4.6 Article

Intracellular localization of the proteasome in response to stress conditions

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JOURNAL OF BIOLOGICAL CHEMISTRY
卷 298, 期 7, 页码 -

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ELSEVIER
DOI: 10.1016/j.jbc.2022.102083

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资金

  1. Natural Sciences and Engineering Research Council [RGPIN/5974-2019, RGPIN/2017-06862]
  2. Mitacs [IT17088]
  3. Canadian Institute for Advanced Research

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Under cellular stress conditions, the localization of the ubiquitin-proteasome system undergoes changes, with proteasomes accumulating in membraneless granules in the nucleus or cytoplasm, or forming reversible proteasome structures through liquid-liquid phase separation in the nucleus.
The ubiquitin-proteasome system fulfills an essential role in regulating protein homeostasis by spatially and temporally controlling proteolysis in an ATP- and ubiquitin-dependent manner. However, the localization of proteasomes is highly variable under diverse cellular conditions. In yeast, newly synthesized proteasomes are primarily localized to the nucleus during cell proliferation. Yeast proteasomes are transported into the nucleus through the nuclear pore either as immature subcomplexes or as mature enzymes via adapter proteins Sts1 and Blm10, while in mammalian cells, postmitotic uptake of proteasomes into the nucleus is mediated by AKIRIN2, an adapter protein essentially required for nuclear protein degradation. Stressful growth conditions and the reversible halt of proliferation, that is quiescence, are associated with a decline in ATP and the reorganization of proteasome localization. Cellular stress leads to proteasome accumulation in membraneless granules either in the nucleus or in the cytoplasm. In quiescence, yeast proteasomes are sequestered in an ubiquitin-dependent manner into motile and reversible proteasome storage granules in the cytoplasm. In cancer cells, upon amino acid deprivation, heat shock, osmotic stress, oxidative stress, or the inhibition of either proteasome activity or nuclear export, reversible proteasome foci containing polyubiquitinated substrates are formed by liquid-liquid phase separation in the nucleus. In this review, we summarize recent literature revealing new links between nuclear transport, ubiquitin signaling, and the intracellular organization of proteasomes during cellular stress conditions.

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