骨科金属和合金的发展及其与骨质疏松症的相关性。

IF 1.1 4区 医学 Q3 ORTHOPEDICS
Indian Journal of Orthopaedics Pub Date : 2025-03-14 eCollection Date: 2025-03-01 DOI:10.1007/s43465-025-01344-2
Nirmal Ch Mohapatra, Rajesh Rana, Sisir Kumar Sahoo
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引用次数: 0

摘要

背景:骨科中金属和合金的发展显著改善了骨相关疾病的治疗,特别是骨质疏松症,骨密度下降和易碎性使种植体的稳定性和愈合复杂化。传统材料如不锈钢和钴铬合金提供了强度和耐磨性,但与应力屏蔽和植入物松动等挑战相关。材料和方法:为了解决这些限制,钛合金由于其生物相容性,轻质性和骨样弹性而成为一种优越的替代品,使其适合骨质疏松症患者。最近的进展导致了镁基可生物降解植入物和镍钛诺(形状记忆合金)的发展,它们可以实现微创手术并提供动态支持。此外,多孔和生物活性涂层,如羟基磷灰石(HA),已被引入,以加强骨整合和植入物固定受损骨。结果:双膦酸盐和硬化蛋白抗体等药物策略与先进种植体表面的结合进一步促进了骨再生。新兴的创新,包括3d打印个性化植入物和能够适应生理变化的智能合金,有望改善骨质疏松症患者的长期稳定性和更快的恢复。结论:骨科材料的不断发展为更有效地治疗骨质疏松铺平了道路,解决了种植体稳定性、应力屏蔽和骨再生等关键挑战。生物活性涂层、可生物降解金属和个性化植入物的创新代表了骨科护理的未来,为骨骼健康受损的患者提供了更好的结果。然而,持续的研究对于优化这些技术以实现更广泛的临床应用至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evolution of Metals and Alloys in Orthopedics with Their Relevance in Osteoporosis.

Background: The evolution of metals and alloys in orthopedics has significantly improved the management of bone-related disorders, particularly osteoporosis, where decreased bone density and fragility complicate implant stability and healing. Traditional materials such as stainless steel and cobalt-chromium alloys provided strength and wear resistance but were associated with challenges like stress shielding and implant loosening.

Materials and methods: To address these limitations, titanium alloys emerged as a superior alternative due to their biocompatibility, lightweight nature, and bone-like elasticity, making them suitable for osteoporotic patients. Recent advancements have led to the development of magnesium-based biodegradable implants and nitinol (shape-memory alloy), which enable minimally invasive procedures and provide dynamic support. Additionally, porous and bioactive coatings, such as hydroxyapatite (HA), have been introduced to enhance osseointegration and implant fixation in compromised bone.

Results: The integration of pharmacological strategies, such as bisphosphonates and sclerostin antibodies, with advanced implant surfaces has further enhanced bone regeneration. Emerging innovations, including 3D-printed personalized implants and smart alloys capable of adapting to physiological changes, show promise for improved long-term stability and faster recovery in osteoporotic patients.

Conclusion: The continuous development of orthopedic materials has paved the way for more effective treatments for osteoporosis, addressing key challenges such as implant stability, stress shielding, and bone regeneration. Innovations in bioactive coatings, biodegradable metals, and personalized implants represent the future of orthopedic care, offering improved outcomes for patients with compromised bone health. However, continuous research is essential to optimize these technologies for broader clinical applications.

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来源期刊
CiteScore
1.80
自引率
0.00%
发文量
185
审稿时长
9 months
期刊介绍: IJO welcomes articles that contribute to Orthopaedic knowledge from India and overseas. We publish articles dealing with clinical orthopaedics and basic research in orthopaedic surgery. Articles are accepted only for exclusive publication in the Indian Journal of Orthopaedics. Previously published articles, articles which are in peer-reviewed electronic publications in other journals, are not accepted by the Journal. Published articles and illustrations become the property of the Journal. The copyright remains with the journal. Studies must be carried out in accordance with World Medical Association Declaration of Helsinki.
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