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Grant Stewart

@profstewartlab.bsky.social
718 followers 265 following 20 posts

Group leader at the University of Birmingham interested in rare diseases caused by inherited defects in DNA repair and replication. Amateur geologist/palaeontologist and shark enthusiast.

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Grant Stewart @profstewartlab.bsky.social · 24/08/2026
Amazing collaboration with the @andrewblackford.bsky.social @fenaochs.bsky.social and Zafar Iqbal on the identification of DDIAS as a new mitotic repair factor that is mutated in a novel chromosomal instability syndrome. www.cell.com/cell/fulltex...
cell.com
DDIAS shields single-stranded DNA in mitosis and promotes vertebrate brain development
DDIAS is identified as a factor that protects single-stranded DNA during mitosis to maintain chromosome stability, and inactivating mutations in DDIAS are identified in a human neurodevelopmental diso...
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Grant Stewart @profstewartlab.bsky.social · 18/03/2026
Finally our collaborative paper on inherited mutations in the actin nulceating factor, DIAPH1, spear-headed by the Houlden lab, @reza-maroofian.bsky.social, Valentina Galassi Deforie, Stephanie Efthymiou and Peter Arkwright, is out in Genetics in Medicine. www.gimjournal.org/article/S109...
gimjournal.org
Recessive Loss of DIAPH1 Function Causes a Progressive Neurodevelopmental Syndrome with Variable Immunological Involvement
Biallelic DIAPH1 pathogenic variants cause a neurodevelopmental syndrome occasionally associated with immunodeficiency. This study aims to define the clinical and immunological spectrum of DIAPH1-rela...
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Boulton Lab @boultonlab.bsky.social · 09/01/2026
We are excited to share that our latest work from the lab aimed at understanding how the tRNA nuclease SLFN11 is activated in response to DNA damage and replication stress has just been published in @natcellbio.nature.com! Open access link: www.nature.com/articles/s41... (1/9)
nature.com
Client Challenge
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Molecular Cell @cp-molcell.bsky.social · 08/01/2026
Online Now: IFI16 senses and protects stalled replication forks Online now:
dlvr.it
IFI16 senses and protects stalled replication forks
Gamble et al. demonstrate that detection of stalled replication forks by the innate immune sensor IFI16 induces an early STING-dependent pro-inflammatory cytokine response independently of cGAS and DNA damage. Furthermore, IFI16 exhibits dual functionality during replication stress by protecting stalled, remodeled replication forks from nucleolytic degradation.
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Grant Stewart @profstewartlab.bsky.social · 19/12/2025
Awesome collaboration with @SPJacksonGroup, @drjhujh.bsky.social, Chris Carney and Soren Hough, understanding how inherited mutations in the MEAE E3 ubiquitin ligase causes disease by compromising HR-dependent replication fork protection/restart. link.springer.com/article/10.1...
link.springer.com
Loss of CTLH component MAEA impairs DNA repair and replication and leads to developmental delay - EMBO Molecular Medicine
Ubiquitin E3 ligases play crucial roles in the DNA damage response (DDR) by modulating the turnover, localization, activation, and interactions of DDR and DNA replication proteins. We performed a CRIS...
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Tatiana Moiseeva @tat1anamoiseeva.bsky.social · 18/12/2025
Ever wondered how TIMELESS/TIPIN can sit at the leading edge of the replication fork regulating its speed, but also bind polymerases and ssDNA/RPA in replication stress? We have an idea how it might work! Check out our new preprint, any feedback is highly appreciated! www.biorxiv.org/content/10.6...
a model for TIMELESS positions at the active fork: one complex sits at the leading edge of the fork, while the other one is on the lagging strand ssDNA/RPA, between the Okazaki fragments
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María Fernández-Casañas @emefece.bsky.social · 10/12/2025
Our @costerlab.bsky.social review is out! It’s a great read on the impact of DNA secondary structures on eukaryotic replication fork progression - a totally unbiased opinion, of course! www.sciencedirect.com/science/arti... @adityasethi.bsky.social @billiedelpino.bsky.social
sciencedirect.com
How DNA secondary structures drive replication fork instability
DNA secondary structures, such as hairpins, cruciforms, triplexes, G-quadruplexes and iMotifs, are common, dynamic features that replication forks rou…
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Alberto Marin @albertomarin.bsky.social · 04/12/2025
Thrilled to share that my postdoc research is published today in @science.org! We found that DNA repair uses cohesin complexes to build new chromatin loops that guide the homology search and boost accurate repair! 1/n www.science.org/doi/10.1126/...
science.org
Cohesin drives chromatin scanning during the RAD51-mediated homology search
Cohesin folds genomes into chromatin loops, the roles of which are under debate. We found that double-strand breaks (DSBs) induce de novo formation of chromatin loops in human cells, with the loop bas...
