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February 2, 2026The Journal of Cell Biology0 citationsOpen Access

Energy stress activates AMPK to arrest mitochondria via phosphorylation of TRAK1

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JFJill E. FalkTHTobias HenkeSGSindhuja Gowrisankaran

Key Points

  • To investigate how energy stress affects mitochondrial movement and ATP production in neurons.
  • Utilized neuronal and cell line models exposed to antimycin A.
  • Monitored ATP production and mitochondrial movement.
  • Assessed actin fiber accumulation near mitochondria.
  • Studied the role of AMPK activation and CRAK1 phosphorylation.
  • Low ATP-to-AMP ratio caused mitochondrial arrest without inducing mitophagy.
  • Actin fibers accumulated next to mitochondria, serving as anchors against motor movement.
  • AMPK activation resulted in phosphorylation of TRAK1, mediating the mitochondrial arrest.

Abstract

Neuronal signaling requires large amounts of ATP, making neurons particularly sensitive to defects in energy homeostasis. Mitochondrial movement and energy production are therefore regulated to align local demands with mitochondrial output. Here, we report a pathway that arrests mitochondria in response to decreases in the ATP-to-AMP ratio, an indication that ATP consumption exceeds supply. In neurons and cell lines, low concentrations of the electron transport chain inhibitor antimycin A decrease the production of ATP and concomitantly arrest mitochondrial movement without triggering mitophagy. This arrest is accompanied by the accumulation of actin fibers adjacent to the mitochondria, which serve as an anchor that resists the associated motors. This arrest is mediated by activation of the energy-sensing kinase AMPK, which phosphorylates TRAK1. This mechanism likely helps maintain cellular energy homeostasis by anchoring energy-producing mitochondria in places where they are most needed.

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Cite This Study

Falk et al. (2025) studied this question.

synapsesocial.com/papers/6980fed9c1c9540dea811554https://doi.org/10.1083/jcb.202501023
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