#NatureCellBio
🧵 What if one reason fertility declines with age isn’t just genetic-but mechanical?

Thrilled to share our new paper in
@NatureCellBio
:

Elevated contractility drives implantation failure in mouse embryos from aged females… here’s what we found 👇

www.nature.com/articles/s41...

1/11
Elevated contractility drives implantation failure in mouse embryos from aged females - Nature Cell Biology
Cavanaugh et al. show that embryos from aged mice have increased contractility and tissue viscosity on embryonic day 4.5, which leads to poor spreading and attachment. Similar age-associated mechanica...
www.nature.com
August 25, 2026 at 6:37 PM
#1 Happy to share our last work published in @NatureCellBio about a new cell cycle checkpoint that senses nuclear shape & mechanics to guarantee genome integrity
www.nature.com/articles/s41.... Great work from @sol-herve.bsky.social & Andrea Scelfo in close collaboration with @katemiro.bsky.social
Chromosome mis-segregation triggers cell cycle arrest through a mechanosensitive nuclear envelope checkpoint - Nature Cell Biology
Hervé, Scelfo et al. show that chromosome mis-segregation induces mTORC2- and ATR-mediated p53 activation through a mechanosensitive checkpoint at the nuclear envelope triggered by altered heterochrom...
www.nature.com
January 8, 2025 at 12:11 PM
#Heterochromatin #Celegans

H3K9me selectively blocks transcription factor activity and ensures differentiated tissue integrity

A must-read for heterochromatin learners👏

How much of this 🪱knowledge translatable to mammals?😆

Susan Gasser lab #NatureCellBio 2021
www.nature.com/articles/s41...
November 15, 2024 at 8:21 PM
A refreshingly fast and courteous response by authors after image problems were found in their @NatureCellBio paper. Thank you, Dr. Cleveland & Fachinetti, for quickly addressing the issues.
That is how it is done!
You can read the whole exchange here:
pubpeer.com/publications...
June 24, 2025 at 5:07 AM
Transposable Elements LTR7 as mechano-responsive enhancer elements

Matrix stiffness (40 vs 1 kPa)▶️
YAP/TEAD1-BRD4-CTCF▶️
FAM-LTR7▶️
FAM189A2▶️
⏬definitive endoderm differentiation hESC

352 TE subfamilies changed by Stiffness🤠

@yaruidiao.bsky.social #NatureCellBio 2025
www.nature.com/articles/s41...
October 30, 2025 at 11:03 AM
#PaperAlert we bring wonderful news about
@WAutophagy
... our Mericka McCabe and our founders just published a
@NatureCellBio
article explaining the wonders of our Network...don't miss a bit!! With very valuables testimonials of our volunteers...
rdcu.be/d10N6
Women in Autophagy: an initiative to promote gender parity in science
Nature Cell Biology - Scientific questions are universal but the scientific workforce remains skewed, with women and gender minorities still underrepresented. Initiatives such as the Women in...
rdcu.be
December 5, 2024 at 7:44 PM
LIANA+ models cell-cell communication for Spatial Mulitomics with single-cell data

"Using spatially weighted cosine similarity", specific locations for metabolite ligand-receptor interactions are identified
9 LR methods

github.com/saezlab/lian...

#NatureCellBio 2024
www.nature.com/articles/s41...
October 23, 2025 at 10:39 AM
Discover the mitochondrial transfer network between Leydig cells and testicular macrophages crucial for testosterone synthesis!🔥💡 PMID:41760931, Nat Cell Biol 2026, @NatureCellBio https://doi.org/10.1038/s41556-026-01896-x #Medsky #Pharmsky #RNA #ASHG #ESHG 🧪
https://doi.org/10.1038/s41556-026-01896-x
No description available
doi.org
April 18, 2026 at 6:10 AM
Intratumour oxidative hotspots drive cancer cell spread. T-AP1 probe reveals H₂O₂ microenvironments as key to tumour heterogeneity. New insights into metastasis! #CancerResearch PMID:39984655, Nat Cell Biol 2025, @NatureCellBio https://doi.org/10.1038/s41556-025-01617-w 🧪
February 27, 2025 at 9:10 AM
De novo Heterochromatin (H3K9me1/2/3) assembly (by G9a) stabilizes stalled/stressed replication fork (by Hydroxyurea)

