Sign in

Thomas Arnesen

@natmachinery.bsky.social
1.3K followers 1.1K following 81 posts

Prof. Univ. of Bergen & Helse Bergen | Basic & translational science | Molecular Biology | Cancer | Endocrinology | Rare diseases | Cytoskeleton | Ribosome | Protein biogenesis | PTMs | N-terminal acetylation www.uib.no/en/rg/protein

PostsRepliesMedia
Reposted by Thomas Arnesen
International Society for Protein Termini (ISPT) @ispt-proteinterm.bsky.social · 30/09/2026
Before import: N-terminal acetylation at the interface of plastid protein targeting and proteostasis academic.oup.com/jxb/article-...
031
Reposted by Thomas Arnesen
Nature Communications @natcomms.nature.com · 22/09/2026
@jespervolsen, researchers @jesperolsenlab and colleagues establish a sensitive label-free workflow that quantifies up to 7,000 proteins per HeLa cell and up to 4,000 proteins in small H629human immune cells
dlvr.it
Extending single-cell proteomics from HeLa to small primary human immune cells - Nature Communications
Single-cell proteomics can reveal cellular heterogeneity but remains challenging for small cells. Here, the authors establish a sensitive label-free workflow that quantifies up to 7,000 proteins per HeLa cell and up to 4,000 proteins in small human immune cells.
032
Thomas Arnesen @natmachinery.bsky.social · 22/09/2026
The Uracil-DNA Glycosylase2 UNG2 is degraded via a novel N-degron | CTLH-MKLN1-FAM72A E3 ligase recognizes the N-terminally acetylated UNG2 | @ispt-proteinterm.bsky.social www.biorxiv.org/content/10.6...
032
Thomas Arnesen @natmachinery.bsky.social · 21/09/2026
Coenzyme A biosynthesis is regulated by two distinct Ubiquitin E3 ligase complexes | UBR4-KCMF1 and MKLN1-CTLH independently converge on a common N-terminal MK Arg/N-degron to promote PANK degradation and restrict CoA biosynthesis | @ispt-proteinterm.bsky.social www.biorxiv.org/content/10.6...
biorxiv.org
Parallel Arg/N-degron recognition systems regulate coenzyme A biosynthesis
Coenzyme A (CoA) is an essential metabolic cofactor whose biosynthesis is controlled by pantothenate kinases (PANKs), the rate-limiting enzymes in CoA synthesis. Although CoA production is extensively...
087
Reposted by Thomas Arnesen
N End Rules @n-end-rules.bsky.social · 16/09/2026
We introduce a new transducer of oxygen sensing: Cys2-HYT1 @isamanrique.bsky.social @charlene-kunaka.bsky.social Susanna Ubeda Tomas & @gunjansharma88.bsky.social ma88.bsky.social lead work defining HYT1 contribution to root hypoxia tolerance. @natcomms.nature.com www.nature.com/articles/s41...
nature.com
Hierarchical regulation of oxygen-sensing through coupled transducers in Arabidopsis thaliana - Nature Communications
The PLANT CYSTEINE OXIDASE (PCO) N-degron pathway contributes to oxygen sensing in plants. Here the authors identify HYPOXIA TRANSDUCER1 (HYT1) as a substrate of PCO and show it forms a coherent feed-...
22421
Reposted by Thomas Arnesen
International Society for Protein Termini (ISPT) @ispt-proteinterm.bsky.social · 13/09/2026
Rubisco, a CO2-fixing enzyme and a major reservoir of nitrogen and carbon in plant leaves, requires a unique N-terminal maturation pathway | Dong Xie et al. @giglionelab.bsky.social @ifink-lab.bsky.social www.science.org/doi/10.1126/...
0127
Thomas Arnesen @natmachinery.bsky.social · 13/09/2026
Tideglusib as a First-in-Class Chemical Probe for the major N-terminal acetyltransferase NatA | By Rong Huang's lab and collaborators @ispt-proteinterm.bsky.social pubs.acs.org/acbcct/artic...
