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Amy Weeks

@amyweeks.bsky.social
1.6K followers 317 following 33 posts

Asst Prof @ UW-Madison Biochemistry. Protein Engineering, Chemical Biology, Proteomics, Proteases, Enzymology.

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Amy Weeks @amyweeks.bsky.social · 4h
Congrats, Jason! 🎉
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Jason Cantor @jasonrcantor.bsky.social · 4h
i'm happy to share that our lab has joined @foxchasecancer.bsky.social! v proud of what our team achieved in Madison & now we look forward to this next chapter in the vibrant Philly scientific ecosystem - actively recruiting at all levels across the biological sciences and engineering!
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Robert E. Campbell @campbell-lab.bsky.social · 28/08/2026
Protein Engineering: Status Report, marks the 40th anniversary of Protein Engineering, Design and Selection and provides a landmark overview of the field. Read the open access article now: academic.oup.com/peds/pages/4...
academic.oup.com
PEDS 40th Anniversary: Protein Engineering: Status Report
In honour of the 40th anniversary of Protein Engineering, Design and Selection (PEDS), Protein Engineering: Status Report brings together contributions fro
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Roberto Chica Lab @chicalab.bsky.social · 24/08/2026
Thanks to @campbell-lab.bsky.social for putting together this excellent overview of the protein engineering field at PEDS, and for inviting us to contribute the computational enzyme design section. Check it out below! Protein engineering: status report academic.oup.com/peds/article...
academic.oup.com
Protein engineering: status report
Abstract. With this status report, we aim to provide a timely snapshot of the protein engineering field as a broad and rapidly advancing discipline that in
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Lukasz Bugaj @bugajlab.bsky.social · 21/07/2026
A bit late but…Tenured! Immense gratitude for those who got us here. Firstly the students/postdocs (too many to list!) who took a chance on an unproven lab and were unafraid to pursue some strange new ideas. I couldn't have predicted our path, and I couldn’t be more excited for what's next.
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Ben Larson @blarson.bsky.social · 20/07/2026
Had a lot of fun writing this dispatch article for @currentbiology.bsky.social with PhD student Caitlin Doyle www.sciencedirect.com/science/arti..., highlighting cell morphogenesis and recent work on suctorian growth control principles. 1/3
sciencedirect.com
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Scott Coyle @cellraiser.bsky.social · 02/07/2026
Had a blast putting this video abstract together with colleagues for @zjmaggiexu.bsky.social story in @currentbiology.bsky.social on how the "vampire cell" P. collini builds the perfect feeding trap 👀. Be sure to check out the full paper: www.cell.com/current-biol... www.youtube.com/watch?v=Ikzm...
youtube.com
A cellular vampire builds the perfect feeding trap / Curr. Biol., June 24, 2026 (Vol. 36, Issue 14)
YouTube video by Cell Press
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Scott Coyle @cellraiser.bsky.social · 24/06/2026
@zjmaggiexu.bsky.social's story on suctorian trap structure adaptation is now online in @currentbiology.bsky.social , with new evolutionary analyses and modeling! This fall, Maggie will keep exploring predatory protists as a PD in @nbellono.bsky.social group; keep an eye out for her she's amazing!
sciencedirect.com
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edenchang.bsky.social @edenchang.bsky.social · 16/06/2026
Excited to share our new bioRxiv preprint! We introduce RIPPLE, a synthetic platform that couples reaction–diffusion signaling with protein condensation to generate tunable intracellular architectures. Grateful to @zjmaggiexu.bsky.social and @cellraiser.bsky.social. It’s been a rewarding journey.
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Scott Coyle @cellraiser.bsky.social · 16/06/2026
Sub-cellular architectures arise through integrating signaling and structure. @edenchang.bsky.social and @zjmaggiexu.bsky.social show how coupling reaction-diffusion signaling to protein condensation provides a tunable, regulatable landscape for sub-cellular structure www.biorxiv.org/content/10.6...
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Amy Weeks @amyweeks.bsky.social · 14/06/2026
Thanks, Neel!
