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Biology subjects

Almeida-Hernandez, Y.

Publications and source records attributed to Almeida-Hernandez, Y..

4 recordsLinked to original sources

Trypstatin as a Novel TMPRSS2 Inhibitor with Broad-Spectrum 1 Efficacy Against Corona and Influenza Viruses

Respiratory viruses, such as SARS-CoV-2 and influenza, exploit host proteases like TMPRSS2 for entry, making TMPRSS2 a prime antiviral target. Here, we report the identification and characterization of Trypstatin, a 61-amino acid Kunitz-type protease inhibitor derived from human hemofiltrate. Trypstatin inhibits TMPRSS2 and related proteases, with IC50 values in the nanomolar range, comparable to the small molecule inhibitor camostat mesylate. In vitro assays demonstrated that Trypstatin effectively blocks spike-driven entry of SARS-CoV-2, SARS-CoV-1, MERS-CoV, and hCoV-NL63, as well as hemagglutinin-mediated entry of influenza A and B viruses. In primary human airway epithelial cultures, Trypstatin significantly reduced SARS-CoV-2 replication and retained activity in the presence of airway mucus. In vivo, intranasal administration of Trypstatin to SARS-CoV-2-infected Syrian hamsters reduced viral titers and alleviated clinical symptoms. These findings highlight Trypstatins potential as a broad-spectrum antiviral agent against TMPRSS2-dependent respiratory viruses. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=182 SRC="FIGDIR/small/632953v1_ufig1.gif" ALT="Figure 1"> View larger version (25K): org.highwire.dtl.DTLVardef@1b90566org.highwire.dtl.DTLVardef@117293org.highwire.dtl.DTLVardef@1794959org.highwire.dtl.DTLVardef@1be9090_HPS_FORMAT_FIGEXP M_FIG C_FIG

microbiology↗

GPR15LG binds CXCR4 and synergistically modulates CXCL12-induced cell signaling and migration

GPR15LG, a chemokine-like ligand for the G-protein coupled receptor 15 (GPR15), is abundantly expressed in the gastrointestinal mucosa and inflamed skin. Emerging evidence suggests its involvement in inflammatory disorders and cancers. This study investigates the effects of GPR15LG on the signaling and downstream functions of C-X-C chemokine receptor type 4 (CXCR4), which plays a critical role in immune cell trafficking and cancer metastasis. The results demonstrate that GPR15LG binds to the orthosteric site of CXCR4, modulating downstream signaling in a context-dependent manner. Specifically, GPR15LG enhances CXCL12-mediated CXCR4 signaling synergistically, promoting wound healing and cell migration across various cell types, including CD4+ T cells and cancer cells. These findings underscore the role of GPR15LG in inflammation and metastasis, offering potential therapeutic avenues for CXCR4-mediated diseases. TeaserGPR15LG binds CXCR4 thereby modulating CXCL12/CXCR4 signaling and immune and cancer cell trafficking.

cell biology↗

Conformational plasticity of a BiP-GRP94 chaperone complex

Hsp70/Hsp90-chaperones and their regulatory co-chaperones are critical for maintaining protein homeostasis. GRP94, the sole Hsp90-chaperone in the secretory pathway of mammalian cells, is essential for the maturation of important secretory and transmembrane proteins. Without the requirement of co-chaperones, the Hsp70-protein BiP controls regulatory conformational changes of GRP94 - the structural basis of which has remained elusive. Here, we biochemically and structurally characterize the formation of a BiP-GRP94 chaperone complex and its transition to a conformation expected to support the loading of substrate proteins from BiP onto GRP94. BiP initially binds to the open GRP94 dimer via an interaction interface that is conserved among Hsp70/90 paralogs. Subsequently, binding of a second BiP protein stabilizes a semi-closed GRP94 dimer, thereby advancing the chaperone cycle. Our findings highlight a fundamental mechanism of direct Hsp70/90 cooperation, independent of co-chaperones.

biochemistry↗

TopBP1 utilises a bipartite GINS binding mode to activate the replicative helicase

Activation of the replicative Mcm2-7 helicase by loading GINS and Cdc45 is crucial for replication origin firing, and as such for faithful genetic inheritance. Our biochemical and structural studies demonstrate that the helicase activator GINS interacts with TopBP1 through two separate binding surfaces, the first involving a stretch of highly conserved amino acids in the TopBP1-GINI region, the second a surface on TopBP1-BRCT4. The two surfaces bind to opposite ends of the A domain of the GINS subunit Psf1. Mutation analysis reveals that either surface is individually able to support TopBP1-GINS interaction, albeit with reduced affinity. Consistently, either surface is sufficient for replication origin firing in Xenopus egg extracts and becomes essential in the absence of the other. The TopBP1-GINS interaction appears sterically incompatible with simultaneous binding of DNA polymerase epsilon (Pol{varepsilon}) to GINS when bound to Mcm2-7-Cdc45, although TopBP1-BRCT4 and the Pol{varepsilon} subunit PolE2 show only partial competitivity in binding to Psf1. Our TopBP1-GINS model improves the understanding of the recently characterised metazoan pre-loading complex. It further predicts the coordination of three molecular origin firing processes, DNA polymerase epsilon arrival, TopBP1 ejection and GINS integration into Mcm2-7-Cdc45.

molecular biology↗