无机聚合物:用于快速成型链的无机生物聚合物。

Werner E G Müller, Heinz C Schröder, Zhijian Shen, Qingling Feng, Xiaohong Wang
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引用次数: 4

摘要

近年来,通过引入快速原型或固体自由形状制造技术,在定制支架材料的开发方面取得了相当大的进展,特别是在骨组织工程和修复方面。这些新的制造技术克服了许多与传统骨植入物相关的问题,例如外部形态和内部结构不完善、孔隙度和互连性不足以及可重复性低。然而,这些新技术的适用性仍然受到以下事实的阻碍:通常需要较高的加工温度或后烧结来增加生成的支架的机械稳定性,以及后处理,即表面改性/功能化以增强支架的生物相容性或结合一些生物活性成分。一种解决方案可能是引入新型无机生物聚合物,生物二氧化硅和聚磷酸盐,它们可以抵抗RP链中应用的恶劣条件,具有形态活性,不需要补充生长因子/细胞因子来刺激骨形成细胞的生长和分化。
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Inorganic polymers: morphogenic inorganic biopolymers for rapid prototyping chain.

In recent years, considerable progress has been achieved towards the development of customized scaffold materials, in particular for bone tissue engineering and repair, by the introduction of rapid prototyping or solid freeform fabrication techniques. These new fabrication techniques allow to overcome many problems associated with conventional bone implants, such as inadequate external morphology and internal architecture, porosity and interconnectivity, and low reproducibility. However, the applicability of these new techniques is still hampered by the fact that high processing temperature or a postsintering is often required to increase the mechanical stability of the generated scaffold, as well as a post-processing, i.e., surface modification/functionalization to enhance the biocompatibility of the scaffold or to bind some bioactive component. A solution might be provided by the introduction of novel inorganic biopolymers, biosilica and polyphosphate, which resist harsh conditions applied in the RP chain and are morphogenetically active and do not need supplementation by growth factors/cytokines to stimulate the growth and the differentiation of bone-forming cells.

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来源期刊
CiteScore
3.30
自引率
0.00%
发文量
7
期刊介绍: Molecular biology has been providing an overwhelming amount of data on the structural components and molecular machineries of the cell and its organelles and the complexity of intra- and intercellular communication. The molecular basis of hereditary and acquired diseases is beginning to be unravelled, and profound new insights into development and evolutionary biology have been gained from molecular approaches. Progress in Molecular and Subcellular Biology summarises the most recent developments in this fascinating area of biology.
期刊最新文献
Inorganic Polyphosphate and F0F1-ATP Synthase of Mammalian Mitochondria. Inorganic Polyphosphate in Mitochondrial Energy Metabolism and Pathology. Inorganic Polyphosphate, Mitochondria, and Neurodegeneration. Polyphosphate in Chronic Wound Healing: Restoration of Impaired Metabolic Energy State. Biomimetic Polyphosphate Materials: Toward Application in Regenerative Medicine.
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