Microbial Adhesion to Dental Polymers for Conventional, Computer-Aided Subtractive and Additive Manufacturing: A Comparative In Vitro Study

被引:11
|
作者
Arutyunov, Sergey [1 ]
Kirakosyan, Levon [1 ]
Dubova, Lubov [2 ]
Kharakh, Yaser [1 ]
Malginov, Nikolay [3 ]
Akhmedov, Gadzhi [4 ]
Tsarev, Viktor [5 ]
机构
[1] AI Yevdokimov Moscow State Univ Med & Dent, Propaedeut Dent Dis Dept, Moscow 127473, Russia
[2] AI Yevdokimov Moscow State Univ Med & Dent, Orthoped Dent Dept, Moscow 127473, Russia
[3] AI Yevdokimov Moscow State Univ Med & Dent, Prosthodont Technol Dept, Moscow 127473, Russia
[4] AI Yevdokimov Moscow State Univ Med & Dent, Surg Dent Dept, Moscow 127473, Russia
[5] AI Yevdokimov Moscow State Univ Med & Dent, Immunol Dept, Virol, Microbiol, Moscow 127473, Russia
关键词
microbiology; dentistry; prosthodontics; dental prosthesis; technology; dental; pathology; clinical; acrylic resins; bacterial load; clinical reasoning; SURFACE-ROUGHNESS; CANDIDA; TOPOGRAPHY; BACTERIA;
D O I
10.3390/jfb13020042
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Modern structural materials are represented by a variety of polymer materials used for dental patients' rehabilitation. They differ not only in physico-chemical properties, but also in microbiological properties, which is one of the reasons why these materials are chosen. The study focused on the microbial adhesion of clinical isolates of normal (5 types), periodontopathogenic (2 types), and fungal (2 types) microbiotas to various materials based on polymethylmethacrylate (PMMA) intended for traditional (cold-cured and hot-cured polymers), computer-aided subtractive and additive manufacturing. A comparative analysis was carried out on the studied samples of polymer materials according to the microorganisms' adhesion index (AI). The lowest level of microorganisms' AI of the three types of microbiotas was determined in relation to materials for additive manufacturing. The AI of hot-cured polymers, as well as materials for subtractive manufacturing, corresponded to the average level. The highest level of microorganisms' adhesion was found in cold-cured polymers. Significant differences in AI for materials of the same technological production type (different manufacturers) were also determined. The tendency of significant differences in the indicators of the microorganisms' adhesion level for the studied polymer materials on the basis of the type of production technology was determined.
引用
收藏
页数:12
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