Pseudohypoxia-Stabilized HIF2α Transcriptionally Inhibits MNRR1, a Druggable Target in MELAS

Neeraja Purandare1, Vignesh Pasupathi1, Yue Xi2

  • 1Center for Molecular Medicine and Genetics, School of Medicine, Wayne State University, Detroit, MI 48201, USA.

Cells
|July 25, 2025
PubMed

Insights

The mitochondrial regulator MNRR1 is reduced in MELAS disease. Hypoxia-inducible factor 2 alpha (HIF2α) lowers MNRR1 levels, but tizoxanide treatment increases MNRR1, restoring mitochondrial function and shifting heteroplasmy.

Area of Science:

  • Mitochondrial Biology
  • Cellular Physiology
  • Pharmacology

Background:

  • Mitochondrial regulator MNRR1 is reduced in pathologies like MELAS.
  • Restoring MNRR1 levels normalizes pathological phenotypes.

Purpose of the Study:

  • Investigate upstream mechanisms reducing MNRR1 levels.
  • Identify compounds to pharmacologically increase MNRR1 levels.

Main Methods:

  • Identified HIF2α binding the MNRR1 promoter and inhibiting transcription.
  • Analyzed pseudohypoxic state in MELAS cells and reduced PHD3 levels.
  • Screened a 2400-compound library for MNRR1 transcription enhancers.
  • Treated MELAS cybrids and patient fibroblasts with tizoxanide.

Main Results:

  • HIF2α inhibits MNRR1 transcription by competing with RBPJκ.
  • MELAS cells exhibit a pseudohypoxic state stabilizing HIF2α due to reduced PHD3.
  • Nitazoxanide/tizoxanide enhance MNRR1 transcription.
  • Tizoxanide restores cellular respiration, enhances mitophagy, and shifts heteroplasmy toward wild-type mtDNA in MELAS cybrids.
  • Tizoxanide improves mitochondrial biogenesis, enhances autophagy, and protects against LPS-induced inflammation in patient fibroblasts.
  • Nitazoxanide reduces HIF2α by increasing PHD3.

Conclusions:

  • Chemical activation of MNRR1 is a potential therapeutic strategy for mitochondrial deficits in MELAS.
  • A broader physiological pathway exists where HIF2α and MNRR1 inversely regulate each other under different hypoxic conditions.