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Grant Stewart @profstewartlab.bsky.social · 06/11/2025
Interested in inherited chromosomal instability syndromes and DNA repair? We are looking for an enthusiastic person to join the Stewart lab at the University of Birmingham as a senior technician. Please checkout the job advert: www.jobs.ac.uk/job/DPH515/senior-research-technician
jobs.ac.uk
Senior Research Technician at University of Birmingham
An academic position as a Senior Research Technician is being advertised on jobs.ac.uk. Click now to find more details and explore additional academic job opportunities.
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Petr Cejka @cejkalab.bsky.social · 30/10/2025
Among the anti-recombinases, FIGNL1 rules them all. So much that inactivating it brings BRCA2-deficient cells to life. Who is responsible for RAD51 loading without BRCA2/FIGNL1, check out the paper to find out! Great collaboration with @raychaudhurilab.bsky.social www.science.org/doi/10.1126/...
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Lopes_Lab @lopeslab.bsky.social · 30/10/2025
Happy to have contributed to this interesting study from penengolab.bsky.social! another interesting example of how chromatin modifications and their readers orchestrate replication fork plasticity and protection 👏👇
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Shicheng Guo @shihcheng.bsky.social · 30/10/2025
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 doi.org/10.1038/s41556-025-01669-y #Medsky #Pharmsky #RNA #ASHG #ESHG 🧪
doi.org
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
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The EMBO Journal @embojournal.org · 27/10/2025
What specific targets & roles are there for all distinct polyubiquitin chain types? Niels Mailand, Robert Shearer et al profile a panel of #ubiquitin replacement cell lines, implicating K29 chains in chromatin regulation via SUV39H1 destabilization www.embopress.org/doi/full/10....
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Petr Cejka @cejkalab.bsky.social · 27/10/2025
See our paper “Mechanism of trinucleotide repeat expansion by MutSβ-MutLγ and contraction by FAN1”. Using biochemistry, we show how DNA incisions by the MutLγ nuclease can lead to expansions, and how expansion is prevented by FAN1. Well done Issam and Valentina! www.nature.com/articles/s41...
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stapleslab.bsky.social @stapleslab.bsky.social · 22/10/2025
New preprint from the lab for any DNA repair or replication stress geeks out there! www.biorxiv.org/content/10.1...
biorxiv.org
A nuclease-driven mechanism of post-replicative ssDNA gap suppression.
The persistence of post-replicative ssDNA gaps following PRIMPOL-mediated replication repriming is linked to chemosensitivity, and in all models reported to date the nuclease MRE11 has been implicated...
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Fena Ochs @fenaochs.bsky.social · 10/09/2025
Delighted to share our lab's first preprint identifying DDIAS as a mitotic DNA repair protein. Great collaboration with the @andrewblackford.bsky.social, @tcr-miller.bsky.social and @profstewartlab.bsky.social labs, and many more. Read the paper here: www.biorxiv.org/content/10.1...
biorxiv.org
DDIAS is a single-stranded DNA-binding effector of the TOPBP1-CIP2A complex in mitosis
DNA double-strand breaks and unresolved DNA replication intermediates are particularly dangerous during mitosis. Paradoxically, cells inactivate canonical DNA repair mechanisms during chromosome segre...
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Grant Stewart @profstewartlab.bsky.social · 08/09/2025
Great work by the Kitagawa lab about DONSON regulating centrosome duplication is finally out in Nature Comms www.nature.com/articles/s41...
nature.com
The DNA replication machinery transmits dual signals to prevent unscheduled licensing and execution of centrosome duplication - Nature Communications
Cell division requires strict control of DNA replication and centrosome duplication. Here, the authors reveal that DNA replication machinery transmits dual signals to control proper timing of centroso...
