The Protein Chaperone ClpX Targets Native and Non-native Aggregated Substrates for Remodeling, Disassembly, and

Christopher J LaBreck1, Shannon May1, Marissa G Viola1

  • 1Department of Cell and Molecular Biology, University of Rhode IslandKingston, RI, USA.

Insights

The ClpXP chaperone-protease system disassembles and reactivates aggregated proteins, and degrades specific aggregates. ClpX manages protein aggregates, preventing their accumulation in vivo.

Area of Science:

  • Molecular biology
  • Protein biochemistry
  • Cellular stress response

Background:

  • ClpX is an ATP-dependent chaperone in the Clp/Hsp100 family.
  • ClpX partners with the ClpP protease to degrade specific protein substrates.
  • ClpXP degrades large oligomeric substrates like FtsZ in E. coli.

Purpose of the Study:

  • To investigate the role of ClpXP in protein disaggregation.
  • To elucidate the mechanisms by which ClpX recognizes and remodels protein aggregates.
  • To understand how ClpXP manages protein aggregates in vivo.

Main Methods:

  • Studied substrate remodeling by ClpX alone and with ClpP.
  • Investigated disassembly and reactivation of aggregated Gfp-ssrA.
  • Analyzed disassembly and degradation of aggregated FtsZ.

Main Results:

  • ClpX alone disassembles and reactivates aggregated Gfp-ssrA.
  • ClpX with ClpP disassembles and degrades aggregated Gfp-ssrA and FtsZ.
  • ClpX prevents the accumulation of FtsZ aggregates in vivo.

Conclusions:

  • ClpXP actively manages protein aggregates containing specific recognition signals.
  • ClpX plays a crucial role in disaggregation and preventing aggregate accumulation.
  • ClpXP contributes to cellular proteostasis under stress conditions.

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