%0 Journal Article %T The heme transfer from the soluble HasA hemophore to its membrane-bound receptor HasR is driven by protein-protein interaction from a high to a lower affinity binding site. %+ Résonance Magnétique Nucléaire des Biomolécules %+ Membranes bactériennes %+ Dept. Chemistry, Biochemistry and Molecular Biology %+ Université de la Méditerranée - Aix-Marseille 2 %A Izadi-Pruneyre, Nadia %A Huché, Frédéric %A Lukat-Rodgers, Gudrun S. %A Lecroisey, Anne %A Gilli, Robert %A Rodgers, Kenton R. %A Wandersman, Cécile %A Delepelaire, Philippe %< avec comité de lecture %@ 0021-9258 %J Journal of Biological Chemistry %I American Society for Biochemistry and Molecular Biology %V 281 %N 35 %P 25541-50 %8 2006-09-01 %D 2006 %R 10.1074/jbc.M603698200 %M 16774915 %Z Life Sciences [q-bio]/Biochemistry, Molecular Biology/Structural Biology [q-bio.BM]Journal articles %X HasA is an extracellular heme binding protein, and HasR is an outer membrane receptor protein from Serratia marcescens. They are the initial partners of a heme internalization system allowing S. marcescens to scavenge heme at very low concentrations due to the very high affinity of HasA for heme (Ka = 5,3 x 10(10) m(-1)). Heme is then transferred to HasR, which has a lower affinity for heme. The mechanism of the heme transfer between HasA and HasR is largely unknown. HasR has been overexpressed and purified in holo and apo forms. It binds one heme molecule with a Ka of 5 x 10(6) m(-1) and shows the characteristic absorbance spectrum of a low spin heme iron. Both holoHasA and apoHasA bind tightly to apoHasR in a 1:1 stoichiometry. In this study we show that heme transfer occurs in vitro in the purified HasA.HasR complex, demonstrating that heme transfer is energy- and TonB complex-independent and driven by a protein-protein interaction. We also show that heme binding to HasR involves two conserved histidine residues. %G English %L pasteur-00366583 %U https://pasteur.hal.science/pasteur-00366583 %~ PASTEUR %~ CNRS %~ UNIV-AMU %~ RIIP_PARIS