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Updated: Aug 14, 2026

Cellular Redox Profiling Using High-content Microscopy
Published on: May 14, 2017
Visualizing common deletion of mitochondrial DNA-augmented mitochondrial reactive oxygen species generation and
Tsung-I Peng1, Pei-Ru Yu, Jing-Yi Chen
1Department of Neurology, Lin-Kou Medical Center, Chang Gung Memorial Hospital, Tao-Yuan, Taiwan.
Abstract:
Common deletion (CD) 4977 bp of mitochondrial DNA (mtDNA) disrupt specifically mitochondrial complex I, IV and V on the electron transport chain (ETC) and is closely associated with wide spectrums of clinical manifestations. To quantitatively investigate how CD-induced ETC defect alters mitochondrial reactive oxygen species (mROS) generation as well as down stream apoptotic signaling, we employed an established array of human CD cytoplasmic hybrids (cybrids) harboring 0%-80% of CD. Pathological effects of CD on the mitochondria were visualized at single cell level by the application of fluorescent probes coupled with conventional and multiphoton imaging microscopy. Intriguingly, we observed CD-augmented mROS generation omitted "threshold effect". CD-augmented mROS generation was associated with depolarized mitochondrial membrane potential (DeltaPsi(m)). Upon oxidative stress, the amount of CD-augmented mROS generation was greatly enhanced to cause pathological apoptotic deterioration including opening of the mitochondrial permeability transition, cytochrome c release, phosphatidylserine externalization and DNA fragmentation. In addition, heterogeneous mitochondrial dysfunctions were found in cybrids containing 80% of CD (D cybrids), i.e., low sensitive-D (LS-D, roughly 80%) and a super sensitive-D (SS-D, 20%). As compared to LS-D, SS-D had higher resting mROS level but slightly hyperpolarized DeltaPsi(m). Upon H2O2 treatment, much faster generation of mROS was observed which induced a faster depolarization of DeltaPsi(m) and later apoptotic deterioration in SS-D. We proposed a dose-dependent, feed-forward and self-accelerating vicious cycle of mROS production might be initiated in CD-induced ETC defect without threshold effect. As CD-augmented mROS generation is obligated to cause an enhanced pathological apoptosis, precise detection of CD-augmented mROS generation and their degree of heterogeneity in single cells may serve as sensitive pathological indexes for early diagnosis, prognosis and treatment of CD-associated diseases.
Insights
The common deletion (CD) in mitochondrial DNA disrupts cellular energy production, leading to increased mitochondrial reactive oxygen species (mROS) without a threshold. This mROS overproduction drives cell death and may serve as an early diagnostic marker for associated diseases.
Area of Science:
- Mitochondrial Biology
- Cellular Respiration
- Oxidative Stress
Background:
- The common deletion (CD) of mitochondrial DNA (mtDNA) impairs mitochondrial complex I, IV, and V, affecting the electron transport chain (ETC).
- This ETC dysfunction is linked to various clinical conditions, highlighting the need to understand its molecular consequences.
Purpose of the Study:
- To quantitatively assess how CD-induced ETC defects alter mitochondrial reactive oxygen species (mROS) generation.
- To investigate the downstream apoptotic signaling pathways affected by CD-induced mROS.
- To explore the heterogeneity of mitochondrial dysfunction in cells with CD.
Main Methods:
- Utilized human cytoplasmic hybrids (cybrids) with varying percentages (0%-80%) of CD.
- Employed fluorescent probes and advanced microscopy (conventional and multiphoton) for single-cell visualization.
- Measured mitochondrial membrane potential (DeltaPsi(m)) and mROS levels under basal and oxidative stress conditions (H2O2 treatment).
Main Results:
- CD-augmented mROS generation occurred without a discernible threshold effect.
- Increased mROS levels correlated with mitochondrial membrane depolarization and subsequent apoptotic events (e.g., cytochrome c release, DNA fragmentation).
- Heterogeneous mitochondrial dysfunction was observed in cybrids with 80% CD, distinguishing between low-sensitive (LS-D) and super-sensitive (SS-D) populations with different mROS levels and responses to oxidative stress.
Conclusions:
- A self-accelerating vicious cycle of mROS production may be initiated by CD-induced ETC defects.
- CD-augmented mROS directly contributes to pathological apoptosis.
- Quantifying mROS generation and its heterogeneity in single cells could provide sensitive biomarkers for early diagnosis, prognosis, and treatment of CD-associated diseases.
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