Nichollas Scott

@nickescott.bsky.social

Science, glycobiology, mass spectrometry, coffee. Assoc. professor @unimelb. Former ARC future fellow. he/his

We’ve been sciencing! M abscessus makes a arabinanase toxin to chop up the cell wall of competitor mycobacteria! #glycotime 🦠 thanks to @wellcometrust.bsky.social for the funding that makes this collaborative work possible! Also Sam’s structures are 😍 and Jean-Lou did some lovely biochem

Patrick Moynihan@pmoyniha.bsky.social · 4mo ago

We've been we've been working on this for quite a while now (hopefully published soon). Grateful to @proftracypalmer.bsky.social for concinving me & @lislowe.bsky.social that mycobacteria produce inter-bacterial toxins. Team science, led by @sambenedict5.bsky.social www.biorxiv.org/content/10.6...

The complexity of glycoproteomics data creates a bottleneck in data interpretation and communication. We (@timveth.bsky.social, @riley-research.bsky.social) built GlycoDiveR as a step toward bridging gaps between search-engine output and biological interpretation through #glycotime visualizations.

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bioRxivpreprint@biorxivpreprint.bsky.social · 4mo ago

GlycoDiveR: a modular R framework to analyze and visualize highly dimensional glycoproteomics data https://www.biorxiv.org/content/10.64898/2026.03.21.713336v1

Really happy to see this work out! Super fun project with a great team. For me the highlight was that we finally were able to show the O-linked glycosylation systems of H. pylori/C. jejuni are general glycosylation systems which target non-flagellin proteins (suggest >10 years ago by click chem).

Ethan Goddard-Borger@ethangbaus.bsky.social · 6mo ago

🚨 Our new paper is out today in Nature Chemical Biology: “Pan-specific antibodies to uncover bacterial pseudaminylation” doi.org/10.1038/s415... This is the product of a collaboration between many teams, led by @nickescott.bsky.social, @payneresearch.bsky.social and myself. 1/6

Super thrilled to have this one accepted at AnalChem last week. Nice way to see out the end of the year. 🎉 #lipidomics #TeamMassSpec

Cellular Bioenergetics Laboratory@cellbioenerglab.bsky.social · 8mo ago

🎉 We are pleased to announce @sarahehancock.bsky.social's latest publication in Analytical Chemistry: "Epoxidation-Enhanced Charge-Switch Derivatization for Rapid Profiling of Monounsaturated Fatty Acid Isomers" Read the paper here 👉 pubs.acs.org/doi/full/10....

Really nice to see this work finally out in print. This has been a long term project (> 3 years) in the lab to understand why we couldn't make a few mutants in the burkholderia o-linked glycan biosynthesis pathway. Special shout out to Leila who drove most of this work! www.jbc.org/article/S002...

The late-stage steps of Burkholderia cenocepacia protein O-linked glycan biosynthesis are conditionally essential

Periplasmic O-linked protein glycosylation is a highly conserved process observed across the Burkholderia genus. Within Burkholderia, protein glycosylation requires the five-gene cluster known as the ...

jbc.org

Regardless of current events, highlighting trainees as they continue to excel is a joy. We just added @emmajays.bsky.social's recent J_@asms.org publication about chemical deamidation from common proteomics buffer to our website, too. Congrats Emmajay! #TeamMassSpec pubs.acs.org/doi/full/10....

Revisiting the Effect of Trypsin Digestion Buffers on Artificial Deamidation

Deamidation of asparagine and glutamine residues occurs spontaneously, is influenced by pH, temperature, and incubation time, and can be accelerated by adjacent amino acid residues. Incubation conditions used for proteolytic digestion in bottom-up proteomic studies can induce significant deamidation that affects results, either knowingly or unknowingly. This has prompted studies into modifications to common trypsin digestion protocols to minimize chemical deamidation, including shorter incubation times and specific lysis buffers. Prior work suggested ammonium acetate at pH 6 to minimize chemical deamidation, but this buffer has compatibility issues with trypsin digestion and common assays (e.g., bicinchoninic acid assays). Here, we re-evaluated former comparisons of Tris-HCl, ammonium bicarbonate, and triethylammonium bicarbonate buffers for the amount of artificial, chemically induced deamidation generated in a standard bottom-up proteomics workflow, and we added an evaluation of three commonly used and biologically compatible buffers, HEPES (4-(2-hydroxyethyl)-1-piperazineethanesulfonic acid), EPPS (3-[4-(2-Hydroxyethyl)piperazin-1-yl]propane-1-sulfonic acid), and PBS (phosphate buffered saline). Our findings show that HEPES exhibited the least amount of artificial deamidation and is a reasonable choice for general proteomic experiments, especially for studies considering N-glycosylation.

pubs.acs.org

Nick Riley@nmriley.bsky.social · last yr.

We updated our @riley-research.bsky.social website this weekend, including a new section on our Useful Links page that consolidates materials we found helpful in the current events discourse, re: funding cuts. Hopefully it can be a helpful resource: www.riley-research.com/useful-links

A screenshot of useful links on the Riley Research Group's website for understanding F&A costs and other current events with research funding.

I rarely post personal things on here but it's my birthday and as it's the big 4-0 I've spent the week cycling in south east Asia which has been awesome.. 100% recommend cycling around Siem Reap in Cambodia

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