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The Mitogen-Activated Protein Kinase Slt2 Promotes Asymmetric Cell Cycle Arrest and Reduces TORC1-Sch9 Signaling in
Gema González-Rubio1, Humberto Martín1, María Molina1
1Departamento de Microbiología y Parasitología. Facultad de Farmacia. Instituto Ramón y Cajal de Investigaciones Sanitarias, Universidad Complutense de Madrid, Madrid, Spain.
Abstract:
Mitogen-activated protein kinase (MAPK) pathways regulate essential processes in eukaryotes. However, since uncontrolled activation of these cascades has deleterious effects, precise negative regulation of signaling flow through them, mainly executed by protein phosphatases, is crucial. Previous studies showed that the absence of Ptc1 protein phosphatase results in the upregulation of the MAPK of the cell wall integrity (CWI) pathway, Slt2, and numerous functional defects in Saccharomyces cerevisiae, including a failure to undergo cell separation under heat stress. In this study, we demonstrate that multibudded ptc1Δ cells also exhibit impaired mitochondrial inheritance and that excessive Slt2 kinase activity is responsible for their growth deficiency and daughter-specific G1 cell cycle arrest, as well as other physiological alterations, namely, mitochondrial hyperpolarization and reactive oxygen species (ROS) accumulation. We bring to light the fact that sustained Slt2 kinase activity inhibits signaling through the Sch9 branch of the TORC1 pathway in ptc1Δ cells, leading to increased autophagy. After cytokinesis, septin rings asymmetrically disassembled in ptc1Δ multibudded cells, abnormally remaining at the daughter cell side and eventually relocalizing at the daughter cell periphery, where they occasionally colocalized with the autophagic protein Atg9. Finally, we show that the inability of ptc1Δ cells to undergo cell separation is not due to a failure in the regulation of Ace2 and morphogenesis (RAM) pathway, since the transcription factor Ace2 correctly enters the daughter cell nuclei. However, the Ace2-regulated endochitinase Cts1 did not localize to the septum, preventing the proper degradation of this structure. IMPORTANCE This study provides further evidence that the cell cycle is regulated by complex signaling networks whose purpose is to guarantee a robust response to environmental threats. Using the S. cerevisiae eukaryotic model, we show that, under the stress conditions that activate the CWI MAPK pathway, the absence of the protein phosphatase Ptc1 renders Slt2 hyperactive, leading to numerous physiological alterations, including perturbed mitochondrial inheritance, oxidative stress, changes in septin dynamics, increased autophagy, TORC1-Sch9 inhibition, and ultimately cell cycle arrest and the failure of daughter cells to separate, likely due to the absence of key degradative enzymes at the septum. These results imply novel roles for the CWI pathway and unravel new cell cycle-regulatory controls that operate beyond the RAM pathway, arresting buds in G1 without compromising further division rounds in the mother cell.
Insights
Absence of Ptc1 phosphatase in yeast causes cell cycle arrest and division failure by overactivating Slt2 kinase, leading to mitochondrial defects and altered septin dynamics. This highlights complex cell cycle regulation beyond known pathways.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Mitogen-activated protein kinase (MAPK) pathways are essential in eukaryotes but require strict negative regulation.
- Protein phosphatases, like Ptc1, are crucial for controlling MAPK signaling.
- Absence of Ptc1 in Saccharomyces cerevisiae leads to cell wall integrity (CWI) pathway activation and defects like failed cell separation.
Purpose of the Study:
- To investigate the physiological consequences of Ptc1 absence in yeast, focusing on cell cycle regulation and signaling pathways.
- To elucidate the role of Slt2 kinase hyperactivation in the observed defects.
- To explore the interplay between MAPK signaling, TORC1 pathway, and cell division machinery.
Main Methods:
- Microscopy to observe cell morphology, mitochondrial inheritance, and septin ring dynamics in ptc1Δ cells.
- Analysis of cell cycle progression and specific protein localization (e.g., Ace2, Atg9).
- Biochemical assays to assess kinase activity, reactive oxygen species (ROS) levels, and mitochondrial membrane potential.
Main Results:
- ptc1Δ cells exhibit impaired mitochondrial inheritance, daughter-specific G1 cell cycle arrest, and increased ROS accumulation.
- Sustained Slt2 activity inhibits TORC1-Sch9 signaling, elevates autophagy, and causes abnormal septin ring disassembly.
- The cell separation defect is linked to mislocalized Cts1 (endochitinase) at the septum, despite correct Ace2 nuclear entry.
Conclusions:
- Hyperactive Slt2 kinase in ptc1Δ cells triggers multiple cellular dysfunctions, including mitochondrial stress and aberrant cell division.
- Ptc1 absence disrupts cell cycle progression via mechanisms extending beyond the known Ace2 and morphogenesis (RAM) pathway.
- These findings reveal novel regulatory controls in cell cycle arrest and separation, emphasizing the CWI pathway's broader role under stress.
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