Injectable Bone Cement Reinforced with Gold Nanodots Decorated rGO-Hydroxyapatite Nanocomposites, Augment Bone Regeneration.
Vianni ChopraJijo ThomasSwati KaushikSwati RajputRajdeep GuhaBidya MondalSudip NaskarDipankar MandalGaurav ChauhanNaibedya ChattopadhyayDeepa GhoshPublished in: Small (Weinheim an der Bergstrasse, Germany) (2023)
Interest in the development of new generation injectable bone cements having appropriate mechanical properties, biodegradability, and bioactivity has been rekindled with the advent of nanoscience. Injectable bone cements made with calcium sulfate (CS) are of significant interest, owing to its compatibility and optimal self-setting property. Its rapid resorption rate, lack of bioactivity, and poor mechanical strength serve as a deterrent for its wide application. Herein, a significantly improved CS-based injectable bone cement (modified calcium sulfate termed as CS mod ), reinforced with various concentrations (0-15%) of a conductive nanocomposite containing gold nanodots and nanohydroxyapatite decorated reduced graphene oxide (rGO) sheets (AuHp@rGO), and functionalized with vancomycin, is presented. The piezo-responsive cement exhibits favorable injectability and setting times, along with improved mechanical properties. The antimicrobial, osteoinductive, and osteoconductive properties of the CS mod cement are confirmed using appropriate in vitro studies. There is an upregulation of the paracrine signaling mediated crosstalk between mesenchymal stem cells and human umbilical vein endothelial cells seeded on these cements. The ability of CS mod to induce endothelial cell recruitment and augment bone regeneration is evidenced in relevant rat models. The results imply that the multipronged activity exhibited by the novel-CS mod cement would be beneficial for bone repair.
Keyphrases
- reduced graphene oxide
- bone regeneration
- gold nanoparticles
- endothelial cells
- tissue engineering
- mesenchymal stem cells
- bone mineral density
- hyaluronic acid
- bone loss
- soft tissue
- quantum dots
- stem cells
- oxidative stress
- high resolution
- drug delivery
- vascular endothelial growth factor
- postmenopausal women
- methicillin resistant staphylococcus aureus
- sensitive detection
- case control
- high glucose