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ZAP-70 tyrosines 315 and 492 transmit non-genomic glucocorticoid (GC) effects in T cells
F Boldizsar1, M Szabo, K Kvell
1University of Pecs, Department of Immunology and Biotechnology, H-7624, Pecs, Szigeti ut 12, Hungary. ferenc.boldizsar@aok.pte.hu
Abstract:
ZAP-70 kinase is a key regulator of early T-cell signaling; moreover, it also participates in non-genomic glucocorticoid (GC) signaling. Short-term high-dose GC-analogue treatment induces the phosphorylation of the kinase, and its association with the GC receptor (GR). In the present work, first, we identified those tyrosine (Y) residues of the ZAP-70 kinase which were involved in non-genomic GC signaling using an array of P116 cells (ZAP-70-deficient Jurkat subclone) lentivirally-transfected with wild type or point-mutated ZAP-70 constructs where Y-residues were replaced with phenylalanine (F) at positions 069, 126, 178, 238, 292, 315, 492 or 493. Then, we characterized the GC-analogue-induced Y-phosphorylation of 3 key substrates of the ZAP-70 kinase: SLP-76, LAT and Cbl. Finally, we studied the cross talk between the non-genomic GC- and TcR/CD3 signaling pathways. Y-F mutations at positions 315 or 492 abolished the short high-dose Dexamethasone (DX) treatment-induced ZAP-70 phosphorylation suggesting that these Y-residues were involved in ZAP-70-mediated non-genomic GC actions. DX treatment alone induced Y-phosphorylation of LAT, SLP-76 and Cbl; moreover, in F315- and F492-ZAP-70 mutated cells decreased DX-induced Y-phosphorylation of SLP-76 and Cbl was observed indicating that these molecules might transmit downstream non-genomic GC signals in a ZAP-70 dependent manner. Short, high dose DX treatment influenced significantly the anti-CD3-induced signaling events: we observed alterations in LAT, SLP-76 and Cbl Y-phosphorylation and a decreased Ca(2+)-signal. These results confirm that ZAP-70 represents an important link between the non-genomic GC and TcR/CD3 signaling pathways. Importantly, the DX-induced effects on resting and activated T-cells are differentially mediated. These fine molecular details help to better understand the complex mechanism of non-genomic GC effects in T-cells.
Insights
ZAP-70 kinase links non-genomic glucocorticoid (GC) and T-cell receptor (TcR/CD3) signaling. Specific tyrosine residues (Y315, Y492) are crucial for GC-induced ZAP-70 phosphorylation and downstream signaling in T-cells.
Area of Science:
- Immunology
- Cell Signaling
- Molecular Biology
Background:
- ZAP-70 kinase is vital for T-cell receptor signaling.
- ZAP-70 also participates in non-genomic glucocorticoid (GC) signaling pathways.
- Short-term, high-dose GC-analogue treatment affects ZAP-70 phosphorylation and its association with the GC receptor (GR).
Purpose of the Study:
- Identify tyrosine residues in ZAP-70 involved in non-genomic GC signaling.
- Characterize GC-analogue-induced phosphorylation of ZAP-70 substrates (SLP-76, LAT, Cbl).
- Investigate the crosstalk between non-genomic GC and TcR/CD3 signaling pathways mediated by ZAP-70.
Main Methods:
- Utilized P116 cells (ZAP-70-deficient Jurkat subclone) lentivirally transfected with wild-type or point-mutated ZAP-70 constructs (Y-to-F mutations).
- Assessed Dexamethasone (DX)-induced ZAP-70 phosphorylation and phosphorylation of its substrates (SLP-76, LAT, Cbl).
- Studied the impact of DX treatment on anti-CD3-induced signaling events, including Ca(2+) signaling.
Main Results:
- Y-F mutations at ZAP-70 positions 315 or 492 abolished DX-induced ZAP-70 phosphorylation, indicating their role in non-genomic GC signaling.
- DX treatment induced Y-phosphorylation of LAT, SLP-76, and Cbl; this was decreased in F315- and F492-ZAP-70 mutated cells.
- Short, high-dose DX treatment altered anti-CD3-induced signaling, affecting substrate phosphorylation and decreasing Ca(2+) signals, with differential effects on resting and activated T-cells.
Conclusions:
- ZAP-70 tyrosine residues Y315 and Y492 are critical for mediating non-genomic GC actions in T-cells.
- ZAP-70 acts as a molecular link between non-genomic GC signaling and TcR/CD3 pathways.
- The findings elucidate the complex molecular mechanisms underlying non-genomic GC effects in T-cells, highlighting differential modulation in resting versus activated states.
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