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Amy Weeks @amyweeks.bsky.social · 12/06/2026
Make your voice heard here by July 13: www.regulations.gov/document/OMB...
regulations.gov
Regulations.gov
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Amy Weeks @amyweeks.bsky.social · 12/06/2026
Congratulations to first authors Kasia Radziwon and Laura Campbell, and co-authors Lauren Mazurkiewicz, Sopo Jalalishvili, Izabelle Eppinger, and Aanika Parikh! We are grateful to the NIH for supporting this work. Public investment in fundamental science fuels innovation and is worth defending
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Amy Weeks @amyweeks.bsky.social · 12/06/2026
Now online @pnas.org: We developed a simple, scalable, and accessible platform for deep profiling of phosphoeraser specificity using human phosphoproteome-derived peptide libraries (PhosPropels!) 🧪👩‍🔬https://www.pnas.org/doi/10.1073/pnas.2523183123
pnas.org
Phosphoproteome-derived peptide libraries for deep specificity profiling of phosphatases and phospholyases | PNAS
Protein phosphorylation is dynamically regulated by the opposing activities of phosphowriter enzymes (kinases) and phosphoeraser enzymes (phosphata...
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Amy Weeks @amyweeks.bsky.social · 03/06/2026
Thanks to the Ono Pharma Foundation and The University of Chicago for supporting this amazing symposium! And congratulations to the Weeks lab's own Sopo Jalalishvili for winning a poster prize for her work on phospholyases! 👩‍🔬🧪@uwbiochem.bsky.social
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Craig Kaplan @triggerloop.bsky.social · 30/05/2026
Only 102 public comments so far on the biggest threat to publicly funded science in my lifetime. Please comment if you can. I know this sounds like "vote harder" but we have to keep fighting www.regulations.gov/document/OMB...
regulations.gov
Regulations.gov
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Neel Shah @nshahlab.bsky.social · 14/05/2026
Excited to share our lab's latest preprint, led by graduate student Minhee Lee, with contributions from former undergrad Zijing Wang and grad student Andrew Johns! We show that substrate specificity information coupled with AF3 models can be used to design selective tyrosine kinase inhibitors.
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Amy Weeks @amyweeks.bsky.social · 28/04/2026
Excited that our paper on enzymatic bromination of peptides is now online at ACS Chemical Biology! Led by Haley Bridge, we showed that the flavin-dependent halogenase RebH and its variants can be used for late-stage chemoenzymatic diversification of bioactive peptides: pubs.acs.org/doi/10.1021/...
pubs.acs.org
Enzymatic Bromination of Native Peptides for Late-Stage Structural Diversification via Suzuki–Miyaura Coupling
Flavin-dependent halogenases (FDHs) provide a biocatalytic approach for the site-selective halogenation of aromatic compounds, but their use in late-stage functionalization of peptides has remained li...
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Keri Backus @keribackus.bsky.social · 28/04/2026
Super excited that our SEE-CITE photoaffinity labeling method is now out in @natchem.nature.com rdcu.be/ffBSC. Here we introduce a custom silyl ether cleavable linker between a diazirine photocrosslinker handle and molecules of interest to streamline site-of-labeling analysis for PAL chemoproteomics
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Jason Cantor @jasonrcantor.bsky.social · 30/03/2026
🚨 excited to share our latest preprint on bioRxiv, led by the soon-to-be Dr. Guy Kunzmann! We tackle a striking case of conditional dependence on UFMylation, a UBL modification pathway whose contributions to cell fitness have been a bit of a "black box." 🧵
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Scott Coyle @cellraiser.bsky.social · 24/03/2026
Congratulations to my student Dennis Bolshakov and his coauthors @weix.us, Tommy, and @born2raisecell.bsky.social on making the cover of ACS Synthetic Biology! A great paper and an awesome cover 🥳 pubs.acs.org/doi/10.1021/...
The cover art, inspired by the classic Pink Floyd cover art from "The Dark Side of the Moon", depicts a white noise protein oscillation being filtered by a yeast expressing a specific synthetic circuit design into more precise, single-color waveforms. This visual echoes the noise-guided design strategies associated with Bolshakov et al.
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Scott Coyle @cellraiser.bsky.social · 27/02/2026
Huge congratulations to my student Rohith Rajasekaran @born2raisecell.bsky.social (now a postdoc in Kole Roybal's lab at UCSF) on being selected for a Weintraub award! Super proud of you and all the work you've done!