043
Thomas Arnesen @natmachinery.bsky.social · 13/09/2026
Acetyl-CoA–dependent processes are preferentially supported by local metabolite synthesis | Wellen Marmorstein Metallo & Snyder labs www.science.org/doi/10.1126/...
science.org
Acetyl-CoA–dependent processes are preferentially supported by local metabolite synthesis
The cell nucleus is an active metabolic site. Numerous enzymes best known for their roles in cytosolic or mitochondrial pathways also function in the nucleus, where they contribute to gene regulation ...
051
Reposted by Thomas Arnesen
Frederica Theodoulou @freddietheodoulou.bsky.social · 01/09/2026
Ever wondered why mutating BIG/AtUBR4 causes pleiotropic 🌿 phenotypes? Find a whistle stop tour of the literature in our latest review, with expert structural insight from @dangrabarczyk.bsky.social and @clausenlab.bsky.social academic.oup.com/jxb/advance-...
academic.oup.com
Decoding BIG: how one protein influences multiple pathways
Abstract. A major strength of forward genetic screens is their unbiased nature: the plant reveals which genes underlie a physiological process. Yet this st
11510
Thomas Arnesen @natmachinery.bsky.social · 12/08/2026
Symbiosis: An N-terminally acetylated peptide from the bacterium Photorhabdus modulates nematode development | Novel prokaryotic NAT enzyme PasC | @ispt-proteinterm.bsky.social www.pnas.org/doi/10.1073/...
pnas.org
An N-acetylated daropeptide modulates nematode development | PNAS
The symbiotic bacterium Photorhabdus is a rich source of bioactive secondary metabolites that mediate tripartite interactions with nematodes and in...
062
Thomas Arnesen @natmachinery.bsky.social · 28/07/2026
α-Synuclein N-terminal acetylation tunes both its structural and physicochemical properties to enhance binding to lipid bilayers @ispt-proteinterm.bsky.social pubs.acs.org/bichaw/artic...
pubs.acs.org
N-Terminal Amine Chemistry Influences α-Synuclein Interactions with Lipid Bilayers
Abstract. α-Synuclein (αSyn) is an intrinsically disordered protein whose reversible membrane binding via amphipathic α-helix formation is central to its f
042
Reposted by Thomas Arnesen
Laurenz Rabl @laurenzrabl.bsky.social · 15/07/2026
More on NAC and cotranslational Nt-acetylation by NatB. Congratulations to the first authors Natalia and Pawel! rdcu.be/ftSay
rdcu.be
Structural basis of cotranslational protein N-terminal acetylation by NatB in human cells
Nature Communications - N-terminal acetylation is one of the most common protein modifications. Here, the authors show how NAC recruits the essential enzyme NatB to translating ribosomes, revealing...
054
Reposted by Thomas Arnesen
N End Rules @n-end-rules.bsky.social · 27/07/2026
New preprint: In collaboration with @yorgsvicen.bsky.social we show metacaspase9 and ATE N-degron pathway-dependent proteoform stability act to diversify UBP6 function during plant immunity www.biorxiv.org/content/10.6...
biorxiv.org
Functional diversification of UBP6 in plant immunity through N‑degron pathway regulation
Deubiquitylases are key proteolytic regulators of ubiquitin-dependent cellular processes, catalyzing the removal or remodelling of ubiquitin modifications on substrate proteins, including those target...
0109
Reposted by Thomas Arnesen
Sylvia Varland @varland.bsky.social · 28/04/2026
After more than a decade of work, this amazing study is out in Cell 🧬 Global genetic interaction network of a human cell mapping conserved principles and informing functional interpretation of gene co-essentiality profiles 🔗 cell.com/cell/fulltext/S0092-8674(26)00345-4
cell.com
Global genetic interaction network of a human cell maps conserved principles and informs functional interpretation of gene co-essentiality profiles
CRISPR perturbation of ∼4 million gene pairs in human HAP1 cells maps ∼89,000 genetic interactions, revealing a hierarchical network that links genes to complexes, pathways, and cellular processes and...
