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An Additive Manufacturing Technique for the Facile and Rapid Fabrication of Hydrogel-based Micromachines with Magnetically Responsive Components
Published on: July 18, 2018
Tunable Fabrication of 2D-Layered Magnesium Nanosilicates With Hemostatic Properties
Anna L Keller1, Kanwar Abhay Singh1, Saptarshi Biswas1
1Department of Biomedical Engineering College of Engineering Texas A&M University College Station Texas USA.
Abstract:
Tunable fabrication of inorganic two-dimensional (2D) nanoclays is of substantial interest for fundamental studies and biomedical applications. Despite extensive work on inorganic biomaterials, layered silicate nanoclays remain a comparatively underexplored class of 2D systems. Here, we report an optimized hydrothermal method for the tunable fabrication of 2D layered magnesium nanosilicates (nSi). This approach yields disc-like nanoclays with lateral dimensions of ~20-50 nm and thickness of ~1-2 nm. The nanosilicates exhibit rapid cellular internalization, controlled therapeutic release in vitro, and the ability to form shear-thinning, thixotropic gels. Proteomic analyses indicate the formation of a protein corona enriched in factors associated with blood coagulation, consistent with in vitro clotting assays showing a concentration-dependent reduction in clotting time, with decreases of ~50% at higher doses. In an in vivo rat liver-laceration model, nanosilicate treatment reduced clotting time by ~75% and blood loss by ~45%, compared with controls. Collectively, these findings establish a tunable route for fabricating 2D-layered magnesium nanosilicates and suggest their potential utility in hemostasis and wound-management applications.
