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April 1, 2026Nature Communications4 citationsOpen Access

Single-molecule dynamics reveal ATP binding alone powers substrate translocation by an ABC transporter

CNChristoph NockerMPMatija PečakTNTobias Nocker

Key Points

  • The research aims to uncover how ATP binding drives substrate translocation in ABC transporters.
  • Utilized single-molecule FRET to visualize individual translocation events by ABC transporters.
  • Employed slow-turnover TmrAB variant to study translocation process in the absence of Mg 2+.
  • Analyzed cryo-EM structures of TmrAB to assess conformational changes during peptide transport.
  • ATP binding alone can drive a single round of peptide translocation without Mg 2+.
  • Conformational switch from inward- to outward-facing state is essential for substrate transport.
  • In wild-type TmrAB, ATP hydrolysis is necessary to reset the transporter after translocation.

Abstract

Abstract ATP-binding cassette (ABC) transporters are molecular machines involved in diverse physiological processes, including antigen processing by TAP, a key component of adaptive immunity. TAP and its bacterial homolog TmrAB use ATP to translocate peptides across membranes, yet the precise mechanism linking ATP binding to substrate movement remains unclear. Here, we employ a single-molecule FRET sensor to visualize single translocation events by individual ABC transporters and thereby overcome the limitations of ensemble averaging. This approach reveals that substrate transport is driven by a conformational switch from the inward- to the outward-facing state. Using a slow-turnover TmrAB variant, we demonstrate that ATP binding alone, even in the absence of Mg 2+ , is sufficient to drive a single round of peptide translocation. Cryo-EM structures of wild-type and slow-turnover TmrAB show that ATP binding induces the outward-facing conformation even without Mg 2+ . In wild-type TmrAB, this conformational transition supports a single translocation event, whereas Mg 2+ -dependent ATP hydrolysis is required to reset the transporter. These findings establish a direct mechanistic link between ATP binding and substrate translocation at single-molecule resolution and provide insight into the catalytic cycle of ABC transporters.

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Cite This Study

Nocker et al. (2026) studied this question.

synapsesocial.com/papers/69cd7b345652765b073a9096https://doi.org/10.1038/s41467-026-70021-1
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