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January 22, 2026Protein Science3 citations

Recognition of small Tim chaperones by the mitochondrial Yme1 protease

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MQMariella Quispe‐CarbajalLTLauren ToddSGSteven E. Glynn

Key Points

  • This research investigates how the Yme1 protease selects and degrades small Tim proteins in the mitochondria.
  • Used biochemical and biophysical techniques to study substrate binding and degradation.
  • Examined interactions between Yme1 and Tim10, and their subunits.
  • Explored effects of disulfide bond disruption on substrate binding.
  • Yme1 preferentially binds to Tim10, even without disulfide bonds.
  • Tim10's flexible N-terminal region enhances binding to Yme1.
  • Yme1 also interacts with the assembled Tim9-Tim10 chaperone complex.

Abstract

Abstract Yme1 is a conserved ATP‐dependent protease that maintains mitochondrial function by degrading proteins in the intermembrane space. However, how Yme1 selects substrates within the crowded mitochondrial environment is poorly understood. An established substrate of Yme1 in yeast is the Tim10 subunit of the small Tim9‐Tim10 protein chaperone complex, which is degraded following disruption of the subunit's internal disulfide bonds. Here, we use biochemical and biophysical approaches to examine initial substrate binding and degradation of small Tim proteins by Yme1 and shed light on the molecular mechanism of substrate selection. We show that Yme1 preferentially binds Tim10 over other small Tim proteins by forming a strong interaction with the subunit irrespective of the presence of its disulfide bonds. This interaction is primarily mediated by Tim10's flexible N‐terminal “tentacle,” though substrate unfolding exposes additional contact sites that enhance engagement. Notably, the human ortholog TIMM13 is also recognized by yeast Yme1, suggesting conservation of recognition strategy across species. Yme1 also binds to the assembled Tim9‐Tim10 chaperone but independently of the Tim10 N‐terminal tentacle. These findings suggest that Yme1 interacts with both the functional chaperone complex and the disassembled Tim10 monomers but only commits to degradation after disruption of its disulfide bonds.

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Cite This Study

Quispe‐Carbajal et al. (2026) studied this question.

synapsesocial.com/papers/6971bdad642b1836717e262fhttps://doi.org/10.1002/pro.70445
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