Zinc antagonizes cadmium-induced osteoporosis in mice by inhibiting Cd2+ deposition, enhancing antioxidant capacity and correcting bone metabolic disorders

内分泌学 骨质疏松症 破骨细胞 内科学 骨吸收 骨重建 化学 骨矿物 氧化应激 抗氧化剂 医学 成骨细胞 骨保护素 运行x2 骨化三醇 吸收 转录因子 骨病 骨细胞 p38丝裂原活化蛋白激酶 纺神星 金属硫蛋白 碱性磷酸酶 钙代谢 炎症 药理学 对抗 代谢紊乱 毒性 白细胞介素 纤维化
作者
Yingze Qin,Lisha Fan,Yi Feng,Ding Zhang,Chuan Xiang
出处
期刊:Ecotoxicology and Environmental Safety [Elsevier BV]
卷期号:309: 119688-119688 被引量:1
标识
DOI:10.1016/j.ecoenv.2026.119688
摘要

Chronic cadmium (Cd) exposure is a recognized risk factor for osteoporosis. Zinc (Zn) plays crucial roles in bone metabolism, yet intervention roles of Zn2+ against Cd-induced osteoporosis are incompletely understood. The aim of this study was to investigate the antagonistic effect of Zn2+ on Cd-induced osteoporosis and expose the underlying mechanism. Osteoporosis in mice was induced by exposing to low (5 mg/L) or high (50 mg/L) concentrations of Cd2+ for 12 months, and a Zn intervention model was established by adding 30 mg/L Zn2+ to the Cd-exposed mice. Results showed that Zn2+ addition effectively alleviated pathological damage, mineral loss and destruction of trabecular structure of bones in osteoporotic mice caused by Cd. Cd exposure resulted in dose-dependent increases in serum calcium ion(Ca2+) and phosphorus ion (P3+) levels, while Zn2+ addition significantly counteracted against the Cd-induced calcium and phosphorus metabolic disorders in serum. Zn²⁺ addition exhibited significant antagonism against Cd-induced abnormal serum bone metabolism indicators by suppressing elevated bone resorption markers (TRACP-5b and BALP), and restoring osteogenic markers of BGP, ALP, RUNX2 and OPG expressions in osteoporotic mice caused by Cd. Zn²⁺ supplement rescued Cd-impaired osteogenic differentiation and mineralization. In addition, Zn²⁺ significantly reduced Cd²⁺ deposition in bone tissue, while elevating bone Zn²⁺ levels in Cd-exposed mice. Importantly, Zn²⁺ supplement significantly enhanced metallothionein (MT) and metal regulatory transcription factor-1 (MTF-1) expressions in bone of Cd-exposed mice. Furthermore, Zn²⁺ addition inhibited osteoclast hyperactivation by reducing the number of TRAP-positive cells and suppressing the expression of osteoclast-related genes (Cathepsin K, MMP-9, OSCAR, TRAP, and RANKL) in Cd-exposed mice. Collectively, Zn2+ addition exhibited notable antagonistic effects against Cd-induced osteoporosis in mice, and the mechanism of action was partly achieved by inhibiting the deposition of Cd2+ in bone tissue, enhancing antioxidant capacity in bone, and correcting bone metabolic imbalance caused by Cd.
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