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N, N.

Publications and source records attributed to N, N..

2 recordsLinked to original sources

Intestinal epithelial Casd1 influences mucus sialic acid O-acetylation and tissue damage susceptibility toward large-intestinal mucosal insults.

The intestinal mucus network, primarily composed of O-glycosylated MUC2 mucin polymers, is essential for protecting the gastrointestinal tract from microbial threats. Sialic acid (Sia), a terminal monosaccharide on complex O-glycans, plays a key role in maintaining mucus integrity and is frequently modified by Casd1-dependent O-acetylation (OAc). Despite its prevalence, the biological significance of sialic acid OAc (OAc-Sia) modifications in human and murine mucus remains unclear. We hypothesized that OAc-Sia variants on mucus interact with the microbiota and are required for optimal mucus barrier function and host-microbe homeostasis in the colon. To test this, we profiled OAc-Sia on human and mouse MUC2 in situ using viral-derived probes with bacterial FISH and confocal microscopy; generated intestinal epithelial cell (IEC)-specific Casd1 null mice (IEC Casd1-/-); performed sialylomic and O-glycomic HPLC-MS analyses; assessed microbial communities by 16S rRNA sequencing with quantitative microbial profiling (QMP); and evaluated disease susceptibility using DSS colitis and Citrobacter rodentium infection models. Results revealed that both human and murine mucins are extensively O-acetylated and interact with the microbiota, suggesting biological relevance. IEC Casd1-/- mice were viable and displayed a complete loss of mucin OAc-Sia, indicating Casd1 is the sole contributor to OAc-status. Unexpectedly, mucus function was intact in IEC Casd1-/- mice, with no difference in structure or quality vs. WT co-housed littermates.16S rRNA analysis showed a modest but significant sex-specific reduction of microbial loads in male IEC Casd1-/-mice, and a clear trend toward reduced Turicibacter spp. vs. WT mice in both male and females, without impacting overall short-chain fatty acid (SCFA) production. DSS treatment led to more severe and extensive tissue damage in IEC Casd1-/- mice. C. rodentium infection led to increased damage in the cecum and distal colon of IEC Casd1-/- mice without affecting pathogen load, suggesting that OAc-Sia status has a role in tolerance defense. These findings establish intestinal epithelial Sia O-acetylation as a component dispensable for mucus and host-microbe homeostasis at baseline, but important in limiting damage to mucosal inflammatory insults.

cell biology↗

Structure-based discovery of Saponarin as a broad-spectrum allosteric inhibitor of banana viral coat proteins

Banana (Musa spp.), a globally significant staple crop, suffers substantial yield losses from persistent viral infections caused by Banana Bunchy Top Virus (BBTV), Banana Streak Virus (BSV), Banana Bract Mosaic Virus (BBrMV), and Banana Mosaic Virus (BMoV). Given the critical role of viral coat proteins (CPs) in genome encapsidation, movement, and host infectivity, these capsid components represent attractive targets for antiviral intervention. Here, we report a comprehensive in silico pipeline integrating homology modeling, structure-based molecular docking, pharmacokinetic profiling, and 100-ns all-atom molecular dynamics (MD) simulations to identify potential CP inhibitors from a curated phytochemical library. High-confidence structural models of the CPs were generated using SWISS-MODEL and AlphaFold3 and validated via Ramachandran analysis, ERRAT, and Verify3D. Virtual screening of 100 plant-derived compounds revealed Saponarin, a flavonoid glucoside, as the top-scoring molecule across all viral targets, with docking scores ranging from -13.33 to -8.75 kcal/mol. Binding interactions were dominated by extensive hydrogen bonds and {pi}-based stacking with conserved aromatic and polar residues within the capsid interface pockets. ADMET predictions indicated Saponarin possesses favorable physicochemical properties, high aqueous compatibility, low clearance, and minimal ecotoxicological risk. MD simulations confirmed stable binding, persistent hydrogen bonding, and conserved protein compactness, supporting an allosteric inhibition mechanism. These findings establish Saponarin as a structurally and pharmacologically viable broad-spectrum antiviral candidate for banana virus control, warranting experimental validation for translational deployment in sustainable crop protection strategies. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=44 SRC="FIGDIR/small/662402v2_ufig1.gif" ALT="Figure 1"> View larger version (11K): org.highwire.dtl.DTLVardef@44d761org.highwire.dtl.DTLVardef@1982aa5org.highwire.dtl.DTLVardef@117eabeorg.highwire.dtl.DTLVardef@13495d9_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOGraphical Abstract:C_FLOATNO Schematic representation of the structure-based virtual screening workflow for identifyin broad-spectrum inhibitors targeting coat proteins (CPs) of BBTV, BSV, BBrMV, and BMoV. Homology models of CPs were constructed, followed by binding site prediction, ligand retrieval, and molecular docking of 100 phytochemicals. Saponarin emerged as the top candidate, showing strong binding at conserved allosteric sites. ADMET profiling confirmed favorable pharmacokinetics and low toxicity. Molecular dynamics simulations validated the stability of Saponarin-CP complexes, supporting its potential as a broad-spectrum antiviral agent against multiple banana viruses. C_FIG

plant biology↗