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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.
Abstract:
The mitochondrial regulator MNRR1 is reduced in several pathologies, including the mitochondrial heteroplasmic disease MELAS, and genetic restoration of its level normalizes the pathological phenotype. Here, we investigate the upstream mechanism that reduces MNRR1 levels. We have identified the hypoxic regulator HIF2α to bind the MNRR1 promoter and inhibit transcription by competing with RBPJκ. In MELAS cells, there is a pseudohypoxic state that transcriptionally induces HIF2α and stabilizes HIF2α protein. MELAS cybrids harboring the m.3243A > G mutation display reduced levels of prolyl hydroxylase 3 (PHD3), which contributes to the HIF2α stabilization. These results prompted a search for compounds that could increase MNRR1 levels pharmacologically. The screening of a 2400-compound library uncovered the antifungal drug nitazoxanide and its metabolite tizoxanide as enhancers of MNRR1 transcription. We show that treating MELAS cybrids with tizoxanide restores cellular respiration, enhances mitophagy, and, importantly, shifts heteroplasmy toward wild-type mtDNA. Furthermore, in fibroblasts from MELAS patients, the compound improves mitochondrial biogenesis, enhances autophagy, and protects from LPS-induced inflammation. Mechanistically, nitazoxanide reduces HIF2α levels by increasing PHD3. Chemical activation of MNRR1 is thus a potential strategy to improve mitochondrial deficits seen in MELAS. Finally, our data suggests a broader physiological pathway wherein two proteins, induced under severe (1% O2; HIF2α) and moderate (4% O2; MNRR1) hypoxic conditions, regulate each other inversely.
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.
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