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Cohen, K. W.

Publications and source records attributed to Cohen, K. W..

4 recordsLinked to original sources

Characterization of a vaccine-elicited human antibody with sequence homology to VRC01-class antibodies that binds the C1C2 gp120 domain

Broadly HIV-1 neutralizing VRC01-class antibodies bind the CD4-binding site of the HIV-1 envelope (Env) and contain VH1-2*02-derived heavy chains paired with light chains expressing five amino acid long CDRL3s. Their unmutated forms do not recognize Env or neutralize HIV-1. The lack of elicitation of VRC01-class antibodies in human clinical trials could potentially be due to the absence of activation of the corresponding naive B cells by the vaccine Env immunogens. To address this point directly, we examined Env-specific BCR sequences from participants in the HVTN 100 clinical trial. Of all the sequences analyzed only one displayed sequence homology to VRC01-class antibodies, but the corresponding antibody (FH1) recognized the C1C2 gp120 domain. For FH1 to switch epitope recognition to the CD4-binding site, alterations in both the CDRH3 and CDRL3 were necessary. Our findings support the use of specifically designed immunogens to activate VRC01-class B cells in future human vaccine trials.

immunology↗

T helper 2 transcriptional profile predicts single-cell HIV envelope-specific polyfunctional CD4+ T cells correlated with reduced risk of infection in RV144 trial

Despite the critical role antigen-specific T cells play in responding to viral infections, their aggregate frequencies in peripheral blood have not correlated with clinical protection during HIV infection. However, a subset of HIV-specific CD4+ T cells, termed polyfunctional T cells, can produce multiple effector cytokines simultaneously. In the RV144 HIV vaccine trial, polyfunctional T cells correlated with reduced risk of HIV infection. Little is known about what differentiates polyfunctional T cells from other vaccine-elicited T cells. Therefore, we developed a novel live-cell multiplexed cytokine capture assay, to identify and transcriptionally profile vaccine-specific polyfunctional CD4+ T cells. We applied these methods to samples from the HVTN 097 clinical trial of the same vaccine regimen as RV144. We discovered two surface receptors that were enriched among polyfunctional CD4+ T cells and a Th2-biased signature (IL-4, IL-5, and IL-13) that specifically predicted the envelope-specific polyfunctional CD4+ T cells that were correlated with reduced risk of HIV infection in RV144. By linking single-cell transcriptional and functional profiles, we may be able to further define the role of vaccine-elicited polyfunctional T cells in contributing to effective immunity. Key PointsO_LINovel ex vivo multiplexed cytokine capture assay to enumerate and single-cell sort polyfunctional T cells for downstream analyses C_LIO_LIPolyfunctional T cells were specifically detected among the HIV envelope-stimulated CD4+ T cells C_LIO_LISingle-cell RNA sequencing identified novel surface markers enriched among vaccine-specific polyfunctional CD4+ T cells C_LIO_LITh2 transcriptional signature predicted polyfunctional CD4+ T cell profile that had correlated with reduced risk of HIV infection in the RV144 HIV efficacy trial C_LI

immunology↗

Longitudinal immune dynamics of mild COVID-19 define signatures of recovery and persistence

SARS-CoV-2 has infected over 200 million and caused more than 4 million deaths to date. Most individuals (>80%) have mild symptoms and recover in the outpatient setting, but detailed studies of immune responses have focused primarily on moderate to severe COVID-19. We deeply profiled the longitudinal immune response in individuals with mild COVID-19 beginning with early time points post-infection (1-15 days) and proceeding through convalescence to >100 days after symptom onset. We correlated data from single cell analyses of peripheral blood cells, serum proteomics, virus-specific cellular and humoral immune responses, and clinical metadata. Acute infection was characterized by vigorous coordinated innate and adaptive immune activation that differed in character by age (young vs. old). We then characterized signals associated with recovery and convalescence to define and validate a new signature of inflammatory cytokines, gene expression, and chromatin accessibility that persists in individuals with post-acute sequelae of SARS-CoV-2 infection (PASC).

immunology↗

Characterization of neutralizing antibodies from a SARS-CoV-2 infected individual

B cells specific for the SARS-CoV-2 S envelope glycoprotein spike were isolated from a COVID-19-infected subject using a stabilized spike-derived ectodomain (S2P) twenty-one days post-infection. Forty-four S2P-specific monoclonal antibodies were generated, three of which bound to the receptor binding domain (RBD). The antibodies were minimally mutated from germline and were derived from different B cell lineages. Only two antibodies displayed neutralizing activity against SARS-CoV-2 pseudo-virus. The most potent antibody bound the RBD in a manner that prevented binding to the ACE2 receptor, while the other bound outside the RBD. Our study indicates that the majority of antibodies against the viral envelope spike that were generated during the first weeks of COVID-19 infection are non-neutralizing and target epitopes outside the RBD. Antibodies that disrupt the SARS-CoV-2 spike-ACE2 interaction can potently neutralize the virus without undergoing extensive maturation. Such antibodies have potential preventive/therapeutic potential and can serve as templates for vaccine-design. IN BRIEFSARS-CoV-2 infection leads to expansion of diverse B cells clones against the viral spike glycoprotein (S). The antibodies bind S with high affinity despite being minimally mutated. Thus, the development of neutralizing antibody responses by vaccination will require the activation of certain naive B cells without requiring extensive somatic mutation. HighlightsO_LIAnalysis of early B cell response to SARS-CoV-2 spike protein C_LIO_LIMost antibodies target non-neutralizing epitopes C_LIO_LIPotent neutralizing mAb blocks the interaction of the S protein with ACE2 C_LIO_LINeutralizing antibodies are minimally mutated C_LI

immunology↗