142
Thomas Arnesen @natmachinery.bsky.social · 23/06/2026
Structural and mechanistic insights into the UBR4-KCMF1-Calmodulin complex @ispt-proteinterm.bsky.social academic.oup.com/proteincell/...
academic.oup.com
Structural and mechanistic insights into the UBR4-KCMF1-Calmodulin complex
Dear Editor,
0117
Reposted by Thomas Arnesen
Genes & Development @genesdev.bsky.social · 04/06/2026
📽️ G&D Tapes 📽️ G&D Author, Lucas Unger, tells us about an auto-regulatory loop between HNF1A and Hedgehog signaling that dictates stem cell lineage specification. New in #genesdev: ➡️ genesdev.cshlp.org/content/40/11-12… Simona Chera & Cell Fate Lab‬ Lucas Unger Luiza Ghila
093
Thomas Arnesen @natmachinery.bsky.social · 08/06/2026
Structure of the E3 ligase CRL2ZYG11B with substrates reveals the molecular basis for N-degron recognition and ubiquitination. @ispt-proteinterm.bsky.social @cp-cellreports.bsky.social www.cell.com/cell-reports...
cell.com
Structure of the E3 ligase CRL2ZYG11B with substrates reveals the molecular basis for N-degron recognition and ubiquitination
Liu et al. define how the CRL2ZYG11B ubiquitin ligase assembles and recognizes Gly/N-degron substrates by cryo-EM. Structures with an NLRP1 Gly/N-degron and SARS-CoV-2 ORF10 reveal extended substrate-...
0136
Reposted by Thomas Arnesen
Frederica Theodoulou @freddietheodoulou.bsky.social · 06/06/2026
After a wonderful four day, @giglionelab.bsky.social wraps up #proteintermini2026 Grazie, Carmela for a fantastic meeting and we look forward to Heidelberg in 2028!
085
Reposted by Thomas Arnesen
Frederica Theodoulou @freddietheodoulou.bsky.social · 06/06/2026
Well, the conference dinner is absolutely hellish #proteintermini2026
062
Reposted by Thomas Arnesen
Frederica Theodoulou @freddietheodoulou.bsky.social · 03/06/2026
#Proteintermini2026 is about to begin! This beautiful room in the heart of Palermo will be our home for the next four days 🤩
A beautiful room with ceiling fresco and a large chandelier Reverse view of the same room
093
Reposted by Thomas Arnesen
Frederica Theodoulou @freddietheodoulou.bsky.social · 03/06/2026
And we’re off! @giglionelab.bsky.social introduces FEBS Workshop #Proteintermini2026 Looking forward to four days of great science
3144
Reposted by Thomas Arnesen
Frederica Theodoulou @freddietheodoulou.bsky.social · 03/06/2026
As predicted, the food at #Proteintermini2026 is delicioso! Trying hard to resist these ricotta-filled pastries with candied orange
A cheerful Italian gentleman with a tray of ricotta-filled profiteroles
053
Reposted by Thomas Arnesen
robertomunita.bsky.social @robertomunita.bsky.social · 29/04/2026
1/ Sharing my article in TIBS: "Science is always unfinished: rethinking the demand for complete stories." The cost of that demand: delayed dissemination, cherry-picked data, and an endless "one more experiment" loop. authors.elsevier.com/a/1n0XU3S6Gf...
authors.elsevier.com
Please wait whilst we redirect you
All content on this site: Copyright © 2026 Elsevier B.V., its licensors, and contributors. All rights are reserved, including those for text and data mining, AI training, and similar technologies. For all open access content, the relevant licensing terms apply.
