Objective: Osteoporosis is associated with the pathogenesis and risk of urolithiasis, which is higher among postmenopausal women (as opposed to premenopausal). Bisphosphonates potently inhibit bone resorption, and are used in the management of bone disease. We investigated the ability of a bisphosphonate to prevent calcium stone formation.
Methods: We studied 12 postmenopausal women (63.8 +/- 7.3 years) who were not receiving osteoporosis therapy, and had stones comprised of calcium phosphate (CaP; n = 3), calcium oxalate (CaOx; n = 3) and CaP + CaOx (n = 6). We measured bone mineral density (BMD), serum and urinary values in 24-hour urine specimens before and 3 months after the oral administration of 5 mg/day of alendronate (ALN). The indexes of the ionic activity product of calcium oxalate, AP(CaOx), and of calcium phosphate, AP(CaP), were estimated using the Tiselius method.
Results: ALN significantly reduced the AP(CaP) index (1.53 +/- 1.37 to 0.89 +/- 0.81, p <0.05). Urinary calcium, oxalate, phosphate and the AP(CaOx) index did not significantly change. BMD improved in 11 of the 12 patients. Urinary stones did not develop in any of the patients during the course of the study.
Conclusion: The results suggested that ALN not only improves BMD and osteoporosis, but also reduces the risk of calcium phosphate stone formation in postmenopausal women.
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http://dx.doi.org/10.1159/000230029 | DOI Listing |
Int J Mol Sci
December 2024
Institute of Technical Physics and Materials Science, HUN-REN Centre for Energy Research, Konkoly-Thege str. 29-33, H-1121 Budapest, Hungary.
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Department of Oral and Maxillofacial Surgery, University Hospital Tübingen, 72076 Tübingen, Germany.
Cell functionality, driven by remarkable plasticity, is strongly influenced by mechanical forces that regulate mesenchymal stem cell (MSC) fate. This study explores the biomechanical properties of jaw periosteal cells (JPCs) and induced mesenchymal stem cells (iMSCs) under different culture conditions. We cultured both JPCs and iMSCs (n = 3) under normoxic and hypoxic environments, with and without osteogenic differentiation, and on laminin- or gelatin-coated substrates.
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April 2025
Department of Oral and Maxillofacial Surgery, Affiliated Hospital of Stomatology, Nanjing Medical University, 210029, Nanjing, China.
Bone defect repair remains a great challenge in the field of orthopedics. Human body essential trace element such as copper is essential for bone regeneration, but how to use it in bone defects and the underlying its mechanisms of promoting bone formation need to be further explored. In this study, by doping copper into mesoporous bioactive glass nanoparticles (Cu-MBGNs), we unveil a previously unidentified role of copper in facilitating osteoblast mitophagy and mitochondrial dynamics, which enhance amorphous calcium phosphate (ACP) release and subsequent biomineralization, ultimately accelerating the process of bone regeneration.
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February 2025
Spine & Spinal Cord Institute, Department of Neurosurgery, College of Medicine, Yonsei University, Seoul, 03722, Republic of Korea.
Spinal fusion surgery remains a significant challenge due to limitations in current bone graft materials, particularly in terms of bioactivity, integration, and safety. This study presents an innovative approach using an injectable hydroxyapatite/β-tricalcium phosphate (HA/β-TCP) hydrogel combined with stromal vascular fraction (SVF) and low-dose recombinant human BMP-2 (rhBMP-2) to enhance osteodifferentiation and angiogenesis. Through a series of in vitro studies and preclinical models involving rats and minipigs, we demonstrated that the hydrogel system enables the sustained release of rhBMP-2, resulting in significantly improved bone density and integration, alongside reduced inflammatory responses.
View Article and Find Full Text PDFSmall
January 2025
School of Chemical Engineering and Technology, State Key Laboratory of Chemical Engineering, Tianjin University, Tianjin, 300072, P. R. China.
Flexible hybrid minerals, primarily composed of inorganic ionic crystal nanolines and a small amount of organic molecules, have significant potential for the development of sustainable structural materials. However, the weak interactions and insufficient crosslinking among the inorganic nanolines limit the mechanical enhancement and application of these hybrid minerals in high-strength structural materials. Inspired by tough biominerals and modern reinforced concrete structures, this study proposes introducing an aramid nanofiber (ANF) network as a flexible framework during the polymerization of calcium phosphate oligomers (CPO), crosslinked by polyvinyl alcohol (PVA) and sodium alginate (SA).
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