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Updated: Nov 25, 2025

Cellular Redox Profiling Using High-content Microscopy
Published on: May 14, 2017
Miro1-mediated mitochondrial positioning supports subcellular redox status
Haya Alshaabi1, Nathaniel Shannon1, Randi Gravelle1
1Department of Pathology and Laboratory Medicine, University of Vermont Cancer Center, Larner College of Medicine, Burlington, VT 05405, USA.
Abstract:
Mitochondria are strategically trafficked throughout the cell by the action of microtubule motors, the actin cytoskeleton and adapter proteins. The intracellular positioning of mitochondria supports subcellular levels of ATP, Ca2+ and reactive oxygen species (ROS, i.e. hydrogen peroxide, H2O2). Previous work from our group showed that deletion of the mitochondrial adapter protein Miro1 leads to perinuclear clustering of mitochondria, leaving the cell periphery devoid of mitochondria which compromises peripheral energy status. Herein, we report that deletion of Miro1 significantly restricts subcellular H2O2 levels to the perinuclear space which directly affects intracellular responses to elevated mitochondrial ROS. Using the genetically encoded H2O2-responsive fluorescent biosensor HyPer7, we show that the highest levels of subcellular H2O2 map to sites of increased mitochondrial density. Deletion of Miro1 or disruption of microtubule dynamics with Taxol significantly reduces peripheral H2O2 levels. Following inhibition of mitochondrial complex 1 with rotenone we observe elevated spikes of H2O2 in the cell periphery and complementary oxidation of mitochondrial peroxiredoxin 3 (PRX3) and cytosolic peroxiredoxin 2 (PRX2). Conversely, in cells lacking Miro1, rotenone did not increase peripheral H2O2 or PRX2 oxidation but rather lead to increased nuclear H2O2 and an elevated DNA-damage response. Lastly, local levels of HyPer7 oxidation correlate with the size and abundance of focal adhesions (FAs) in MEFs and cells lacking Miro1 have significantly smaller focal adhesions and reduced phosphorylation levels of vinculin and p130Cas compared to Miro1+/+ MEFs. Together, we present evidence that the intracellular distribution of mitochondria influences subcellular H2O2 levels and local cellular responses dependent on mitochondrial ROS.
Insights
Mitochondrial distribution impacts cellular hydrogen peroxide (H₂O₂) levels. Deleting Miro1 restricts H₂O₂ to the cell center, affecting cellular responses and DNA damage. This impacts focal adhesion size and function.
Area of Science:
- Cell Biology
- Mitochondrial Dynamics
- Redox Signaling
Background:
- Mitochondria are crucial for cellular energy and redox homeostasis.
- Intracellular mitochondrial positioning, regulated by proteins like Miro1, influences subcellular ATP, Ca²⁺, and ROS levels.
- Previous studies showed Miro1 deletion causes perinuclear mitochondrial clustering, impairing peripheral energy status.
Purpose of the Study:
- To investigate how mitochondrial distribution affects subcellular hydrogen peroxide (H₂O₂) levels and cellular responses.
- To determine the role of Miro1 in regulating H₂O₂ distribution and its impact on ROS signaling.
- To explore the relationship between mitochondrial positioning, H₂O₂ signaling, and focal adhesion dynamics.
Main Methods:
- Utilized the HyPer7 biosensor to measure subcellular H₂O₂ levels.
- Employing Miro1 knockout (KO) cells and Taxol treatment to disrupt microtubule dynamics.
- Administered rotenone to induce mitochondrial ROS production and assessed PRX3 and PRX2 oxidation.
- Analyzed focal adhesion size, vinculin, and p130Cas phosphorylation in Miro1 KO cells.
Main Results:
- Subcellular H₂O₂ levels directly correlate with mitochondrial density.
- Miro1 deletion or microtubule disruption significantly reduces peripheral H₂O₂.
- Rotenone-induced peripheral H₂O₂ spikes and PRX2 oxidation are abolished in Miro1 KO cells.
- Miro1 KO cells exhibit increased nuclear H₂O₂, elevated DNA damage response, and smaller focal adhesions with reduced vinculin/p130Cas phosphorylation.
Conclusions:
- Mitochondrial intracellular distribution is a key determinant of subcellular H₂O₂ levels.
- Miro1-mediated mitochondrial positioning regulates local ROS signaling and downstream cellular responses.
- Altered mitochondrial distribution impacts focal adhesion integrity and mechanotransduction pathways.
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