4.8 Article

A network of cytosolic (co)chaperones promotes the biogenesis of mitochondrial signal-anchored outer membrane proteins

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ELIFE
卷 11, 期 -, 页码 -

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eLIFE SCIENCES PUBL LTD
DOI: 10.7554/eLife.77706

关键词

mitochondria; chaperones; outer membrane; S; cerevisiae

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资金

  1. Deutsche Forschungsgemeinschaft [RA 1028/7-2, RA 1028/10-2]
  2. Minerva Foundation

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This study reconstituted the early cytosolic steps of signal-anchored (SA) protein biogenesis and identified molecular (co)chaperones, including Hsp70, Hsp90, and Hsp40 family co-chaperones, that interact with newly synthesized SA proteins. These interactions are mediated by the hydrophobic transmembrane segments of the SA proteins. The study also demonstrated the inhibitory effect of interfering with these interactions on SA protein biogenesis and successfully reconstituted the transfer of peptides from Hsp70 chaperone to the mitochondrial Tom70 receptor in vitro.
Signal-anchored (SA) proteins are anchored into the mitochondrial outer membrane (OM) via a single transmembrane segment at their N-terminus while the bulk of the proteins is facing the cytosol. These proteins are encoded by nuclear DNA, translated on cytosolic ribosomes, and are then targeted to the organelle and inserted into its OM by import factors. Recently, research on the insertion mechanisms of these proteins into the mitochondrial OM have gained a lot of attention. In contrast, the early cytosolic steps of their biogenesis are unresolved. Using various proteins from this category and a broad set of in vivo, in organello, and in vitro assays, we reconstituted the early steps of their biogenesis. We identified a subset of molecular (co)chaperones that interact with newly synthesized SA proteins, namely, Hsp70 and Hsp90 chaperones and co-chaperones from the Hsp40 family like Ydj1 and Sis1. These interactions were mediated by the hydrophobic transmembrane segments of the SA proteins. We further demonstrate that interfering with these interactions inhibits the biogenesis of SA proteins to a various extent. Finally, we could demonstrate direct interaction of peptides corresponding to the transmembrane segments of SA proteins with the (co)chaperones and reconstitute in vitro the transfer of such peptides from the Hsp70 chaperone to the mitochondrial Tom70 receptor. Collectively, this study unravels an array of cytosolic chaperones and mitochondrial import factors that facilitates the targeting and membrane integration of mitochondrial SA proteins.

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