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preLights @prelights.bsky.social · 31/12/2025
Some excellent preLights to end 2025 🎆 The latest was written by Zhang-He Goh @goh-zhanghe.bsky.social, discussing an enzymatic method for tryptophan-specific bromination described in a recent #preprint from the lab of @amyweeks.bsky.social. #preLight ⬇️ prelights.biologists.com/highlights/e...
prelights.biologists.com
Enzymatic bromination of native peptides for late-stage structural diversification via Suzuki-Miyaura coupling - preLights
Ready, set, brominate: RebH and engineered variant for bromination of peptidyl-Trp residues
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Amy Weeks @amyweeks.bsky.social · 21/12/2025
Great work by recently minted PhD Haley Bridge and recent BS Chase Radziej! We are grateful to the NIH for supporting this work. Public investment in fundamental science fuels innovation and is worth defending.
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Amy Weeks @amyweeks.bsky.social · 21/12/2025
We found that 4V produced higher conversion and had expanded sequence scope compared to RebH. We took advantage of this newly revealed activity to combine enzymatic bromination with Suzuki-Miyaura cross-coupling to enable late-stage chemoenzymatic functionalization of unmodified bioactive peptides.
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Amy Weeks @amyweeks.bsky.social · 21/12/2025
The observation of peptide activity in RebH motivated us to examine the RebH variant 4V, which was engineered by @jclewislab.bsky.social to accommodate larger substrates 👇https://onlinelibrary.wiley.com/doi/abs/10.1002/anie.201411901
onlinelibrary.wiley.com
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Amy Weeks @amyweeks.bsky.social · 21/12/2025
New preprint! We found that the flavin-dependent halogenase RebH catalyzes sequence-tolerant Trp bromination in peptides 🧪https://www.biorxiv.org/content/10.64898/2025.12.17.694899v1
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Scott Coyle @cellraiser.bsky.social · 17/12/2025
New in ACS SynBio: led by Dennis Bolshakov, we used the awesome power of yeast to define how expression levels, noise, and sequence program the dynamics of synthetic protein waves, allowing us to genetically encode new cellular timescales stable over generations! pubs.acs.org/doi/full/10....
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Zhejing (Maggie) Xu @zjmaggiexu.bsky.social · 18/11/2025
Thrilled to share our work on the 🔥 single-celled predator Podophrya collini, which rewires its cell morphology to hunt more efficiently. Huge thanks to our amazing team—Amy, Lauren, Omaya, Marine, Mari, and especially Scott—for making this shine! ✨
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Scott Coyle @cellraiser.bsky.social · 18/11/2025
How do cells adapt morphology to function? In a 🔥 preprint by @zjmaggiexu.bsky.social , with @dudinlab.bsky.social and @amyweeks.bsky.social , we identify a self-organizing single-cell morphology circuit that optimizes the feeding trap structure of the suctorian P. collini. 🧵 tinyurl.com/4k8nv926
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Nikolai Slavov @slavov-n.bsky.social · 16/09/2025
A beautiful example of how spatiotemporal dynamics can enable multiplexed measurements.
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Jeff Martell @jeffmartell.bsky.social · 14/08/2025
Excited to share our new preprint, which was years in the making! chemrxiv.org/engage/chemr... New reactions are typically developed by trial and error. How can we speed up this process? Read on to learn how we used DNA scaffolding to perform >500,000 parallel reactions on attomole scale. 1/n
chemrxiv.org
DNA-Scaffolded Ultrahigh-Throughput Reaction Screening
Discovering and optimizing reactions is central to synthetic chemistry. However, chemical reactions are traditionally screened using relatively low-throughput methods, prohibiting exploration of diver...
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Amy Weeks @amyweeks.bsky.social · 13/08/2025
Congratulations to first author Kasia Radziwon and co-authors Laura Campbell, Lauren Mazurkiewicz, Sopo Jalalshvili, Izabelle Eppinger, and Aanika Parikh! We are grateful to the NIH for supporting this work. Public investment in fundamental science fuels innovation and is worth defending.
A handmade poster that says "We are all in this together" with a DNA double helix in the center.
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Amy Weeks @amyweeks.bsky.social · 13/08/2025
Leveraging the throughput of our approach, we took a deep dive into the molecular basis of OspF specificity. We identified enzyme residues in the L12 loop that influence OspF’s specificity for pThr vs. pSer and were able to shift this specificity through protein engineering
A crystal structure of the OspF homolog SpvC bound to a substrate peptide. Plots of % sites beta-eliminated for pThr and pSer with several OspF variants.
