Topogenic sequence recognition at TIM complexes revealed by a stendomycin-bound structure

In the mitochondrial inner membrane (IM), topogenesis of imported proteins is mediated by TIM23 and TIM22 complexes. TIM23 translocates soluble polypeptides across the IM into the matrix, whereas TIM22 inserts polytopic membrane proteins into the IM. Although functionally distinct, both rely on homologous subunits, Tim17 in TIM23 and Tim22 in TIM22. The underlying mechanisms, however, remain elusive. Here we use structural and functional approaches with yeast Tim17, Tim22 and the TIM23 inhibitor stendomycin. Cryogenic-electron microscopy shows that stendomycin binds to the protein translocation cavity of Tim17, mimicking α-helical topogenic sequences. While Tim22 does not bind stendomycin, a single mutation in its equivalent cavity suffices to enable binding. The cavities of Tim17 and Tim22 are largely interchangeable without disrupting their functions. Lastly, stendomycin triggers a collapse of the membrane potential, likely via its Tim17- or Tim22-dependent translocation across the IM. These findings reveal a mechanistic overlap between protein translocases and insertases.

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Publication Details

Journal
Nature Chemical Biology
Published
2026-08-26
DOI
https://doi.org/10.1038/s41589-026-02304-z
Primary Topic
Mitochondrial Function and Pathology
Type
article
Field-Weighted Citation Impact
0.00

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article

Topogenic sequence recognition at TIM complexes revealed by a stendomycin-bound structure

Eunyong Park, Yuanyuan Chen, Antony Lurie, Thomas B. Poulsen et al.
Nature Chemical Biology
Mitochondrial Function and Pathology
article

Topogenic sequence recognition at TIM complexes revealed by a stendomycin-bound structure

Eunyong Park, Yuanyuan Chen, Antony Lurie, Thomas B. Poulsen, Alban Ordureau, Nathaniel Dempsey, Thomas Tørring, Samantha N. Garcia, Kevin (Kevin L.) Wu, Kihong Nam, Esben B. Svenningsen
article en

Abstract

In the mitochondrial inner membrane (IM), topogenesis of imported proteins is mediated by TIM23 and TIM22 complexes. TIM23 translocates soluble polypeptides across the IM into the matrix, whereas TIM22 inserts polytopic membrane proteins into the IM. Although functionally distinct, both rely on homologous subunits, Tim17 in TIM23 and Tim22 in TIM22. The underlying mechanisms, however, remain elusive. Here we use structural and functional approaches with yeast Tim17, Tim22 and the TIM23 inhibitor stendomycin. Cryogenic-electron microscopy shows that stendomycin binds to the protein translocation cavity of Tim17, mimicking α-helical topogenic sequences. While Tim22 does not bind stendomycin, a single mutation in its equivalent cavity suffices to enable binding. The cavities of Tim17 and Tim22 are largely interchangeable without disrupting their functions. Lastly, stendomycin triggers a collapse of the membrane potential, likely via its Tim17- or Tim22-dependent translocation across the IM. These findings reveal a mechanistic overlap between protein translocases and insertases.

Nature Chemical Biology
QB3 (US), Memorial Sloan Kettering Cancer Center (US), Aarhus University (DK), University of California, Berkeley (US)
Pew Charitable Trusts, Jane Coffin Childs Memorial Fund for Medical Research, Memorial Sloan-Kettering Cancer Center, Shurl and Kay Curci Foundation, National Research Foundation of Korea, National Institute of General Medical Sciences
Openalex Percentile: Top 17%
Mitochondrial Function and Pathology
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