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.

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.