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Amy Weeks @amyweeks.bsky.social · 13/08/2025
We also found that the catalytic domain of the pThr lyase OspF (a functionally and mechanistically distinct phosphoeraser from Shigella flexneri) has and intrinsic preference for the pThr-Xaa-pTyr motif found in Erk and p38 MAP kinase activation loops that does not depend on its MAPK docking motif
OspF is a pThr lyase from Shigella flexneri that targets MAPKs in innate immune signaling. We profiled OspF activity on PhosPropels and found that its catalytic domain has an intrinsic preference for the the MAPK activation loop motif pThr-X-pTyr.
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Amy Weeks @amyweeks.bsky.social · 13/08/2025
We applied our approach to define sequence motifs for 8 phosphoerasers spanning diverse species, folds, and enzymatic mechanisms. Example: The Legionella pneumophila phosphatase WipB uses multiple selectivity filters, disfavoring substrates with Pro at +1 and phosphosites flanked by acidic residues
The Legionella pneumophila phosphatase WipB targets the lysosomal nutrient sensing machinery. WipB disfavors substrates with Pro at +1 and phosphosites flanked by acidic residues.
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Amy Weeks @amyweeks.bsky.social · 13/08/2025
We developed an LC-MS/MS-based in vitro assay for dephosphorylation of human phosphoproteome-derived peptide libraries (PhosPropels). We use statistical comparison of phosphopeptide sequence features in enzyme-treated samples vs. controls for deep specificity profiling of phosphoeraser enzymes.
Workflow for PhosPropel-based profiling of phosphoerasers. Cells are lysed, protein is digested, and phosphopeptides are enriched to generated a phosphoproteome-derived peptide library (PhosPropel). The PhosPropel can then be treated with a phosphoeraser enzyme and analyzed using LC-MS/MS to profile enzyme specificity.
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Amy Weeks @amyweeks.bsky.social · 13/08/2025
Phosphorylation is regulated by the activities of writers and erasers. Lots of progress has been made in defining kinase sequence specificity (e.g., www.nature.com/articles/s41...), but there are fewer approaches for studying phosphoeraser specificity
nature.com
An atlas of substrate specificities for the human serine/threonine kinome - Nature
Analysis of the kinase activity of 300 protein Ser/Thr kinases reveals that the substrate specificity of the kinome is substantially more diverse than expected and is driven extensively by negative se...
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Amy Weeks @amyweeks.bsky.social · 13/08/2025
New preprint: we developed a method that uses phosphoproteome-derived peptide libraries (PhosPropels) for deep specificity profiling of phosphatases and phospholyases www.biorxiv.org/content/10.1...
Position-specific frequency matrices can be used to calculate z-scores comparing enzyme-treated and control samples. The z-scores are plotted as heatmaps that represent an enzyme specificity profile.
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Amy Weeks @amyweeks.bsky.social · 13/08/2025
We also found that the catalytic domain of the pThr lyase OspF (a functionally and mechanistically distinct phosphoeraser from Shigella flexneri) has and intrinsic preference for the pThr-Xaa-pTyr motif found in Erk and p38 MAP kinase activation loops that does not depend on its MAPK docking motif
OspF is a pThr lyase from Shigella flexneri that dampens innate immune signaling. We treated PhosPropels with OspF and found that this enzyme has intrinsic specificity for the pThr-X-pTyr motif of MAPK activation loops independent of an N-terminal MAPK docking motif.
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Amy Weeks @amyweeks.bsky.social · 13/08/2025
We applied our approach to define sequence motifs for 8 phosphoerasers spanning diverse species, folds, and enzymatic mechanisms. Example: The Legionella pneumophila phosphatase WipB uses multiple selectivity filters, disfavoring substrates with Pro at +1 and phosphosites flanked by acidic residues
WipB is a Ser/Thr phosphatase from Legionella pneumophila that targets lysosomal nutrient sensing machinery. PhosPropel analysis revealed that WipB disfavors substrates with Pro at +1 and phosphosites flanked by acidic residues.
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Amy Weeks @amyweeks.bsky.social · 13/08/2025
We developed an LC-MS/MS-based assay for dephosphorylation of human phosphoproteome-derived peptide libraries (PhosPropels). We use statistical comparison of phosphopeptide sequence features in enzyme-treated samples vs. controls for deep specificity profiling of phosphoerasers.
