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January 24, 2026Nature Communications3 citationsOpen Access

A stochastic mechanism drives fast substrate translocation in the AAA+ machine ClpB

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RCRemi CasierDLDorit LevyIRInbal Riven

Key Points

  • The research aims to understand how ATP drives the rapid translocation of substrates in AAA+ machines, specifically ClpB.
  • Utilized single-molecule FRET spectroscopy to observe ClpB substrate translocation.
  • Isolated ClpB and its substrate within lipid vesicles for accurate measurement.
  • Conducted three-color FRET experiments to assess translocation directionality and rate.
  • Tested the effects of ATP and its analog ATPγS on translocation dynamics.
  • Translocation events occur in milliseconds, faster than ATP hydrolysis.
  • Translocation rate shows weak dependence on temperature and ATP concentration.
  • Bidirectional translocation events were observed, though not always complete.
  • ATPγS replacement eliminated rapid translocation and directionality.

Abstract

Abstract How biological machines harness ATP to drive mechanical work remains a crucial question. Structural studies of protein-translocating AAA+ machines proposed a coupled and sequential translocation process, whereby ATP hydrolysis events lead to short threading steps. Yet, direct real-time observation of these events remains elusive. Here, we employ single-molecule FRET spectroscopy to track substrate translocation through ClpB, a quality control AAA+ machine. We isolate ClpB and its substrate within lipid vesicles and find that translocation events, while dependent on ATP, take milliseconds, much faster than ATP hydrolysis times. Surprisingly, the translocation rate depends weakly on temperature and ATP concentration. Using three-color FRET experiments, we find that translocation events can occur bidirectionally but are not always complete. Replacing ATP with the slowly hydrolysable analog ATPγS abolishes both rapid translocation and directionality. These results indicate a fast, stochastic Brownian-motor-like mechanism, redefining how ATP is coupled with mechanical action in AAA+ machines.

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Cite This Study

Casier et al. (2026) studied this question.

synapsesocial.com/papers/6974606dbb9d90c67120a50ehttps://doi.org/10.1038/s41467-026-68478-1
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