Ute Hellmich

@hellmichgroup.bsky.social

Biochemistry/Structural Bio at Uni Jena and Cluster of Excellence 'Balance of the Microverse' (Membrane) protein dynamics admirer, parasite aficionado and coffee addict. Action against #NTDs! www.hellmich-group.de

Bees, don't be bamboozled by this floral smell! European oil #beetle larvae synthesize floral scents to trick solitary #bees into becoming unwitting Uber drivers back to their nests - where the tiny hitchhikers then feast on bee eggs😱Fascinating study by @oconnorlab.bsky.social @mpi-ce.bsky.social

Oil beetle larvae smell like flowers to manipulate bees

The European oil beetle's parasitic larvae emit a floral scent that attracts wild bees. This allows the larvae to sneak into the bees' nests

mpg.de

We are on field at the 2026 Center for Biomolecular Magnetic Resonance (BMRZ) Symposium in Frankfurt! Clemens Glaubitz introducing us to the center founded in 2002... here is to the next 24 years of great science and collaborations! 🧲🥳

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Erice, here I come! Very much looking forward to the EMBO workshop on channels AND transporters (does it get any better than that?!?!) 😍 organized by Anna Moroni, Stephan Pless @plesslab.bsky.social & Alessio Accardi! And maybe it's just a very strange coincidence, but I was assigned seat 19F... 🥰🧲

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Congratulations to all awardees! 🥳 I was a postdoc with Rachelle just over 10 years ago, and her advice and guidance are still with me every day. She is an amazing mentor, scientist and a wonderful human being. It's no coincidence that the lab remains tight-knit across generations and continents 🌎💙

Harvard_MCB@harvardmcb.bsky.social · 3mo ago

MCB Honors 2026 Mentorship Awardees for Building a Culture of Support Across All Levels 🧪 🧬 #AcademicSky #higherEd www.mcb.harvard.edu/department/n... @siddjakes.bsky.social @rachellegaudet.bsky.social @naoshigeuchida.bsky.social @neurovenki.bsky.social @zombiflied.bsky.social

New paper out with our friends the Nina Morgner Lab on how to quantify homodimer affinities by native MS 💕 pubs.acs.org/doi/10.1021/... Never thought it possible, but this concludes our JACS triple - 3 papers in 3 months 😋🥳🧪 @crc1507.bsky.social @microverse.bsky.social @lifeprofile.bsky.social

Quantifying Protein Homodimer Affinities and the Effect of Molecular Glues and Interface Residues Using Native Mass Spectrometry

Biological processes rely on finely tuned homo- and heteromeric interactions between (biomacro)molecules. The strength of an interaction, typically given by the dissociation constant (KD), plays a crucial role in basic research and must be monitored throughout the development of drugs and agrochemicals. An ideal method for KD determination is applicable to various analytes with a large range of affinities, tolerates complex matrix compositions, does not require labeling, and simultaneously provides information on the structural integrity of the binding partners. Native mass spectrometry meets these criteria but typically struggles with homooligomeric complexes due to overlapping mass signals. To overcome this, we resolve monomer/dimer contributions to overlapping MS-peaks by separately analyzing the charge state distribution of each oligomeric species via sample dilution and covalent cross-linking. Following this approach, we show that quantitative laser-induced liquid bead ion desorption mass spectrometry (qLILBID-MS) accurately captures the affinities of Bovine Serum Albumin (BSA) and chemically induced dimers of Tryparedoxin (Tpx), an oxidoreductase from human pathogenic Trypanosoma brucei parasites, with various molecular glues and homodimer affinities. Conveniently, qLILBID-MS requires a fraction of sample used by other methods such as isothermal titration calorimetry (ITC) and yields previously inaccessible protein homodimer KDs in the high micromolar range, which allowed us to monitor the gradual decrease in homodimer affinity via mutation of crucial dimer interface contacts. Overall, qLILBID-MS is a sensitive, robust, fast, scalable, and cost-effective alternative to quantify protein/protein interactions, that can accelerate contemporary drug discovery workflows, e.g. the efficient screening for proximity inducing molecules like proteolysis targeting chimera (PROTACs) and molecular glues.

pubs.acs.org

European regulators have approved acoziborole, a new treatment for sleeping sickness that cures the disease with a single oral dose. The drug replaces complex regimens requiring hospitalisation, spinal taps and weeks of monitoring. buff.ly/KX3Ld2B #ShareGoodNewsToo

‘Truly spectacular’ drug for sleeping sickness simplifies treatment, raising hopes for eradication

European regulators greenlight new one-dose compound that could help African countries get rid of an ancient burden

buff.ly

Final symposium after 12 successful years: DFG-funded CRC1127 ChemBioSys - Chemical Mediators in complex Biosystems led by Christian Hertweck & Georg Pohnert is coming to an end 🥲 but so many cool things grew from it 🌱🦠 Wonderful plenary by Roderich Süssmuth in the beautiful @uni-jena.de aula 🤩

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Great paper by the groups of Pierre Stallforth, @hellmichgroup.bsky.social and @mlakemeyer.bsky.social of @uni-jena.de in @jacs.acspublications.org . Microbial DL-peptidases with an important role in predator defense. pubs.acs.org/doi/10.1021/... #ChemSky #ChemBio #Biochemistry #Bacteria #Microbes

Microbial dl-Peptidases Enable Predator Defense and Facilitate Structure Elucidation of Complex Natural Products

Peptidases are indispensable tools in biotechnology and chemical biology. However, the enzyme repertoire for the selective hydrolysis of dl-amide bonds in peptides is small. Here, we describe novel dl-peptidases that mediate complex microbial interactions. These enzymes, Lip3 and Lip7, convert lipopeptides into potent amoebicidal agents via selective dl-peptide bond cleavage. Using structural analyses and mutagenesis, we identified an unusual Ser–Lys–Lys–Tyr catalytic tetrad required for dl-specificity. Despite their high structural similarity, both enzymes show distinct substrate preferences: Lip3 acts primarily as a carboxypeptidase, removing a single C-terminal residue, while Lip7 excises a tripeptide. Although their substrate scopes are broad, they are highly specific with regard to their respective cutting sites. These features make these dl-peptidases powerful tools for elucidating the structure of complex peptide-based natural products, including tensin and WLIP. Overall, this work elucidates the molecular mechanisms of cooperative microbial defense and provides a new enzymatic toolbox for biocatalysis and natural product discovery.

pubs.acs.org