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Effect of the Molecular Weight of Poly(2-methoxyethyl acrylate) on Interfacial Structure and Blood Compatibility
Daiki Murakami, Nami Mawatari, Toshiki Sonoda
1Frontier Center for Organic System Innovations , Yamagata University , 4-3-16 Jonan , Yonezawa , Yamagata 992-8510 , Japan.
Abstract:
The blood-compatible polymer poly(2-methoxyethyl acrylate) (PMEA) is composed of nanometer-scale interfacial structures because of the phase separation of the polymer and water at the PMEA/phosphate-buffered saline (PBS) interface. We synthesized PMEA with four different molecular weights (19, 30, 44, and 183 kg/mol) to investigate the effect of the molecular weight on the interfacial structures and blood compatibility. The amounts of intermediate water and fibrinogen adsorption were not affected by the molecular weight of PMEA. In contrast, the degree of denaturation of adsorbed fibrinogen molecules and platelet adhesion increased as the molecular weight increased. Atomic force microscopy observation revealed that the domain size of the microphase separation structures observed at the PMEA/PBS interfaces drastically (nearly 3 times in the mean area of a domain) changed with the molecular weight. PMEA with a lower molecular weight showed a smaller polymer-rich domain size, as expected on the basis of the microphase separation of polymer-rich and water-rich domains. The small domain size suppressed the aggregation and denaturation of adsorbed fibrinogen molecules because only a few fibrinogen molecules were adsorbed on a domain. Increasing the domain size enhanced the denaturation of adsorbed fibrinogen molecules. Controlling the interfacial structures is crucial for ensuring the blood compatibility of polymer interfaces.
Insights
Lower molecular weight poly(2-methoxyethyl acrylate) (PMEA) reduces fibrinogen denaturation and platelet adhesion by creating smaller interfacial structures, improving blood compatibility.
Area of Science:
- Biomaterials Science
- Polymer Chemistry
- Surface Science
Background:
- Blood-compatible polymers are essential for medical devices.
- Poly(2-methoxyethyl acrylate) (PMEA) exhibits interfacial structures due to phase separation.
- Understanding these structures is key to enhancing hemocompatibility.
Purpose of the Study:
- To investigate how molecular weight of PMEA affects its interfacial structures.
- To determine the impact of these structures on blood compatibility.
- To establish structure-property relationships for PMEA.
Main Methods:
- Synthesis of PMEA with varying molecular weights (19–183 kg/mol).
- Characterization of PMEA/phosphate-buffered saline (PBS) interfaces using atomic force microscopy (AFM).
- Quantification of fibrinogen adsorption and denaturation, and platelet adhesion.
Main Results:
- PMEA molecular weight significantly altered interfacial microphase separation domain size.
- Lower molecular weight PMEA resulted in smaller domain sizes.
- Fibrinogen denaturation and platelet adhesion increased with higher molecular weight and larger domain sizes.
Conclusions:
- Interfacial structure, specifically domain size, is critical for PMEA blood compatibility.
- Controlling PMEA molecular weight allows for tuning interfacial properties.
- Optimizing interfacial nanostructures can enhance the performance of blood-contacting materials.
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