The effect of dental material type and masticatory forces on periodontitis-derived subgingival microbiomes

IF 5.9 Q1 MICROBIOLOGY Biofilm Pub Date : 2024-05-08 DOI:10.1016/j.bioflm.2024.100199
Carolina Montoya , Divyashri Baraniya , Tsute Chen , Nezar Noor Al-Hebshi , Santiago Orrego
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Abstract

Restorative dental materials can frequently extend below the gingival margin, serving as a potential haven for microbial colonization, and altering the local oral microbiome to ignite infection. However, the contribution of dental materials on driving changes of the composition of the subgingival microbiome is under-investigated. This study evaluated the microbiome-modulating properties of three biomaterials, namely resin dental composites (COM), antimicrobial piezoelectric composites (BTO), and hydroxyapatite (HA), using an optimized in vitro subgingival microbiome model derived from patients with periodontal disease. Dental materials were subjected to static or cyclic loading (mastication forces) during biofilm growth. Microbiome composition was assessed by 16S rRNA gene sequencing. Dysbiosis was measured in terms of subgingival microbial dysbiosis index (SMDI). Biomaterials subjected to cyclic masticatory loads were associated with enhanced biofilm viability except on the antibacterial composite. Biomaterials held static were associated with increased biofilm biomass, especially on HA surfaces. Overall, the microbiome richness (Chao index) was similar for all the biomaterials and loading conditions. However, the microbiome diversity (Shannon index) for the HA beams was significantly different than both composites. In addition, beta diversity analysis revealed significant differences between composites and HA biomaterials, and between both loading conditions (static and cyclic). Under static conditions, microbiomes formed over HA surfaces resulted in increased dysbiosis compared to composites through the enrichment of periopathogens, including Porphyromonas gingivalis, Porphyromonas endodontalis, and Fretibacterium spp., and depletion of commensals such as Granulicatella and Streptococcus spp. Interestingly, cyclic loading reversed the dysbiosis of microbiomes formed over HA (depletion of periopathogenes) but increased the dysbiosis of microbiomes formed over composites (enrichment of Porphyromonas gingivalis and Fusobacterim nucleatum). Comparison of species formed on both composites (control and antibacterial) showed some differences. Commercial composites enriched Selenomonas spp. and depleted Campylobacter concisus. Piezoelectric composites effectively controlled the microbiome viability without significantly impacting the species abundance. Findings of this work open new understandings of the effects of different biomaterials on the modulation of oral biofilms and the relationship with oral subgingival infections.

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牙科材料类型和咀嚼力对牙周炎牙龈下微生物群的影响
牙科修复材料经常会延伸到龈缘以下,成为微生物定植的潜在天堂,并改变局部口腔微生物群,引发感染。然而,牙科材料对龈下微生物群组成变化的推动作用尚未得到充分研究。本研究使用来自牙周病患者的优化体外龈下微生物组模型,评估了三种生物材料(即树脂牙科复合材料(COM)、抗菌压电复合材料(BTO)和羟基磷灰石(HA))的微生物组调节特性。在生物膜生长过程中,对牙科材料进行静态或循环加载(咀嚼力)。微生物组的组成通过 16S rRNA 基因测序进行评估。菌群失调以龈下微生物菌群失调指数(SMDI)来衡量。除抗菌复合材料外,承受周期性咀嚼负荷的生物材料与生物膜活力增强有关。静止不动的生物材料与生物膜生物量增加有关,尤其是在 HA 表面。总体而言,所有生物材料和负载条件下的微生物群丰富度(Chao 指数)相似。但是,HA 梁的微生物群多样性(香农指数)与两种复合材料相比有显著差异。此外,贝塔多样性分析表明,复合材料和 HA 生物材料之间以及两种加载条件(静态和循环)之间存在显著差异。在静态条件下,与复合材料相比,HA 表面形成的微生物群通过富集牙周病原体(包括牙龈卟啉单胞菌、牙髓卟啉单胞菌和弗氏杆菌属)而导致菌群失调的情况增加、有趣的是,循环加载逆转了在 HA 上形成的微生物组的菌群失调(致病菌的减少),但增加了在复合材料上形成的微生物组的菌群失调(牙龈卟啉单胞菌和核酸镰刀菌的富集)。两种复合材料(对照组和抗菌组)上形成的物种比较显示出一些差异。商用复合材料富集了硒单胞菌属,减少了弯曲杆菌。压电复合材料有效地控制了微生物群的存活率,而没有对物种丰度产生重大影响。这项工作的发现为人们了解不同生物材料对口腔生物膜的调节作用以及与口腔龈下感染的关系提供了新的思路。
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来源期刊
Biofilm
Biofilm MICROBIOLOGY-
CiteScore
7.50
自引率
1.50%
发文量
30
审稿时长
57 days
期刊介绍:
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