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Sorek Lab

@soreklab.bsky.social
3.7K followers 270 following 159 posts

The Sorek Lab Weizmann Institute of Science, Israel www.weizmann.ac.il/molgen/Sorek

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ChimeraX @chimerax.ucsf.edu · 25/09/2026
Make natural language requests to ChimeraX with the new Pellaeon plugin developed by Yam Amir that works with many free and paid large language models. Get Pellaeon using ChimeraX menu Tools / More Tools.... cxtoolshed.rbvi.ucsf.edu/apps/chimera...
PAR1 molecular structure shown in ChimeraX using Pellaeon chat bot.
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Maya Voichek @mayavoichek.bsky.social · 24/09/2026
Super excited to share my postdoctoral work at @imbavienna.bsky.social @viennabiocenter.bsky.social - We discovered that some retrotransposons, or "jumping genes" 🧬, are able to spread from cell to cell via a new viral infectivity route. A short thread: 🧵👇 (1/7)
AI-generated illustration of the soma-to-germline transmission of retrotransposons described in our work
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Martin Steinegger 🇺🇦 @martinsteinegger.bsky.social · 24/09/2026
AlphaFold Database is expanding into pandemic preparedness. Together with NVIDIA, DeepMind, EBI et al. we exhaustively predicted ~1.7 million homo- & heterodimers across 2,812 viral proteomes, resulting in 8,028 high-confidence predictions. 📄 research.nvidia.com/labs/dbr/ass... 🌐 alphafold.ebi.ac.uk
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Institute of Molecular Biotechnology @imbavienna.bsky.social · 23/09/2026
Can “jumping genes” spread like viruses? New research from the Brennecke lab at IMBA shows that, in fruit flies, certain transposable elements can break out of their own cell and slip into developing eggs—securing their passage to the next generation. Published in Cell: imba.science/4jdMuYQ
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Tominaga K. (tomiken) @pacyc184.bsky.social · 23/09/2026
A phage DUF669 protein mediates post-cleavage DNA repair against host CRISPR immunity | Nature Communications
nature.com
A phage DUF669 protein mediates post-cleavage DNA repair against host CRISPR immunity - Nature Communications
Using affinity purification-mass spectrometry, these authors identified the Healer system, a phage two-protein effector that repairs CRISPR-mediated DNA breaks via homologous recombination.
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Arc Institute @arcinstitute.org · 23/09/2026
Many important bacterial non-coding RNAs and structural elements remain undiscovered. To help, David Li, Garyk Brixi, Michael Fischbach, @brianhie.bsky.social & team introduce Minerva, which uses a genome language model to predict RNA base pairing, repeats, & other interactions from sequence alone.
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Anthropic @anthropic.extwitter.link · 23/09/2026
Claude has discovered a previously unknown enzyme system hidden in the DNA of bacteriophages. Beside the enzyme’s gene sits a long array of repeating DNA—a structure that looks somewhat similar to CRISPR. We don’t yet understand what this system does, but only a handful of known systems share it...
anthropic.com
Claude discovers a novel enzyme system with CRISPR-like repeats
Anthropic is an AI safety and research company that's working to build reliable, interpretable, and steerable AI systems.
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Anna Olina @annaolina.bsky.social · 22/09/2026
Excited to share this part of my research as a part of @multidefence.bsky.social: meet viPAO1 - the very best Pseudomonas strain for phage research😉 Also check out our temperate phage collection featuring PAnicatthedisco, PAthetic and some other new fun names🎉 www.biorxiv.org/content/10.6...
biorxiv.org
Engineering the Pseudomonas aeruginosa virus-isolation host viPAO1 reveals how host genetic barriers shape recoverable phage diversity
Cultured phage collections provide essential access to viral biology, but they capture only a small and biased fraction of natural phage diversity. Key barriers to diverse phage isolation are likely t...
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Eduardo Rocha @epcrocha.bsky.social · 22/09/2026
Great work led by @jmouradesousa.bsky.social, where we find that phage and satellite defense hotspots change by recombination exceedingly fast, producing novel defenses. Oddly, phage & their satellites exchange defenses with lots of elements from theirs and other types, but not among the two.
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Malcolm White @mfwhite2.bsky.social · 21/09/2026
New preprint from PhD student Yu Sun. TSR1 is a TIR effector specialised for CRISPR defence. It is an obligate dimer activated by cA3 and degrades its own activator using a ring nuclease domain. Perhaps the first confirmed dimeric TIR effector? www.biorxiv.org/content/10.6...
