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Oberoi, P.

Publications and source records attributed to Oberoi, P..

4 recordsLinked to original sources

Early clonal dominance at priming sets the trajectory for broad HIV serum neutralization

Inducing broadly neutralizing antibodies (bnAbs) remains a central challenge in HIV vaccine development 1-3. Germline-targeting immunogens are designed to activate rare bnAb precursor B cell lineages 4-12, yet the relationships between priming efficiency, clonal dominance, and downstream serum neutralization remain poorly defined. We recently demonstrated that vaccination with an engineered V2-apex germline-targeting trimer Q23-APEX-GT2 successfully recruits and activates rare long-CDRH3 B cell precursors in outbred macaques 13. Here, we dissect the immunological mechanisms governing bnAb precursor priming and early B cell expansion and define clonal features that drive progression to serum neutralization breadth. Our antigen-specific B cell analyses showed that Q23-APEX-GT2 consistently engaged long-CDRH3 precursors, although priming efficiency varied across animals. Longitudinal deep lineage tracing across lymph node and blood compartments revealed that early recruitment of multiple diverse long-CDRH3 lineages, followed by preferential expansion and dominance of one or two clones, strongly predicted serum neutralization potency. Subsequent CAP256.SU SHIV infection efficiently recalled vaccine-seeded clones, accelerated affinity maturation, and drove broad heterologous neutralization in most animals. Notably, one macaque with diverse and expanded V2-apex lineages rapidly achieved [~]70% serum neutralization breadth. Importantly, longitudinal tracing revealed that bona fide bnAbs can emerge from vaccine-primed precursors, while also uncovering "born-wrong" bnAb-like lineages that expand yet remain non-neutralizing, despite structurally validated recognition of the V2-apex bnAb site. Together, these findings establish priming efficiency coupled with early clonal dominance as key determinants of serum bnAb induction and provide a mechanistic framework to guide rational HIV vaccine design.

immunology↗

Structure-guided design of native-like HIV Env Single Chain Trimers for enhanced stability, immunogenicity, and versatile vaccine delivery

Stabilizing the HIV envelope (Env) trimer in its native prefusion conformation is key to eliciting broadly neutralizing antibodies (bnAbs). We present a generalizable single-chain trimer-(SCT) design platform that enables the production of stable, native-like Env trimers across diverse HIV strains. Using a structure-guided approach, we developed CAP256.SU-SCT9, based on a CAP256.SU Env shown to induce V2-apex bnAbs in humans and rhesus macaques. CAP256.SU-SCT9 trimer exhibited native-like structure, bnAb-specific antigenicity, authentic glycosylation, and compatibility with nucleic acid and nanoparticle delivery. We extended this design strategy to a panel of HIV Envs representing global diversity, and immunogens known to initiate bnAb responses in humans. Structural analyses confirmed that SCTs consistently maintained prefusion-closed conformations, favorable glycan profiles, strong binding to trimer-specific bnAbs, and low reactivity with non-neutralizing antibodies. These findings establish SCT as a versatile platform for HIV trimer immunogen design, with potential to support next-generation vaccines aimed at eliciting protective bnAb responses.

immunology↗

Germline-targeting HIV immunogen induces cross-neutralizing antibodies in outbred macaques

Germline-targeting-(GT) is a promising strategy to activate rare broadly neutralizing antibody (bnAb)-producing B cells against HIV, but induction of such responses in outbred animals has not been achieved. Using antibody-guided structure-based design, we engineered a germline-targeting trimer immunogen Q23-APEX-GT2 that primes diverse V2-apex bnAb precursors. Q23-APEX-GT2 efficiently activated V2-apex-specific B cells in humanized knock-in mice and consistently elicited immunofocused antibody responses in rhesus macaques, priming multiple long CDRH3-loop bnAb-B cell lineages. Monoclonal antibodies from immunized macaques exhibited broad heterologous HIV trimer binding and cross-neutralization. Atomic-level structural studies confirmed precise epitope targeting and revealed CDRH3-paratope configurations that mirrored those of human V2-apex bnAbs. This study provides proof-of-principle for successful priming and maturation of authentic V2-apex bnAb precursors in outbred macaques, underscoring the potential of V2-apex-targeted vaccines. HIGHLIGHTSO_LIEngineered Q23-APEX-GT2 trimer to stimulate diverse V2-apex bnAb B cell precursors C_LIO_LIQ23-APEX-GT2 primed rare V2-apex bnAb B cells in mice and outbred rhesus macaques C_LIO_LIQ23-APEX-GT2 elicited immunofocused antibody responses and diverse V2-apex B cell lineages with desirable long-CDRH3 paratope properties C_LIO_LIQ23-APEX-GT2 alone induced V2-apex antibodies with broad HIV trimer binding and modest neutralization breadth C_LIO_LIStructural analysis confirmed bnAb site targeting, mirroring human and rhesus V2-apex bnAbs C_LI

immunology↗

Rapid acquisition of HIV-1 neutralization breadth in a rhesus V2 apex germline antibody mouse model after a single bolus immunization

Current vaccine strategies to elicit broadly neutralizing antibodies (bnAbs) against HIV-1 generally propose complex, multi-boost immunization regimens. In rhesus macaques, SHIV infection has been observed to rapidly drive the development of some classes of bnAbs that share structural similarities with those in humans. Here, we generated a knockin mouse model with B cells bearing the unmutated common ancestor (UCA) of the V2 apex-targeted bnAb lineage, V033-a. A single immunization of mice with a germline-targeting native-like trimer was sufficient to recapitulate the ontogeny of the mature rhesus bnAb in knockin mice--including rare, disfavored somatic mutations--leading to the induction of antibodies that exhibited potent neutralization against both autologous and heterologous tier 2 viruses. A boost with Env escape mutant trimers further improved breadth and potency, and cryo-EM structure revealed the structural basis for heterologous neutralization breadth. Non-human primate and mouse models can thus combine with structure to serve as a platform for identifying and confirming immunogens that streamline HIV-vaccination regimens.

immunology↗