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Selective activation of the calcium signaling pathway by altered peptide ligands
J Sloan-Lancaster1, T H Steinberg, P M Allen
1Center for Immunology, Washington University School of Medicine, St. Louis, Missouri 63110, USA.
Abstract:
We previously demonstrated that altered peptide ligands (APL) can partially activate T cells, resulting in multiple distinct functional phenotypes, including the induction of anergy. Such APL stimulate a unique pattern of T cell receptor (TCR) phospho-zeta species, and lack associated ZAP-70 kinase activity. While these data suggested that selective signaling pathways downstream of the TCR/CD3 molecules are activated upon APL stimulation, they did not directly demonstrate this. Thus, we pursued intracellular signaling events successfully stimulated by APL. Because our previous studies showed that cyclosporin A (CsA) completely inhibited anergy induction, we assessed whether TCR ligation by APL cause a rise in cytosolic calcium (Ca+2). Our results show that these ligands can induce Ca+2 transients, in contrast to data generated using analogue peptides in other antigen systems. These opposing results may reflect differences in the intracellular signaling pathways utilized by different APL, or may be due to the exquisite sensitivity of the assay used here. Importantly, the APL-stimulated Ca+2 induction is both initiated and sustained at lower levels than that stimulated by a strong agonist signal, but resembles that stimulated by a weaker agonist stimulus. Alone, the less than optimal Ca+2 induction does not cause anergy, because ionomycin treatment together with the APL does not result in a proliferative signal. Instead, we propose that a combination of this and other signaling pathways induces T cell anergy. Overall, these data support the concept of differential signaling in T cells, as a direct consequence of the phosphotyrosine status of the TCR/CD3 molecules.
Insights
Altered peptide ligands (APL) partially activate T cells, inducing anergy by triggering calcium (Ca+2) transients and other signaling pathways. This differential signaling impacts T cell function and immune responses.
Area of Science:
- Immunology
- Cellular Signaling
Background:
- Altered peptide ligands (APL) can induce T cell anergy.
- APL activate T cells differently than traditional agonists, affecting T cell receptor (TCR) signaling pathways.
- Previous studies indicated cyclosporin A (CsA) inhibits APL-induced anergy.
Purpose of the Study:
- To investigate intracellular signaling events downstream of TCR/CD3 molecules upon APL stimulation.
- To determine if APL induce a rise in cytosolic calcium (Ca+2) levels.
- To explore the role of Ca+2 signaling in APL-induced T cell anergy.
Main Methods:
- Assessed cytosolic calcium (Ca+2) transients in T cells stimulated with APL.
- Compared Ca+2 induction by APL to strong and weak agonist stimuli.
- Investigated the effect of ionomycin treatment in combination with APL on T cell proliferation.
Main Results:
- APL stimulation induced Ca+2 transients in T cells.
- APL-induced Ca+2 induction occurred at lower levels than strong agonists but resembled weaker agonists.
- APL-induced Ca+2 transients alone did not cause anergy; combined signaling pathways are proposed to be involved.
Conclusions:
- APL induce differential signaling in T cells, including Ca+2 transients.
- The phosphotyrosine status of TCR/CD3 molecules dictates distinct signaling outcomes.
- A combination of signaling events, including Ca+2 transients, likely leads to T cell anergy.
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