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Nutz, A.

Publications and source records attributed to Nutz, A..

4 recordsLinked to original sources

Presequences of non-imported mitochondrial proteins serve as quality control elements in the cytosol

Most mitochondrial proteins are synthesized in the cytosol as precursor proteins with presequences which serve as targeting signals for the mitochondrial matrix, where they are cleaved by the mitochondrial processing peptidase (MPP). In this study, we comprehensively elucidated the role of the presequence and the mature part of mitochondrial precursors in the cytosol, by use of a cytosol-targeted MPP which prematurely processed mitochondrial precursors. Over time, cytoMPP resulted in mitochondrial depletion. However, the cellular response to cytoMPP was surprisingly different to that observed for other models of mitochondrial import inhibition. Cytosolic maturation rendered many proteins stable in the cytosol, indicating that their mature parts lack ubiquitination signals. Accordingly, cytoMPP did not induce the upregulation of the proteasome, which normally is a hallmark of mitochondrial dysfunction. Instead, cytoMPP elicited a heat shock response and impaired the sequestration of precursors in the cytosol. Our observations demonstrate that mitochondrial presequences are more than just address labels. Rather, they play an important role in quality control and orchestrate the cellular response to defects in mitochondrial protein import.

biochemistry↗

The mitochondrial cohibitin complex facilitates the biogenesis of inner membrane proteins

The inner membrane of mitochondria contains many membrane-embedded carrier proteins of the SLC25 family to facilitate the exchange of metabolites between the cytosol and mitochondria. These carriers use a specific import route for their biogenesis that relies on the TIM22 complex as an inner membrane translocase. The molecular details of carrier biogenesis are not well understood. Using an improved, desthiobiotin-based proximity labeling approach called Destni in living yeast cells, we identified the mitochondrial protein Aim11 as an interactor of newly imported carrier proteins. Aim11 forms a 160 kDa complex together with Iai11, Gep7 and Mtc1 in the mitochondrial inner membrane that we named the comrade-of-prohibitin (cohibitin) complex owing to its genetic interaction with prohibitins. Deletion of Aim11 impairs the import of carrier proteins into the inner membrane and renders cells hypersensitive to carrier overexpression. Our data suggest that the cohibitin complex plays a quality control function that supports the TIM22-mediated insertion of carrier proteins into the inner membrane of mitochondria. SummaryKizmaz et al. identified Aim11 as a novel quality control factor that facilitates the insertion of carrier proteins into the inner membrane of mitochondria. Aim11 is part of the membrane-embedded cohibitin complex which cooperates with prohibitins in inner membrane protein biogenesis.

biochemistry↗

The ribosome-associated complex regulates cytosolic translation upon mitoprotein-induced stress

The biogenesis of mitochondria relies on the import of newly synthesized precursor proteins from the cytosol. Tom70 is a mitochondrial surface receptor which recognizes precursors and serves as an interface between mitochondrial protein import and the cytosolic proteostasis network. Mitochondrial import defects trigger a complex stress response, in which compromised protein synthesis rates are a characteristic element. The molecular interplay that connects mitochondrial (dys)function to cytosolic translation rates in yeast cells is however poorly understood. Here, we show that the deletion of the two Tom70 paralogs of yeast (TOM70 and TOM71) leads to defects in mitochondrial biogenesis and slow cell growth. Surprisingly, upon heat stress, the deletion of ZUO1, a chaperone of the ribosome-associated complex (RAC), largely prevented the slow growth and the reduced translation rates in the tom70{Delta}/tom71{Delta} double deletion mutant. In contrast, the mitochondrial defects were not cured but even enhanced by ZUO1 deletion. Our study shows that Zuo1 is a critical component in the signaling pathway that mutes protein synthesis upon mitochondrial dysfunction. We propose a novel paradigm according to which RAC serves as a stress-controlled regulatory element of the cytosolic translation machinery.

biochemistry↗

A priority code in presequences: mitochondrial targeting signals assign specific import characteristics to precursor proteins

The biogenesis of mitochondria relies on the import of hundreds of different precursor proteins from the cytosol. Most of these proteins are synthesized with N-terminal presequences which serve as mitochondrial targeting signals. Presequences consistently form amphipathic helices, but they considerably differ in respect to their primary structure and length. Here we show that presequences can be classified into seven different groups based on their specific features. Using a test set of different presequences, we observed that group A presequences endow precursor proteins with improved in vitro import characteristics. We developed IQ-Compete (for Import and de-Quenching Competition assay), a novel assay based on fluorescence de-quenching, to monitor the import efficiencies of mitochondrial precursors in vivo. With this assay, we confirmed the increased import competence of group A presequences. Using mass spectrometry, we found that the presequence of the group A protein Oxa1 specifically recruits the tetratricopeptide repeat (TPR) containing protein TOMM34 to the cytosolic precursor protein. TOMM34 apparently serves as a presequence-specific targeting factor which increases the import efficiency of a specific subset of mitochondrial precursor proteins. Our results suggest that presequences contain a protein-specific priority code that encrypts the targeting mechanism of individual mitochondrial precursor proteins.

biochemistry↗