PubMed Health⌕ Search

Biomedical subjects

M Raghavachari

Publications and source records attributed to M Raghavachari.

3 recordsLinked to original sources

Surface dependent structures of von Willebrand factor observed by AFM under aqueous conditions.

von Willebrand factor (VWF) is a large multimeric plasma glycoprotein that adheres rapidly to biomaterial surfaces upon exposure to blood. The adsorbed structure influences subsequent functional interactions with other blood components that mediate surface induced thrombosis. To examine the surface-dependent properties of VWF, we compared the adsorbed structures of VWF molecules on two different surfaces: Mica, which is hydrophilic; and octadecyltrichlorosilane (OTS) modified glass, which is hydrophobic. Atomic force microscopy (AFM) was used to image adsorbed VWF under aqueous conditions at physiologic pH and ionic strength. Individual VWF molecules were clearly discernible on both surfaces. On the hydrophobic surface, VWF displayed compact tertiary structures with rare examples of extended molecules. In addition, these data revealed intramolecular structural arrangements of the repeat units within VWF multimers. On the hydrophilic mica surface, VWF displayed extended structures in which intramolecular repeat units were exposed. The lateral dimensions of VWF on mica (640+/-161x303+/-113 nm) were larger than on the hydrophobic OTS (256+/-74x152+/-62 nm, P<0.005). Our results demonstrate how surface properties mediate the molecular level structure and probable function of VWF, and provide some essential groundwork to develop a mechanistic understanding of surface-induced thrombosis.

Journal Article↗

Preface.

Explore the source record for details and available documents.

Journal Article↗

Determining intramolecular binding sites on surface-bound von Willebrand factor under aqueous conditions.

The results described in this report demonstrate the feasibility of using AFM in combination with immuno-gold labeling to investigate the accessibility of various binding sites on vWF and to localize the binding site within a vWF multimer. With the aid of monoclonal antibodies [5, 11 and 23] it should be possible to use this approach to perform a quantitative assessment of the differential accessibility of various binding sites on vWF. This should allow localization and quantification of binding sites within the observed tertiary structure of the vWF, providing a measure of the accessibility, a point of reference with which the tertiary structure of vWF could be correlated to the primary sequence, and a means to determine the structural features of the antibody binding regions under physiologic buffer conditions. There are a number of obvious questions that are not addressed here: The role of different biologic and artificial surfaces; time-dependent effects; vWF orientation with respect to different thrombogenic surfaces; and the location of critical binding sites, such as for platelet GPIalpha and GPIIb-IIIa binding regions in the hydrated tertiary structure of vWF. Nevertheless, the work described in this report provides essential groundwork that should provide a novel basis on which to explore the molecular steps, both structural and functional, of vWF in thrombus development. In a wider sense, this experimental approach is applicable to structure-function studies on a wide variety of proteins in physiologic environments.

Adsorption↗