3D-printed lithium-incorporated strontium calcium phosphate scaffolds as bone regenerative materials: Fabrication, physicochemical characterization, and in vitro biological evaluation
Chenchen Wei, Yasi Chen, Jingjing Liu, Jingming Yi, Yanfei Li, Qiangguo Jiang, Fupo He, Kunyan He, Hui Yang
Journal:Journal of the Mechanical Behavior of Biomedical Materials
IF:4.1
DOI:10.1016/j.jmbbm.2026.107470
PMID:42184596
Published:2026-05-22
research field:生物材料生物医学工程再生医学材料科学组织工程
Abstract
Strontium calcium phosphate (SrCa 2 (PO 4 ) 2, SCP) bioceramic scaffolds represent promising bone regenerative biomaterials; however, their clinical potential is limited by insufficient mechanical strength and osteostimulatory capacity. To address these limitations, this study fabricated lithium-incorporated SCP (Li-SCP) scaffolds with varying Li + concentrations (0–15 mol%) via 3D printing technology. The incorporation of Li + significantly promoted sintering densification, thereby reducing porosity and enhancing compressive strength. In vitro evaluations demonstrated that the degradation rates could be tailored by adjusting the Li + content. Furthermore, the Li-SCP scaffolds supported the adhesion and proliferation of mesenchymal stem cells. Specifically, the sustained release of Li + notably enhanced alkaline phosphatase (ALP) secretion, accelerated extracellular matrix calcification, and stimulated the expression of osteogenesis-related genes. Scaffolds incorporating 5.0 and 7.5 mol% Li + exhibited an optimal balance between mechanical integrity and osteogenic activity. These findings suggest that 3D-printed Li-SCP scaffolds are viable candidates for further preclinical investigation in bone tissue engineering.
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