189
Reposted by Thomas Arnesen
giglionelab.bsky.social @giglionelab.bsky.social · 15/05/2026
The countdown to Palermo is on! 🇮🇹 The FEBS Workshop "Protein Termini 2026" is set. • 151 participants from all over the world. • >50% ECRs! • 30+ travel grants. Thx to sponsors: FEBS, IUBMB, CDBC, ARS, and others.. See you at Palazzo dei Normanni! #ProteinTermini #FEBS #Proteostasis
176
Reposted by Thomas Arnesen
giglionelab.bsky.social @giglionelab.bsky.social · 18/05/2026
Excited to co-organize the upcoming FASEB Science Research Conference (SRC) on Protein Lipidation: Enzymology, Signaling, Therapeutics! July 13-15, 2026. Where: Yours Truly DC Hotel | Washington, DC. Register & Submit your abstract here: events.faseb.org/event/protei... Deadline Extended!
032
Thomas Arnesen @natmachinery.bsky.social · 08/05/2026
New review out on protein N-terminal formylation - a stress-inducible modification of eukaryotic proteins #N-degron @ispt-proteinterm.bsky.social www.nature.com/articles/s12...
nature.com
N-terminal formylmethionine as a degron and a specific signal in proteostasis and stress adaptation - Experimental & Molecular Medicine
N-terminal methionine formylation, a protein modification once thought to be exclusive to bacteria and organelles, also occurs on proteins synthesized in the cytosol of yeast and human cells, challeng...
084
Reposted by Thomas Arnesen
Francesco Licausi @syno2xis.bsky.social · 22/04/2026
It's finally out! With this new paper, Salma and Monica show that hypoxia-regulated ERFVIIs are not immediately destabilised during reoxygenation: they instead persist in the nucleus to control oxidative stress genes. www.nature.com/articles/s41...
95526
Thomas Arnesen @natmachinery.bsky.social · 22/04/2026
N-terminal cysteine dependent proteolysis of RGS4/5 is not sensitive to physiological oxidative stress | Preprint by Ya-Min Tian, Haeun Kim, Peter Ratcliffe & Thomas Keeley @ox.ac.uk @ispt-proteinterm.bsky.social #N-degron #cysteine www.biorxiv.org/content/10.6...
biorxiv.org
084
Reposted by Thomas Arnesen
dave dougan @douganlab.bsky.social · 08/04/2026
A C-degron regulates Chk1 kinase by allowing stability of inactive Chk1 and by making it short- lived upon activation www.pnas.org/doi/10.1073/...
pnas.org
A C-degron regulates Chk1 kinase by allowing stability of inactive Chk1 and by making it short- lived upon activation | PNAS
The Arg/N-degron pathway of Saccharomyces cerevisiae is mediated by two interacting E3 ubiquitin ligases, Ubr1 and Ufd4. We show here that the mito...
083
Reposted by Thomas Arnesen
International Society for Protein Termini (ISPT) @ispt-proteinterm.bsky.social · 01/04/2026
Resistance to prolonged darkness in plants steered by N-terminal acetylation | New study by Gong et al. Markus Wirtz lab @giglionelab.bsky.social Tanja Bange lab #NatB #autophagy #N-degron #proteostasis www.nature.com/articles/s41...
nature.com
The ribosome-associated N-terminal acetyltransferase B coordinates global proteostasis and autophagy in plants by creating Ac/N-degrons - Nature Communications
Protein N-terminal acetylation profoundly influences protein fate. Here, the authors establish NatB as a central regulator of the interplay between ubiquitin–proteasome system and autophagy, and highl...
032
Reposted by Thomas Arnesen
Molecular Cell @cp-molcell.bsky.social · 25/03/2026
Online Now: NAC promotes co-translational protein folding at the ribosomal tunnel exit Online now:
dlvr.it
NAC promotes co-translational protein folding at the ribosomal tunnel exit
Santos et al. reveal NAC’s co-translational interactome, showing compartment-specific nascent chain interactions in human cells. NAC engages emerging chains at the ribosomal tunnel exit via a ribosome-oriented hydrophobic pocket, promoting early domain folding without stabilizing intermediate structures. These findings establish NAC as a co-translational chaperone integrating folding with protein biogenesis.
