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Truncated human serum albumin retains general anaesthetic binding activity. | LitMetric

Truncated human serum albumin retains general anaesthetic binding activity.

Biochem J

Department of Anesthesia, University of Pennsylvania Medical Center, 3400 Spruce Street, 7 Dulles, Philadelphia, PA 19104-4283, USA.

Published: May 2005

AI Article Synopsis

  • The study investigated how human serum albumin (HSA) interacts with anaesthetics by expressing a specific part (domain 3) of the protein in yeast.
  • The researchers created a mutant version of the protein to observe changes in binding affinity and stability using various analytical techniques.
  • Findings indicate that while the expressed fragments have fewer binding sites and are less stable, they maintain essential structural features and binding characteristics, providing a simplified model for studying anaesthetic interactions.

Article Abstract

Multiple binding sites for anaesthetics in HSA (human serum albumin) make solution studies difficult to interpret. In the present study, we expressed the wild-type HSA domain 3 (wtHSAd3), a peptide with two known anaesthetic binding sites in a yeast expression system. We also expressed a site-directed mutant of domain 3 (Y411Wd3). The stability and secondary structure of the constructed fragments were determined by HX (hydrogen-tritium exchange) and CD spectroscopy. The binding of two general anaesthetics, 2-bromo-2-chloro-1,1,1-trifluoroethane and propofol, to wtHSAd3 and Y411Wd3 was determined using isothermal titration calorimetry, HX and intrinsic tryptophan fluorescence quenching. Although the expressed fragments are less stable than intact wtHSA as indicated by both CD and HX, they retain the secondary structure and anaesthetic-binding characteristics of an intact HSA molecule, but with fewer binding sites. Y411Wd3 had decreased affinity for propofol but not for 2-bromo-2-chloro-1,1,1-trifluoroethane, consistent with steric hindrance. Retention of structural features and anaesthetic binding properties with fewer binding sites in this truncated protein provide feasibility for using scaled-down models of otherwise intractable systems to gain an understanding of anaesthetic binding requirements and binding-stability relationships.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC1186691PMC
http://dx.doi.org/10.1042/BJ20041224DOI Listing

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