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Martin Steinegger 🇺🇦 @martinsteinegger.bsky.social · 19/09/2026
BFVD v3 contains 5.8M viral protein structures, 16× more than v2; 75% high quality, filling a major gap in AFDB coverage. It fully covers 72.6% of reference proteomes and spans 72.7% of ICTV species. Great work by @eunbelivable.bsky.social et al. 📄 www.biorxiv.org/content/10.6... 🌐 bfvd.foldseek.com
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Kenneth Loi @kenjmloi.bsky.social · 18/09/2026
Thank you, Jack Bravo, for the accompanying Science Perspective, “A viral origin for RNA-guided immunity.” www.science.org/doi/10.1126/...
science.org
A viral origin for RNA-guided immunity
Ancient viral warfare could be at the root of modern class 1 CRISPR bacterial defense systems
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Doudna Lab @doudna-lab.bsky.social · 19/09/2026
Out now in Science: Two papers from our lab reveal VIPR, an RNA-guided DNA-targeting system in bacteriophages, providing clues to the origins of CRISPR www.science.org/doi/10.1126/... www.science.org/doi/10.1126/... Congrats to Peter Yoon, @kenjmloi.bsky.social @terryzzy.bsky.social, T.Docter & team
science.org
A noncontiguous code for RNA-guided DNA recognition at the origin of CRISPR-Cas
CRISPR-Cas provides RNA-mediated adaptive immunity, but how its first RNA-guided effector arose is unclear. In this study, we report the discovery of Viral Interference Programmable Repeat (VIPR) syst...
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PLOS Biology @plosbiology.org · 17/09/2026
Most #bacterial #immune systems raise an alarm when they sense a #phage. This Primer explores a @plosbiology.org study showing how type II Panoptes reverses this logic by maintaining a quiet signal & sensing infection through its sudden disappearance 🧪 Paper: buff.ly/1ixwg9v Primer: buff.ly/WmnHZBp
Type II Panoptes inverts the logic of nucleotide signaling in bacterial immunity. Top: In type III CRISPR-Cas, Cas10 synthesizes cyclic oligoadenylates (cAn) only upon infection; the signal binds and activates a CARF effector, arresting growth. Type II Panoptes does the reverse. Its mCpol enzyme produces cA3 constitutively at low levels, and this signal keeps the CARF-TM effector repressed. Infection is sensed not as the appearance of a signal, but as its disappearance: when phage enzymes (Acb1 given as an example) deplete cA3, the effector is released and growth arrests. Bottom: Because Acb1 evolved to disable cyclic-nucleotide defenses such as type III CRISPR, a phage carrying it strips cA3 as collateral damage and triggers Panoptes. A phage lacking Acb1 avoids this trap but remains vulnerable to CRISPR. Together, the two systems could impose an evolutionary trade-off on the phage.
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Kranzusch Lab @kranzuschlab.bsky.social · 17/09/2026
New enzymes that create natural phosphorothioate modifications in RNA share homology with proteins in bacterial DndABCDE anti-phage defense! www.cell.com/cell/abstrac...
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Malcolm White @mfwhite2.bsky.social · 16/09/2026
Our paper on type II Panoptes is now published at PLOS Biology with new data on phage escapers - quite a step up in microbiology for our lab, led by Sabine Gruschow. Thanks to @erc.europa.eu for funding dx.plos.org/10.1371/jour...
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PLOS Biology @plosbiology.org · 11/09/2026
#TrendingNow | Using a modified host, this study adds 36 new phages to the BASEL collection of phages that infect E. coli, revealing key roles of the O-antigen barrier in host recognition and restriction-modification systems in bacterial immunity. #ICYMI #MicroSky 🧪 buff.ly/grvuhX2
buff.ly
Completing the BASEL phage collection to unlock hidden diversity for systematic exploration of phage–host interactions
The BASEL collection of phages that infect E. coli has been a valuable resource, but is limited by the peculiarities of the host strain used. This study uses a modified host to expand the collection…
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Osterman Ilya @ostermanilya.bsky.social · 12/09/2026
Congratulations to @francoisrousset.bsky.social and colleagues, who discovered NIR—“NADase in bacterial immunity and vault ribonucleoproteins”—a new NAD⁺-depleting domain! NAD⁺ is involved in defense yet again, while its reconstitution by NARP1 was shown to help phages overcome this defense :)
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Cell Host & Microbe @cp-cellhostmicrobe.bsky.social · 09/09/2026
Gabija restricts phage circularization & DNA replication Gabija prevents phage genome circularization & replication w/out impacting bacterial host. Exposed DNA ends & phage end-binding proteins license DNA targeting while RecBCD protects host from Gabija www.cell.com/cell-host-mi...
cell.com
Gabija restricts phage circularization and DNA replication
Gabija acts early during phage infection, preventing phage genome circularization and replication. Phage DNA end-binding proteins prevent RecBCD loading onto linear DNA, and the absence of RecBCD lice...
