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bioRxiv · 10.64898/2026.08.17.744644

Multimodal cell communication networks nominate immunotherapies for RCC subgroups with discrete T cell recruitment or expansion

Abstract

Renal cell carcinoma (RCC) is amongst the most immune-infiltrated solid tumours, but only a small subset of patients achieves durable response to immune checkpoint blockade therapy. Efforts to characterize the immune microenvironment and molecular regulators responsible for treatment responses have explored numerous facets of disease biology using compartmentalized genomics, transcriptomics, and proteomics datasets, yielding many important yet context and data specific insights. Therefore, to provide a more integrated approach to informing future precision medicine strategies, we combined the complementary strengths of multiple technological platforms to profile multi-regional, spatially annotated surgical biospecimens from 65 RCC patients by single-cell RNA sequencing with paired TCR and BCR repertoire analysis, imaging mass cytometry, suspension mass cytometry, spatial transcriptomics and deconvolved bulk RNA sequencing. With this resource dataset, we explored patient subgroups and precision immunotherapy strategies using an integrated analysis of transcripts and proteins across single cell and spatial modalities. Proximal cell interactions and distinct receptor-ligand pairings identified 7 recurrent cellular communication networks. Robustly mapping reproducible gene signatures across technologies and to a variety of publicly available datasets, we show these highly refined immune subgroups stratify patients with tumour microenvironments associated with prognosis and immunotherapy response. Notably, this reveals that highly infiltrated environments with the potential for immunotherapy response may in fact comprise two distinct communication networks, with differing modes of T cell clonal expansion and immune evasion axes associated with T cell exhaustion or myeloid and NK reprogramming, which could inform targeted combination therapeutic strategies to improve outcomes. Overall, we provide a high-dimensional multi-modal resource dataset that enables cross-platform integration, links stages of T cell clonal expansion with enabling or suppressive RCC immune cell communication networks and nominates rational strategies for combinatorial precision immunotherapy. (Funded by University Health Network, Toronto; REMEDY ClinicalTrials.gov number, NCT04005183.)

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BibTeXRIS

Pfeil, J. Q., Hui, S., Stueckmann, D., Zhang, X., Martin, L., Komisarenko, M., Meens, J., Gorman, J. L., Murphy, J. M., Mak, M. L., Chevrier, S., Sivapatham, S., Spears, M., Liu, Z. A., Deniffel, D., Haider, M. A., Jonsson, P., Davis, F. P., Penaranda, C., Prendeville, S., Crome, S. Q., Ailles, L., Bodenmiller, B., Stransky, N., Smolen, G., Bader, G. D., Finelli, A., Jackson, H. W., Lawson, K. A.. 2026-08-20. Multimodal cell communication networks nominate immunotherapies for RCC subgroups with discrete T cell recruitment or expansion. https://doi.org/10.64898/2026.08.17.744644

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