minimap2 and the successor of bwa-mem for short-read mapping. ~4X/2.5X as fast as bwa-mem/bwa-mem2 for WGS reads at comparable accuracy. Native support of directional bisulfite-seq. Applicable to long reads. Preprint at arxiv.org/abs/2606.15357
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Jon Henninger @jhenninger.bsky.social · 08/06/2026
Excited to share the first pre-print from our lab!! Check it out here! www.biorxiv.org/content/10.6... We found that many RNA-binding proteins canonically understood to regulate RNA processing can also function like transcription factors and cofactors to directly regulate transcription.
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Dan Landau @landau.bsky.social · 04/06/2026
Exciting breakthrough technology from the lab, now live in @cellcellpress.bsky.social ! Instead of cutting the genome where proteins bind (e.g., Cut&Tag), D&D-seq scars the DNA with a deaminase, allowing single cell genome mapping of TFs and chromatin remodellers!
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Karolin Luger @nucleosomepolice.bsky.social · 18/05/2026
Out today - structure of the human HIRA histone chaperone complex bound to nucleosomes. Ever wondered how nucleosomes are assembled in the wake of transcription? It takes a 'hulk of a protein complex'. Work by the amazing Wei Tian weetian558.bsky.social. www.biorxiv.org/content/10.6... 🧵
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Alex Ip 葉清霖 @alexip718.com · 18/05/2026
If you're reading this, my cat and I have boarded a one-way flight out of the United States. The Trump administration wrongfully denied my work permit renewal; after months of demanding that they follow the law, we have run out of legal recourse, and I have no choice but to leave the country. (🧵)
giveinmay.org
Support Alex's Emergency Relocation + Next Steps on Give In May
Alex is leaving the US after his work permit renewal was wrongfully denied by Trump's USCIS.
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Elphege Nora Lab at UCSF @elphegenoralab.bsky.social · 13/05/2026
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 🧪 🧵👇
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bioRxiv Molecular Biology @biorxiv-molbio.bsky.social · 09/05/2026
Cohesin bridging as a physical principle of enhancer-promoter communication www.biorxiv.org/content/10.64898/20…
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Grand Lab @grandlab.bsky.social · 07/05/2026
Excited to share our first story led by @martinacapriati.bsky.social! How do cells control the expression of viability genes? We find that single transcription factors can drive both chromatin opening and gene activation from densely co-bound CpG island promoters, including at essential genes
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Gerlich Lab @gerlichlab.bsky.social · 06/05/2026
New preprint out!🧬 How do cells keep replicated sister chromatids linked for DNA repair while folding 3D loops for gene expression? Extrusion folds DNA but separates sisters, while cohesion connects them, risking mutual interference. How do they coexist?🧵👇 🔗 doi.org/10.64898/2026.05.02.722390 1/6
doi.org
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Schubeler Lab @schubelerlab.bsky.social · 07/05/2026
Excited to share our new study on CpG islands (CGIs) regulation by transcription factors (TFs)! CGIs drive most transcription initiation with unclear regulation. We find that chromatin-opening TFs are key players—following a surprisingly simple rule. 🧵 www.biorxiv.org/content/10.6... 1/9
biorxiv.org
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bioRxiv Genetics @biorxiv-genetic.bsky.social · 06/05/2026
Nucleosome remodeling by a CHD enzyme promotes H3K9 methylation establishment and spreading via remodeler-writer feedback www.biorxiv.org/content/10.64898/20…
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Vijay Ramani @vram142.bsky.social · 06/05/2026
I have extensive thoughts, but mostly based on forthcoming data from our group. Last week's study shows i.) that there are TFs (& even specific domains) that mediate distortion in cells, and ii.) that DNA / nuc-binding factors can directly regulate distortion (on in vitro reconstituted chromatin) 🙂
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Vijay Ramani @vram142.bsky.social · 06/05/2026
distortion is real & regulated! How TFs / other DNA binding proteins mediate nucleosome distortion, how processes like extrusion, txn, & replication impact distortion, and how distorted nucleosomes regulate nuclear processes important follow-ups we hope to address as we move forward! (4/4)
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Vijay Ramani @vram142.bsky.social · 06/05/2026
reanalyzing SAMOSA-ChAAT data from Saunders [...] Narlikar (2025) study on linker histone and HMGB1. (2) We perform additional experiments in iPSCs differentiating to endoderm, and (3) we quantify the occurrence / enrichment of TF motifs within nucleosome types. Suggests that nucleosome ... (3/n)
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