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Charenton, C.

Publications and source records attributed to Charenton, C..

2 recordsLinked to original sources

FAIMS-GPF XL-MS: crosslinking-mass spectrometry based on gas-phase fractionation

Protein-protein interactions (PPIs) underpin nearly all cellular processes; therefore, mapping PPI and protein-protein association networks is critical for understanding how biological systems function in health and disease. However, many functionally relevant PPIs are transient and mediated by weak affinity interactions, making them challenging to detect. Using chemical cross-linking together with mass spectrometry (XL-MS) has emerged as an important category of methods for mapping PPIs, including those that are more dynamic and transient, although XL-MS workflows face limitations which hinder their routine use, especially in proteomic platforms. Here, to address these limitations, we developed a XL-MS workflow based on gas-phase fractionation (GPF) using high-field asymmetric waveform ion mobility spectrometry (FAIMS). Our optimized FAIMS-GPF XL-MS protocols exhibited improved performance when handling both low-complexity samples, such as purified Cdk7-Activating Kinase (CAK) heterotrimer, and high-complexity cross-linked HeLa lysates. In HeLa lysate, we identified 1,278 cross-links accounting for 213 PPIs without any in-solution fractionation, starting from less than 20 {micro}g of sample. The method also proved effective for analyzing low-abundance, high-complexity samples such as spliceosomes. Overall, FAIMS-GPF enhanced the detection of cross-linked peptides and improved PPI coverage, thus offering a scalable, high-sensitivity solution for XL-MS integration with structural biology and functional proteomics applications.

systems biology↗

Lactobacillus crispatus S-layer proteins modulate innate immune response and inflammation in the lower female reproductive tract.

Lactobacillus species dominance of the vaginal microbiome is a hallmark of vaginal health. Pathogen displacement of vaginal lactobacilli drives innate immune activation and mucosal barrier disruption which increases the risks of STI acquisition and, in pregnancy, of preterm birth. Using cell reporter systems, we describe differential TLR mediated activation of the proinflammatory transcription factor NF-{kappa}B by vaginal pathogens and commensals. Vaginal Lactobacillus strains associated with optimal health were shown to selectively interact with anti-inflammatory innate immune receptors whereas species associated with suboptimal health including L. iners and Gardnerella vaginalis interacted with both pro- and anti-inflammatory receptors. Anti-inflammatory action of L. crispatus was regulated by surface layer protein (SLPs)-mediated shielding of TLR ligands and selective interaction with anti-inflammatory receptor, DC-SIGN. In pregnant women, cervicovaginal SLPs were predominately associated with Lactobacillus-enriched microbiota. These data offer new mechanistic insights into how vaginal microbiota modulate host immune response and influences risk of preterm birth.

microbiology↗