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Open AccessJournal ArticleDOI

Involvement of a lysine residue in the N-terminal Ni2+ and Cu2+ binding site of serum albumins. Comparison with Co2+, Cd2+ and Al3+.

Peter J. Sadler, +2 more
- 01 Feb 1994 - 
- Vol. 220, Iss: 1, pp 193-200
TLDR
One-dimensional and two-dimensional 1H-NMR studies of the binding of Ni2+, Cu2+, Co2+, Cd2+ and Al3+ to defatted bovine and human serum albumins found strong binding to a square-planar site formed by the three N-terminal amino acid residues.
Abstract
We report one-dimensional and two-dimensional 1H-NMR studies of the binding of Ni2+, Cu2+, Co2+, Cd2+ and Al3+ to defatted bovine and human serum albumins. The diamagnetic shifts induced by Ni2+, and paramagnetic effects due to Cu2+, were consistent with strong binding to a square-planar site formed by the three N-terminal amino acid residues (Asp-Thr-His for bovine, and Asp-Ala-His for human albumin). In contrast to previous studies on isolated 1-24 N-terminal peptide, a Lys residue also appeared to be involved in the binding site, and is assigned as Lys4. A second His residue is also close to the Cu2+/Ni2+ binding site in bovine serum albumin and is assigned to His59 (not present in human albumin). Co2+ caused specific perturbation of the resonances for the three N-terminal residues as well as those for Lys4. This is the first evidence for Co2+ binding to the N-terminal metal site of serum albumin. Neither Al3+ nor Cd2+ perturbed resonances for the N-terminal amino acids, but bind elsewhere in the protein.

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Citations
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A novel assay for cobalt-albumin binding and its potential as a marker for myocardial ischemia-a preliminary report.

TL;DR: In a preliminary clinical study of 139 emergency patients with acute chest pain, 99 patients with evidence of myocardial ischemia had elevated assay levels and a colorimetric assay to measure cobalt-HSA binding and record the results in absorbance units was developed.
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Specific structure–stability relations in metallopeptides

TL;DR: In this article, the authors discuss the modes of coordination of oligopeptides by Cu(II) and Ni(II), and special attention is given to two general classes of peptides.
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Binding of transition metal ions to albumin: sites, affinities and rates.

TL;DR: The thorough understanding of metal binding properties of serum albumin, including the competition of various metal ions for specific binding sites is important for biomedical issues, such as new disease markers and design of metal-based drugs.
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Cisplatin Binding Sites on Human Albumin

TL;DR: During the later stages of reactions of cisplatin with albumin, release of NH3 occurs due to the strong trans influence of Met sulfur, which weakens the Pt-NH3 bonds, and protein cross-linking is observed.
References
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Journal ArticleDOI

The heterogeneity of bovine albumin with respect to sulfhydryl and dimer content

TL;DR: The similarities in the behavior of the BPA and BMA non-mercaptalbumin monomer fractions are somewhat surprising since the presence of these non-Mercapt albumin fractions in plasma albumin has been shown to be due to mixed disulfide formation between mercaptalbumin and plasma cysteine and glutathione.
Journal ArticleDOI

Plasma aluminum is bound to transferrin.

TL;DR: Aluminum ion is bound to at least one of the two specific iron binding sites of serum transferrin and also to serum albumin, as shown by in vivo competition studies with 67-Ga, gel filtration chromatography and ultraviolet difference spectroscopy.
Journal ArticleDOI

A Structural Basis of Light Energy and Electron Transfer in Biology (Nobel Lecture)

TL;DR: In this article, aspects of intramolecular light energy and electron transfer are discussed for three protein cofactor complexes whose three-dimensional structures have been elucidated by X-ray crystallography: the light harvesting phycobilisomes of cyanobacteria, the reaction center of purple bacteria and the blue multi-copper oxidases.
Journal ArticleDOI

Copper-binding Properties of Bovine Serum Albumin and Its Amino-terminal Peptide Fragment

TL;DR: Spectral and titrimetric data are reported which suggest that the Cu(II)-binding site for both albumin and peptide is a chelate locus involving multiple nitrogenous ligands in the neutral pH range, and that a histidyl residue occupies position 3 in the peptide chain.
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