Mitochondrial depolarization stabilizes the vitamin B 12 chaperone MMADHC in the cytosol to increase MTR activity

Of the ~1,100 mitochondrial proteins, only a handful like PINK1 and ATFS-1 are known to stabilize and relocalize upon collapse of the proton motive force (PMF) to execute signaling roles. To systematically identify genes that increase exclusively at the protein level upon PMF collapse, we performed a joint proteomic and RNA-seq screen. The screen revealed 10 candidates (six mitochondrial), including two genes in vitamin B 12 metabolism - the B 12 chaperone MMADHC and cytosolic B 12 -dependent 5-methyltetrahydrofolate-homocysteine methyltransferase (MTR). MMADHC is short-lived across cell types and we show that its levels increase with PMF collapse. MMADHC stabilization precedes PINK1 activation in a time course of increasing mtDNA depletion, suggesting greater sensitivity to PMF collapse. MMADHC accumulates in mitochondria with LONP1 inhibition but in the cytosol upon PMF collapse, likely due to mitochondrial import failure. Cytosol-stabilized MMADHC increases MTR levels and activity. Altogether, the mitochondrial PMF regulates the cytosolic B 12 -dependent MTR, integral to one-carbon metabolism, by controlling the stability and compartmentalization of the B 12 chaperone MMADHC.

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Journal
Proceedings of the National Academy of Sciences
Published
2026-09-08
DOI
https://doi.org/10.1073/pnas.2537797123
Primary Topic
Folate and B Vitamins Research
Type
article
Field-Weighted Citation Impact
0.00

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article

Mitochondrial depolarization stabilizes the vitamin B 12 chaperone MMADHC in the cytosol to increase MTR activity

Arkajit Guha, Ruma Banerjee, Fangcong Dong, Vamsi K. Mootha et al.
Proceedings of the National Academy of Sciences
Folate and B Vitamins Research
article

Mitochondrial depolarization stabilizes the vitamin B 12 chaperone MMADHC in the cytosol to increase MTR activity

Arkajit Guha, Ruma Banerjee, Fangcong Dong, Vamsi K. Mootha, Sneha Rath, Zhu Li
article en

Abstract

Of the ~1,100 mitochondrial proteins, only a handful like PINK1 and ATFS-1 are known to stabilize and relocalize upon collapse of the proton motive force (PMF) to execute signaling roles. To systematically identify genes that increase exclusively at the protein level upon PMF collapse, we performed a joint proteomic and RNA-seq screen. The screen revealed 10 candidates (six mitochondrial), including two genes in vitamin B 12 metabolism - the B 12 chaperone MMADHC and cytosolic B 12 -dependent 5-methyltetrahydrofolate-homocysteine methyltransferase (MTR). MMADHC is short-lived across cell types and we show that its levels increase with PMF collapse. MMADHC stabilization precedes PINK1 activation in a time course of increasing mtDNA depletion, suggesting greater sensitivity to PMF collapse. MMADHC accumulates in mitochondria with LONP1 inhibition but in the cytosol upon PMF collapse, likely due to mitochondrial import failure. Cytosol-stabilized MMADHC increases MTR levels and activity. Altogether, the mitochondrial PMF regulates the cytosolic B 12 -dependent MTR, integral to one-carbon metabolism, by controlling the stability and compartmentalization of the B 12 chaperone MMADHC.

Proceedings of the National Academy of SciencesVol. 123(37)
Broad Institute (US), Howard Hughes Medical Institute (US), Harvard University (US), University of Michigan (US), Massachusetts General Hospital (US), Center for Systems Biology (US), Massachusetts Institute of Technology (US)
Howard Hughes Medical Institute, National Institutes of Health, National Cancer Institute, National Institute of General Medical Sciences, National Institute of Diabetes and Digestive and Kidney Diseases
Openalex Percentile: Top 10%
Folate and B Vitamins Research
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