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Published on: December 3, 2014
Both Php4 function and subcellular localization are regulated by iron via a multistep mechanism involving the
Alexandre Mercier1, Simon Labbé
1Département de Biochimie, Faculté de Médecine et des Sciences de la Santé, Université de Sherbrooke, Sherbrooke, Quebec J1H 5N4, Canada.
Insights
Iron regulation of the Php4 protein in yeast involves nuclear export mediated by Crm1. Glutaredoxin-4 (Grx4) inactivation of Php4 is independent of Fep1 and requires nuclear localization.
Area of Science:
- Molecular biology
- Cell biology
- Biochemistry
Background:
- The CCAAT-binding factor in Schizosaccharomyces pombe regulates iron-using genes.
- Php4 is a negative regulatory subunit of this complex, repressed by Fep1 under iron excess.
- Understanding Php4's iron-dependent regulation is crucial for cellular iron homeostasis.
Purpose of the Study:
- To investigate the Fep1-independent regulation of Php4.
- To elucidate the mechanism of Php4 nuclear export and inactivation.
- To identify novel proteins involved in Php4's iron-dependent behavior.
Main Methods:
- Development of a biological system to decouple Php4 regulation from Fep1.
- Microscopic analysis of GFP-Php4 localization.
- Mapping of a nuclear export signal and leptomycin B treatment.
- Coimmunoprecipitation, bimolecular fluorescence complementation, and two-hybrid assays.
Main Results:
- GFP-Php4 accumulates in the nucleus under iron starvation and exports to the cytoplasm upon iron increase.
- A leucine-rich nuclear export signal in Php4 mediates its exclusion from the nucleus, dependent on Crm1.
- Deletion of glutaredoxin-4 (grx4) causes constitutive nuclear localization and activity of Php4.
- Php4 physically interacts with both Crm1 and Grx4.
Conclusions:
- Grx4 and Crm1 are novel components in the Fep1-independent inactivation of Php4 by iron.
- Php4 inactivation involves Crm1-mediated nuclear export and Grx4 interaction.
- This study reveals a new layer of post-transcriptional regulation for iron metabolism.
Abstract:
In Schizosaccharomyces pombe, the CCAAT-binding factor is a multisubunit complex that contains the proteins Php2, Php3, Php4, and Php5. Under low iron conditions, Php4 acts as a negative regulatory subunit of the CCAAT-binding factor and fosters repression of genes encoding iron-using proteins. Under conditions of iron excess, Php4 expression is turned off by the iron-dependent transcriptional repressor Fep1. In this study, we developed a biological system that allows us to unlink iron-dependent behavior of Php4 protein from its transcriptional regulation by Fep1. Microscopic analyses revealed that a functional GFP-Php4 protein accumulates in the nucleus under conditions of iron starvation. Conversely, in cells undergoing a transition from low to high iron, GFP-Php4 is exported from the nucleus to the cytoplasm. We mapped a leucine-rich nuclear export signal that is necessary for nuclear exclusion of Php4. This latter process was blocked by leptomycin B. By using coimmunoprecipitation analysis, we showed that Php4 and Crm1 physically interact with each other. Although we determined that nuclear retention of Php4 per se is not sufficient to cause a constitutive repression of iron-using genes, we found that deletion of the grx4(+)-encoded glutaredoxin-4 renders Php4 constitutively active and invariably localized in the nucleus. Further analysis by bimolecular fluorescence complementation assay and by two-hybrid assays showed that Php4 and Grx4 are physically associated in vivo. Taken together, our findings indicate that Grx4 and Crm1 are novel components involved in the mechanism by which Php4 is inactivated by iron in a Fep1-independent manner.
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