4.8 Article

Widespread use of unconventional targeting signals in mitochondrial ribosome proteins

期刊

EMBO JOURNAL
卷 41, 期 1, 页码 -

出版社

WILEY
DOI: 10.15252/embj.2021109519

关键词

mitochondria; mitochondrial ribosome; mitochondrial targeting signal; targeting; translocation

资金

  1. Deutsche Forschungsgemeinschaft [HE2803/9-1, SCHU 25851-2, RA 1028/10-2]
  2. European Research Council (ERC) under the European Union [864068]
  3. EMBO Long-term postdoctoral fellowship
  4. Brenden-Mann Foundation

向作者/读者索取更多资源

Mitochondrial ribosomes play a crucial role in respiration and their assembly involves importing nuclear-encoded mitochondrial ribosomal proteins into the mitochondrial matrix. Research indicates that up to 25% of yeast MRPs lack conventional mitochondrial targeting signals, with some utilizing internal targeting signals. This suggests that mitochondrial protein targeting is more complex and versatile than previously thought, potentially driven by structural constraints in ribosome assembly interfaces.
Mitochondrial ribosomes are complex molecular machines indispensable for respiration. Their assembly involves the import of several dozens of mitochondrial ribosomal proteins (MRPs), encoded in the nuclear genome, into the mitochondrial matrix. Proteomic and structural data as well as computational predictions indicate that up to 25% of yeast MRPs do not have a conventional N-terminal mitochondrial targeting signal (MTS). We experimentally characterized a set of 15 yeast MRPs in vivo and found that five use internal MTSs. Further analysis of a conserved model MRP, Mrp17/bS6m, revealed the identity of the internal targeting signal. Similar to conventional MTS-containing proteins, the internal sequence mediates binding to TOM complexes. The entire sequence of Mrp17 contains positive charges mediating translocation. The fact that these sequence properties could not be reliably predicted by standard methods shows that mitochondrial protein targeting is more versatile than expected. We hypothesize that structural constraints imposed by ribosome assembly interfaces may have disfavored N-terminal presequences and driven the evolution of internal targeting signals in MRPs.

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