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首页> 外文期刊>Journal of the Ceramic Society of Japan >Development of highly functionalized ceramic biomaterials
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Development of highly functionalized ceramic biomaterials

机译:高功能陶瓷生物材料的开发

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Ceramic biomaterials have been used clinically for repairing bony defects due to their biological affinity to living bone. Among ceramic biomaterials, bioactive ceramics directly bond to living bone. The bonding mechanism of bioactive ceramics to living bone provides a unique strategy in the development of novel biomaterials with high functionality. The mechanism of bone-bonding has been clarified through observation of interfaces between artificial materials and living bones as well as investigation of structural changes of the materials in solutions mimicking in vivo conditions. A simulated body fluid (SBF) that has similar concentrations of inorganic ions has been used to estimate surface structural changes of implanted materials in bony defects. Bone-like apatite deposition on the surface of implants is an important event to achieve bone-bonding with bioactive ceramics. Thus, it is important to control the reaction of such materials with body fluid during the development of novel biomaterials. Based on a fundamental understanding of the reactions of ceramic materials in SBF, novel types of biomaterials have been designed, such as surface-modified titanium metal, organic–inorganic hybrids, biomimetic composites, bioabsorbable materials, and calcium phosphates with designed morphology. In this review, the development of bioactive materials is described through a fundamental understanding of the calcification mechanisms of bioactive ceramics in SBF.
机译:陶瓷生物材料由于其对活骨的生物亲和力,已在临床上用于修复骨缺损。在陶瓷生物材料中,生物活性陶瓷直接与活骨结合。生物活性陶瓷与活骨的粘合机制为开发具有高功能性的新型生物材料提供了独特的策略。通过观察人造材料和活骨之间的界面,以及研究模拟体内条件的溶液中材料的结构变化,已经阐明了骨结合的机理。具有相似浓度的无机离子的模拟体液(SBF)已用于估计骨缺损中植入材料的表面结构变化。骨样磷灰石沉积在植入物表面是实现与生物活性陶瓷骨粘合的重要事件。因此,重要的是在新型生物材料的开发过程中控制此类材料与体液的反应。基于对SBF中陶瓷材料反应的基本了解,设计了新型生物材料,例如表面改性的钛金属,有机-无机杂化材料,仿生复合材料,可生物吸收的材料以及具有设计形态的磷酸钙。在这篇综述中,通过对SBF中生物活性陶瓷钙化机理的基本理解来描述生物活性材料的发展。

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