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      Adsorption of human serum albumin on the chrysotile surface: a molecular dynamics and spectroscopic investigation

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          Atomic structure and chemistry of human serum albumin.

          The three-dimensional structure of human serum albumin has been determined crystallographically to a resolution of 2.8 A. It comprises three homologous domains that assemble to form a heart-shaped molecule. Each domain is a product of two subdomains that possess common structural motifs. The principal regions of ligand binding to human serum albumin are located in hydrophobic cavities in subdomains IIA and IIIA, which exhibit similar chemistry. The structure explains numerous physical phenomena and should provide insight into future pharmacokinetic and genetically engineered therapeutic applications of serum albumin.
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            Spectroscopic methods for analysis of protein secondary structure.

            Several methods for determination of the secondary structure of proteins by spectroscopic measurements are reviewed. Circular dichroism (CD) spectroscopy provides rapid determinations of protein secondary structure with dilute solutions and a way to rapidly assess conformational changes resulting from addition of ligands. Both CD and Raman spectroscopies are particularly useful for measurements over a range of temperatures. Infrared (IR) and Raman spectroscopy require only small volumes of protein solution. The frequencies of amide bands are analyzed to determine the distribution of secondary structures in proteins. NMR chemical shifts may also be used to determine the positions of secondary structure within the primary sequence of a protein. However, the chemical shifts must first be assigned to particular residues, making the technique considerably slower than the optical methods. These data, together with sophisticated molecular modeling techniques, allow for refinement of protein structural models as well as rapid assessment of conformational changes resulting from ligand binding or macromolecular interactions. A selected number of examples are given to illustrate the power of the techniques in applications of biological interest. Copyright 2000 Academic Press.
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              Crystal structure of human serum albumin at 2.5 Å resolution

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                Author and article information

                Journal
                Journal of The Royal Society Interface
                J. R. Soc. Interface
                The Royal Society
                1742-5689
                1742-5662
                September 25 2007
                March 06 2008
                July 11 2007
                March 06 2008
                : 5
                : 20
                : 273-283
                Affiliations
                [1 ]Institute of Pharmaceutical and Toxycological Chemistry ‘P. Pratesi’, University of MilanoViale Abruzzi 42, 20131 Milano, Italy
                [2 ]Department of Chemistry ‘G. Ciamician’, Alma Mater Studiorum, University of Bolognavia Selmi 2, 40126 Bologna, Italy
                Article
                10.1098/rsif.2007.1137
                17626001
                19aa67a0-a9df-444e-9c9b-6b29de0fd879
                © 2008
                History

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