084
Reposted by Thomas Arnesen
Komander Lab @komanderlab.bsky.social · 23/03/2026
Congratulations Jake @mediocre-jake.bsky.social, Bekky Feltham and team on their phenomenal effort in putting together the E3-ome, published in Cell www.cell.com/cell/fulltex.... An extremely valuable resource for ubiquitin researchers.
cell.com
The E3-ome gene-centric compendium reveals the human E3 ligase landscape
The E3-ome defines the human repertoire of ubiquitin E3 ligases, creating a unified resource that maps their diversity across the ubiquitin and ubiquitin-like systems. By consolidating fragmented know...
0218
Reposted by Thomas Arnesen
Beckmann Lab @beckmannlab.bsky.social · 16/03/2026
How are histones acetylated as they emerge from the ribosome? We show that NAA40 cooperates with the NAC complex to enable co-translational acetylation of H2A/H4, revealing NAC as a coordinator of nascent protein modification. Read more about our collaboration with @kirmizislab.bsky.social #cryoEM
rdcu.be
NAA40 and NAC cooperate in co-translational histone acetylation in humans
Nature Communications - N-terminal histone acetylation by human NAA40 alters epigenetic signaling and affects gene regulation. Here, the authors combine biochemistry and cryo-EM to unravel the...
24213
Reposted by Thomas Arnesen
Albert Heck @hecklab.bsky.social · 15/03/2026
Deep coverage and extended sequence reads obtained with a single archaeal protease expedite de novo protein sequencing by mass spectrometry: Cell Systems www.cell.com/cell-systems.... How great would it be to sequence proteins without a gene-template! We might be approaching this soon.
cell.com
Deep coverage and extended sequence reads obtained with a single archaeal protease expedite de novo protein sequencing by mass spectrometry
Highly efficient hyperthermal acidic proteases combined with hybrid-fragmentation schemes provide five times more unique peptide reads than trypsin or chymotrypsin, greatly boosting confidence in de n...
0187
Reposted by Thomas Arnesen
Cell Biology J-Club @cellclub.bsky.social · 27/02/2026
A wonderful collection of contemporary topics and perspectives on secretion and Golgi biology edited by Akihiko Nakano and Jaakko Saraste. The Golgi Network, Volume II @SN and link.springer.com/book/10.1007...
link.springer.com
The Golgi Network, Volume II
This book explores the interaction of Golgi with different organelles such as ER, the vesicular system, and protein complexes that execute these tasks.
087
Reposted by Thomas Arnesen
Dan Gibbs 🌱🧬 @djgibbs.bsky.social · 24/02/2026
My review “Co-translational control of protein stability and quality in plants” is now online at @jxbotany.bsky.social, in which I describe how co-translational processing and ribosome-associated quality control together establish protein stability and fate early in synthesis. tinyurl.com/5dhhz9h6
tinyurl.com
Co-translational control of protein stability and quality in plants
Abstract. Proteostasis relies on the coordinated control of protein synthesis, folding, modification and degradation, and an increasingly clear picture is
04224
Reposted by Thomas Arnesen
International Society for Protein Termini (ISPT) @ispt-proteinterm.bsky.social · 23/02/2026
8 days left to register | 28 invited speakers | Keynotes from F. Ulrich Hartl, Roland Beckmann and Michael Rapé | #chaperones #degradation #ubiquitin #cryoEM #acetylation #lipidation #ribosomes #proteins proteintermini.org/meeting/
proteintermini.org
Protein Termini 2026 – International Society for Protein Termini (ISPT)
142
Thomas Arnesen @natmachinery.bsky.social · 23/02/2026
Actin N-terminal maturation can be blocked by a butynamide stereoprobe which acts as an ACTMAP inhibitor. Preprint by Xiong et al. Benjamin Cravatt and Bruno Melillo. @ispt-proteinterm.bsky.social www.biorxiv.org/content/10.6...
