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Protein Translocation into the Intermembrane Space and Matrix of Mitochondria: Mechanisms and Driving Forces
Sandra Backes1, Johannes M Herrmann1
1Cell Biology, University of Kaiserslautern, Kaiserslautern, Germany.
Abstract:
Mitochondria contain two aqueous subcompartments, the matrix and the intermembrane space (IMS). The matrix is enclosed by both the inner and outer mitochondrial membranes, whilst the IMS is sandwiched between the two. Proteins of the matrix are synthesized in the cytosol as preproteins, which contain amino-terminal matrix targeting sequences that mediate their translocation through translocases embedded in the outer and inner membrane. For these proteins, the translocation reaction is driven by the import motor which is part of the inner membrane translocase. The import motor employs matrix Hsp70 molecules and ATP hydrolysis to ratchet proteins into the mitochondrial matrix. Most IMS proteins lack presequences and instead utilize the IMS receptor Mia40, which facilitates their translocation across the outer membrane in a reaction that is coupled to the formation of disulfide bonds within the protein. This process requires neither ATP nor the mitochondrial membrane potential. Mia40 fulfills two roles: First, it acts as a holdase, which is crucial in the import of IMS proteins and second, it functions as a foldase, introducing disulfide bonds into newly imported proteins, which induces and stabilizes their natively folded state. For several Mia40 substrates, oxidative folding is an essential prerequisite for their assembly into oligomeric complexes. Interestingly, recent studies have shown that the two functions of Mia40 can be experimentally separated from each other by the use of specific mutants, hence providing a powerful new way to dissect the different physiological roles of Mia40. In this review we summarize the current knowledge relating to the mitochondrial matrix-targeting and the IMS-targeting/Mia40 pathway. Moreover, we discuss the mechanistic properties by which the mitochondrial import motor on the one hand and Mia40 on the other, drive the translocation of their substrates into the organelle. We propose that the lateral diffusion of Mia40 in the inner membrane and the oxidation-mediated folding of incoming polypeptides supports IMS import.
Insights
Mitochondrial protein import into the matrix uses an import motor and ATP. Proteins entering the intermembrane space (IMS) utilize Mia40, which also facilitates oxidative folding and does not require ATP.
Area of Science:
- Mitochondrial biology
- Protein import and folding
Background:
- Mitochondria have two aqueous compartments: the matrix and the intermembrane space (IMS).
- Matrix proteins are synthesized in the cytosol and targeted via presequences, requiring an import motor and ATP for translocation.
- IMS proteins often lack presequences and use the Mia40 receptor for import.
Purpose of the Study:
- To review current knowledge on mitochondrial matrix-targeting and IMS-targeting pathways.
- To discuss the mechanisms of protein translocation driven by the mitochondrial import motor and Mia40.
- To explore the dual roles of Mia40 as a holdase and foldase in IMS protein import.
Main Methods:
- Review of existing literature on mitochondrial protein import.
- Analysis of the roles of the mitochondrial import motor and Mia40.
- Discussion of experimental separation of Mia40's holdase and foldase functions.
Main Results:
- Matrix protein import is driven by an import motor utilizing Hsp70 and ATP.
- IMS protein import relies on Mia40, coupling translocation to disulfide bond formation without ATP or membrane potential.
- Mia40 acts as both a holdase and foldase, essential for IMS protein import and complex assembly.
Conclusions:
- Mia40's dual functions are critical for IMS protein import and oxidative folding.
- The lateral diffusion of Mia40 and oxidation-mediated folding support IMS import.
- Understanding these pathways provides insights into mitochondrial protein targeting and function.
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