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天然多糖对生物微混凝土型生物陶瓷性能的影响。

Influence of Natural Polysaccharides on Properties of the Biomicroconcrete-Type Bioceramics.

作者信息

Pańtak Piotr, Cichoń Ewelina, Czechowska Joanna, Zima Aneta

机构信息

Faculty of Materials Science and Ceramics, AGH University of Science and Technology, Mickiewicza Av. 30, 30-058 Kraków, Poland.

出版信息

Materials (Basel). 2021 Dec 7;14(24):7496. doi: 10.3390/ma14247496.

Abstract

In this paper, novel hybrid biomicroconcrete-type composites were developed and investigated. The solid phase of materials consisted of a highly reactive α -tricalcium phosphate (α-TCP) powder, hybrid hydroxyapatite-chitosan (HAp-CTS) material in the form of powder and granules (as aggregates), and the polysaccharides sodium alginate (SA) or hydroxypropyl methylcellulose (HPMC). The liquid/gel phase in the studied materials constituted a citrus pectin gel. The influence of SA or HPMC on the setting reaction, microstructure, mechanical as well as biological properties of biomicroconcretes was investigated. Studies revealed that manufactured cement pastes were characterized by high plasticity and cohesion. The dual setting system of developed biomicroconcretes, achieved through α-TCP setting reaction and polymer crosslinking, resulted in a higher compressive strength. Material with the highest content of sodium alginate possessed the highest mechanical strength (~17 MPa), whereas the addition of hydroxypropyl methylcellulose led to a subtle compressive strength decrease. The obtained biomicroconcretes were chemically stable and characterized by a high bioactive potential. The novel biomaterials with favorable physicochemical and biological properties can be prosperous materials for filling bone tissue defects of any shape and size.

摘要

在本文中,开发并研究了新型混合生物微混凝土型复合材料。材料的固相由高活性α -磷酸三钙(α-TCP)粉末、粉末和颗粒形式(作为骨料)的混合羟基磷灰石-壳聚糖(HAp-CTS)材料以及多糖海藻酸钠(SA)或羟丙基甲基纤维素(HPMC)组成。所研究材料中的液相/凝胶相为柑橘果胶凝胶。研究了SA或HPMC对生物微混凝土凝结反应、微观结构、力学性能以及生物学性能的影响。研究表明,制备的水泥浆具有高可塑性和粘结性。通过α-TCP凝结反应和聚合物交联实现的新型生物微混凝土双凝结体系,导致了更高的抗压强度。海藻酸钠含量最高的材料具有最高的机械强度(约17 MPa),而添加羟丙基甲基纤维素导致抗压强度略有下降。所获得的生物微混凝土化学稳定,具有高生物活性潜力。具有良好物理化学和生物学性能的新型生物材料可以成为填充任何形状和尺寸骨组织缺损的理想材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aef0/8708244/f55187fc690a/materials-14-07496-g001.jpg

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