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Hypoxia-conditioned HNSCC cell line secretomes drive phenotypic, functional, and transcriptional reprogramming of human neutrophils

Pereckova, J.; Zavadil Kokas, F.; Voznicova, S.; Kolarova, T.; Hrstka, R.; Vasicek, O.; Perecko, T.

2026-07-31 cancer biology
10.64898/2026.07.31.741959 bioRxiv
Show abstract

Neutrophils display marked functional plasticity in cancer; however, it remains poorly understood how soluble factors derived from hypoxic and irradiated head and neck squamous cell carcinoma (HNSCC) cells reprogram neutrophil phenotype and function. Here, we employed a well characterized and controlled in vitro model to examine how tumor-conditioned media (TCM) from HNSCC cell lines cultured under ambient (21% O2) or hypoxic (1% O2) conditions, with or without 6 Gy gamma irradiation, modulate human neutrophil phenotype, and functional and transcriptional responses. Initial analyses were performed using TCM from three different HNSCC cell lines, whereas subsequent mechanistic characterization focused on FaDu-derived TCM. We show that TCM prolongs neutrophil survival in a cell line-dependent manner. Among the tested cell lines, hypoxia-conditioned FaDu-derived TCM promoted immunomodulatory neutrophil state characterized by enhanced survival, selective priming of ROS production, and elevated TRAIL-R3/TRAIL-R2 ratio. Induction of classical activation markers (CD11b, CD62L) was not evident. Transcriptomic analysis revealed minimal effects of normoxic TCM. Hypoxia-conditioned TCM induced a pronounced transcriptional program enriched in hypoxia- and stress-associated pathways. In contrast, irradiation of tumor cells had a limited additional impact on neutrophil reprogramming. Together, these findings indicate hypoxia-conditioned tumor secretomes as important drivers of neutrophil functional adaptation in vitro, supporting a model in which soluble factors alone are sufficient to induce a persistent, immunomodulatory neutrophil phenotype. This work provides mechanistic insight into tumor-neutrophil crosstalk, highlighting hypoxia-driven signaling as a potential therapeutic target in radioresistant HNSCC and supporting a role for neutrophil reprogramming in this context.

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