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Conner, W. C.

Publications and source records attributed to Conner, W. C..

2 recordsLinked to original sources

Mapping Architecture of Protein complexes in Arabidopsis using XL-MS

Capturing molecular machines in action is essential for understanding protein complex architecture, cellular regulation, and gene function. Here, we present a large-scale structural proteomics resource for Arabidopsis thaliana generated using an optimized cross-linking mass spectrometry (XL-MS) workflow. Using the trifunctional cross-linker PhoX, whose phosphonic acid moiety enables immobilized metal affinity chromatography (IMAC)-based enrichment, we selectively enriched cross-linked peptides from whole-cell lysates, chloroplasts, and nuclei. Analysis with pLink 3.2 identified 52,944 unique cross-linked peptide pairs, corresponding to 37,531 residue-level contacts across 5,064 proteins. These data define 3,083 protein-protein interactions, including 2,385 heteromeric and 698 homomultimeric interactions. Comparison with the STRING database showed that 676 interactions are supported by STRING scores [≥]0.9. Structural mapping to Protein Data Bank (PDB) and AlphaFold models showed that most cross-links were within the expected 35 [A] distance constraint. The dataset further enabled the analysis of protein connectivity and complex topology across diverse molecular assemblies, including the Rubisco holoenzyme, chloroplast 70S ribosome, photosystem complexes, and the cytosolic 80S ribosome together with associated biogenesis and regulatory factors. We also identified histone-associated complexes, including interactions involving an O-acyltransferase. By providing residue-level structural constraints for a substantial portion of the Arabidopsis proteome, this study provides a resource for exploring plant molecular machines and their spatial organization. Significance StatementUnderstanding how proteins interact within living cells is essential to deciphering cellular architecture and function. However, capturing native protein-protein interactions (PPIs) on a global scale has proven technically challenging. Here, we present a proteome-wide cross-linking mass spectrometry (XL-MS) platform that can systematically map direct PPIs in plant cells without requiring transgenic manipulation. This approach identifies thousands of interactions spanning major subcellular compartments and characterizes the in situ organization of critical protein assemblies, such as photosystems, ribosomes, and chromatin-associated connectivity. By mapping both established and less-characterized interactions, this work advances our understanding of the plant protein interactome and provides a valuable resource for investigating the structural organization of the plant proteome.

molecular biology↗

Regulator of Gene Silencing-Calmodulin associates with mRNA granules and the autophagy protein ATG8

Abstract Regulator-of-gene-silencing calmodulins (rgsCaM) represent a phylogenetic subfamily of calmodulin-like calcium sensors that are targets of viral induced suppression of posttranscriptional gene silencing by secondary siRNAs. The present work shows that a stress (hypoxia) that induces mRNP granule formation also induces the relocalization of rgsCaM to cytosolic granule-like foci that interact with the surface of stress granule and processing body structures. Co-expression of rgsCaM and its binding protein Suppressor of Gene Silencing 3 causes re-localization and integration of rgsCaM into stress granule structures. RgsCaMs contain a conserved topology that consists for four EF hand like domains (three functional and one divergent) that are separated into two calcium binding lobes with an extended amino terminal region. RgsCaM also contains an "ATG8 family interacting motif" (AIM) within its amino-terminal domain that is characteristic of selective autophagy cargo receptors. Co-localization experiments and ratiometric BiFC analyses in Nicotiana benthamiana support the hypothesis that rgsCaM binds directly to ATG8e through this conserved AIM domain, and the two proteins co-localize with mRNP granule markers. Previous reports show that rgsCaM mediates the suppression of gene silencing, at least in part, via turnover of SGS3 via autophagy. A model is proposed for rgsCaM-like proteins as potential mediators of selective autophagy of RNA granules in response to biotic and abiotic stresses.

plant biology↗