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Xun, Y.

Publications and source records attributed to Xun, Y..

3 recordsLinked to original sources

Unraveling the Molecular and Physiological Roles of Signal Peptide Peptidase A (SppA) in Flavobacterium columnare

Columnaris disease, caused by Flavobacterium columnare, represents one of the most economically devastating bacterial infections in global freshwater aquaculture. Despite its significant impact, the molecular mechanisms underlying F. columnare pathogenesis remain largely unexplored due to the challenge in targeted genomic manipulation. Signal peptide peptidase A (SppA) plays a crucial role in bacterial protein secretion by degrading residual signal peptides after protein translocation, yet its function in F. columnare physiology and virulence has not been characterized. Here, we employed a targeted gene deletion approach to investigate the role of sppA in F. columnare. The {Delta}sppA mutant exhibited pleiotropic phenotypes including increased outer membrane vesicle (OMV) production (3.8-fold higher compared to the wild type), reduced biofilm formation, and loss of gliding motility. Transcriptomic analysis of the {Delta}sppA mutant revealed significant upregulation of genes involved in membrane stress response and efflux pump system, including algU, osmC and the genes in the MacAB-TolC efflux system, compared to the wild-type state. Importantly, the artificial infection experiment demonstrated the mutants significantly attenuated virulence in freshwater Medaka (Oryzias latipes), with a 20% higher survival rate of fish compared to the wild type. Our findings reveal that SppA is essential for maintaining membrane homeostasis in F. columnare and serves as one of the virulence factors during columnaris infection. These results provide important insights into the biological function of the sppA gene in F. columnare and highlight the complex relationship between bacterial protein secretion, membrane integrity, and pathogenesis. ImportanceF. columnare causes significant economic loss in freshwater aquaculture. Understanding the molecular mechanisms underlying F. columnare pathogenesis is crucial for developing new ways for disease control. Our findings reveal that SppA is essential for gliding motility, adhesion, biofilm formation and maintaining membrane homeostasis in F. columnare, which serves as one of the virulence factors during columnaris infection. In addition, outer membrane vesicles (OMVs) and MacA/MacB/TolC tripartite efflux pump served as a compensatory mechanism for enhanced peptide metabolites secretion to manage the accumulation of misfolded proteins resulting from the sppA deficiency. These results provide important insights into the biological function of the sppA gene in F. columnare and highlight the complex relationship between bacterial protein secretion, membrane integrity, and pathogenesis.

genetics↗

Iterative delivery of mRNA by MEFI

Conventional therapeutic mRNA delivery systems are inherently single-use, limiting expression potency, duration, and penetration across biological barriers. To address this, we engineered the mRNA Exporting and Ferrying Implement (MEFI), a platform that enables iterative cell-to-cell transfer of cargo mRNA, allowing a single mRNA molecule to be utilized multiple times across various cells. MEFI encodes a fusion protein that assembles virus-like particles (VLPs) and encapsulates both itself and cargo mRNA into these VLPs, orchestrating reproduction of VLPs from targeted cells and continuous intercellular spreading. MEFI significantly amplified cargo protein expression in the transfected cell populations ([~]20-fold) and in organs ([~]500-fold in lung) from mice administered systemically. Notably, through intramuscular injection of naked plasmids, MEFI promoted robust ([~]20-fold) and durable ([~]2-month) cargo expression, interorgan mRNA transfer, and successful crossing of the blood-brain barrier. Moreover, modified MEFI demonstrated cell-type-specific targeting, mediating the elimination of antigen-expressing cells. Collectively, MEFI establishes a modular platform for enhancing mRNA delivery, leveraging the concept of iterative delivery of mRNA. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=138 SRC="FIGDIR/small/667827v2_ufig1.gif" ALT="Figure 1"> View larger version (40K): org.highwire.dtl.DTLVardef@14522c2org.highwire.dtl.DTLVardef@1ecfa7dorg.highwire.dtl.DTLVardef@1314347org.highwire.dtl.DTLVardef@1380cc7_HPS_FORMAT_FIGEXP M_FIG C_FIG

cell biology↗

Kidney cystogenesis in embryonic- and adult-onset ADPKD is suppressed from lack of adenylyl cyclase targeting to cilia

Multiple cellular pathways are dysregulated in autosomal dominant polycystic kidney disease (ADPKD), but mechanisms initiating cyst formation are unknown. ADPKD is caused by mutations in Pkd1/Pkd2 genes that encode for polycystins that localize to primary cilia. The primary cilium is a miniscule subcellular compartment for generating signaling outputs that profoundly affect cellular function. Severe cystogenesis from polycystin loss is mostly cilia dependent. However, the polycystin-repressed ciliary signals that promote cyst growth are unknown and have been challenging to uncouple from downstream cystogenic pathways. Here we aimed at differentiating ciliary adenylyl cyclase signaling from total cellular changes in second messenger cAMP implicated in cystogenesis. We studied an Ankyrin repeat and MYND domain protein, ANKMY2 that we previously implicated in maturation and ciliary localization of adenylyl cyclases in fibroblasts. We studied kidney-specific conditional knockout mouse models of Ankmy2/Pkd1 and ciliary localization of adenylyl cyclases in kidney epithelial cells. We found suppression of early postnatal renal cystogenesis and prolonged survival in an embryonic onset Pkd1 deletion model from ANKMY2 loss. Phosphorylated CREB formation, from elevated cellular cAMP levels, remained unaffected. Cyst load in male mice in an adult inducible conditional Pkd1 deletion model was suppressed from ANKMY2 loss. Mechanistically, ANKMY2 determined ciliary trafficking of adenylyl cyclases in kidney epithelial cells without disrupting cilia. Further, ANKMY2 loss prevented ciliary length increase in ADPKD mouse models irrespective of cyst load or sex. Cilia length increase was seen preceding cystogenesis. Our results suggest that targeting of adenylyl cyclases to renal epithelial cilia promotes PC1/2-inhibited cilia-dependent cyst activation distinct from cyst progression involving cellular cAMP.

cell biology↗