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Machinandiarena, F.

Publications and source records attributed to Machinandiarena, F..

2 recordsLinked to original sources

Orthogonal cell division organizes surface virulence factors to drive staphylococcal abscess community formation

During infection, Staphylococcus aureus forms dense multicellular structures, called staphylococcal abscess communities (SACs), that are encased in a capsule made of host fibrin to evade host immune defenses. S. aureus cells divide characteristically along successive orthogonal planes, but the contribution of this division geometry to infection is unclear. Here, we show that disrupting orthogonal cell division by deleting the cell division septum placement factor PcdA impairs SAC formation in vivo and in a three-dimensional in vitro model. Loss of PcdA leads to uneven surface distribution of adhesins containing the YSIRK signal sequence that directs their insertion into the division septum, thereby resulting in uneven interaction with fibrin fibers. Consequently, bacterial communities fail to establish a robust fibrin pseudocapsule and remain accessible to immune cells. We propose that orthogonal cell division coordinates cell cycle progression with extracellular matrix engagement, SAC architecture, and persistence within host tissues. HIGHLIGHTSO_LIOrthogonal cell division promotes staphylococcal abscess community formation C_LIO_LILoss of PcdA disrupts fibrin pseudocapsule assembly in 3D models C_LIO_LIDivision geometry ensures uniform surface deployment of adhesins C_LIO_LICell division plane selection links bacterial cell cycle control to virulence C_LI

microbiology↗

Immunization with peptide encapsulated within synthetic spores activates T cell responses and reduces tumor growth

Peptide-based therapeutic immunizations represent safe approaches to elicit antigen-specific T cell responses, but their broad utility remains limited due to poor immunogenicity and short in vivo stability due to rapid degradation and clearance. Here we employed synthetic bacterial spore-like particles, "SSHELs", made entirely of biocompatible materials, to deliver a model peptide antigen in the absence of additional adjuvants. SSHELs carrying the peptide antigen were internalized by dendritic cells and SSHEL-delivered peptides were then processed and cross-presented in vitro and in vivo more efficiently than free peptides. Further, SSHEL-delivered peptides elicited effective antigen-specific T cell expansion in a manner that was dependent on particle size and peptide presentation mode (encased peptides were superior to surface-attached peptides). In a mouse melanoma model expressing the antigen ovalbumin, therapeutic immunization reduced tumor size and increased survival. We propose that SSHELs are a self-adjuvanting peptide delivery system that mimics a natural presentation to elicit a robust immune response.

cancer biology↗