Reproducible 3D bioprinting of Streptococcus mutans to create model oral biofilms.

IF 3.8 2区 生物学 Q2 MICROBIOLOGY
Guilherme Roncari Rocha, Danielle S W Benoit, Anne S Meyer
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引用次数: 0

Abstract

Novel approaches are needed to study relationships between oral biofilm strains, enable three-dimensional oral biofilm deposition, and hasten the rigor and pace of basic and translational biofilm studies. Previously, 3D-bioprinters were leveraged to deposit spatially patterned biofilms onto sugar-rich agar surfaces to study how the underlying spatial organization of various microbes impacts biofilm persistence and virulence. Herein, we have developed a new method to adapt this process from limited, soft agar surfaces to biomimetic solid substrates submerged in aqueous solutions for studying oral biofilms in vitro. Streptococcus mutans UA159 was used to compare standard in vitro biofilm development with our new 3D-printed bio-ink hydrogels on hydroxyapatite disks, which mimic tooth surfaces. Biofilms formed using the bio-ink methodology showed minimal quantitative differences in virulence factors, including environmental pH, biomass, and cell density, compared to biofilms formed using the standard in vitro methodology. The bio-ink technique resulted in higher exopolysaccharide deposition, a key virulence factor for biofilm cohesion and protection, as well as more homogeneous spatial distribution of bacterial microcolonies. Our newly developed technique produces 3D-printable model biofilms that match the virulence benchmarks of the standard method, opening possibilities to print biofilms onto any substrate and a new way to study multidimensional biofilm dynamics.IMPORTANCEDental caries is the most common oral disease caused by biofilms in humans with cost limitations. Changes in the human diet have increased the exposure to sugar-rich processed food, increasing the incidence and severity of dental caries and creating greater rationale for understanding biofilm deposition, microbial interactions, and maintenance of quiescence of the oral microbiota. Recent 3D-printing techniques have been leveraged to develop the first model biofilms, providing spatial control over microbe deposition and enabling unprecedented investigation of the impact of cell-cell interactions and spatial organizationupon biofilm persistence, sensitivity to drugs, and virulence. Here, we have developed new methods to extend bioprinting to oral biofilms using cariogenic Streptococcus mutans. Our technique is an attempt to establish an alternative method for oral biofilm formation in vitro that uses 3D-printing tools, preserving the virulence of standard in vitro biofilms while amplifying the availability and versatility of methods for understanding the microbiome.

变形链球菌的可复制3D生物打印,以创建模型口腔生物膜。
需要新的方法来研究口腔生物膜菌株之间的关系,实现口腔生物膜的三维沉积,并加快基础和转化生物膜研究的严谨性和速度。以前,利用3d生物打印机将空间图案的生物膜沉积在富含糖的琼脂表面上,以研究各种微生物的潜在空间组织如何影响生物膜的持久性和毒性。在此,我们开发了一种新的方法来适应这一过程,从有限的软琼脂表面到浸泡在水溶液中的仿生固体底物,用于体外研究口腔生物膜。使用变形链球菌UA159来比较标准的体外生物膜发育与我们新的3d打印生物墨水水凝胶在羟基磷灰石圆盘上的发育,羟基磷灰石圆盘模拟牙齿表面。与使用标准体外方法形成的生物膜相比,使用生物墨水方法形成的生物膜在毒力因子(包括环境pH值、生物量和细胞密度)方面显示出最小的定量差异。生物墨水技术提高了胞外多糖的沉积量(胞外多糖是生物膜内聚和保护的关键毒力因子),并使细菌微菌落的空间分布更加均匀。我们新开发的技术可以生产出符合标准方法毒性基准的3d打印生物膜模型,为在任何基质上打印生物膜提供了可能性,并为研究多维生物膜动力学提供了一种新方法。龋齿是人类最常见的由生物膜引起的口腔疾病,其治疗费用有限。人类饮食的变化增加了对富含糖的加工食品的接触,增加了龋齿的发病率和严重程度,并为理解生物膜沉积、微生物相互作用和维持口腔微生物群的静止提供了更大的基础。最近的3d打印技术已被用于开发第一个模型生物膜,提供对微生物沉积的空间控制,并使细胞-细胞相互作用和空间组织对生物膜持久性、药物敏感性和毒性的影响的前所未有的研究成为可能。在这里,我们开发了新的方法,将生物打印扩展到口腔生物膜,使用致龋变形链球菌。我们的技术是尝试建立一种使用3d打印工具在体外形成口腔生物膜的替代方法,保留标准体外生物膜的毒力,同时扩大了解微生物组的方法的可用性和多功能性。
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来源期刊
Microbiology spectrum
Microbiology spectrum Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
3.20
自引率
5.40%
发文量
1800
期刊介绍: Microbiology Spectrum publishes commissioned review articles on topics in microbiology representing ten content areas: Archaea; Food Microbiology; Bacterial Genetics, Cell Biology, and Physiology; Clinical Microbiology; Environmental Microbiology and Ecology; Eukaryotic Microbes; Genomics, Computational, and Synthetic Microbiology; Immunology; Pathogenesis; and Virology. Reviews are interrelated, with each review linking to other related content. A large board of Microbiology Spectrum editors aids in the development of topics for potential reviews and in the identification of an editor, or editors, who shepherd each collection.
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