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Graber, A. L.

Publications and source records attributed to Graber, A. L..

2 recordsLinked to original sources

Dengue virus-specific memory B cell subsets differ as a function of infection history

The four dengue virus serotypes (DENV1-4) are a major global health threat. Infection generates protective immunity over multiple exposures with different serotypes. Virus-specific memory B cells (MBCs) can contribute to lasting protection, yet their development over multiple DENV infections remains undefined. We comprehensively evaluated frequencies of nine DENV-specific B cell subsets in 58 samples from dengue cases, comparing groups with primary (1{degrees}) versus secondary (2{degrees}) DENV infection history. Longitudinal sampling from acute infection to 18 months post-symptom onset enabled assessment of DENV-specific MBC temporal dynamics. Critically, we found that DENV-specific B cell frequency differed substantially at the level of phenotypic subsets in 1{degrees} versus 2{degrees} immunity, despite no significant difference in total frequency of DENV-specific B cells. In particular, DENV-specific IgG+, IgM+, atypical, and class-switched IgD-MBCs were durable until 18 months and accumulated with multiple exposures, representing a bona fide memory compartment against DENV. Also, naive-like IgD+/IgM+ DENV-specific B cells were found. Interestingly, the peak of certain DENV-specific MBCs occurred >3-months post-symptom onset in 2{degrees} DENV immunity, suggesting potential for long-term MBC maturation. We demonstrate that DENV-specific MBC subsets differ as a function of infection history, suggesting that 2{degrees} DENV immunity does not simply generate a quantitative boost, but a qualitative reprogramming of the memory pool. Significance StatementThe four dengue virus serotypes (DENV1-4) cause the most prevalent human mosquito-borne viral disease. Dengue is a febrile disease that often results in debilitating body pain and can rapidly progress to severe disease involving shock. People are generally protected after multiple exposures to different serotypes. Memory B cells (MBCs) can contribute to lasting protection against subsequent dengue. To understand how these rare DENV-specific MBCs develop over multiple exposures, we compared samples from cases with primary versus secondary (i.e., multiple) DENV infections. We found that instead of a higher frequency of total DENV-specific MBCs, particular subsets of DENV-specific MBCs were higher and peaked later after multiple exposures. This suggests that a qualitative shift in DENV-specific MBCs may contribute to protective immunity.

immunology↗

Dairy cattle herds mount a characteristic antibody response to highly pathogenic H5N1 avian influenza viruses

An unprecedented outbreak of a highly pathogenic avian influenza virus, H5 clade 2.3.4.4b, was reported in United States dairy cattle during the spring of 2024. It has now spread to hundreds of herds across multiple states. In humans, antibodies to the hemagglutinin (HA) protein confer the strongest protection against infection. Human herd immunity limits viral spread but also drives the emergence of antigenic variants that escape dominant antibody responses. We used store-bought milk to profile the collective H5N1 antibody response of dairy cattle herds. We detected HA binding antibodies in specific samples from states with recent/ongoing outbreaks. These antibodies present in milk neutralized replicating virus expressing dairy cattle HA and neuraminidase (NA). Despite originating from independent vendors, dairies/plants, geographic regions, and time, antibodies present in these samples are remarkably similar in activity and HA binding specificity. The dominant antibody response was clade 2.3.4.4b HA specific, followed by cross-reactivity with other H5s. Whether the uniformity of the response is a pathway to achieve herd immunity or an avenue for antigenic variants to rapidly escape remains to be seen. SIGNIFICANCEEstablishing human herd immunity ends pandemics. For influenza viruses, this immunity drives continued antigenic evolution that enables viruses to infect once-immune individuals. An outbreak of highly pathogenic avian influenza virus was detected in dairy cattle in 2024 and has spread rapidly across herds and states. We report approaches to assess dairy cattle herd immunity using store-bought milk samples. Across samples separated by geography and time we find dairy cattle mount a strikingly similar antibody response that is strongest to the dairy cattle virus. Benchmarking immunity at this phase of the outbreak is important to understand either eradication or the emergence of antigenic variants that enable reinfection.

microbiology↗