Using Microcontact Printing of Fibrinogen to Control Surface-Induced Platelet Adhesion and Activation
- 9 June 2011
- journal article
- research article
- Published by American Chemical Society (ACS) in Langmuir
- Vol. 27 (13) , 8316-8322
- https://doi.org/10.1021/la201064d
Abstract
The ability to promote or inhibit specific platelet–surface interactions in well-controlled environments is crucial to studying fundamental adhesion and activation mechanisms. Here, microcontact printing was used to immobilize human fibrinogen covalently in the form of randomly placed, micrometer-sized islands at an overall surface coverage of 20, 50, or 85%. The nonprinted background region was blocked with covalently immobilized human albumin. Platelet adhesion and morphology on each substrate were assessed using combined differential interference and fluorescence microscopy. At 20% coverage, most of the fibrinogen surface features were small round islands, and platelet adhesion and spreading areas were limited by the position and the size of the islands. Platelet circularity, indicated the morphology was mostly rounded. At 50% coverage, some fibrinogen islands coalesced and platelet adhesion and spreading areas increased. Platelet morphology was controlled by the shape of underlying fibrinogen islands, leading to more irregular spreading. At 85% coverage, the fibrinogen pattern was completely interconnected and both platelet adhesion and the spreading area were significantly higher than at lower coverage. In addition, platelets also spread over the albumin regions, suggesting that after a critical surface density of fibrinogen ligands is reached, platelet spreading is no longer inhibited by albumin. Increasing the overall fibrinogen coverage resulted in higher activation levels defined by key morphological characteristics of the spreading platelet.This publication has 48 references indexed in Scilit:
- Analysis of Morphology of Platelet Aggregates Formed on Collagen Under Laminar Blood FlowAnnals of Biomedical Engineering, 2010
- Screening platelet–surface interactions using negative surface charge gradientsBiomaterials, 2010
- The relationship between platelet adhesion on surfaces and the structure versus the amount of adsorbed fibrinogenBiomaterials, 2009
- Atomic Force Microscopy Studies of the Initial Interactions between Fibrinogen and SurfacesLangmuir, 2009
- Investigation of the Effects of Surface Chemistry and Solution Concentration on the Conformation of Adsorbed Proteins Using an Improved Circular Dichroism MethodLangmuir, 2009
- Imaging Surface Immobilization Chemistry: Correlation with Cell Patterning on Non‐Adhesive Hydrogel Thin FilmsAdvanced Functional Materials, 2008
- Characterization of the Threshold Response of Initiation of Blood Clotting to Stimulus Patch SizeBiophysical Journal, 2007
- Functionalized Poly(ethylene glycol)-Based Bioassay Surface Chemistry That Facilitates Bio-Immobilization and Inhibits Nonspecific Protein, Bacterial, and Mammalian Cell AdhesionChemistry of Materials, 2007
- The catastrophe revisited: Blood compatibility in the 21st CenturyPublished by Elsevier ,2007
- Ligand density dramatically affects integrin αIIbβ3-mediated platelet signaling and spreadingBlood, 2007