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Grant Stewart @profstewartlab.bsky.social · 07/08/2025
Great paper by the Vaziri lab about the role of RNF25 regulating the DDR independently of its E3 ligase activity! www.nature.com/articles/s41...
nature.com
The RING finger E3 ligase RNF25 protects DNA replication forks independently of its canonical roles in ubiquitin signaling - Nature Communications
DNA replication stress is a driver of genome instability. Here, the authors identify a role of the E3 ligase RNF25 in promoting replication stress tolerance. Mechanistically, RNF25 recruits the fork p...
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Niels Keijzer @nkeijzer.bsky.social · 31/07/2025
I'm very proud that our paper, and with that the main project of my PhD, has just been published by @natcomms.nature.com! 🎉 Here, we reveal the unique, molecular mechanism by which USP1/UAF1 cleaves ubiquitin chains on PCNA, which may direct DNA damage tolerance. doi.org/10.1038/s414...
doi.org
USP1/UAF1 targets polyubiquitinated PCNA with an exo-cleavage mechanism that can temporarily enrich for monoubiquitinated PCNA - Nature Communications
DNA damage tolerance is regulated by ubiquitination of PCNA. Here, the authors present kinetic and structural studies showing that USP1/UAF1 prefers trimming K63- and K48-ubiquitin chains down over cl...
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Molecular Cell @cp-molcell.bsky.social · 26/06/2025
Online Now: The DNA replication checkpoint limits Okazaki fragment accumulation to protect and restart stalled forks Online now:
dlvr.it
The DNA replication checkpoint limits Okazaki fragment accumulation to protect and restart stalled forks
Canal et al. used biochemical reconstitution of DNA replication to show that continued Okazaki fragment synthesis after nucleotide exhaustion depletes PCNA, RFC, and DNA polymerases ε and δ, deprotecting replication forks and impairing restart. By limiting Okazaki fragment generation and factor depletion, the replication checkpoint protects forks, allows restart, and promotes survival.
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Eva Petermann @petermannlab.bsky.social · 24/06/2025
Birmingham Centre for Genome Biology 2025 Anniversary Conference, 11-12 September! This symposium covers DDR and gene regulation. Register here: uobevents.eventsair.com/birmingham-c...
uobevents.eventsair.com
Home - Birmingham Centre for Genome Biology 2025
BCGB 2025, Birmingham Centre for Genome Biology Conference 2025
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Andrew Blackford @andrewblackford.bsky.social · 29/05/2025
We’re #hiring, please share! A fully funded #postdoc position is available in my lab to work on DNA damage response mechanisms. Please get in touch with your CV if you are interested; closing date: 27th June 2025. More details here: candidate.hr-manager.net/ApplicationI...
candidate.hr-manager.net
Postdoctoral Research Associate in the Blackford Group
A position as Postdoctoral Research Associate is available at the Department of Cellular and Molecular Medicine, in the group headed by Dr. Andrew Blackford. Th
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Grant Stewart @profstewartlab.bsky.social · 18/06/2025
Awesome paper from the Steve Jackson and Johannes Walter labs about USP37 and TRAIP regulating the replication response to topoisomerase inhibitors. Glad to have been a part of it. www.nature.com/articles/s41...
nature.com
USP37 prevents premature disassembly of stressed replisomes by TRAIP - Nature Communications
The replicative helicase CMG is targeted for removal or proteolysis by the E3 ubiquitin ligase TRAIP. This study describes how the de-ubiquitylating enzyme USP37 protects genome stability by preventin...
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Molecular Cell @cp-molcell.bsky.social · 09/06/2025
BRCA2 C-terminal clamp restructures RAD51 dimers to bind B-DNA for replication fork stability
dlvr.it
BRCA2 C-terminal clamp restructures RAD51 dimers to bind B-DNA for replication fork stability
With detailed structural and molecular analyses, Longo et al. find that the BRCA2 C-terminal TR2, which is a critical cancer therapy resistance factor, reshapes the RAD51 dimer for B-DNA binding that is incompatible with double-strand break repair interactions but activates it in DNA replication fork protection.
