bioRxiv · 10.64898/2026.06.04.730174
Matrix nucleotide homeostasis couples energetic state to mitochondrial translation
Abstract
Mitochondrial protein synthesis is essential for oxidative phosphorylation, yet how organellar energetic state regulates the mitochondrial translation machinery remains poorly understood. Here, we show that mitochondrial translation is acutely sensitive to ATP synthase-dependent bioenergetic state. Pharmacological inhibition of the F1Fo-ATP synthase with oligomycin or citreoviridin rapidly and selectively suppresses mitochondrial protein synthesis, while mitoribosome profiling reveals a genome-wide loss of productive ribosome engagement. ATP synthase inhibition induces inner-membrane hyperpolarization, depletes bioavailable matrix ATP, and reduces matrix GTP availability. Relieving hyperpolarization restores nucleotide pools and mitochondrial translation despite persistent ATP synthase inhibition, whereas selective restoration of matrix GTP markedly rescues protein synthesis when adenine nucleotide exchange is restricted. These findings identify matrix GTP availability as a proximal energetic constraint on mitochondrial translation and reveal an organelle-intrinsic mechanism coupling ATP synthase-dependent bioenergetic state to mitoribosome activity.
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Nyvltova, E., Manara, P., Ahn, A., Gannamedi, D. P., Shrestha, P., Rorbach, J., Kurmi, K., Lombard, D., Schatz, J. H., Fontanesi, F., Barrientos, A.. 2026-06-06. Matrix nucleotide homeostasis couples energetic state to mitochondrial translation. https://doi.org/10.64898/2026.06.04.730174
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