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Zavadil Kokas, F.

Publications and source records attributed to Zavadil Kokas, F..

2 recordsLinked to original sources

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

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.

cancer biology↗

A tonoplast cytokinin riboside transporter gates intracellular hormone availability at the plant-microbe interface

Cytokinin ribosides are major mobile and precursor forms of cytokinins, plant hormones whose transport and subcellular distribution shape developmental and stress responses. Here, we identify Arabidopsis thaliana EQUILIBRATIVE NUCLEOSIDE TRANSPORTER1 (ENT1) as a tonoplast-localized cytokinin riboside transporter. Tissue-specific subcellular analysis under native regulatory elements localized ENT1 predominantly to the tonoplast of root epidermal and lateral root cap cells, where it gates intracellular cytokinin riboside availability. Accordingly, ENT1 overexpression enhanced cytokinin riboside sensitivity and signalling, whereas loss of ENT1 altered adenosine metabolism and disrupted cytokinin homeostasis, leading to the accumulation of multiple zeatin-type cytokinins. ENT1-dependent cytokinin riboside compartmentalization was required for beneficial microbe-induced protection, as ent1 mutants failed to acquire protection against the fungal pathogen Botrytis cinerea and the bacterial pathogen Pseudomonas syringae pv. tomato DC3000. These findings reveal a vacuolar gatekeeping mechanism that controls intracellular cytokinin riboside availability and links hormone compartmentalization to beneficial microbe-dependent plant defence.

plant biology↗