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Cell Reports @cp-cellreports.bsky.social · 27/05/2025
USP37 protects mammalian cells during DNA replication stress by counteracting CUL2LRR1 and TRAIP
dlvr.it
USP37 protects mammalian cells during DNA replication stress by counteracting CUL2LRR1 and TRAIP
Villa et al. show that the USP37 deubiquitylase is tethered to the CMG helicase at DNA replication forks in mammalian cells. USP37 protects cells during DNA replication stress by counteracting two replisome-coupled ubiquitin ligases. USP37 counteracts CUL2LRR1 during DNA synthesis defects and opposes TRAIP in response to topological stress.
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Boulton Lab @boultonlab.bsky.social · 27/05/2025
We are looking to recruit three posts at the @crick.ac.uk in structural biology, cell biology, and pharmacology to join a 20+ strong multidisciplinary team focused on delivering the first precision medicines for the treatment of ALT cancers. Interested? Please check out the advertised jobs below:
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The Downs Lab @thedownslab.bsky.social · 27/05/2025
New preprint from the lab on ARID1A, G quadruplexes, and repair: www.biorxiv.org/content/10.1...
biorxiv.org
ARID1A stabilises non-homologous end joining factors at DNA breaks induced by the G4 ligand pyridostatin
ARID1A is a subunit of the BAF chromatin remodelling complex that is frequently mutated in cancer. It is challenging to predict how ARID1A loss impacts cancer therapy response because it participates ...
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Reza Maroofian @reza-maroofian.bsky.social · 18/05/2025
Loss of XRCC1 disrupts cerebellar development in zebrafish due to toxic PARP1 accumulation. Strikingly, parp1 knockdown rescues the XRCC1 phenotype, supporting PARP1 inhibition as a potential therapy in recessive XRCC1-related neurodegenerative disorders with ataxia. www.nature.com/articles/s41...
nature.com
Parp1 deletion rescues cerebellar hypotrophy in xrcc1 mutant zebrafish - Scientific Reports
Scientific Reports - Parp1 deletion rescues cerebellar hypotrophy in xrcc1 mutant zebrafish
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Grant Stewart @profstewartlab.bsky.social · 14/05/2025
Proud to present our work identifying a role for DIAPH1 and gamma-actin in regulating DSB repair and how defects in this pathway give rise to human disease. Big thanks to everyone involved, especially Beth Woodward, Sudipta Lahiri and @anoopsinghchauhan.bsky.social. www.nature.com/articles/s41...
nature.com
Inherited deficiency of DIAPH1 identifies a DNA double strand break repair pathway regulated by γ-actin - Nature Communications
DNA double strand break repair pathways ensure genome stability and prevent disease. Here the authors show that the actin nucleating factor DIAPH1 and γ-actin promote homologous recombination (HR)-dep...
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JStark lab @jstarklab.bsky.social · 12/05/2025
New preprint from the lab @kaelamakins.bsky.social Genetic interactions between 53BP1-RIF1 and DNA-PKcs for DSB repair outcomes. www.biorxiv.org/content/10.1...
biorxiv.org
53BP1/RIF1 and DNA-PKcs show distinct genetic interactions with diverse chromosomal break repair outcomes.
DNA double strand breaks (DSBs) are the effective lesion of cancer radiotherapy and induce gene editing. 53BP1 accumulates at DSBs and is implicated in end joining (EJ) repair, but its influence on DS...
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Andrew Deans @genomestability.bsky.social · 25/04/2025
FANCX=FAAP100, new Fanconi Anemia gene Two new papers identify 3 families with FAAP100 homozygous mutations leading to severe developmental and hematologic abnormalities leading to death in utero or in early life. www.jci.org/articles/vie... www.jci.org/articles/vie...
jci.org
JCI - Genetic inactivation of FAAP100 causes Fanconi anemia due to disruption of the monoubiquitin ligase core complex
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Anoop Chauhan @anoopsinghchauhan.bsky.social · 14/04/2025
📢 Just published! Excited to share my latest research, now published in Nature Communications! Grateful to my collaborators and mentors who made this work possible. @profstewartlab.bsky.social @Jo Morris, @Aneika C. Leney, @drjhujh.bsky.social www.nature.com/articles/s41...
nature.com
PIN1-SUMO2/3 motif suppresses excessive RNF168 chromatin accumulation and ubiquitin signaling to promote IR resistance - Nature Communications
The ubiquitin ligase, RNF168, promotes DNA break repair but must be regulated to prevent run-away ubiquitin signaling. Here, the authors identify a three-step post-translational cascade regulating RNF...
