Hydroxyapatite from Mollusk Shells: Characteristics, Production, and Potential Applications in Dentistry.

IF 2.5 Q2 DENTISTRY, ORAL SURGERY & MEDICINE
Florin Lucian Muntean, Iustin Olariu, Diana Marian, Teodora Olariu, Emanuela Lidia Petrescu, Tudor Olariu, George Andrei Drăghici
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引用次数: 0

Abstract

Modern dentistry is turning towards natural sources to overcome the immunological, toxicological, aesthetic, and durability drawbacks of synthetic materials. Among the first biomaterials used as endosseous dental implants, mollusk shells also display unique features, such as high mechanical strength, superior toughness, hierarchical architecture, and layered, microporous structure. This review focusses on hydroxyapatite-a bioactive, osteoconductive, calcium-based material crucial for bone healing and regeneration. Mollusk-derived hydroxyapatite is widely available, cost-effective, sustainable, and a low-impact biomaterial. Thermal treatment coupled with wet chemical precipitation and hydrothermal synthesis are the most common methods used for its recovery since they provide efficiency, scalability, and the ability to produce highly crystalline and pure resulting materials. Several factors, such as temperature, pH, and sintering parameters, modulate the size, purity, and crystallinity of the final product. Experimental and clinical data support that mollusk shell-derived hydroxyapatite and its carbonated derivatives, especially their nanocrystaline forms, display notable bioactivity, osteoconductivity, and osteoinductivity without causing adverse immune reactions. These biomaterials are therefore highly relevant for specific dental applications, such as bone graft substitutes or dental implant coatings. However, continued research and clinical validation is needed to optimize the synthesis of mollusk shell-derived hydroxyapatite and determine its applicability to regenerative dentistry and beyond.

软体动物壳中羟基磷灰石的特性、生产及其在牙科中的潜在应用。
现代牙科正在转向天然来源,以克服合成材料在免疫学、毒理学、美学和耐久性方面的缺点。软体动物壳是最早用于牙内种植体的生物材料之一,具有机械强度高、韧性好、分层结构、层状微孔结构等特点。羟基磷灰石是一种具有生物活性,具有骨导电性的钙基材料,对骨愈合和再生至关重要。来源于软体动物的羟基磷灰石是一种广泛可用的、经济高效的、可持续的、低影响的生物材料。热处理加上湿化学沉淀法和水热合成法是最常用的回收方法,因为它们提供了效率、可扩展性和生产高结晶性和纯度的最终材料的能力。几个因素,如温度、pH值和烧结参数,会调节最终产品的尺寸、纯度和结晶度。实验和临床数据支持,软体动物壳源性羟基磷灰石及其碳化衍生物,特别是其纳米晶形式,表现出显著的生物活性、骨导电性和骨诱导性,而不会引起不良免疫反应。因此,这些生物材料与特定的牙科应用高度相关,例如骨移植替代品或牙科种植体涂层。然而,需要进一步的研究和临床验证来优化软体动物壳源性羟基磷灰石的合成,并确定其在再生牙科及其他领域的适用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Dentistry Journal
Dentistry Journal Dentistry-Dentistry (all)
CiteScore
3.70
自引率
7.70%
发文量
213
审稿时长
11 weeks
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