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K. Shirakawa

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Open access Aug 2026

Efficient discovery of an agonistic anti-OX40 nanobody by epitope-directed approach to address enrichment-driven epitope bias

Background Conventional antibody discovery approaches that do not account for enrichment-driven biases, such as epitope immunogenicity, PCR amplification bias, or protein expression efficiency, may result in under-representation of rare yet functionally relevant clones, necessitating labor-intensive in vitro screening to identify agonistic antibodies among a large number of dominant clones. Thus, efficient screening methods for agonistic antibodies are urgently needed. OX40 is a promising target for cancer immunotherapy due to its role in enhancing T-cell activation and survival. However, effective anti-OX40 agonistic antibodies have not yet been developed. Methods We developed a novel screening strategy that involves the selection of nanobody clone pools enriched by biopanning against gp34-engaged and non-engaged OX40-expressing cells, next-generation sequencing, and computational clustering and subtraction analysis to identify clones recognizing the ligand-receptor interface. Representative nanobody clones underwent in vitro validation, including epitope mapping, binding affinity measurements, and functional assessments. Furthermore, we engineered the selected nanobody to enhance its in vivo efficacy. We also performed structural analysis of the nanobody-OX40 complex. Results Our epitope-directed approach efficiently identified nanobody clones recognizing functionally relevant epitopes distinct from dominant immunogenic regions. Notably, clone Nb479 demonstrated robust agonistic activity, closely mimicking the natural ligand gp34 with extensive OX40-binding interactions. Trimerization of Nb479 facilitated potent OX40 activation without the need for a cross-linking scaffold. Conjugation of the Nb479 trimer with an anti-serum albumin nanobody exhibited significantly improved pharmacokinetics in vivo and enhanced antitumor activity in a mouse model treated with CD19 chimeric antigen receptor T cells. Conclusion This study presents an innovative epitope-directed approach that greatly accelerates the discovery of functionally potent agonistic nanobodies by effectively circumventing enrichment-driven epitope bias. Our approach and engineered multivalent anti-OX40 nanobody offer a powerful platform to advance immunotherapeutic strategies for cancer treatment.

Tomoki Iemura, T. Kitawaki, R. Maeda et al. · 0 citations
Review Open access Sep 2026

Replication Stress Tolerance in Adult T-Cell Leukemia

Replication stress (RS) represents a major vulnerability of cancer cells treated with nucleoside analogs and related antimetabolites; however, tumors frequently acquire tolerance mechanisms that permit survival despite persistent DNA lesions. This review examines molecular determinants of RS tolerance, focusing on human T-cell leukemia virus type 1 (HTLV-1)-mediated adult T-cell leukemia/lymphoma (ATL) as a model of virus-mediated rewiring of DNA damage responses. Chain-terminating nucleoside analogs generate aberrant replication intermediates, including blocked 3’ DNA termini, mis-incorporated bases, and stalled replication forks. In ATL, viral oncoproteins suppress key components of replication stress response pathways, notably tyrosyl-DNA phosphodiesterase 1 (TDP1) and mismatch repair (MMR), thereby creating exploitable repair deficiencies. Consistent with this vulnerability, ATL cells exhibit marked sensitivity to replication stress–inducing agents such as irinotecan (CPT-11) and the chain-terminating nucleoside analog abacavir. Recent CRISPR-based functional genomics studies further identify Schlafen 11 (SLFN11) as an independent and dominant regulator of RS sensitivity. SLFN11 determines the fate of stressed replication forks independently of lesion processing, acting as an execution factor that converts otherwise tolerable RS into irreversible replication arrest. We conclude by discussing therapeutic strategies that exploit RS tolerance defects in ATL, including biomarker-guided nucleoside analog therapy, and rational combination approaches targeting compensatory RS pathways.

Yusuke Okamoto, Masayuki Kobayashi, Takashi Sakamoto et al. · 0 citations

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