Author
Listed:
- Laura F. Fielden
(University of Freiburg)
- Jakob D. Busch
(University of Freiburg)
- Sandra G. Merkt
(University of Freiburg
University of Freiburg)
- Iniyan Ganesan
(University of Freiburg)
- Conny Steiert
(University of Freiburg)
- Hanna B. Hasselblatt
(University of Freiburg)
- Jon V. Busto
(University of Freiburg)
- Christophe Wirth
(University of Freiburg)
- Nicole Zufall
(University of Freiburg)
- Sibylle Jungbluth
(Saarland University)
- Katja Noll
(Saarland University)
- Julia M. Dung
(University of Freiburg)
- Ludmila Butenko
(University of Freiburg)
- Karina Malsburg
(Saarland University)
- Hans-Georg Koch
(University of Freiburg)
- Carola Hunte
(University of Freiburg
University of Freiburg
University of Freiburg)
- Martin Laan
(Saarland University)
- Nils Wiedemann
(University of Freiburg
University of Freiburg
University of Freiburg)
Abstract
The presequence translocase of the mitochondrial inner membrane (TIM23) represents the major route for the import of nuclear-encoded proteins into mitochondria1,2. About 60% of more than 1,000 different mitochondrial proteins are synthesized with amino-terminal targeting signals, termed presequences, which form positively charged amphiphilic α-helices3,4. TIM23 sorts the presequence proteins into the inner membrane or matrix. Various views, including regulatory and coupling functions, have been reported on the essential TIM23 subunit Tim17 (refs. 5–7). Here we mapped the interaction of Tim17 with matrix-targeted and inner membrane-sorted preproteins during translocation in the native membrane environment. We show that Tim17 contains conserved negative charges close to the intermembrane space side of the bilayer, which are essential to initiate presequence protein translocation along a distinct transmembrane cavity of Tim17 for both classes of preproteins. The amphiphilic character of mitochondrial presequences directly matches this Tim17-dependent translocation mechanism. This mechanism permits direct lateral release of transmembrane segments of inner membrane-sorted precursors into the inner membrane.
Suggested Citation
Laura F. Fielden & Jakob D. Busch & Sandra G. Merkt & Iniyan Ganesan & Conny Steiert & Hanna B. Hasselblatt & Jon V. Busto & Christophe Wirth & Nicole Zufall & Sibylle Jungbluth & Katja Noll & Julia M, 2023.
"Central role of Tim17 in mitochondrial presequence protein translocation,"
Nature, Nature, vol. 621(7979), pages 627-634, September.
Handle:
RePEc:nat:nature:v:621:y:2023:i:7979:d:10.1038_s41586-023-06477-8
DOI: 10.1038/s41586-023-06477-8
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