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材料性能对牙周组织再生三维支架的生物物理特性和效果的影响。

Influence of Materials Properties on Bio-Physical Features and Effectiveness of 3D-Scaffolds for Periodontal Regeneration.

机构信息

Department of Health Science, University "Magna Græcia" of Catanzaro, Campus Universitario-Germaneto, Viale Europa, I-88100 Catanzaro, Italy.

Department of Pharmacy, University of Chieti-Pescara "G. d'Annunzio", I-66100 Chieti, Italy.

出版信息

Molecules. 2021 Mar 15;26(6):1643. doi: 10.3390/molecules26061643.

Abstract

Periodontal diseases are multifactorial disorders, mainly due to severe infections and inflammation which affect the tissues (i.e., gum and dental bone) that support and surround the teeth. These pathologies are characterized by bleeding gums, pain, bad breath and, in more severe forms, can lead to the detachment of gum from teeth, causing their loss. To date it is estimated that severe periodontal diseases affect around 10% of the population worldwide thus making necessary the development of effective treatments able to both reduce the infections and inflammation in injured sites and improve the regeneration of damaged tissues. In this scenario, the use of 3D scaffolds can play a pivotal role by providing an effective platform for drugs, nanosystems, growth factors, stem cells, etc., improving the effectiveness of therapies and reducing their systemic side effects. The aim of this review is to describe the recent progress in periodontal regeneration, highlighting the influence of materials' properties used to realize three-dimensional (3D)-scaffolds, their bio-physical characteristics and their ability to provide a biocompatible platform able to embed nanosystems.

摘要

牙周病是一种多因素疾病,主要是由于严重的感染和炎症,这些感染和炎症会影响支持和包围牙齿的组织(即牙龈和牙槽骨)。这些病变的特征是牙龈出血、疼痛、口臭,在更严重的情况下,还会导致牙龈从牙齿上脱落,导致牙齿缺失。迄今为止,据估计,全世界有 10%的人患有严重的牙周病,因此有必要开发有效的治疗方法,既能减少感染和受伤部位的炎症,又能促进受损组织的再生。在这种情况下,3D 支架的使用可以发挥关键作用,为药物、纳米系统、生长因子、干细胞等提供有效的平台,提高治疗效果,减少其全身副作用。本文的目的是描述牙周再生的最新进展,强调用于实现三维(3D)支架的材料特性、其生物物理特性以及提供能够嵌入纳米系统的生物相容性平台的能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/47af/7999474/fa9edcca1aee/molecules-26-01643-g001.jpg

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