Workflow for phosphoeraser specificity profiling. Cells are lysed, protein is digested, phosphopeptides are enriched, the phosphopeptide library is treated with an eraser enzyme, and phosphosites are analyzed by LC-MS/MS
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Amy Weeks @amyweeks.bsky.social · 13/08/2025
Phosphorylation is regulated by the activities of writers and erasers. Lots of progress has been made in defining kinase sequence specificity (e.g., www.nature.com/articles/s41...), but there are fewer approaches for studying phosphoeraser specificity
nature.com
An atlas of substrate specificities for the human serine/threonine kinome - Nature
Analysis of the kinase activity of 300 protein Ser/Thr kinases reveals that the substrate specificity of the kinome is substantially more diverse than expected and is driven extensively by negative se...
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coonlab.bsky.social @coonlab.bsky.social · 30/07/2025
Check out our new manuscript on parallel LC separations! Super cool how the very high scan rates of modern MS systems coupled with DIA can allow us to run several samples at the same time with little loss in depth. Congrats to Noah and the team. #JASMS pubs.acs.org/doi/10.1021/...
pubs.acs.org
SynchroSep-MS: Parallel LC Separations for Multiplexed Proteomics
Achieving high throughput remains a challenge in MS-based proteomics for large-scale applications. We introduce SynchroSep-MS, a novel method for parallelized, label-free proteome analysis that leverages the rapid acquisition speed of modern mass spectrometers. This approach employs multiple liquid chromatography columns, each with an independent sample, simultaneously introduced into a single mass spectrometer inlet. A precisely controlled retention time offset between sample injections creates distinct elution profiles, facilitating unambiguous analyte assignment. We modified the DIA-NN workflow to effectively process these unique parallelized data, accounting for retention time offsets. Using a dual-column setup with mouse brain peptides, SynchroSep-MS detected approximately 16,700 unique protein groups, nearly doubling the peptide information obtained from a conventional single proteome analysis. The method demonstrated excellent precision and reproducibility (median protein %RSDs less than 4%) and high quantitative linearity (median R2 greater than 0.96) with minimal matrix interference. SynchroSep-MS represents a new paradigm for data collection and the first example of label-free multiplexed proteome analysis via parallel LC separations, offering a direct strategy to accelerate throughput for demanding applications such as large-scale clinical cohorts and single-cell analyses without compromising peak capacity or causing ionization suppression.
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Amy Weeks @amyweeks.bsky.social · 18/07/2025
Bravo to Clara Frazier, Debashrito Deb @thepeptidetailor.bsky.social and coauthors Will Leiter @wleiter1999.bsky.social and Umasankar Mondal!
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Amy Weeks @amyweeks.bsky.social · 18/07/2025
Excited to share our latest: we engineered the reactivity of a bacterial E1-like enzyme for ATP-driven modification of C termini. Our tool mimics the logic of peptide bond formation in biology for precision modification of proteins in vitro. 🧪https://rdcu.be/ewN7C
rdcu.be
Engineered reactivity of a bacterial E1-like enzyme enables ATP-driven modification of protein and peptide C termini
Nature Chemistry - In living systems, ATP provides an energetic driving force for protein synthesis and modification. Now, an engineered enzymatic tool has been developed for high-yield, ATP-driven...
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ONO PHARMA FOUNDATION @onoinitiative.bsky.social · 02/07/2025
Great success at the Ono Pharma Foundation Symposium in Boston! Highlights include inspiring talks by Xiao Wang @amyweeks.bsky.social‬ Robert Spitale @stevenbanik.bsky.social‬ @michael-erb.bsky.social‬ Matthew Shoulders Michelle Arkin and a keynote from Chuan He. Posters fueled inspired exchange.
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Amy Weeks @amyweeks.bsky.social · 26/06/2025
Congrats to Weeks lab graduate student Debashrito Deb @thepeptidetailor.bsky.social, who won a poster prize at the Bioorganic GRC last week! Thanks to conference chairs @doc-jlmeier.bsky.social and Denise Field who knocked it out of the park with a memorable and inspiring meeting this year!
Debashrito Deb holding up his poster award at the 2025 Bioorganic GRC
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Neel Shah @nshahlab.bsky.social · 21/06/2025
Despite ~20 years in/around #chembio research, I went to my first Bioorganic GRC this week. This community is amazing and so supportive. I feel energized (and tired, lol) and find myself rooting for the next generation of chemical biologists. Sooooo much awesome science - We can’t/won’t be stopped!
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Laura Edgington-Mitchell @lauraem-lab.bsky.social · 22/05/2025
The 13th General Meeting of the International Proteolysis Society will be held in Búsios, Brazil Oct 26-30, 2025. Training workshops will be held at the Instituto Oswaldo Cruz Oct 23-23. Register now! Links below. 1/3
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