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基于珍珠层的生物材料的设计策略和应用。

Design strategies and applications of nacre-based biomaterials.

机构信息

Department of Biomedical Engineering, Materials Research Institute, The Huck Institutes of the Life Sciences, The Pennsylvania State University, University Park, PA 16802, USA.

Zhejiang Provincial Top Key Discipline of Bioengineering, College of Biological and Environmental Sciences, Zhejiang Wanli University, South Qianhu Road 8, Ningbo 315100, China.

出版信息

Acta Biomater. 2017 May;54:21-34. doi: 10.1016/j.actbio.2017.03.003. Epub 2017 Mar 6.

Abstract

UNLABELLED

The field of tissue engineering and regenerative medicine relies heavily on materials capable of implantation without significant foreign body reactions and with the ability to promote tissue differentiation and regeneration. The field of bone tissue engineering in particular requires materials capable of providing enhanced mechanical properties and promoting osteogenic cell lineage commitment. While bone repair has long relied almost exclusively on inorganic, calcium phosphate ceramics such as hydroxyapatite and their composites or on non-degradable metals, the organically derived shell and pearl nacre generated by mollusks has emerged as a promising alternative. Nacre is a naturally occurring composite material composed of inorganic, calcium carbonate plates connected by a framework of organic molecules. Similar to mammalian bone, the highly organized microstructure of nacre endows the composite with superior mechanical properties while the organic phase contributes to significant bioactivity. Studies, both in vitro and in vivo, have demonstrated nacre's biocompatibility, biodegradability, and osteogenic potential, which are superior to pure inorganic minerals such as hydroxyapatite or non-degradable metals. Nacre can be used directly as a bulk implant or as part of a composite material when combined with polymers or other ceramics. While nacre has demonstrated its effectiveness in multiple cell culture and animal models, it remains a relatively underexplored biomaterial. This review introduces the formation, structure, and characteristics of nacre, and discusses the present and future uses of this biologically-derived material as a novel biomaterial for orthopedic and other tissue engineering applications.

STATEMENT OF SIGNIFICANCE

Mussel derived nacre, a biological composite composed of mineralized calcium carbonate platelets and interplatelet protein components, has recently gained interest as a potential alternative ceramic material in orthopedic biomaterials, combining the integration and mechanical capabilities of calcium phosphates with increased bioactivity derived from proteins and biomolecules; however, there is limited awareness of this material's potential. Herein, we present, to our knowledge, the first comprehensive review of nacre as a biomaterial. Nacre is a highly promising yet overlooked biomaterial for orthopedic tissue engineering with great potential in a wide variety of material systems. It is our hope that publication of this article will lead to increased community awareness of the potential of nacre as a versatile, bioactive ceramic capable of improving bone tissue regeneration and will elicit increased research effort and innovation utilizing nacre.

摘要

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组织工程和再生医学领域严重依赖于能够植入而不会引起明显异物反应的材料,并且具有促进组织分化和再生的能力。特别是骨组织工程领域需要能够提供增强的机械性能并促进成骨细胞谱系承诺的材料。虽然骨修复长期以来几乎完全依赖于无机的钙磷酸盐陶瓷,如羟基磷灰石及其复合材料或不可降解的金属,但贝类产生的有机来源的壳和珍珠母已成为一种有前途的替代品。珍珠母是一种天然存在的复合材料,由无机碳酸钙板通过有机分子的框架连接而成。与哺乳动物骨骼类似,珍珠母的高度组织化微观结构赋予复合材料优异的机械性能,而有机相则有助于显著的生物活性。体外和体内研究都证明了珍珠母的生物相容性、可生物降解性和成骨潜力,优于纯无机矿物质如羟基磷灰石或不可降解的金属。珍珠母可以直接用作大块植入物,也可以与聚合物或其他陶瓷结合作为复合材料的一部分使用。虽然珍珠母在多种细胞培养和动物模型中已经证明了其有效性,但它仍然是一种相对未被充分探索的生物材料。本综述介绍了珍珠母的形成、结构和特性,并讨论了这种生物衍生材料作为新型生物材料在骨科和其他组织工程应用中的现状和未来用途。

意义声明

贻贝衍生的珍珠母是一种生物复合材料,由矿化碳酸钙板和板间蛋白成分组成,最近作为一种潜在的替代陶瓷材料在骨科生物材料中引起了关注,它结合了磷酸钙的整合和机械能力,以及来自蛋白质和生物分子的增加的生物活性;然而,人们对这种材料的潜力知之甚少。在此,我们根据我们的知识,介绍了珍珠母作为生物材料的第一篇综合综述。珍珠母是一种非常有前途但被忽视的骨科组织工程生物材料,在各种材料系统中都具有很大的潜力。我们希望本文的发表将提高科学界对珍珠母作为一种多功能、生物活性陶瓷材料的潜力的认识,这种陶瓷材料能够改善骨组织再生,并引起更多的研究努力和创新,利用珍珠母。

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