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Paul Hoskisson 🧫 🦠🐸 @paulhoskisson.bsky.social · 09/09/2026
Wow, this is getting fascinating with these NADases - seems pretty widespread - three BioRxivs on this exciting antiviral system in a matter of months from the Ibarra-Chavez lab www.biorxiv.org/content/10.6... and Tagliabracci lab www.biorxiv.org/content/10.6...
biorxiv.org
Antimicrobial-resistance plasmids encode Evangelion, a widespread DUF4062 anti-phage defence family
Many bacterial anti-phage defence systems are encoded by mobile genetic elements, yet much of this antiviral repertoire remains undiscovered. Antimicrobial-resistance plasmids are well known for disse...
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Sorek Lab @soreklab.bsky.social · 08/09/2026
An exciting study showing how understanding bacterial immunity reveals new functions in human biology. Congratulations François and colleagues!
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François Rousset @francoisrousset.bsky.social · 08/09/2026
🚨 We are excited to share the first preprint of our lab ! We discovered an NADase enzymatic domain in bacterial immunity and in the human protein TEP1. www.biorxiv.org/content/10.6...
biorxiv.org
A widespread NADase domain links bacterial immunity with human TEP1
Recent discoveries on bacterial immunity have revealed that several protein domains involved in anti-phage defense are conserved in eukaryotes, such as SIRim, TIR, PNP and gasdermin. Bacterial immune ...
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Tominaga K. (tomiken) @pacyc184.bsky.social · 07/09/2026
Structural and functional insights into QueC-family protein in QatABCD anti-phage system | Nature Communications
nature.com
Structural and functional insights into QueC-family protein in QatABCD anti-phage system - Nature Communications
Here the authors determine the structure and mechanism of the QatABCD anti-phage defense system, showing how the QueCfamily protein QatC recognizes QatB to enable bacterial antiviral immunity and highlighting a conserved role for QueC-family proteins in protein modification.
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Tatta Bio @tattabio.bsky.social · 04/09/2026
UniProt is where most researchers start when they want to understand a protein. As of today, prokaryotic entries there will show something new: genomic context, powered by SeqHub, right in the Sequence section of the page.
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Sorek Lab @soreklab.bsky.social · 31/08/2026
A giant of science. Rest in peace 🙏
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Sorek Lab @soreklab.bsky.social · 28/08/2026
👀
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STCmicrobeblog @stcmicrobeblog.bsky.social · 27/08/2026
the vibrios are setting off fireworks for you, bonnie, and your well-deserved copley medal
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Martin Steinegger 🇺🇦 @martinsteinegger.bsky.social · 26/08/2026
Foldseek-Interface enables fast search/clustering of the protein interface universe! We clustered 3.1M PDB dimers into 77,167 groups and found new interfaces keep appearing even as fold discovery plateaus. 🧵 📄 www.biorxiv.org/content/10.6... 🔎 search.foldseek.com/interface 🌐 interface.foldseek.com
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Stella Hurtley @smhsci.bsky.social · 21/08/2026
Out now in @science.org Virome-wide ubiquitin ligase discovery reveals diverse mechanisms of immune evasion | Science www.science.org/doi/10.1126/...
science.org
Virome-wide ubiquitin ligase discovery reveals diverse mechanisms of immune evasion
Viruses are intracellular parasites that reprogram the host proteome to promote replication and evade immune recognition. We applied a virome-wide library of ~10,000 open reading frames to discover vi...
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Savitski Lab @savitski-lab.bsky.social · 20/08/2026
1/5 How much phosphorylation can a single kinase deposit? In our new study with @typaslab.bsky.social out in @nature.com, phage T7's kinase (T7K) modifies almost all the E. coli proteome + more densely than all ~500 kinases do our own proteomes 🤯 www.nature.com/articles/s41...
nature.com
Pervasive phosphorylation by phage T7 kinase disarms bacterial defences - Nature
The T7 bacteriophage deactivates bacterial defence systems through T7K phosphorylation of nearly all host and phage proteins during infection.
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Richard Lenski @relenski.bsky.social · 19/08/2026
If Zachary Blount had one dollar for every cell he plated in his dissertation looking for new Cit+ mutations, he could single handedly pay off the US debt of $40,000,000,000,000. www.npr.org/2026/08/19/n...