Its timely disassembly by JMJD1A/KDM3A enables fork restart

Occurs at a time scale of minutes!😎

#NatureCellBio 2023
www.nature.com/articles/s41...
October 20, 2024 at 1:05 PM
Ever heard of 'cellular nibbling'?
In our @NatureCellBio paper, we’ve turned trogocytosis into a delivery tool for programmable medicine. Congrats to @xinyi-chen.bsky.social and team!
Link: rdcu.be/fa90i
@StanfordBioE @StanfordChEMH @CZBiohub
#GeneTherapy #SyntheticBiology
Programmable macromolecule delivery via engineered trogocytosis
Nature Cell Biology - Chen et al. engineer TRANSFER (trogocytosis-inspired receptor transfer and functional effector release), a method to deliver functional cargos from donor to recipient cells in...
rdcu.be
April 2, 2026 at 3:46 PM
Epithelial Zonation of 👦🐭small intestine
scRNAseq

5 (instead of 3) zones▶️Nutrient metabolism

3 Lgr5+ #IntestinalStemCell populations▶️a Hoxb7/8/9+ subset

ChEA3+SCENIC▶️transcrptional control of intestinal domains

#NatureCellBio 2024
www.nature.com/articles/s41...
February 18, 2024 at 8:07 AM
Tumor acidosis induces a CS-enriched glycocalyx, enhancing lipid scavenging and resisting ferroptosis. Exciting insights! PMID:41673170, Nat Cell Biol 2026, @NatureCellBio https://doi.org/10.1038/s41556-026-01879-y #Medsky #Pharmsky #RNA #ASHG #ESHG 🧪
https://doi.org/10.1038/s41556-026-01879-y
No description available
doi.org
April 18, 2026 at 5:10 AM
THY1⁺ CSCs drive metastasis via a pseudohypoxic state. Key roles: IL-6-MYC signaling, neutrophil mitochondria. Multi-omics reveal! PMID:41680445, Nat Cell Biol 2026, @NatureCellBio https://doi.org/10.1038/s41556-026-01876-1 #Medsky #Pharmsky #RNA #ASHG #ESHG 🧪
https://doi.org/10.1038/s41556-026-01876-1
No description available
doi.org
March 11, 2026 at 9:10 AM
Neutrophils release exosome-associated nuclear DNA to help resolve acute inflammation, preventing chronic disease progression. 🧬🔥 PMID:40404894, Nat Cell Biol 2025, @NatureCellBio https://doi.org/10.1038/s41556-025-01671-4 #Medsky #Pharmsky #RNA #ASHG #ESHG 🧪
Neutrophils secrete exosome-associated DNA to resolve sterile acute inflammation | Nature Cell Biology
Acute inflammation, characterized by a rapid influx of neutrophils, is a protective response that can lead to chronic inflammatory diseases when left unresolved. We previously showed that secretion of LTB4-containing exosomes via nuclear envelope-derived multivesicular bodies is required for effective neutrophil infiltration during inflammation. Here we report that the co-secretion of these exosomes with nuclear DNA facilitates the resolution of the neutrophil infiltrate in a mouse skin model of sterile inflammation. Activated neutrophils exhibit rapid and repetitive DNA secretion as they migrate directionally using a mechanism distinct from suicidal neutrophil extracellular trap release and cell death. Packaging of DNA in the lumen of nuclear envelope-multivesicular bodies is mediated by lamin B receptor and chromatin decondensation. These findings advance our understanding of neutrophil functions during inflammation and the physiological relevance of DNA secretion. Arya et al. report
doi.org
September 6, 2025 at 3:00 PM
The SCAP-FAM134B complex senses ER cholesterol, regulating ER-phagy & STING immunity. High cholesterol alters their interaction. PMID:41083602, Nat Cell Biol 2025, @NatureCellBio https://doi.org/10.1038/s41556-025-01766-y #Medsky #Pharmsky #RNA #ASHG #ESHG 🧪
Cholesterol sensing by the SCAP–FAM134B complex regulates ER-phagy and STING innate immunity | Nature Cell Biology
The endoplasmic reticulum (ER) is central to cholesterol biosynthesis and trafficking, yet paradoxically maintains low cholesterol levels, enabling it to sense fluctuations that impact various signalling pathways. However, the role of ER cholesterol in cellular signalling remains unclear. Here we show that the ER-phagy receptor FAM134B interacts directly with both cholesterol and SCAP, a key regulator of cholesterol biosynthesis. When ER cholesterol is high, FAM134B and SCAP are sequestered by cholesterol-tightened interactions, halting ER-phagy, STING activation and cholesterol synthesis. Under low cholesterol conditions, FAM134B dissociates from SCAP, allowing SCAP to activate SREBP2 and upregulate cholesterol synthesis, while FAM134B either facilitates ER-phagy through oligomerization or aids STING trafficking to activate innate immune responses. These findings reveal that the SCAP–FAM134B complex senses ER cholesterol levels, regulating both ER-phagy and immune signalling, with imp
doi.org
November 15, 2025 at 3:10 AM
New tech for macromolecule transfer: Engineered receptors enable direct protein delivery between cells via trogocytosis! #BiotechRevolution PMID:41922519, Nat Cell Biol 2026, @NatureCellBio @Stanford https://doi.org/10.1038/s41556-026-01920-0 #Medsky #Pharmsky #RNA #ASHG #ESHG 🧪
