Literature DB >> 15924420

Mutational analysis of C-lobe ligands of human serum transferrin: insights into the mechanism of iron release.

Anne B Mason1, Peter J Halbrooks, Nicholas G James, Susan A Connolly, Julia R Larouche, Valerie C Smith, Ross T A MacGillivray, N Dennis Chasteen.   

Abstract

Each homologous lobe of human serum transferrin (hTF) has one Fe(3+) ion bound by an aspartic acid, a histidine, two tyrosine residues, and two oxygens from the synergistic anion, carbonate. Extensive characterization of these ligands in the N-terminal lobe has been carried out. Despite sharing the same set of ligands, there is a substantial amount of evidence that the N- and C-lobes are inequivalent. Studies of full-length hTF have shown that iron release from each lobe is kinetically distinguishable. To simplify the assessment of mutations in the C-lobe, we have created mutant hTF molecules in which the N-lobe binds iron with high affinity or not at all. Mutations targeting the C-lobe liganding residues have been introduced into these hTF constructs. UV-visible spectral, kinetic, and EPR studies have been undertaken to assess the effects of each mutation and to allow direct comparison to the N-lobe. As found for the N-lobe, the presence of Y517 in the C-lobe (equivalent to Y188 in the N-lobe) is absolutely essential for the binding of iron. Unlike the N-lobe, however, mutation of Y426 (equivalent to Y95) does not produce a stable complex with iron. For the mutants that retain the ability to bind iron (D392S and H585A), the rates of release are considerably slower than those measured for equivalent mutations in the N-lobe at both pH 7.4 and pH 5.6. Equilibrium binding experiments with HeLa S(3) cells indicate that recombinant hTF, in which Y426 or H585 is mutated, favor a closed or nearly closed conformation while those with mutations of the D392 or Y517 ligands appear to promote an open conformation. The differences in the effects of mutating the liganding residues in the two lobes and the subtle indications of cooperativity between lobes point to the importance of the transferrin receptor in effecting iron release from the C-lobe. Significantly, the equilibrium binding experiments also indicate that, regardless of which lobe contains the iron, the free energy of binding is equivalent and not additive; each monoferric hTF has a free energy of binding that is 82% of diferric hTF.

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Year:  2005        PMID: 15924420     DOI: 10.1021/bi050015f

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  20 in total

1.  The crystal structure of iron-free human serum transferrin provides insight into inter-lobe communication and receptor binding.

Authors:  Jeremy Wally; Peter J Halbrooks; Clemens Vonrhein; Mark A Rould; Stephen J Everse; Anne B Mason; Susan K Buchanan
Journal:  J Biol Chem       Date:  2006-06-22       Impact factor: 5.157

2.  Definition of the residues required for the interaction between glycine-extended gastrin and transferrin in vitro.

Authors:  Suzana Kovac; Audrey Ferrand; Jean-Pierre Estève; Anne B Mason; Graham S Baldwin
Journal:  FEBS J       Date:  2009-07-31       Impact factor: 5.542

3.  An iron-dependent and transferrin-mediated cellular uptake pathway for plutonium.

Authors:  Mark P Jensen; Drew Gorman-Lewis; Baikuntha Aryal; Tatjana Paunesku; Stefan Vogt; Paul G Rickert; Soenke Seifert; Barry Lai; Gayle E Woloschak; L Soderholm
Journal:  Nat Chem Biol       Date:  2011-06-26       Impact factor: 15.040

4.  Iron binding and release properties of transferrin-1 from Drosophila melanogaster and Manduca sexta: Implications for insect iron homeostasis.

Authors:  Jacob J Weber; Michael R Kanost; Maureen J Gorman
Journal:  Insect Biochem Mol Biol       Date:  2020-07-29       Impact factor: 4.714

5.  Human serum transferrin: a tale of two lobes. Urea gel and steady state fluorescence analysis of recombinant transferrins as a function of pH, time, and the soluble portion of the transferrin receptor.

Authors:  Shaina L Byrne; Anne B Mason
Journal:  J Biol Inorg Chem       Date:  2009-03-17       Impact factor: 3.358

6.  Structural and functional consequences of the substitution of glycine 65 with arginine in the N-lobe of human transferrin.

Authors:  Anne B Mason; Peter J Halbrooks; Nicholas G James; Shaina L Byrne; John K Grady; N Dennis Chasteen; Cedric E Bobst; Igor A Kaltashov; Valerie C Smith; Ross T A MacGillivray; Stephen J Everse
Journal:  Biochemistry       Date:  2009-03-10       Impact factor: 3.162

7.  Inequivalent contribution of the five tryptophan residues in the C-lobe of human serum transferrin to the fluorescence increase when iron is released.

Authors:  Nicholas G James; Shaina L Byrne; Ashley N Steere; Valerie C Smith; Ross T A MacGillivray; Anne B Mason
Journal:  Biochemistry       Date:  2009-04-07       Impact factor: 3.162

8.  A loop in the N-lobe of human serum transferrin is critical for binding to the transferrin receptor as revealed by mutagenesis, isothermal titration calorimetry, and epitope mapping.

Authors:  Anne B Mason; Shaina L Byrne; Stephen J Everse; Samantha E Roberts; N Dennis Chasteen; Valerie C Smith; Ross T A MacGillivray; Banu Kandemir; Fadi Bou-Abdallah
Journal:  J Mol Recognit       Date:  2009 Nov-Dec       Impact factor: 2.137

9.  Serum-protein interactions with anticancer Ru(III) complexes KP1019 and KP418 characterized by EPR.

Authors:  Naniye Cetinbas; Michael I Webb; Joshua A Dubland; Charles J Walsby
Journal:  J Biol Inorg Chem       Date:  2009-08-26       Impact factor: 3.358

10.  Isolation and characterization of the iron-binding properties of a primitive monolobal transferrin from Ciona intestinalis.

Authors:  Ritika Uppal; K V Lakshmi; Ann M Valentine
Journal:  J Biol Inorg Chem       Date:  2008-04-18       Impact factor: 3.358

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