0105
Reposted by Thomas Arnesen
giglionelab.bsky.social @giglionelab.bsky.social · 16/02/2026
Join us in Palermo! FEBS Workshop Protein Termini 2026: the power of protein termini across bacteria, plants, and animals—from ribosome biology to proteostasis and applications. Deadline: 3 March 2026 proteintermini.org/meeting #ProteinTermini #Proteostasis #FEBS #EMBO @iubmb.bsky.social
1138
Reposted by Thomas Arnesen
David Balchin @davidbalchin.bsky.social · 13/02/2026
Join us at the @crick.ac.uk for the 2026 meeting of the UK proteostasis community! We especially encourage students and postdocs to attend and share their work. All talks (except the keynotes) will be selected from abstracts.
02115
Reposted by Thomas Arnesen
N End Rules @n-end-rules.bsky.social · 12/02/2026
Surprisingly: "Conditional stability of HY5 through the ATE N-degron pathway regulates environmental responses in Arabidopsis thaliana". The shining bounds of N-degron pathway influence expands! @charlene-kunaka.bsky.social www.biorxiv.org/content/10.6...
biorxiv.org
11714
Reposted by Thomas Arnesen
International Society for Protein Termini (ISPT) @ispt-proteinterm.bsky.social · 09/02/2026
Protein event of the year - sign up today! See you at beautiful Palazzo dei Normanni in Palermo for the FEBS 2026 Protein Termini Workshop. #ProteinTermini #Proteostasis #ProteinModifications #StructuralBiology #PalazzoDeiNormanni #Palermo2026 proteintermini.org/meeting/
188
Reposted by Thomas Arnesen
International Society for Protein Termini (ISPT) @ispt-proteinterm.bsky.social · 07/02/2026
Remember to register for this year's Protein Termini FEBS Advanced course. Keynote by Roland Beckmann @beckmannlab.bsky.social "It takes more than two to tango: structural basis and coordination of co-translational N-terminal nascent chain modification" www.conferencecentral.org/webpage/view...
conferencecentral.org
FEBS Workshop 'Protein termini 2026: From mechanisms to biological impact'
032
Reposted by Thomas Arnesen
International Society for Protein Termini (ISPT) @ispt-proteinterm.bsky.social · 30/01/2026
Protein degradation in Turnip - an adapted Arg/N-degron pathway. Preprint from Brian Mooney et al. Emmanuelle Graciet lab. www.biorxiv.org/content/10.6...
biorxiv.org
Functional divergence of the Arg/N-degron pathway between the crop Brassica rapa and the model plant Arabidopsis thaliana
The ubiquitin-dependent Arg/N-degron pathway relates the stability of a substrate protein to the nature of its N-terminal amino acid residue or its biochemical modifications, with some N-terminal residues being recognized by specific E3 ubiquitin ligases, resulting in the ubiquitylation and degradation of the substrate protein. Work in the model plant Arabidopsis thaliana has shown that the Arg/N-degron pathway is a key regulator of plant responses to hypoxia, which can be either physiological or a stress in the context of waterlogging or submergence. The role of the Arg/N-degron pathway in hypoxia response is mediated via the oxygen-dependent degradation of group VII ETHYLENE RESPONSE FACTOR (ERFVII) transcription factors, which act as the master regulators of the hypoxia response program in plants. Analysis of Arabidopsis mutants for different enzymatic components of the Arg/N-degron pathway has also revealed its roles in the regulation of responses to other abiotic stresses (e.g. salt stress), as well as to pathogens. Although much has been learned from studies in Arabidopsis about the functions of the Arg/N-degron pathway, very little is known about this pathway in crops, including in Brassica crops such as oilseed rape, cabbage or turnip. To determine functional similarities and divergence of the Arg/N-degron pathway between Arabidopsis and Brassica crops, we isolated and characterized the first Arg/N-degron pathway mutants in Brassica rapa (turnip, pak choi), a diploid Brassica crop closely related to oilseed rape. We focused on two enzymatic components, namely the arginine-transferases ( ATE s) and the E3 ubiquitin ligase PROTEOLYSIS6 ( PRT6 ). Our results show both similarities and divergence of function for these Arg/N-degron pathway components in B. rapa compared to Arabidopsis. Specifically, ATE mutants in B. rapa arrest their development at the seedling stage, which contrasts with the mild phenotypic defects of the equivalent Arabidopsis mutants. Double mutant lines for two of the three PRT6 genes in B. rapa indicated a constitutive activation of hypoxia response genes at the transcriptional level, as shown in the single prt6 mutant in Arabidopsis. However, contrary to Arabidopsis, the B. rapa double mutants were more sensitive to waterlogging and hypoxia, and did not show differential response to salt stress or to biotic stress compared to the wild type. The functional divergence identified likely reflects variability in each species in the substrate repertoire and/or in the regulation of pathways or targets downstream of Arg/N-degron pathway substrates. Such differences could be driven by direct selective pressures at N-termini (e.g. gain or loss of a destabilizing N-terminal residue), or by species-specific proteases that may generate destabilizing neo-N-termini after cleavage. These similarities and differences highlight the difficulties in translating research findings from Arabidopsis to crops, even within the same plant family (Brassicaceae) and highlight the need to study pathways in crops. ### Competing Interest Statement The authors have declared no competing interest. Science Foundation Ireland, https://ror.org/0271asj38, 13/IA/1870, 20/FFP-P/8433 Irish Research Council, https://ror.org/051xex213, GOIPG/2017/2
065
Reposted by Thomas Arnesen
International Society for Protein Termini (ISPT) @ispt-proteinterm.bsky.social · 28/01/2026
Ribosome-NAC collaboration: A regulatory platform for cotranslational chaperones, enzymes, and targeting factors. New review out in @cp-molcell.bsky.social from Elke Deuerling's lab. www.sciencedirect.com/science/arti...
sciencedirect.com
Ribosome-NAC collaboration: A regulatory platform for cotranslational chaperones, enzymes, and targeting factors
Protein biogenesis requires the ribosome to collaborate with a diverse set of cotranslational factors that shape the fate of nascent chains. These int…
063
Thomas Arnesen @natmachinery.bsky.social · 26/01/2026
Complexity at the ribosomal polypeptide tunnel exit. The major N-terminal acetyltransferase NatA may form different complexes on the ribosome to facilitate protein maturation. By Marius Klein & Klemens Wild in Irmgard Sinning's lab BZH & Nina McTiernan in my lab. www.nature.com/articles/s41...
0168
Reposted by Thomas Arnesen
International Society for Protein Termini (ISPT) @ispt-proteinterm.bsky.social · 26/01/2026
This is how co-translational N-terminal myristoylation occurs on the ribosome. NMT1 acts together with NAC, but after the release of MetAP. Cryo-EM study by Timo Denk et al. @beckmannlab.bsky.social @giglionelab.bsky.social www.nature.com/articles/s41...
0217
Reposted by Thomas Arnesen
Trends in Biochemical Sciences @cp-trendsbiochem.bsky.social · 13/01/2026
🎉 As we celebrate #TIBS50, we're highlighting #CitedClassics and revisiting the top cited article from each of the last 50 years! Check out this one from 1976! Read it here 👉 lnkd.in/egdN-AXt
131
Reposted by Thomas Arnesen
Iain Johnston @mitomaths.bsky.social · 09/01/2026
1. Apply for one of the positions below (lab or theory) by Jan 18th 2. Learn interdisc skills and discover cool new things about how mitochondria move and socialise 3. Explore some of Norway's beautiful nature (both the below, Rundemanen and Gullfjellet, <10km from work)
058