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Ronan Broderick @brodericklab.bsky.social · 31/01/2025
My lab is #hiring! I am recruiting for two #Postdoc positions investigating the Alternative Lengthening of Telomeres mechanism. www.jobs.ac.uk/job/DLO693/r... www.jobs.ac.uk/job/DLP016/r... #Telomere #DNAreplication #DNArepair #cancer #glioma #UKRI #MRC #universityofbirmingham #NGS
jobs.ac.uk
Research Fellow at University of Birmingham
Discover an exciting academic career path as a Research Fellow at jobs.ac.uk. Don't miss out on this job opportunity - apply today!
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The EMBO Journal @embojournal.org · 22/01/2025
The Shu complex –a conserved homologous recombination factor– interact with ORC and MCM replication initiation factors to facilitate error-free bypass of replicative DNA damage Kara Bernstein, Katrin Paeschke and coworkers www.embopress.org/doi/full/10....
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Silvia De Rubeis @derubeislab.bsky.social · 18/01/2025
Happy to share our new review with Chiara Fiorenzani and Adele Mossa published on @cp-trendsgenetics.bsky.social 🧬 🧠 This work is dedicated to the loving memory of Dr. Daniele Di Marino ❤️ urldefense.proofpoint.com/v2/url?u=htt...
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Journal of Experimental Medicine @jem.org · 21/01/2025
Chen, Wu, Li, Li, et al. (Chongqing Medical University) report that DEK accumulates in Fancd2−/− HSCs and CD34⁺ cells from patients with Fanconi anemia, causing #chromatin relaxation failure under replication stress. buff.ly/40IoKSQ #Hematopoiesis
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Cantorlab @cantorlab.bsky.social · 21/01/2025
Congratulations to Jenna Whalen on her Nature Cancer paper out today-a distinct take on nicks and their toxicity! rdcu.be/d60Td
rdcu.be
Targeting BRCA1-deficient PARP inhibitor-resistant cells with nickases reveals nick resection as a cancer vulnerability
Nature Cancer - Whalen et al. report that increased DNA end resection in BRCA-deficient, PARP inhibitor-resistant cancers leads to increased sensitivity to DNA nicks, limiting tumor formation in...
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bioRxiv Cell Biology @biorxiv-cellbio.bsky.social · 12/01/2025
Identification of critical factors of the replication stress response in human cells www.biorxiv.org/content/10.1101/202…
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bioRxiv Cell Biology @biorxiv-cellbio.bsky.social · 13/01/2025
The PST repeat region of MDC1 is a tunable multivalent chromatin tethering domain www.biorxiv.org/content/10.1101/202…
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Tony Cesare @thecesarelab.bsky.social · 13/01/2025
1/Delighted to announce the newest paper from our lab, “Homologous recombination promotes non-immunogenic mitotic cell death upon DNA damage”, is out today in @naturecellbiology.bsky.social, www.nature.com/articles/s41....
nature.com
Homologous recombination promotes non-immunogenic mitotic cell death upon DNA damage - Nature Cell Biology
Szmyd et al. show that DNA repair pathways impact whether cells with DNA lesions arrest in mitosis. The formation of homologous recombination-driven double Holliday junctions elicits mitotic cell deat...
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Grant Stewart @profstewartlab.bsky.social · 06/01/2025
Great paper about p38 and endometrial cancer from a long-term collaborator and friend, Cyrus Vaziri, just published in Cell Reports: www.cell.com/cell-reports...
cell.com
MAPK14/p38α shapes the molecular landscape of endometrial cancer and promotes tumorigenic characteristics
Using unbiased CRISPR-Cas9-based genetic screens, Joseph et al. identify MAPK14/p38α as a dependency and vulnerability of high-grade endometrial cancer (HGEC) metastatic spheroids. MAPK14/p38α critically programs the phosphoproteome, transcriptome, and metabolome of HGEC spheroids, promoting cancer stemness and tumorigenicity.
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Harvard Med Cell Biology @harvardcellbio.bsky.social · 01/01/2025
New exciting work from the Chouchani Lab @harvardcellbio.bsky.social reports a global analysis of the zinc binding cysteine proteome. www.cell.com/cell/fulltex...
cell.com
The human zinc-binding cysteine proteome
A deep mapping of the human zinc-binding cysteine proteome (ZnCPT) defines thousands of zinc-binding protein cysteines across major domains of biology and discovers glutathione reductase as zinc-targetable cancer vulnerability.
