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Inhibition of protein-tyrosine phosphatases by mild oxidative stresses is dependent on S-nitrosylation
Daniel M Barrett1, Stephen M Black, Horia Todor
1Department of Radiation Oncology, Virginia Commonwealth University, Richmond, Virginia 23298-0058, USA.
Abstract:
Previous studies have shown that a Ca(2+)-dependent nitric-oxide synthase (NOS) is activated as part of a cellular response to low doses of ionizing radiation. Genetic and pharmacological inhibitor studies linked this NO signaling to the radiation-induced activation of ERK1/2. Herein, a mechanism for the radiation-induced activation of Tyr phosphorylation-dependent pathways (e.g. ERK1/2) involving the inhibition of protein-Tyr phosphatases (PTPs) by S-nitrosylation is tested. The basis for this mechanism resides in the redox-sensitive active site Cys in PTPs. These studies also examined oxidative stress induced by low concentrations of H(2)O(2). S-Nitrosylation of total cellular PTP and immunopurified SHP-1 and SHP-2 was detected as protection of PTP enzymatic activity from alkylation by N-ethylmaleimide and reversal by ascorbate. Both radiation and H(2)O(2) protected PTP activity from alkylation by a mechanism reversible by ascorbate and inhibited by NOS inhibitors or expression of a dominant negative mutant of NOS-1. Radiation and H(2)O(2) stimulated a transient increase in cytoplasmic free [Ca(2+)]. Radiation, H(2)O(2), and the Ca(2+) ionophore, ionomycin, also stimulated NOS activity, and this was associated with an enhanced S-nitrosylation of the active site Cys(453) determined by isolation of S-nitrosylated wild type but not active site Cys(453) --> Ser SHP-1 mutant by the "biotin-switch" method. Thus, one consequence of oxidative stimulation of NO generation is S-nitrosylation and inhibition of PTPs critical in cellular signal transduction pathways. These results support the conclusion that a mild oxidative signal is converted to a nitrosative one due to the better redox signaling properties of NO.
Insights
Low doses of ionizing radiation and hydrogen peroxide activate cellular nitric-oxide synthase (NOS), leading to S-nitrosylation and inhibition of protein-tyrosine phosphatases (PTPs). This mechanism explains radiation-induced signaling pathway activation.
Area of Science:
- Cellular signaling
- Oxidative stress
- Radiation biology
Background:
- Low-dose ionizing radiation activates Ca(2+)-dependent nitric-oxide synthase (NOS).
- This NO signaling is linked to radiation-induced activation of ERK1/2.
- Oxidative stress from H(2)O(2) also impacts cellular signaling.
Purpose of the Study:
- To investigate the mechanism of radiation-induced activation of Tyr phosphorylation-dependent pathways.
- To determine if S-nitrosylation of protein-tyrosine phosphatases (PTPs) mediates this activation.
- To examine the role of NOS and oxidative stress in PTP regulation.
Main Methods:
- Assessing PTP activity via N-ethylmaleimide alkylation protection and ascorbate reversal.
- Measuring cytoplasmic free Ca(2+) concentrations.
- Utilizing NOS inhibitors and dominant-negative NOS mutants.
- Employing the "biotin-switch" method to detect S-nitrosylation of SHP-1 and SHP-2.
Main Results:
- Both radiation and H(2)O(2) induced PTP S-nitrosylation, protecting activity from alkylation.
- This PTP inhibition was dependent on NOS activity and Ca(2+) signaling.
- Specific S-nitrosylation of the active site Cys(453) in SHP-1 was confirmed.
- Oxidative stimuli convert to nitrosative signals via NO.
Conclusions:
- Oxidative stress stimulates NO generation, leading to PTP S-nitrosylation and inhibition.
- This process is a key mechanism for radiation-induced activation of Tyr phosphorylation pathways.
- NO acts as a redox signal, converting oxidative stress into nitrosative signaling.
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