4.8 Article

An Early mtUPR: Redistribution of the Nuclear Transcription Factor Rox1 to Mitochondria Protects against Intramitochondrial Proteotoxic Aggregates

期刊

MOLECULAR CELL
卷 77, 期 1, 页码 180-+

出版社

CELL PRESS
DOI: 10.1016/j.molcel.2019.09.026

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资金

  1. Deutsche Forschungsgemeinschaft (DFG), under Germany's Excellence Strategy [CIBSS - EXC-2189, 390939984]
  2. Emmy-Noether Programm of the DFG
  3. DST-SERB, India
  4. Swedish Research Council Vetenskapsradet
  5. Knut and Alice Wallenberg Foundation
  6. Austrian Science Fund [FWF/P27183-B24, P25522-B20, P28113-B28]
  7. Vienna Science and Technology Fund [WWTF/VRG10-001]
  8. EMBO Young Investigator Program
  9. European Research Council (ERC) under the European Union's Horizon 2020 Research and Innovation Programme [769065]
  10. European Union's Horizon 2020 Research and Innovation Programme [765912]
  11. Deutsche Forschungsgemeinschaft (DFG) [RTG 2202, ME 1921/5-1, SFB1381, 403222702, CRC992]
  12. Austrian Science Fund (FWF) [P27183] Funding Source: Austrian Science Fund (FWF)

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The mitochondrial proteome is built mainly by import of nuclear-encoded precursors, which are targeted mostly by cleavable presequences. Presequence processing upon import is essential for proteostasis and survival, but the consequences of dysfunctional protein maturation are unknown. We find that impaired presequence processing causes accumulation of precursors inside mitochondria that form aggregates, which escape degradation and unexpectedly do not cause cell death. Instead, cells survive via activation of a mitochondrial unfolded protein response (mtUPR)-like pathway that is triggered very early after precursor accumulation. In contrast to classical stress pathways, this immediate response maintains mitochondrial protein import, membrane potential, and translation through translocation of the nuclear HMG-box transcription factor Roxl to mitochondria. Roxl binds mtDNA and performs a TFAM-like function pivotal for transcription and translation. Induction of early mtUPR provides a reversible stress model to mechanistically dissect the initial steps in mtUPR pathways with the stressTFAM Roxl as the first line of defense.

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