Zachary Blount with giant stacks of petri dishes used in his research on historical contingency and the evolution of citrate use in the LTEE.
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Victor de Lorenzo (CNB, Madrid) @vdlorenzo.bsky.social · 19/08/2026
😱! www.nature.com/articles/s41...
nature.com
Pervasive phosphorylation by phage T7 kinase disarms bacterial defences - Nature
The T7 bacteriophage deactivates bacterial defence systems through T7K phosphorylation of nearly all host and phage proteins during infection.
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Emmanuele Severi @emmseveri.bsky.social · 14/08/2026
#microsky #phagesky #phage Phase variation FTW www.nature.com/articles/s41...
nature.com
Phage-encoded contingency loci enable bet-hedging against host defence mechanisms - Nature Microbiology
Diverse E. coli phage genomes have hypermutable DNA regions that promote reversible frameshift mutations through DNA polymerase slippage, generating population heterogeneity that enables host exploita...
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bioRxiv Microbiology @biorxiv-microbiol.bsky.social · 14/08/2026
Cyclase-generated 3',5'-cGMP activates PucsarTIR antiphage defense through a stepwise zig-zag aligned filament assembly www.biorxiv.org/content/10.64898/20…
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Ady Ragucci @aragucci.bsky.social · 12/08/2026
Excited to share our story on diadenylate cyclases in bacterial immunity! Building on the discovery of Panoptes, we present Panoptoo: a DAC operon that uses cUA to guard against phage infection. Grateful to @daniellehaley.bsky.social and @kranzuschlab.bsky.social www.biorxiv.org/content/10.6...
biorxiv.org
Bacterial diadenylate cyclase domains synthesize diverse nucleotide signals in anti-phage defense
Bacterial diadenylate cyclase (DAC) enzymes synthesize the nucleotide signal 3′3′ cyclic di-AMP (3′3′-c-di-AMP) to control osmoregulation, cell-wall homeostasis, and DNA-damage responses. Here we disc...
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Ben Morehouse @benmorehouse.bsky.social · 12/08/2026
So here is our final model for how we see PanDA defense operating: PanS makes c-di-AMP to keep PanE 'off'. Phage infection with Acb4 production leads to a decrease in free c-di-AMP, leading to activation of PanE. PanE disrupts the membrane.
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Ben Morehouse @benmorehouse.bsky.social · 12/08/2026
Today we are excited to introduce you to PanDA 🐼🐼🐼, a newly uncovered antiphage system!! Attendees at @SISB2026 would have heard a little about this from graduate student Ali Nabhani back in May, but we are now out here in preprint form and delighted to share more of the details. (Thread below)
biorxiv.org
Minimal diadenylate cyclases have been co-opted to detect phage immune evasion
Many bacterial immune defenses transmit recognition of phage infection via the generation of diverse cyclic nucleotide second messengers. Phage have evolved to subvert this kind of immunity by sequest...
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Kranzusch Lab @kranzuschlab.bsky.social · 12/08/2026
The shared principles of human and bacterial antiviral immunity An honor to highlight remarkable discoveries from many labs over the past 12 years that unite previously disparate fields of how animal cells and prokaryotes defend against viruses. www.nature.com/articles/s41... rdcu.be/fzwyB
nature.com
Shared principles of human and bacterial antiviral immunity - Nature
The Review describes shared ancient, conserved mechanisms between human antiviral immunity and bacterial anti-phage systems, outlining universal principles of pathogen sensing, signalling and effector...
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bioRxiv Microbiology @biorxiv-microbiol.bsky.social · 12/08/2026
Minimal diadenylate cyclases have been co-opted to detect phage immune evasion www.biorxiv.org/content/10.64898/20…
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bioRxiv Microbiology @biorxiv-microbiol.bsky.social · 12/08/2026
Bacterial diadenylate cyclase domains synthesize diverse nucleotide signals in anti-phage defense www.biorxiv.org/content/10.64898/20…
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Jens Hör @jenshoer.bsky.social · 10/08/2026
Do you need to analyze bacterial microscopy data and are looking for an all-in-one tool for Windows or macOS? Check out BactoMate by Lasse Hallenga and Philipp Popp! I'm happy that we were able to contribute to this great work. www.biorxiv.org/content/10.6...
biorxiv.org
BactoMate: an integrated platform for reproducible bacterial microscopy analysis
Quantitative microscopy of microorganisms increasingly produces large, multidimensional datasets, yet their analysis often depends on fragmented workflows spanning file conversion, segmentation, quali...
