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Published on: December 20, 2017
Extracellular localization of catalase is associated with the transformed state of malignant cells
Abstract:
Oncogenic transformation is dependent on activated membrane-associated NADPH oxidase (NOX). However, the resultant extracellular superoxide anions are also driving the NO/peroxynitrite and the HOCl pathway, which eliminates NOX-expressing transformed cells through selective apoptosis induction. Tumor progression is dependent on dominant interference with intercellular apoptosis-inducing ROS signaling through membrane-associated catalase, which decomposes H2O2 and peroxynitrite and oxidizes NO. Particularly, the decomposition of extracellular peroxynitrite strictly requires membrane-associated catalase. We utilized small interfering RNA (siRNA)-mediated knockdown of catalase and neutralizing antibodies directed against the enzyme in combination with challenging H2O2 or peroxynitrite to determine activity and localization of catalase in cells from three distinct steps of multistage oncogenesis. Nontransformed cells did not generate extracellular superoxide anions and only showed intracellular catalase activity. Transformed cells showed superoxide anion-dependent intercellular apoptosis-inducing ROS signaling in the presence of suboptimal catalase activity in their membrane. Tumor cells exhibited tight control of intercellular apoptosis-inducing ROS signaling through a high local concentration of membrane-associated catalase. These data demonstrate that translocation of catalase to the outside of the cell membrane is already associated with the transformation step. A strong local increase in the concentration of membrane-associated catalase is achieved during tumor progression and is controlled by tumor cell-derived H2O2 and by transglutaminase.
Insights
Cancer cells evade apoptosis by manipulating reactive oxygen species (ROS) signaling. Membrane-associated catalase prevents this, with its translocation to the cell exterior marking early transformation.
Area of Science:
- Cell Biology
- Biochemistry
- Oncology
Background:
- Oncogenic transformation involves activated NADPH oxidase (NOX) generating extracellular superoxide anions.
- These anions trigger NO/peroxynitrite and HOCl pathways, inducing apoptosis in NOX-expressing cells.
- Tumor progression relies on disrupting this ROS-mediated apoptosis via membrane-associated catalase.
Purpose of the Study:
- To investigate the role and localization of catalase in multistage oncogenesis.
- To understand how catalase activity influences intercellular ROS signaling and apoptosis.
- To determine the association of catalase translocation with cancer transformation and progression.
Main Methods:
- Utilized small interfering RNA (siRNA) to knockdown catalase.
- Employed neutralizing antibodies against catalase.
- Challenged cells with hydrogen peroxide (H2O2) or peroxynitrite.
- Analyzed catalase activity and localization in cells from different oncogenesis stages.
Main Results:
- Nontransformed cells showed only intracellular catalase activity.
- Transformed cells exhibited intercellular ROS signaling with suboptimal membrane catalase.
- Tumor cells displayed tight control of ROS signaling via high membrane-associated catalase concentrations.
- Catalase translocation to the cell membrane correlated with the transformation step.
Conclusions:
- Catalase translocation to the cell exterior is an early event in oncogenic transformation.
- Increased membrane-associated catalase concentration during tumor progression suppresses apoptosis-inducing ROS signaling.
- Tumor cell-derived H2O2 and transglutaminase regulate membrane-associated catalase concentration.
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