Biomaterials for periodontal regeneration: a review of ceramics and polymers.

Biomatter Pub Date : 2012-10-01 DOI:10.4161/biom.22948
Li Shue, Zhang Yufeng, Ullas Mony
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引用次数: 100

Abstract

Periodontal disease is characterized by the destruction of periodontal tissues. Various methods of regenerative periodontal therapy, including the use of barrier membranes, bone replacement grafts, growth factors and the combination of these procedures have been investigated. The development of biomaterials for tissue engineering has considerably improved the available treatment options above. They fall into two broad classes: ceramics and polymers. The available ceramic-based materials include calcium phosphate (eg, tricalcium phosphate and hydroxyapatite), calcium sulfate and bioactive glass. The bioactive glass bonds to the bone with the formation of a layer of carbonated hydroxyapatite in situ. The natural polymers include modified polysaccharides (eg, chitosan,) and polypeptides (collagen and gelatin). Synthetic polymers [eg, poly(glycolic acid), poly(L-lactic acid)] provide a platform for exhibiting the biomechanical properties of scaffolds in tissue engineering. The materials usually work as osteogenic, osteoconductive and osteoinductive scaffolds. Polymers are more widely used as a barrier material in guided tissue regeneration (GTR). They are shown to exclude epithelial downgrowth and allow periodontal ligament and alveolar bone cells to repopulate the defect. An attempt to overcome the problems related to a collapse of the barrier membrane in GTR or epithelial downgrowth is the use of a combination of barrier membranes and grafting materials. This article reviews various biomaterials including scaffolds and membranes used for periodontal treatment and their impacts on the experimental or clinical management of periodontal defect.

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用于牙周再生的生物材料:陶瓷和聚合物的综述。
牙周病的特点是牙周组织受到破坏。再生牙周治疗的各种方法,包括使用屏障膜、骨置换移植物、生长因子和这些方法的组合已被研究。用于组织工程的生物材料的发展大大改善了上述可用的治疗选择。它们可分为两大类:陶瓷和聚合物。可用的陶瓷基材料包括磷酸钙(如磷酸三钙和羟基磷灰石)、硫酸钙和生物活性玻璃。生物活性玻璃与骨结合,形成一层碳化羟基磷灰石。天然聚合物包括改性多糖(如壳聚糖)和多肽(胶原蛋白和明胶)。合成聚合物(如聚乙醇酸、聚l -乳酸)为组织工程中展示支架的生物力学特性提供了一个平台。这些材料通常用作成骨、骨传导和骨诱导支架。聚合物作为一种屏障材料在引导组织再生(GTR)中得到了广泛的应用。它们可以阻止上皮细胞的下降,并允许牙周韧带和牙槽骨细胞重新填充缺损。为了克服与GTR或上皮细胞生长下降中屏障膜崩溃相关的问题,使用了屏障膜和嫁接材料的组合。本文综述了用于牙周治疗的各种生物材料,包括支架和膜,以及它们对牙周缺损的实验和临床治疗的影响。
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