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March 6, 2026Science Advances4 citationsOpen Access

Structural remodeling of the mitochondrial protein biogenesis machinery under proteostatic stress

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KEKenneth EhsesJLJorge P. López‐AlonsoOAOdetta Antico

Key Points

  • This research aims to understand how cells respond to proteostatic stress by examining mitochondrial structural changes.
  • Used cryo-electron tomography to visualize mitochondria during proteostatic stress in human cells.
  • Analyzed protein aggregates and cristae architecture changes.
  • Investigation of mHsp60 conformational changes and interactions with co-chaperone mHsp10.
  • Detected protein aggregates within the mitochondrial matrix during stress.
  • Observed significant remodeling of cristae architecture.
  • Reduced number of mitochondrial ribosome complexes.
  • Identified conformational changes in mHsp60 that enhance its interaction with mHsp10.

Abstract

Cells have evolved organelle-specific responses to maintain protein homeostasis (proteostasis). During proteostatic stress, mitochondria down-regulate translation and enhance protein folding, yet the underlying mechanisms remain poorly defined. Here, we used cryo–electron tomography to observe the structural consequences of mitochondrial proteostatic stress within human cells. We detected protein aggregates within the mitochondrial matrix, accompanied by a marked remodeling of cristae architecture. Concomitantly, the number of mitochondrial ribosome complexes was significantly reduced. Mitochondrial Hsp60 (mHsp60), a key protein folding machine, underwent major conformational changes to favor complexes with its co-chaperone mHsp10. We visualized the interactions of mHsp60 with native substrate proteins and determined in vitro mHsp60 cryo–electron microscopy structures enabling nucleotide state assignment of the in situ structures. These data converge on a model of the mHsp60 functional cycle and its essential role in mitochondrial proteostasis. More broadly, our findings reveal structural mechanisms governing mitochondrial protein biosynthesis and their remodeling under proteostatic stress.

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Cite This Study

Ehses et al. (2026) studied this question.

synapsesocial.com/papers/69aa70c8531e4c4a9ff5adeehttps://doi.org/10.1126/sciadv.aed3579
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