Literature DB >> 12739968

Competition between transferrin and the serum ligands citrate and phosphate for the binding of aluminum.

Wesley R Harris1, Zhepeng Wang, Yahia Z Hamada.   

Abstract

A key issue regarding the speciation of Al(3+) in serum is how well the ligands citric acid and phosphate can compete with the iron transport protein serum transferrin for the aluminum. Previous studies have attempted to measure binding constants for each ligand separately, but experimental problems make it very difficult to obtain stability constants with the accuracy required to make a meaningful comparison between these ligands. In this study, effective binding constants for Al-citrate and Al-phosphate at pH 7.4 have been determined using difference UV spectroscopy to monitor the direct competition between these ligands and transferrin. The analysis of this competition equilibrium also includes the binding of citrate and phosphate as anions to apotransferrin. The effective binding constants are 10(11.59) for the 1:1 Al-citrate complexes and 10(14.90) for the 1:2 Al-citrate complexes. The effective binding constant for the 1:2 Al-phosphate complex is 10(12.02). No 1:1 Al-phosphate complex was detected. Speciation calculations based on these effective binding constants indicate that, at serum concentrations of citrate and phosphate, citrate will be the primary low-molecular-mass ligand for aluminum. Formal stability constants for the Al-citrate system have also been determined by potentiometric methods. This equilibrium system is quite complex, and information from both electrospray mass spectrometry and difference UV experiments has been used to select the best model for fitting the potentiometric data. The mass spectra contain peaks that have been assigned to complexes having aluminum:citrate stoichiometries of 1:1, 1:2, 2:2, 2:3, and 3:3. The difference UV results were used to determine the stability constant for Al(H(-1)cta)-, which was then used in the least-squares fitting of the potentiometric data to determine stability constants for Al(Hcta)+, Al(cta), Al(cta)2(3-), Al(H(-1)cta)(cta)(4-), Al2(H(-1)cta)2(2-), and Al3(H(-1)cta)3(OH)(4-).

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Year:  2003        PMID: 12739968     DOI: 10.1021/ic026027w

Source DB:  PubMed          Journal:  Inorg Chem        ISSN: 0020-1669            Impact factor:   5.165


  8 in total

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Authors:  Jeremy Wally; Peter J Halbrooks; Clemens Vonrhein; Mark A Rould; Stephen J Everse; Anne B Mason; Susan K Buchanan
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2.  Solution and structural binding studies of phosphate with thiophene-based azamacrocycles.

Authors:  Syed A Haque; Rainier S Berkley; Frank R Fronczek; Md Alamgir Hossain
Journal:  Inorg Chem Commun       Date:  2016-05-27       Impact factor: 2.495

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Journal:  Proc Natl Acad Sci U S A       Date:  2022-06-22       Impact factor: 12.779

5.  Serum aluminum levels in dialysis patients after sclerotherapy of internal hemorrhoids with aluminum potassium sulfate and tannic acid.

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Review 6.  Aluminum-induced entropy in biological systems: implications for neurological disease.

Authors:  Christopher A Shaw; Stephanie Seneff; Stephen D Kette; Lucija Tomljenovic; John W Oller; Robert M Davidson
Journal:  J Toxicol       Date:  2014-10-02

7.  The effect of some fluoroquinolone family members on biospeciation of copper(II), nickel(II) and zinc(II) ions in human plasma.

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Journal:  Molecules       Date:  2014-08-13       Impact factor: 4.411

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Authors:  Jacek Baj; Alicja Forma; Beata Kowalska; Grzegorz Teresiński; Grzegorz Buszewicz; Dariusz Majerek; Wojciech Flieger; Ryszard Maciejewski; Kaja Karakuła; Michał Flieger; Marcin Czeczelewski; Paweł Kędzierawski; Jolanta Flieger
Journal:  Int J Environ Res Public Health       Date:  2022-04-06       Impact factor: 3.390

  8 in total

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