Hydrophilicity, Viscoelastic, and Physicochemical Properties Variations in Dental Bone Grafting Substitutes

被引:44
作者
Trajkovski, Branko [1 ,2 ]
Jaunich, Matthias [3 ]
Mueller, Wolf-Dieter [4 ]
Beuer, Florian [4 ]
Zafiropoulos, Gregory-George [5 ]
Houshmand, Alireza [4 ]
机构
[1] Univ Sharjah, Coll Dent Med, Wound Healing & Oral Diagnost Res Grp, Sharjah 27272, U Arab Emirates
[2] Botiss Biomat GmbH, Hauptstr 28, D-15806 Zossen, Germany
[3] Bundesanstalt Mat Forsch & Prufung BAM, Unter Eichen 44-46, D-12203 Berlin, Germany
[4] Charite, Charite Ctr Zahn Mund & Kieferheilkunde, Assmannshauser Str 4-6, D-14197 Berlin, Germany
[5] Univ Sharjah, Prevent & Restorat Dent Dept, Coll Dent Med, Sharjah 27272, U Arab Emirates
关键词
biomaterials; bone grafting; bone substitutes; hydrophilicity; mechanical analysis; ANORGANIC BOVINE BONE; AUGMENTATION; ALLOGRAFT; MATRIX; REGENERATION; BIOMATERIAL; DEGRADATION; STRATEGIES; PHOSPHATE; IMPACT;
D O I
10.3390/ma11020215
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The indication-oriented Dental Bone Graft Substitutes (DBGS) selection, the correct bone defects classification, and appropriate treatment planning are very crucial for obtaining successful clinical results. However, hydrophilic, viscoelastic, and physicochemical properties' influence on the DBGS regenerative potential has poorly been studied. For that reason, we investigated the dimensional changes and molecular mobility by Dynamic Mechanical Analysis (DMA) of xenograft (cerabone((R))), synthetic (maxresorb((R))), and allograft (maxgraft((R)), Puros((R))) blocks in a wet and dry state. While no significant differences could be seen in dry state, cerabone((R)) and maxresorb((R)) blocks showed a slight height decrease in wet state, whereas both maxgraft((R)) and Puros((R)) had an almost identical height increase. In addition, cerabone((R)) and maxresorb((R)) blocks remained highly rigid and their damping behaviour was not influenced by the water. On the other hand, both maxgraft((R)) and Puros((R)) had a strong increase in their molecular mobility with different damping behaviour profiles during the wet state. A high-speed microscopical imaging system was used to analyze the hydrophilicity in several naturally derived (cerabone((R)), Bio-Oss((R)), NuOss((R)), SIC (R) nature graft) and synthetic DBGS granules (maxresorb((R)), BoneCeramic((R)), NanoBone((R)), Ceros((R))). The highest level of hydrophilicity was detected in cerabone((R)) and maxresorb((R)), while Bio-Oss((R)) and BoneCeramic((R)) had the lowest level of hydrophilicity among both naturally derived and synthetic DBGS groups. Deviations among the DBGS were also addressed via physicochemical differences recorded by Micro Computed Tomography, Scanning Electron Microscopy, Fourier Transform Infrared Spectroscopy, X-ray powder Diffractometry, and Thermogravimetric Analysis. Such DBGS variations could influence the volume stability at the grafting site, handling as well as the speed of vascularization and bone regeneration. Therefore, this study initiates a new insight into the DBGS differences and their importance for successful clinical results.
引用
收藏
页数:19
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