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Updated: Jun 14, 2025

Cellular Redox Profiling Using High-content Microscopy
Published on: May 14, 2017
Heterogeneous redox responses in NHDF cells primed to enhance mitochondrial bioenergetics
Sónia A Pinho1, Paulo J Oliveira2, Teresa Cunha-Oliveira2
1CNC - UC, Center for Neuroscience and Cell Biology, University of Coimbra, Portugal; CIBB - Centre for Innovative Biomedicine and Biotechnology, University of Coimbra, Portugal; PhD Programme in Experimental Biology and Biomedicine (PDBEB), Institute for Interdisciplinary Research (IIIUC), University of Coimbra, Portugal.
Abstract:
Aging and lifestyle-related diseases, such as cardiovascular diseases, diabetes, cancer, and neurodegenerative disorders, are major global health challenges. These conditions are often linked to redox imbalances, where cells fail to regulate reactive redox species (RRS), leading to oxidative stress and cellular damage. Although antioxidants are known to neutralize harmful RRS, their clinical efficacy remains inconsistent. One reason for this inconsistency is the inadequacy of current in vitro models to accurately mimic in vivo redox conditions. This study addresses the gap in understanding the heterogeneity of redox responses in cells by using metabolically primed human dermal fibroblasts (NHDF), a model relevant for precision mitochondrial medicine. We investigated how metabolic priming, which enhances mitochondrial bioenergetics, influences redox responses to oxidative stress induced by hydrogen peroxide (H2O2) and tert-butyl hydroperoxide (tBHP). Specifically, we explored the impact of cell population density and cell cycle distribution on redox dynamics. Our findings indicate that NHDF cells cultured in oxidative phosphorylation-promoting medium (OXm) exhibit significantly larger variability in oxidative stress responses. This variability suggests that enhanced mitochondrial bioenergetics necessitates a constant regulation of the cellular redox machinery, potentially leading to heterogeneous responses. Additionally, cells grown in OXm showed increased mitochondrial polarization and a lower percentage of cells in the G2/M phase, contributing to the observed heterogeneity. Key factors influencing this variability included cell population density at the time of oxidant exposure and fluctuations in cell cycle distribution. Our results highlight the necessity of employing multiple oxidants in metabolic priming models to achieve a comprehensive understanding of oxidative stress responses and redox regulation mechanisms. Furthermore, the study emphasizes the need to refine in vitro models to better reflect in vivo conditions, which is crucial for the development of effective redox-based therapeutic strategies.
Insights
Metabolically primed cells show varied responses to oxidative stress due to enhanced mitochondrial function. Refining in vitro models is key for developing redox-based therapies.
Area of Science:
- Cellular Biology
- Mitochondrial Medicine
- Redox Biology
Background:
- Aging and lifestyle diseases are linked to redox imbalances and oxidative stress.
- Current antioxidant therapies show inconsistent clinical efficacy due to inadequate in vitro models.
- Understanding cellular redox heterogeneity is crucial for developing effective treatments.
Purpose of the Study:
- To investigate how metabolic priming influences redox responses to oxidative stress in human dermal fibroblasts.
- To explore the impact of cell population density and cell cycle on redox dynamics.
- To assess the suitability of metabolically primed cells for precision mitochondrial medicine.
Main Methods:
- Used metabolically primed normal human dermal fibroblasts (NHDF).
- Induced oxidative stress using hydrogen peroxide (H2O2) and tert-butyl hydroperoxide (tBHP).
- Analyzed redox responses, mitochondrial polarization, and cell cycle distribution.
Main Results:
- NHDF cells in oxidative phosphorylation-promoting medium (OXm) showed greater variability in oxidative stress responses.
- Enhanced mitochondrial bioenergetics in OXm-cultured cells required constant redox regulation, leading to heterogeneity.
- Cell population density and cell cycle distribution significantly influenced redox response variability.
Conclusions:
- Metabolic priming enhances mitochondrial function but necessitates complex redox regulation, resulting in heterogeneous cellular responses.
- In vitro models must incorporate multiple oxidants and account for cell density and cycle to accurately reflect in vivo redox conditions.
- Refined in vitro models are essential for advancing redox-based therapeutic strategies for age-related diseases.
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