bioRxiv Science⌕ Search

Biology subjects

Bourassa, F.

Publications and source records attributed to Bourassa, F..

2 recordsLinked to original sources

Detection of human unannotated microproteins by mass spectrometry-based proteomics: a community assessment

Thousands of short open reading frames (sORFs) are translated outside of annotated coding sequences. Recent studies have pioneered searching for sORF-encoded microproteins in mass spectrometry (MS)- based proteomics and peptidomics datasets. Here, we assessed literature-reported MS-based identifications of unannotated human proteins. We find that studies vary by three orders of magnitude in the number of unannotated proteins they report. Of nearly 10,000 reported sORF-encoded peptides, 96% were unique to a single study, and 12% mapped to annotated proteins or proteoforms. Manual curation of a benchmark dataset of 406 manually evaluated spectra from 204 sORF-encoded proteins revealed large variation in peptide-spectrum match (PSM) quality between studies, with immunopeptidomics studies generally reporting higher quality PSMs than conventional enzymatic digests of whole cell lysates. We estimate that 65% of predicted sORF-encoded protein detections in immunopeptidomics studies were supported by high-quality PSMs versus 7.8% in non-immunopeptidomics datasets. Our work stresses the need for standardized protocols and analysis workflows to guide future advancements in microprotein detection by MS towards uncovering how many human microproteins exist.

genomics↗

A Proximity MAP of RAB GTPases

RAB GTPases are the most abundant family of small GTPases and regulate multiple aspects of membrane trafficking events, from cargo sorting to vesicle budding, transport, docking, and fusion. To regulate these processes, RABs are tightly regulated by guanine exchange factors (GEFs) and GTPase-activating proteins (GAPs). Activated RABs recruit effector proteins that regulate trafficking. Identifying RAB-associated proteins has proven to be difficult because their association with interacting proteins is often transient. Recent advances in proximity labeling approaches that allow for the covalent labeling of neighbors of proteins of interest now permit the cataloging of proteins in the vicinity of RAB GTPases. Here, we report APEX2 proximity labeling of 23 human RABs and their neighboring proteomes. We have used bioinformatic analyses to map specific proximal proteins for an extensive array of RAB GTPases, and RAB localization can be inferred from their adjacent proteins. Focusing on specific examples, we identified a physical interaction between RAB25 and DENND6A, which affects cell migration. We also show functional relationships between RAB14 and the EARP complex, or between RAB14 and SHIP164 and its close ortholog UHRF1BP1. Our dataset provides an extensive resource to the community and helps define novel functional connections between RAB GTPases and their neighboring proteins.

cell biology↗