4.8 Article

A structural framework for unidirectional transport by a bacterial ABC exporter

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.2006526117

关键词

ATP-binding cassette transporters; ABC transporters; alternating access mechanism; glutathione transport; transport cycle

资金

  1. Gordon and Betty Moore Foundation
  2. Beckman Institute
  3. US Department of Energy (DOE), Office of Science, Office of Basic Energy Sciences [DE-AC02-76SF00515]
  4. DOE of Biological and Environmental Research
  5. NIH National Institute of General Medical Sciences (NIGMS) [P41GM103393]
  6. National Cancer Institute [ACB-12002]
  7. NIGMS [AGM-12006]
  8. DOE Office of Science [DE-AC02-06CH11357]
  9. NIH Office of Research Infrastructure Programs High-End Instrumentation Grant [1S10OD012289-01A1]
  10. NIH Health Common Fund Transformative High Resolution Cryo-Electron Microscopy program

向作者/读者索取更多资源

The ATP-binding cassette (ABC) transporter of mitochondria (Atm1) mediates iron homeostasis in eukaryotes, while the prokaryotic homolog from Novosphingobium aromaticivorans (NaAtm1) can export glutathione derivatives and confer protection against heavymetal toxicity. To establish the structural framework underlying the NaAtm1 transport mechanism, we determined eight structures by X-ray crystallography and single-particle cryo-electron microscopy in distinct conformational states, stabilized by individual disulfide crosslinks and nucleotides. As NaAtm1 progresses through the transport cycle, conformational changes in transmembrane helix 6 (TM6) alter the glutathione-binding site and the associated substrate-binding cavity. Significantly, kinking of TM6 in the post-ATP hydrolysis state stabilized by MgADPVO(4) eliminates this cavity, precluding uptake of glutathione derivatives. The presence of this cavity during the transition from the inward-facing to outward-facing conformational states, and its absence in the reverse direction, thereby provide an elegant and conceptually simple mechanism for enforcing the export directionality of transport by NaAtm1. One of the disulfide crosslinked NaAtm1 variants characterized in this work retains significant glutathione transport activity, suggesting that ATP hydrolysis and substrate transport by Atm1 may involve a limited set of conformational states with minimal separation of the nucleotide-binding domains in the inward-facing conformation.

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