Structural changes in hemoglobin during adsorption to solid surfaces: Effects of pH, ionic strength, and ligand binding
- 13 October 1998
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 95 (21) , 12271-12276
- https://doi.org/10.1073/pnas.95.21.12271
Abstract
We have studied the adsorption of two structurally similar forms of hemoglobin (met-Hb and HbCO) to a hydrophobic self-assembled methyl-terminated thiol monolayer on a gold surface, by using a Quartz Crystal Microbalance (QCM) technique. This technique allows time-resolved simultaneous measurements of changes in frequency (f) (c.f. mass) and energy dissipation (D) (c.f. rigidity/viscoelastic properties) of the QCM during the adsorption process, which makes it possible to investigate the viscoelastic properties of the different protein layers during the adsorption process. Below the isoelectric points of both met-Hb and HbCO, the ΔD vs. Δf graphs displayed two phases with significantly different slopes, which indicates two states of the adsorbed proteins with different visco-elastic properties. The slope of the first phase was smaller than that of the second phase, which indicates that the first phase was associated with binding of a more rigidly attached, presumably denatured protein layer, whereas the second phase was associated with formation of a second layer of more loosely bound proteins. This second layer desorbed, e.g., upon reduction of Fe3+ of adsorbed met-Hb and subsequent binding of carbon monoxide (CO) forming HbCO. Thus, the results suggest that the adsorbed proteins in the second layer were in a native-like state. This information could only be obtained from simultaneous, time-resolved measurements of changes in both D and f, demonstrating that the QCM technique provides unique information about the mechanisms of protein adsorption to solid surfaces.Keywords
This publication has 33 references indexed in Scilit:
- Energy Dissipation Kinetics for Protein and Antibody−Antigen Adsorption under Shear Oscillation on a Quartz Crystal MicrobalanceLangmuir, 1998
- The Piezoelectric Quartz Crystal Mass and Dissipation Sensor: A Means of Studying Cell AdhesionLangmuir, 1998
- Simultaneous frequency and dissipation factor QCM measurements of biomolecular adsorption and cell adhesionFaraday Discussions, 1997
- Environmental applications of analytical biosensorsMeasurement Science and Technology, 1996
- QCM Operation in Liquids: An Explanation of Measured Variations in Frequency and Q Factor with Liquid ConductivityAnalytical Chemistry, 1996
- Comparison of the QCM and the SPR method for surface studies and immunological applicationsSensors and Actuators B: Chemical, 1995
- Influence of the Surface Morphology on the Quartz Crystal Microbalance Response in a FluidLangmuir, 1994
- Experimental methods for investigating protein adsorption kinetics at surfacesQuarterly Reviews of Biophysics, 1994
- The molecular basis of ultrasonic absorption by proteinsBioelectromagnetics, 1982
- Ultrasonic Examination of the Hemoglobin Dissociation Process in Aqueous Solutions of Guanidine HydrochlorideThe Journal of the Acoustical Society of America, 1971