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Biology subjects

Zhao, Q. H.

Publications and source records attributed to Zhao, Q. H..

3 recordsLinked to original sources

CD45 sequestration lowers the signaling threshold in lymphocytes and enhances anti-tumor immunity

CD45 plays a central role in immune signal regulation by controlling the spatial dynamics of phosphatase activity through steric segregation of its bulky rigid extracellular domain. To modulate CD45 activity, here we develop and characterize protein engineering approaches to induce multivalent clustering of CD45, effectively mimicking the endogenous local receptor sequestration during immune synapse formation. In doing so, we engineer a biologic that enables precise, tunable control over CD45 surface localization and activity. CD45 sequestration exhibited striking synergy when administered in combination with intratumorally anchored IL-12 therapy, markedly delaying tumor progression and extending survival in syngeneic murine melanoma and carcinoma models. Immune profiling revealed that CD8 T cells are essential mediators of this synergistic antitumor response. Mechanistically, IL-12 initiates a wave of antigen generation and T cell priming, while CD45 sequestration subsequently enhances tumor-specific CD8 T cell activation, expansion, and functional states within the tumor-draining lymph node. These findings suggest that CD45 sequestration lowers the activation threshold of T cells, broadens the tumor-reactive T cell repertoire, and therefore promotes more robust tumor-specific T cell responses. Altogether, we establish CD45 as a promising novel target for cancer immunotherapy, capable of potentiating strong anticancer immune responses.

immunology↗

Scalable TCR synthesis and screening enables antigen reactivity mapping in vitiligo

T cell receptors (TCRs) mediate antigen recognition in adaptive immunity, yet large-scale mapping of TCR-antigen interactions remains a major challenge. Current approaches to synthesize and functionally screen TCRs remain technically complex and limited in throughput. We introduce a modular strategy, TCRAFT, to rapidly construct tens of thousands of TCRs for <$1 each while maintaining TCR-{beta} pairing with >99% accuracy. We integrate this approach with a high-throughput antigen discovery platform to enable library-on-library TCR-antigen screening. We reconstruct and screen 3,808 TCRs from vitiligo lesions, linking TCR specificity to transcriptional phenotypes for antigen-reactive T cells. To demonstrate scalability, we synthesize and screen 30,810 TCRs from donors with pancreatic ductal adenocarcinoma to capture antigen-specific TCRs. This workflow reduces the cost and complexity of large-scale TCR screening, enabling the expansion of the known landscape of antigen-specific TCRs in vitiligo with a method that can be readily extended to other immunological applications.

immunology↗

Peptide-MHC-targeted retroviruses enable in vivo expansion and gene delivery to tumor-specific T cells

Tumor-infiltrating-lymphocyte (TIL) therapy has demonstrated that endogenous T cells can be harnessed to initiate an effective anti-tumor response. Despite clinical promise, current TIL production protocols involve weeks-long ex vivo expansions which can affect treatment efficacy. Therefore, additional tools are needed to engineer endogenous tumor-specific T cells to have increased potency while mitigating challenges of manufacturing. Here, we present a strategy for pseudotyping retroviral vectors with peptide-major histocompatibility complexes (pMHC) for antigen-specific gene delivery to CD8 T cells and examine the efficacy of these transduced cells in immunocompetent mouse models. We demonstrate that pMHC-targeted viruses are able to specifically deliver function-enhancing cargoes while simultaneously activating and expanding anti-tumor T cells. The specificity of these viral vectors enables in vivo engineering of tumor-specific T cells, circumventing ex vivo manufacturing processes and improving overall survival in B16F10-bearing mice. Altogether, we have established that pMHC-targeted viruses are efficient vectors for reprogramming and expanding tumor-specific populations of T cells directly in vivo, with the potential to substantially streamline engineered cell therapy production for a variety of applications.

immunology↗