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Biology subjects

Picucci, S. I.

Publications and source records attributed to Picucci, S. I..

2 recordsLinked to original sources

RM1mAb avoids Intracellular degradation to Synergistically inhibit NLRP3 Inflammasome Activation in Familial Cold Autoinflammatory Syndrome

The NLRP3 inflammasome enables release of mitochondrial DNA to circulation. Circulating oxidized mitochondrial DNA generated in response to NLRP3 inflammasome activation functions as an alarmin that contributes to the maintenance of systemic inflammation. The discovery that NLRP3 could cleave oxidized mtDNA led to repurposed chemical inhibitors that dually target NLRP3 and DNA glycosylase OGG1, resulting in pro-survival type-1 interferon. Using molecular dynamics and immunology we show that RM1mAb, a full-length monoclonal antibody targeting the NLRP3 pyrin domain, can prevent NLRP3 from interacting with mitochondrial DNA. We further illustrate RM1mAb can exploit FC{gamma}Rs for cell entry and avoid destruction by the lysosomal pathway to inhibit IL-1{beta} secretion in peripheral mononuclear blood cells (PBMCs) isolated from patients with Familial Cold Autoinflammatory Syndrome harboring NLRP3 L353P gain of function mutation. We show RM1mAb and repurposed inhibitor TH5487 synergistically inhibit inflammasome activation. These findings illustrate the promise of exploiting FC{gamma}Rs as a means of IgG entry to target cytosolic proteins and improve human health. One-Sentence SummaryRM1mAb and TH5487 synergistically inhibit inflammasome activation in human FCAS PBMCs.

immunology↗

Design, Structure, and Immunogenicity of a Soluble Prefusion-stabilized EBV gB Antigen

Epstein-Barr virus (EBV), the causative agent of mononucleosis, is linked to over 140,000 annual cancer-related deaths globally and increases the risk of multiple sclerosis by up to 32-fold. As a herpesvirus, EBV establishes lifelong infection, and over 90% of U.S. adults are EBV-seropositive. Despite its significant disease burden, no approved EBV vaccines or therapeutics exist. Among EBV envelope glycoproteins, the fusion protein (gB) is strictly required for epithelial and B cell infection. Using a combination of AlphaFold-guided modeling, rational design, and ThermoMPNN-informed optimization, we engineered a stabilized prefusion gB variant, D2C3. This construct incorporates two inter-protomeric disulfide bonds and three cavity-filling substitutions, resulting in a melting temperature of 54 {degrees}C. Cryo-EM analysis of this construct allowed us to determine the prefusion structure of EBV gB, providing insights into the structural transitions required to adopt the postfusion conformation. Murine immunizations and depletion studies with human sera suggested a trend toward improved functional immunogenicity of D2C3 compared to postfusion gB. Collectively, these studies define engineering principles to stabilize class III fusion proteins, provide reagents to interrogate the human antibody response to EBV gB, and lay a foundation for further studies to develop EBV gB-based vaccine candidates.

biochemistry↗