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Landon Getz @landongetz.bsky.social · 06/08/2026
DNA glycosylases are repair enzymes, essential to all cellular life. They find chemically damaged bases and remove them so DNA can be repaired. Today in Nature Microbiology, we show bacteria have repeatedly repurposed them into antiviral immune systems 🧵 www.nature.com/articles/s41...
nature.com
Antiviral defence is a conserved function of diverse bacterial DNA glycosylases - Nature Microbiology
DNA glycosylases, typically used for DNA repair, can also protect bacteria against phages that would otherwise evade host immunity by incorporating modified bases into their genomes.
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Nature Microbiology @natmicrobiol.nature.com · 06/08/2026
Out Now! Antiviral defence is a conserved function of diverse bacterial DNA glycosylases #MicroSky
go.nature.com
Antiviral defence is a conserved function of diverse bacterial DNA glycosylases
Nature Microbiology, Published online: 06 August 2026; doi:10.1038/s41564-026-02441-0DNA glycosylases, typically used for DNA repair, can also protect bacteria against phages that would otherwise evade host immunity by incorporating modified bases into their genomes.
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Ben Lehner @benlehner.bsky.social · 03/08/2026
1st genome sequenced (Sanger 1977), 1st genome synthesised (Venter 2003), 1st genome + proteome fully mutated (Huijin Xiangua 2026!) @crg.eu @sangerinstitute.bsky.social Complete Mutagenesis of the Genome and Proteome of ΦX174 www.biorxiv.org/content/10.6...
biorxiv.org
Complete Mutagenesis of the Genome and Proteome of ΦX174
The bacteriophage ΦX174 was the first genome to be sequenced and the first to be chemically synthesised. Here we present a complete map of the consequences of changing every nucleotide in the ΦX174 ge...
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Martin Steinegger 🇺🇦 @martinsteinegger.bsky.social · 01/08/2026
Riboseek is a fast RNA/DNA search. More sensitive than nhmmer at 250x speed. Structure-aware realignment produces MSAs approaching rMSA quality. Plus 1.7M precomputed RNA MSAs, and an API to search your own 📄 www.biorxiv.org/content/10.6... 💾 github.com/steineggerla... 🌐 search.foldseek.com/riboseek
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BejaLabTechnion @bejalab.bsky.social · 31/07/2026
DNA polymerization activates RNA cleavage of a reverse transcriptase–like antiviral enzyme www.science.org/doi/10.1126/...
science.org
DNA polymerization activates RNA cleavage of a reverse transcriptase–like antiviral enzyme
Defense-associated reverse transcriptases (DRTs) transcribe noncoding RNAs (ncRNAs) for antiviral defense, but the mechanisms of ncRNA-independent DRTs remain unclear. In this work, we show that a sin...
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Nature Microbiology @natmicrobiol.nature.com · 30/07/2026
Out Now! Cell-autonomous immunity as an integrated immune network against bacterial and viral pathogens #MicroSky
go.nature.com
Cell-autonomous immunity as an integrated immune network against bacterial and viral pathogens
Nature Microbiology, Published online: 30 July 2026; doi:10.1038/s41564-026-02428-xThis Review summarizes the current knowledge about the cell-intrinsic factors that act against pathogenic bacteria and viruses and the immune evasion strategies that pathogens have to counteract cell-autonomous immunity.
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Sofia Luengo-Woods @sluengo.bsky.social · 30/07/2026
We’re so excited to share our new paper, where we tackle the wealth of structural and functional diversity of anti-phage sensors across bacteria (1/6)
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Nature @nature.com · 29/07/2026
Nature research paper: Diverse bacterial pattern recognition receptors sense the core phage proteome go.nature.com/45fpXCZ
go.nature.com
Diverse bacterial pattern recognition receptors sense the core phage proteome - Nature
Systematic analysis of prokaryotic STAND NTPases — relatives of animal and plant immune receptors — uncovers diverse antiviral sensors that detect most of the core structural and replicative proteins of bacteriophages.
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Craig Kaplan @triggerloop.bsky.social · 22/07/2026
Some bacteria use the CRISPR/Cas systems as transcriptional repressors of other anti-phage systems, such that when CRISPR interfered with, gene expression of repressed anti-phage systems goes up www.nature.com/articles/s41...
nature.com
CRISPR–Cas regulates expression of embedded anti-phage defence systems - Nature
CRISPR–Cas systems transcriptionally tune diverse innate defences using CRISPR RNA-like guides to balance antiviral protection with fitness, and hyperactivate these defences when compromised, establis...
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