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Biology subjects

Shehata, L.

Publications and source records attributed to Shehata, L..

2 recordsLinked to original sources

Elicitation of potent neutralizing antibody responses by designed protein nanoparticle vaccines for SARS-CoV-2

A safe, effective, and scalable vaccine is urgently needed to halt the ongoing SARS-CoV-2 pandemic. Here, we describe the structure-based design of self-assembling protein nanoparticle immunogens that elicit potent and protective antibody responses against SARS-CoV-2 in mice. The nanoparticle vaccines display 60 copies of the SARS-CoV-2 spike (S) glycoprotein receptor-binding domain (RBD) in a highly immunogenic array and induce neutralizing antibody titers roughly ten-fold higher than the prefusion-stabilized S ectodomain trimer despite a more than five-fold lower dose. Antibodies elicited by the nanoparticle immunogens target multiple distinct epitopes on the RBD, suggesting that they may not be easily susceptible to escape mutations, and exhibit a significantly lower binding:neutralizing ratio than convalescent human sera, which may minimize the risk of vaccine-associated enhanced respiratory disease. The high yield and stability of the protein components and assembled nanoparticles, especially compared to the SARS-CoV-2 prefusion-stabilized S trimer, suggest that manufacture of the nanoparticle vaccines will be highly scalable. These results highlight the utility of robust antigen display platforms for inducing potent neutralizing antibody responses and have launched cGMP manufacturing efforts to advance the lead RBD nanoparticle vaccine into the clinic.

immunology

TGFβ restricts T cell function and bacterial control within the tuberculous granuloma

Interferon gamma (IFN{gamma}) produced by CD4 T cells is required for immune containment of Mycobacterium tuberculosis (Mtb) infection. Despite this, IFN{gamma} plays a minor role in CD4 T cell-mediated immunity within the lung. In this study, we use a recently-developed murine model of physiologic Mtb infection coupled with advanced quantitative imaging to demonstrate that IFN{gamma} production by Mtb-specific T cells is rapidly extinguished within the granuloma, but not in unaffected areas of the lung. This is mediated via localized immunosuppression through cell-intrinsic TGF{beta} signaling in effector T helper 1 cells within the granuloma, and blockade of TGF{beta} signaling in T cells results in improved immune cell function and decreased pulmonary bacterial burden. These findings uncover a potent immunosuppressive mechanism associated with Mtb infection and provide potential targets for host-directed therapy.

immunology