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Titia Sixma @titiasixma.bsky.social · 17/12/2024
Despite the black picture below, we're really happy to have this illuminating story online! Careful molecular mechanistic from Niels and others in the lab work giving unexpected biological insight!
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Néstor García-Rodríguez @nestorgarciarod.bsky.social · 06/12/2024
Our last article about ssDNA gaps and BRCA1 👇🏻👇🏻 doi.org/10.1093/nar/...
doi.org
EXO1 and DNA2-mediated ssDNA gap expansion is essential for ATR activation and to maintain viability in BRCA1-deficient cells
Abstract. DNA replication faces challenges from DNA lesions originated from endogenous or exogenous sources of stress, leading to the accumulation of singl
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semirkin.bsky.social @semirkin.bsky.social · 04/12/2024
Another week, another great paper! Kudos to the amazing grad student, Chiara Masnovo who single-handedly initiated and led the project, and arranged a terrific collaboration with the Aharoni lab from Ben-Gurion University, and to the great members of the two labs. www.nature.com/articles/s41...?
nature.com
Stabilization of expandable DNA repeats by the replication factor Mcm10 promotes cell viability - Nature Communications
DNA repeats can lengthen or shorten during their replication, which may lead to a human disease. Here, the authors discovered that an essential replication protein, Mcm10, counteracts instability of G...
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Daniel Durocher @durocher1.bsky.social · 04/12/2024
Review on synthetic lethal strategies in oncology, with a small contribution from yours truly. www.nature.com/articles/s41...
nature.com
Synthetic lethal strategies for the development of cancer therapeutics - Nature Reviews Clinical Oncology
The experience with PARP inhibitors provides evidence of the clinical utility of synthetic lethality, whereby the simultaneous presence of two specific alterations is required for antitumour activity....
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marcelvanvugt.bsky.social @marcelvanvugt.bsky.social · 30/11/2024
Happy to share our study by Francien Talens and many colleagues on RAD51 foci formation as a functional marker for PARPi sensitivity in ovarian cancer PDX models. academic.oup.com/narcancer/ar...
academic.oup.com
RAD51 recruitment but not replication fork stability associates with PARP inhibitor response in ovarian cancer patient-derived xenograft models
Abstract. Poly(ADP‐ribose) polymerase (PARP) inhibitors (PARPis) are currently used to treat BRCA1/2 mutant cancers. Although PARPi sensitivity has been at
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Julian Stingele @jstingele.bsky.social · 28/11/2024
Happy to share our latest work🍾 🥳 PhD student Sophie Dürauer discovered together with many wonderful collaborators that the ubiquitylation of DNA-protein crosslinks promotes their cleavage by SPRTN more than 100-fold 🧬🔧
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Simon Bekker-Jensen lab @bekkerjensenlab.bsky.social · 26/11/2024
Time for our first post here 🥳 Our latest paper is online 🙌 We show that UV activates the ribotoxic stress response, which causes inflammation, cell death and thickening in skin. Read about a role for the RSR separate from DNA damage signaling in response to sunburn: ✨☀️ www.cell.com/molecular-ce...
cell.com
The ribotoxic stress response drives acute inflammation, cell death, and epidermal thickening in UV-irradiated skin in vivo
The acute skin reaction to sunburn, encompassing keratinocyte cell death, inflammation, and epidermal thickening, has traditionally been ascribed to DNA damage responses. Using a mouse model deficient...
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Micha Rapé Lab @micharapelab.bsky.social · 26/11/2024
Excited to report our discovery of an important component of the oxidative stress response: the E3 ligase TRIP12. It acts as a chain elongation factor that amplifies CUL3-KEAP1 activity to drive NRF2 degradation as cells recover from stress. www.biorxiv.org/content/10.1...
biorxiv.org
Dynamic regulation of the oxidative stress response by the E3 ligase TRIP12
The oxidative stress response is centered on the transcription factor NRF2 and protects cells from reactive oxygen species (ROS). While ROS inhibit the E3 ligase CUL3-KEAP1 to stabilize NRF2 and elici...
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