Programmable macromolecule delivery via engineered trogocytosis | Nature Cell Biology
Trogocytosis, the transfer of plasma membrane fragments during cell–cell contact, offers potential for macromolecular delivery but is limited by the uncertain fate of trogocytosed molecules, restriction to membrane cargo and unclear generalizability. Here we demonstrate that donor cells engineered with designed receptors specific to surface ligands can transfer proteins to recipient cells through direct contact. We identified key engineering principles for enhancing transfer and ensuring cargo functionalization, including receptor design, pH-responsive membrane fusion, inducible cargo localization and release, and subcellular translocation. The method is broadly applicable across diverse cell types and operates through a dynamin- and endosome acidification-dependent pathway. Exploiting these findings, we developed TRANSFER, a versatile delivery system with programmable cell type specificity and tunability. TRANSFER can sense multiple ligand inputs, deliver large therapeutic protein car
doi.org
April 3, 2026 at 10:10 AM
Discover: glycosylated RNAs resist RNases, enhancing stability. Metabolic labelling unveils non-coding glycoRNAs.📊🔬 PMID:40467769, Nat Cell Biol 2025, @NatureCellBio https://doi.org/10.1038/s41556-025-01682-1 #Medsky #Pharmsky #RNA #ASHG #ESHG 🧪
Extracellular exosomal RNAs are glyco-modified | Nature Cell Biology
Epitranscriptomic modifications play pivotal roles in regulating RNA stability, localization and function. Recently, glycosylation has also emerged as an RNA modification, though its functional implications remain unclear. Here we report that metabolic labelling with a N-azidoacetylgalactosamine-tetraacylated bioorthogonal probe in mammalian cells reveals small, non-coding, glyco-modified RNAs (glycoRNAs) that exhibit unusual stability imparted by their resistance to RNases. These glycoRNAs are primarily found within exosome vesicles as intraluminal cargo, distinct from recently reported cell surface glycoRNAs. Importantly, exosomal glycoRNAs can be transferred to naive cells, highlighting a role in intercellular RNA communication. The inhibition of exosome biogenesis leads to intracellular glycoRNA accumulation, while blocking glycan transfer to proteins reduces glycoRNA sorting into exosomes. These findings suggest a regulatory link between protein and RNA glycosylation in exosome ca
doi.org
July 19, 2025 at 9:00 PM
Great share from @shihcheng.bsky.social
Trogocytosis as a protein delivery mechanism, engineered and controlled, is the kind of study that bridges #cell biology and clinical application in ways worth paying attention to. #Stanford via #NatureCellBio.
Follow @academaxjournals.bsky.social for more.
April 3, 2026 at 1:23 PM
🔥 Hot off the press: Researchers at the University of Chicago, in collaboration with the University of Pittsburgh, have published a groundbreaking study in @NatureCellBio demonstrating how the accumulation of a tumor metabolite impairs T cell function in the tumor microenvironment.
ow.ly/vxWI50VEJVm
Tumor byproduct blocks immune cells from fighting cancer - UChicago Medicine
Researchers from the University of Chicago and the University of Pittsburgh have identified a novel oncometabolite that accumulates in tumors and impairs immune cells’ ability to fight cancer.
ow.ly
April 21, 2025 at 2:43 PM
Colorectal cancer study finds peritumoural tissue key in immune evasion. High immune infiltration with CD8+ T cells noted. PMID:41714703, Nat Cell Biol 2026, @NatureCellBio https://doi.org/10.1038/s41556-026-01885-0 #Medsky #Pharmsky #RNA #ASHG #ESHG 🧪
Peritumoural adipose tissue drives immune evasion in colorectal cancer via adipose–mesenchymal transformation | Nature Cell Biology
Although peritumoural visceral adipose tissue (tVAT) is anatomically close to tumours such as colorectal cancer, the immune landscape of this tissue and its functional contribution to tumour immunity remain poorly defined. Here, we performed single-cell RNA analysis on the tVAT from patients with colorectal cancer to map its immune landscape and observed that tVAT exhibited a highly immune-infiltrated microenvironment enriched with lymphocytes, especially tumour-specific CD8⁺ T cells. Mechanistically, tVAT competes with the tumour for these immunocytes by activating the CXCL12–CXCR4 axis to promote tumour immune escape. Moreover, tumour-derived factors induce an adipose–mesenchymal transformation process where the adipose stromal cells trans-differentiated into adipose-derived cancer-associated fibroblasts, which secrete large amounts of CXCL12 in tVAT. Clinically, targeting adipose–tumour interaction substantially enhances diagnostic and therapeutic efficacy of anti-PD-1 therapy. Thes
