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Published on: July 17, 2018
S-nitrosylation regulates nuclear translocation of chloride intracellular channel protein CLIC4
Mariam Malik1, Anjali Shukla, Palak Amin
1Laboratory of Cancer Biology and Genetics, Center for Cancer Research, NCI, National Institutes of Health, Bethesda, MD 20892, USA.
Abstract:
Nuclear translocation of chloride intracellular channel protein CLIC4 is essential for its role in Ca(2+)-induced differentiation, stress-induced apoptosis, and modulating TGF-beta signaling in mouse epidermal keratinocytes. However, post-translational modifications on CLIC4 that govern nuclear translocation and thus these activities remain to be elucidated. The structure of CLIC4 is dependent on the redox environment, in vitro, and translocation may depend on reactive oxygen and nitrogen species in the cell. Here we show that NO directly induces nuclear translocation of CLIC4 that is independent of the NO-cGMP pathway. Indeed, CLIC4 is directly modified by NO through S-nitrosylation of a cysteine residue, as measured by the biotin switch assay. NO enhances association of CLIC4 with the nuclear import proteins importin alpha and Ran. This is likely a result of the conformational change induced by S-nitrosylated CLIC4 that leads to unfolding of the protein, as exhibited by CD spectra analysis and trypsinolysis of the modified protein. Cysteine mutants of CLIC4 exhibit altered nitrosylation, nuclear residence, and stability, compared with the wild type protein likely as a consequence of altered tertiary structure. Moreover, tumor necrosis factor alpha-induced nuclear translocation of CLIC4 is dependent on nitric-oxide synthase activity. Inhibition of nitric-oxide synthase activity inhibits tumor necrosis factor alpha-induced nitrosylation and association with importin alpha and Ran and ablates CLIC4 nuclear translocation. These results suggest that S-nitrosylation governs CLIC4 structure, its association with protein partners, and thus its intracellular distribution.
Insights
Nitric oxide (NO) directly triggers nuclear translocation of chloride intracellular channel protein 4 (CLIC4) via S-nitrosylation. This modification impacts CLIC4
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Nuclear translocation of CLIC4 is crucial for keratinocyte functions.
- Post-translational modifications regulating CLIC4 nuclear entry are largely unknown.
- CLIC4 structure is redox-sensitive, suggesting a role for reactive species.
Purpose of the Study:
- To investigate the role of nitric oxide (NO) in CLIC4 nuclear translocation.
- To identify the specific modification and its functional consequences.
Main Methods:
- Biotin switch assay to detect S-nitrosylation.
- Circular dichroism (CD) spectra analysis and trypsinolysis to assess protein structure.
- Analysis of CLIC4 interaction with importin alpha and Ran.
- Experiments using nitric-oxide synthase inhibitors.
Main Results:
- NO directly induces CLIC4 nuclear translocation, independent of the NO-cGMP pathway.
- CLIC4 is S-nitrosylated on a cysteine residue by NO.
- S-nitrosylation alters CLIC4 structure, enhancing its association with nuclear import proteins.
- Tumor necrosis factor alpha-induced CLIC4 nuclear translocation requires nitric-oxide synthase activity.
Conclusions:
- S-nitrosylation is a key post-translational modification governing CLIC4 structure and function.
- This modification dictates CLIC4's intracellular distribution and interaction with nuclear import machinery.
- Nitric oxide signaling plays a critical role in regulating CLIC4 nuclear localization.
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