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Garfinkle, S. E.

Publications and source records attributed to Garfinkle, S. E..

2 recordsLinked to original sources

Machine learning enables de novo multi-epitope design of plasmodium falciparum circumsporozoite protein to target trimeric L9 antibody

AbstractCurrently approved vaccines for the prevention of malaria provide only partial protection against disease, due to high variability in the quality of induced antibodies. These vaccines present the unstructured central repeat region, as well as the C-terminal domain, of the circumsporozoite protein (PfCSP) of the malaria parasite, Plasmodium falciparum (1). A recently discovered protective monoclonal antibody, L9, recognizes three structured copies of the PfCSP minor repeat. Similarly to other highly potent anti-malarial antibodies, L9 relies on critical homotypic interactions between antibodies for its high protective efficacy (2, 3). Here, we report the design of immunogens scaffolding one copy of PfCSPs minor repeat capable of binding L9. To design immunogens capable of presenting multiple, structure-based epitopes in one scaffold, we developed a machine-learning-driven structural immunogen design pipeline, MESODID, tailored to focus on multi-epitope vaccine targets. We use this pipeline to design multiple scaffolds that present three copies of the PfCSP minor repeat. A 3.6 [A] cryo-EM structure of our top design, minor repeat targeting immunogen (M-TIM), demonstrates that M-TIM successfully orients three copies of L9, effectively recapitulating its critical homotypic interactions. The wide prevalence of repeated epitopes in key vaccine targets, such as HIV-1 Envelope, SARS-CoV-2 spike, and Influenza Hemagglutinin, suggests that MESODID will have broad utility in creating immunogens that incorporate such epitopes, offering a new powerful approach to developing vaccines against a range of challenging infections, including malaria. Significance StatementIn this study, we present a machine learning driven, structure-guided protein design pipeline built specifically for the design of multi-epitope vaccine immunogens. We employ the pipeline here to design and solve the cryo-EM structure of a de novo immunogen that binds and properly orients three copies of the anti-malarial monoclonal antibody L9, producing a promising next-generation malaria vaccine immunogen. This design pipeline could be employed to design any number of structurally constrained multi-epitope immunogens, as well as other proteins designed to bind multiple targets.

biophysics↗

Structural principles of peptide-centric Chimeric Antigen Receptor recognition guide therapeutic expansion

Peptide-Centric Chimeric Antigen Receptors (PC-CARs), which recognize oncoprotein epitopes displayed by human leukocyte antigens (HLAs) on the cell surface, offer a promising strategy for targeted cancer therapy1. We have previously developed a PC-CAR targeting a neuroblastoma- associated PHOX2B peptide, leading to robust tumor cell lysis restricted by two common HLA allotypes2. Here, we determine the 2.1 [A] structure of the PC-CAR:PHOX2B/HLA-A*24:02/{beta}2m complex, which reveals the basis for antigen-specific recognition through interactions with CAR complementarity-determining regions (CDRs). The PC-CAR adopts a diagonal docking mode, where interactions with both conserved and polymorphic HLA framework residues permit recognition of multiple HLA allotypes from the A9 serological cross-reactivity group, covering a combined American population frequency of up to 25.2%. Comprehensive characterization using biochemical binding assays, molecular dynamics simulations, and structural and functional analyses demonstrate that high-affinity PC-CAR recognition of cross-reactive pHLAs necessitates the presentation of a specific peptide backbone, where subtle structural adaptations of the peptide are critical for high-affinity complex formation and CAR-T cell killing. Our results provide a molecular blueprint for engineering CARs with optimal recognition of tumor-associated antigens in the context of different HLAs, while minimizing cross-reactivity with self-epitopes.

biochemistry↗