4.6 Article

Probing the ATP Site of GRP78 with Nucleotide Triphosphate Analogs

期刊

PLOS ONE
卷 11, 期 5, 页码 -

出版社

PUBLIC LIBRARY SCIENCE
DOI: 10.1371/journal.pone.0154862

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资金

  1. Canada Foundation for Innovation
  2. Natural Sciences and Engineering Research Council of Canada
  3. University of Saskatchewan
  4. Government of Saskatchewan
  5. Western Economic Diversification Canada
  6. National Research Council Canada
  7. Canadian Institutes of Health Research
  8. National Cancer Institute [ACB-12002]
  9. National Institute of General Medical Sciences [AGM-12006]
  10. U.S. Department of Energy, Office of Biological and Environmental Research [DE-AC02-06CH11357]
  11. NIH-NCI [R01CA095441, R01CA172468, R01CA127724, R21 CA190775]
  12. Louisiana board of Regents [LEQSF(2015-18)-RD-A-27, LEQSF-EPS(2015)-PFUND-417]

向作者/读者索取更多资源

GRP78, a member of the ER stress protein family, can relocate to the surface of cancer cells, playing key roles in promoting cell proliferation and metastasis. GRP78 consists of two major functional domains: the ATPase and protein/peptide-binding domains. The protein/peptide-binding domain of cell-surface GRP78 has served as a novel functional receptor for delivering cytotoxic agents (e.g., a apoptosis-inducing peptide or taxol) across the cell membrane. Here, we report our study on the ATPase domain of GRP78 (GRP78(ATPase)), whose potential as a transmembrane delivery system of cytotoxic agents (e.g., ATP-based nucleotide triphosphate analogs) remains unexploited. As the binding of ligands (ATP analogs) to a receptor (GRP78(ATPase)) is a pre-requisite for internalization, we determined the binding affinities and modes of GRP78(ATPase) for ADP, ATP and several ATP analogs using surface plasmon resonance and x-ray crystallography. The tested ATP analogs contain one of the following modifications: the nitrogen at the adenine ring 7-position to a carbon atom (7-deazaATP), the oxygen at the beta-gamma bridge position to a carbon atom (AMPPCP), or the removal of the 2'-OH group (2'-deoxyATP). We found that 7-deazaATP displays an affinity and a binding mode that resemble those of ATP regardless of magnesium ion (Mg++) concentration, suggesting that GRP78 is tolerant to modifications at the 7-position. By comparison, AMPPCP's binding affinity was lower than ATP and Mg++-dependent, as the removal of Mg++ nearly abolished binding to GRP78(ATPase). The AMPPCP-Mg++ structure showed evidence for the critical role of Mg++ in AMPPCP binding affinity, suggesting that while GRP78 is sensitive to modifications at the beta-gamma bridge position, these can be tolerated in the presence of Mg++. Furthermore, 2'-deoxyATP's binding affinity was significantly lower than those for all other nucleotides tested, even in the presence of Mg++. The 2'-deoxyATP structure showed the conformation of the bound nucleotide flipped out of the active site, explaining the low affinity binding to GRP78 and suggesting that the 2'-OH group is essential for the high affinity binding to GRP78. Together, our results demonstrate that GRP78(ATPase) possesses nucleotide specificity more relaxed than previously anticipated and can tolerate certain modifications to the nucleobase 7-position and, to a lesser extent, the beta-gamma bridging atom, thereby providing a possible atomic mechanism underlying the transmembrane transport of the ATP analogs.

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