doi.org
April 9, 2026 at 12:10 AM
RNA:DNA hybrids increase at DSBs, crucial for repair, but form without RNA polymerase recruitment. Discover insights on hybrid accumulation. PMID:40447771, Nat Cell Biol 2025, @NatureCellBio https://doi.org/10.1038/s41556-025-01669-y #Medsky #Pharmsky #RNA #ASHG #ESHG 🧪
Transcriptional repression facilitates RNA:DNA hybrid accumulation at DNA double-strand breaks | Nature Cell Biology
RNA:DNA hybrids accumulate at DNA double-strand breaks (DSBs) and were shown to regulate homologous recombination repair. The mechanism responsible for the formation of these non-canonical RNA:DNA structures remains unclear although they were proposed to arise consequently to RNA polymerase II or III loading followed by DSB-induced de novo transcription at the break site. Here, we found no evidence of RNA polymerase recruitment at DSBs. Rather, strand-specific R-loop mapping revealed that RNA:DNA hybrids are mainly generated at DSBs occurring in transcribing loci, from the hybridization of pre-existing RNA to the 3′ overhang left by DNA end resection. We further identified the H3K4me3 reader spindlin 1 and the transcriptional regulator PAF1 as factors promoting RNA:DNA hybrid accumulation at DSBs, through their role in mediating transcriptional repression in cis to DSBs. Altogether, we provide evidence that RNA:DNA hybrids accumulate at DSBs occurring in transcribing loci as a result o
doi.org
October 30, 2025 at 6:20 AM
New #NatureCellBiology: Cells release huge (up to 20µm) vesicles, "blebbisomes," with organelle-rich content. Discover their role in communication! 🧬🧫 #ScienceNews PMID:39984653, Nat Cell Biol 2025, @NatureCellBio https://doi.org/10.1038/s41556-025-01621-0 🧪
February 26, 2025 at 2:10 PM
Discover how phosphoinositide signaling orchestrates cell motility & adhesion. Key for development, immune response, cancer. PMID:40169755, Nat Cell Biol 2025, @NatureCellBio https://doi.org/10.1038/s41556-025-01647-4 #Medsky #Pharmsky #RNA #ASHG #ESHG 🧪
Phosphoinositide signalling in cell motility and adhesion | Nature Cell Biology
Cell motility and adhesion are fundamental components for diverse physiological functions, including embryonic development, immune responses and tissue repair. Dysregulation of these processes can lead to a range of diseases, including cancer. Cell motility and adhesion are complex and often require regulation by an intricate network of signalling pathways, with phosphatidylinositol phosphates (PIPs) having a central role. PIPs are derived from phosphatidylinositol phosphorylation and are instrumental in mediating membrane dynamics, intracellular trafficking, cytoskeletal organization and signal transduction, all of which are crucial for cellular responses to environmental stimuli. Here we discuss the mechanisms through which PIPs modulate cell motility and adhesion by examining their roles at focal adhesions, within the cytoskeleton, at protein scaffolds and in the nucleus. By providing a comprehensive overview of PIP signalling, this Review underscores their significance in maintaini
doi.org
April 13, 2025 at 12:10 AM
In Ashbya gossypii, Whi3 protein forms RNA condensates to synchronize nuclear division and growth in multinucleate cells. PMID:41772090, Nat Cell Biol 2026, @NatureCellBio https://doi.org/10.1038/s41556-026-01887-y #Medsky #Pharmsky #RNA #ASHG #ESHG 🧪
RNA-specific local translation is patterned by condensates for multinucleate cell growth | Nature Cell Biology
Coordination between growth and nuclear division is a common cell feature. In some syncytia, nuclei divide asynchronously throughout the cell but growth occurs only at discrete locations, raising the question how the processes are locally regulated and globally coordinated. In the syncytial fungus Ashbya gossypii, both cell cycle progression and hyphal elongation require condensates formed by the protein Whi3 in complex with distinct mRNA species. Here we show that Whi3 condensates are enriched for translation regulators and are associated with local, spatially patterned translation of specific target RNAs near nuclei and growth sites. Whi3–RNA condensates can both promote and repress mRNA translation in an RNA- and condensate size-dependent manner in vitro. Condensate interfaces are sites of translation, tunable by condensate composition, RNA valency and protein charge state in vitro. Together, these data suggest that Whi3 condensates can generate a continuum of translation states tha
doi.org
March 28, 2026 at 10:10 AM