The MAPK Hog1p Modulates Fps1p-dependent Arsenite Uptake and Tolerance in Yeast

Author:

Thorsen Michael1,Di Yujun1,Tängemo Carolina1,Morillas Montserrat2,Ahmadpour Doryaneh1,Van der Does Charlotte1,Wagner Annemarie3,Johansson Erik1,Boman Johan3,Posas Francesc2,Wysocki Robert4,Tamás Markus J.1

Affiliation:

1. *Department of Cell and Molecular Biology/Microbiology, Göteborg University, S-405 30 Göteborg, Sweden;

2. Cell Signaling Unit, Departament de Ciències Experimentals i de la Salut, Universitat Pompeu Fabra (UPF), E-08003 Barcelona, Spain;

3. Department of Chemistry, Atmospheric Science, Göteborg University, S-412 96, Göteborg, Sweden; and

4. Institute of Genetics and Microbiology, Wroclaw University, 51-148 Wroclaw, Poland

Abstract

Arsenic is widely distributed in nature and all organisms possess regulatory mechanisms to evade toxicity and acquire tolerance. Yet, little is known about arsenic sensing and signaling mechanisms or about their impact on tolerance and detoxification systems. Here, we describe a novel role of the S. cerevisiae mitogen-activated protein kinase Hog1p in protecting cells during exposure to arsenite and the related metalloid antimonite. Cells impaired in Hog1p function are metalloid hypersensitive, whereas cells with elevated Hog1p activity display improved tolerance. Hog1p is phosphorylated in response to arsenite and this phosphorylation requires Ssk1p and Pbs2p. Arsenite-activated Hog1p remains primarily cytoplasmic and does not mediate a major transcriptional response. Instead, hog1Δ sensitivity is accompanied by elevated cellular arsenic levels and we demonstrate that increased arsenite influx is dependent on the aquaglyceroporin Fps1p. Fps1p is phosphorylated on threonine 231 in vivo and this phosphorylation critically affects Fps1p activity. Moreover, Hog1p is shown to affect Fps1p phosphorylation. Our data are the first to demonstrate Hog1p activation by metalloids and provides a mechanism by which this kinase contributes to tolerance acquisition. Understanding how arsenite/antimonite uptake and toxicity is modulated may prove of value for their use in medical therapy.

Publisher

American Society for Cell Biology (ASCB)

Subject

Cell Biology,Molecular Biology

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