tcy8722太阳集团

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Cytoskeleton-Inspired Artificial Protein Design to Enhance Polymer Network Elasticity

Macromolecules. 2020-05; 
David S Knoff , Haley Szczublewski , Dallas Altamirano , Kareen A Fajardo Cortes , Minkyu Kim
Products/Services Used Details Operation
Gene synthesis and subcloning All gene sequences, summarized in Figure S1, were purchased and subcloned (GenScript, USA) into pET26b expression plasmids using BamHI and HindIII restriction enzyme sites. Get A Quote

摘要

Reducing topological network defects to enhance elasticity in polymeric materials remains a grand challenge. Efforts to control network topology, primarily focused on crosslinking junctions, continue to underperform compared to theoretical estimations from idealized networks using affine and phantom network theories. Here, artificial protein technology was adapted for the design of polymer-network hydrogels with precisely defined coil-like and rod-like strands to observe the impact of strand rigidity on the mechanical properties of polymeric materials. Cytoskeleton-inspired polymer-network hydrogels incorporated with rod-like protein strands nearly tripled the gel shear elastic modulus and relaxation time compa... More

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