Recent Reports on Redox Stress-Induced Mitochondrial DNA Variations, Neuroglial Interactions, and NMDA Receptor

Narasimha M Beeraka1, Marco F Avila-Rodriguez2, Gjumrakch Aliev3,4,5,6

  • 1Department of Human Anatomy, I M Sechenov First Moscow State Medical University (Sechenov University), St. Trubetskaya, 8, bld. 2, Moscow, 119991, Russia. bnmurthy24@gmail.com.

Molecular Neurobiology
|January 27, 2022
PubMed

Insights

Mitochondrial DNA variations and oxidative stress contribute to schizophrenia (SZ) pathophysiology by affecting glial cells and the NMDAR system. Targeting these factors may offer new diagnostic and therapeutic strategies for SZ.

Area of Science:

  • Neuroscience
  • Genetics
  • Biochemistry

Background:

  • Schizophrenia (SZ) is a chronic psychiatric disorder with complex pathophysiology.
  • Mitochondrial DNA (mtDNA) variations and oxidative stress are implicated in SZ pathogenesis, particularly affecting glial cells.
  • N-methyl-D-aspartate receptor (NMDAR) hypofunction and redox dysregulation are key features of SZ.

Purpose of the Study:

  • To review current evidence on the role of mtDNA variations and oxidative stress in SZ.
  • To elucidate the crosstalk between glial cell mtDNA alterations, redox dysregulation, and NMDAR system perturbation in SZ.
  • To identify potential novel diagnostic and therapeutic targets for SZ.

Main Methods:

  • Extensive literature search across major scientific databases (Medline, PubMed, PsycINFO, CINAHL PLUS, BIOSIS Preview, Google Scholar, Cochrane).
  • Synthesis of evidence linking mtDNA variations, oxidative stress, NMDAR signaling, and glial cell function in SZ.
  • Development of a plausible model for the interplay of these factors in SZ pathophysiology.

Main Results:

  • mtDNA variations impact OXPHOS, calcium buffering, and ROS production, influencing glial cell survival.
  • Oxidative stress, exacerbated by NMDAR activity, plays a crucial role in SZ pathogenesis.
  • Evidence suggests a strong relationship between mtDNA alterations, redox dysregulation, NMDAR hypofunction, and SZ severity.

Conclusions:

  • A model is proposed for the interaction between glial mtDNA alterations, redox dysregulation, and NMDAR system dysfunction in SZ.
  • Ascertaining mtDNA variations and redox state may lead to novel diagnostics for SZ.
  • Targeting redox dysregulation and augmenting NMDAR function presents promising therapeutic avenues for cognitive and behavioral symptoms in SZ.

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