The University of Oklahoma Health Sciences Center, Department of Restorative Sciences, Division of Dental Biomaterials, College of Dentistry, 1201 N. Stonewall Avenue, Oklahoma City, OK 73117, USA.
Oregon Health & Science University, Department of Restorative Dentistry, School of Dentistry, MRB424, 3181 SW Sam Jackson Park Rd., Portland, OR 97239, USA.
Dent Mater. 2024 Sep;40(9):1313-1321. doi: 10.1016/j.dental.2024.06.012. Epub 2024 Jun 13.
The present work demonstrates the optimization of a renilla-based real-time, ultra-bright, non-disruptive, high-throughput bioluminescence assay (HTS) to assess the metabolism of intact Streptococcus mutans biofilms and its utility in screening the antibacterial efficacy of experimental nanofilled dental adhesive resins containing varying concentrations of nitrogen-doped titanium dioxide nanoparticles (N_TiO).
Optimization of the assay was achieved by screening real-time bioluminescence changes in intact Streptococcus mutans biofilms imposed by the various experimental biofilm growth parameters investigated (bacterial strain, growth media, sucrose concentration, dilution factor, and inoculum volume). The optimized assay was then used to characterize the antibacterial efficacy of experimental nanofilled dental adhesive resins. The assay's ability to discriminate between bacteriostatic and bactericidal approaches was also investigated.
Relative Light Units (RLU) values from the HTS optimization were analyzed by multivariate ANOVA (α = 0.05) and coefficients of variation. An optimized HTS bioluminescence assay was developed displaying RLUs values (brightness) that are much more intense when comparing to other previously reported bioluminescence assays, thereby decreasing the error associated with bioluminescence assays and displaying better utility while investigating the functionalities of antimicrobial nanofilled experimental dental adhesive resins with proven long-term properties.
The present study is anticipated to positively impact subsequent research on dental materials and oral microbiology because it serves as a valuable screening tool in metabolic-based assays with increased sensitivity and robustness. The assay reported is anticipated to be further optimized to be used as a co-reporter for other Luc based assays.
本研究旨在优化一种基于海肾萤光素的实时、超高亮、非破坏、高通量生物发光检测法(HTS),以评估完整变形链球菌生物膜的代谢情况,并将其用于筛选含有不同浓度氮掺杂二氧化钛纳米颗粒(N_TiO)的实验型纳米复合牙用黏接树脂的抗菌效果。
通过筛选不同实验性生物膜生长参数(细菌株、生长培养基、蔗糖浓度、稀释因子和接种量)对完整变形链球菌生物膜施加的实时生物发光变化,对检测法进行优化。然后,使用优化后的检测法来表征实验型纳米复合牙用黏接树脂的抗菌效果。还研究了该检测法区分抑菌和杀菌方法的能力。
通过多变量方差分析(α=0.05)和变异系数对 HTS 优化的相对光单位(RLU)值进行分析。开发了一种优化的 HTS 生物发光检测法,与其他先前报道的生物发光检测法相比,RLU 值(亮度)更亮,从而降低了生物发光检测法的误差,并在研究具有长期证明性能的抗菌纳米复合实验性牙用黏接树脂的功能时具有更好的实用性。
由于该检测法作为基于代谢的检测法中的一种有价值的筛选工具,具有更高的灵敏度和稳健性,因此预计本研究将对后续的牙科材料和口腔微生物学研究产生积极影响。预计将进一步优化该检测法,作为其他基于 Luc 的检测法的辅助报告。