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Escarra-Senmarti, M.

Publications and source records attributed to Escarra-Senmarti, M..

2 recordsLinked to original sources

A conserved region T-cell vaccine for Sarbecoviruses

The rapid development of vaccines was a critical part of the global response to the COVID-19 pandemic. SARS-CoV-2 (a Sarbecovirus and member of the Betacoronavirus genus responsible for the pandemic) virus was first detected in Wuhan, China in late 2019. Effective mRNA vaccines based on the viral Spike protein were designed from the earliest isolates and available by December of 2020. SARS-CoV-2 has continued to evolve in the human population, accruing neutralizing antibody resistance mutations that have necessitated updating the vaccine periodically to better match contemporary variants. Neutralizing antibody cross-reactivity is generally very limited among the diverse members of the betacoronavirus genus that are of clinical importance in people. Here, we present an alternative vaccine strategy based on eliciting T-cell responses targeting four highly conserved regions shared across the betacoronavirus proteomes. We hypothesized that cross-reactive responses to these regions could temper disease severity. Focusing immune responses on highly conserved epitopes could be beneficial as SARS-CoV-2 continues to evolve, or if a novel betacoronavirus should enter the human population. Vaccination with these highly conserved regions induced robust T-cell responses in mice and rhesus macaques. Vaccinated hamsters were significantly protected against weight loss and lung inflammation after challenge with the SARS-CoV-2 Omicron variant. After a SARS-CoV-2 Delta challenge in rhesus macaques, 3 out of 4 animals in the control group had infectious virus in their bronchoalveolar lavage samples, while the 4 animals in the vaccinated group did not.

immunology↗

Anti-citrullinated protein antibodies arise during affinity maturation of germline antibodies to carbamylated proteins in rheumatoid arthritis

Why autoantibodies in rheumatoid arthritis (RA) primarily target physiologically modified proteins, called citrullinated proteins, is unknown. Recognizing the inciting event in the production of anti-citrullinated protein antibodies (ACPAs) may shed light on the origin of RA. Here, we demonstrate that ACPAs originate from germline-encoded antibodies targeting a distinct but structurally similar modification, called carbamylation, which is pathogenic and environmentally driven. The transition from anti-carbamylated protein (anti-CarP) antibodies to ACPAs results from somatic hypermutations, indicating that the change in reactivity is acquired via antigen-driven affinity maturation. During this process, a single germline anti-CarP antibody transitions from anti-CarP to double positive (anti-CarP/ACPA) to ACPA according to the pattern and number of somatic hypermutations, explaining their coexistence and diverse specificity in RA. Artificial intelligence-based structural modeling revealed that an ACPA and its germline precursor exhibit distinct structural and biophysical properties, and pointed to heavy-chain tryptophan 48 (H-W48) as a critical residue in the differential recognition of citrullinated vs. carbamylated proteins. Indeed, a single methionine substitution in H-W48 changes the antibody specificity from ACPA to anti-CarP. These data indicate that the existence of germline-encoded anti-CarP antibodies is most likely the first event in the production of ACPAs during the early stages of RA development.

immunology↗