The mitochondrial inner membrane protein MPV17 prevents uracil accumulation in mitochondrial DNA

Judith R Alonzo1, Chantel Venkataraman2, Martha S Field2

  • 1From the Graduate Field of Biochemistry, Molecular, and Cellular Biology and.

Insights

Mitochondrial protein MPV17 deficiency impairs folate metabolism and thymidylate synthesis, crucial for mitochondrial DNA replication. This suggests MPV17 is vital for transferring thymidylate precursors to mitochondria, impacting mitochondrial DNA-depletion syndrome.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Cell Biology

Background:

  • Mitochondrial inner membrane protein MPV17 is linked to mitochondrial DNA (mtDNA)-depletion syndrome (MDS).
  • MPV17 loss-of-function causes nucleotide pool imbalances, potentially involving folate-mediated one-carbon metabolism (FOCM).
  • FOCM provides essential one-carbon units for nucleotide synthesis required for nuclear and mtDNA replication.

Purpose of the Study:

  • To investigate the impact of reduced MPV17 expression on markers of impaired FOCM in HeLa cells.
  • To determine if MPV17 deficiency affects mitochondrial folate levels and thymidylate synthesis.

Main Methods:

  • Reduced MPV17 expression in HeLa cells.
  • Quantification of mitochondrial folate levels.
  • Measurement of uracil and thymidylate levels in mtDNA.
  • Assessment of mitochondrial de novo and salvage pathway dTMP biosynthesis capacity.

Main Results:

  • Reduced MPV17 expression decreased mitochondrial folate by 43%.
  • Uracil levels in mtDNA increased 3-fold, indicating impaired thymidylate synthesis.
  • Mitochondrial de novo and salvage dTMP biosynthesis capacity remained unchanged.
  • Elevated uracil suggests compromised mitochondrial dTMP sources in MPV17-deficient cells.

Conclusions:

  • MPV17 may act as a transporter for cytosolic thymidylate precursors to mitochondria, supporting mtDNA synthesis.
  • MPV17 loss-of-function in hepatocerebral MDS could stem from impaired mitochondrial FOCM due to reduced cytosolic thymidylate access and depleted mitochondrial folate pools.

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