Search bioRxiv⌕ Search

Biology subjects

Sackett, S. D.

Publications and source records attributed to Sackett, S. D..

2 recordsLinked to original sources

The NBSGW RIP-DTR Mouse: An Integrated Platform for Diabetes Induction, Human Immune Reconstitution and Transplantation Studies

Using toxin receptor-mediated cell ablation, a diabetes mouse model was generated that supports engraftment of human hematopoietic stem/progenitor cells (HSPCs) without the need for irradiation. The NBSGW immunodeficient strain was crossed with the NSG RIP-DTR which carries the diphtheria toxin receptor (hDTR) under the control of the rat insulin promoter to generate the NBSGW RIP-DTR mouse. This model enables controlled {beta}-cell ablation, robust human immune system reconstitution without myeloablative conditioning, and evaluation of human immune-mediated graft rejection within a single platform. NBSGW RIP-DTR mice exhibited reproducible and titratable diabetes induction, supported durable human islet engraftment and glycemic correction, and retained efficient human hematopoietic reconstitution comparable to the parental NBSGW strain. In humanized mice, diphtheria toxin-mediated diabetes induction was well tolerated and enabled assessment of human immune responses to allogeneic islet grafts. Collectively, these findings establish the NBSGW RIP-DTR mouse as an integrated and clinically relevant platform for studying {beta}-cell replacement therapies and human immune-mediated graft rejection. Article HighlightsO_LICurrent preclinical models do not simultaneously support controlled diabetes induction, human islet transplantation, and durable human immune reconstitution without irradiation. C_LIO_LIThis study asked whether the NBSGW RIP-DTR mouse could integrate diphtheria toxin-mediated {beta}-cell ablation with irradiation-free humanization in a single platform. C_LIO_LINBSGW RIP-DTR mice demonstrated reproducible diabetes induction, supported functional human islet engraftment, and retained robust human hematopoietic reconstitution comparable to parental strains. C_LIO_LIThese findings establish the NBSGW RIP-DTR model as a clinically relevant platform for studying {beta}-cell replacement and human immune response to islet allografts, xenografts and stem cell-derived islets. C_LI

immunology↗

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↗