推进牙齿生物膜模型:pH值在预测变形链球菌定植中的整体作用。

IF 3.7 2区 生物学 Q2 MICROBIOLOGY
mSphere Pub Date : 2025-01-28 Epub Date: 2024-12-11 DOI:10.1128/msphere.00743-24
Jay S Sangha, Valentina Gogulancea, Thomas P Curtis, Nicholas S Jakubovics, Paul Barrett, Aline Metris, Irina D Ofiţeru
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引用次数: 0

摘要

数学模型可以为微生物群落内复杂的相互作用和动态提供见解,以补充和扩展实验实验室方法。对于牙齿生物膜,它们可以为评估生物膜的生长或从健康到疾病的转变提供依据。我们已经开发了数学模型来模拟向致龋微生物生物膜的过渡,模型为变形链球菌在五种牙齿群落中的过度生长。这项工作建立在连续流动反应器的实验数据上,该反应器使用羟基磷灰石片在具有不同浓度葡萄糖和乳酸的化学定义介质中进行生物膜生长。使用基于个体的模型(ibm)模拟在优惠券上形成的生物膜,使用实验测量的动力学参数模拟细菌生长。IbM假设生物质的最大理论生长量取决于反应物和生成物的局部浓度,而生长率则使用传统的莫诺方程来描述。我们模拟了实验研究的所有条件,考虑到五种物种的初始相对丰度不同,以及生物膜中不同的初始聚类。在考虑了pH对生长速率的物种特异性影响后,模拟结果才重现了变形链球菌在高葡萄糖浓度下的实验优势。这突出了变形链球菌的酸性特性在龋齿发展中的重要性。我们的研究展示了结合体外和计算机研究的潜力,以获得对影响牙齿生物膜动力学因素的新认识。我们已经开发了硅模型,能够在化学定义的培养基中生长的合成牙科生物膜群落中再现体外测量的相对丰度。这种体外和计算机模型相结合的优点是,我们可以一次研究一个参数的影响,并旨在直接验证。我们的工作证明了基于个体的模型在模拟影响牙齿生物膜情景的各种条件方面的效用,例如葡萄糖摄入的频率,蔗糖脉冲,或致病性或益生菌物种的整合。尽管计算机模型是简化的方法,但它们的优点是不受限于它们可以通过体内系统的伦理考虑进行测试的场景,因此对牙齿生物膜研究做出了重大贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advancing dental biofilm models: the integral role of pH in predicting S. mutans colonization.

Mathematical models can provide insights into complex interactions and dynamics within microbial communities to complement and extend experimental laboratory approaches. For dental biofilms, they can give a basis for evaluating biofilm growth or the transition from health to disease. We have developed mathematical models to simulate the transition toward a cariogenic microbial biofilm, modeled as the overgrowth of Streptococcus mutans within a five-species dental community. This work builds on experimental data from a continuous flow reactor with hydroxyapatite coupons for biofilm growth, in a chemically defined medium with varying concentrations of glucose and lactic acid. The biofilms formed on the coupons were simulated using individual-based models (IbMs), with bacterial growth modeled using experimentally measured kinetic parameters. The IbM assumes that the maximum theoretical growth yield for biomass is dependent on the local concentration of reactants and products, while the growth rates were described using traditional Monod equations. We have simulated all the conditions studied experimentally, considering different initial relative abundance of the five species, and also different initial clustering in the biofilm. The simulation results only reproduced the experimental dominance of S. mutans at high glucose concentration after we considered the species-specific effect of pH on growth rates. This highlights the significance of the aciduric property of S. mutans in the development of caries. Our study demonstrates the potential of combining in vitro and in silico studies to gain a new understanding of the factors that influence dental biofilm dynamics.IMPORTANCEWe have developed in silico models able to reproduce the relative abundance measured in vitro in the synthetic dental biofilm communities growing in a chemically defined medium. The advantage of this combination of in vitro and in silico models is that we can study the influence of one parameter at a time and aim for direct validation. Our work demonstrates the utility of individual-based models for simulating diverse conditions affecting dental biofilm scenarios, such as the frequency of glucose intake, sucrose pulsing, or integration of pathogenic or probiotic species. Although in silico models are reductionist approaches, they have the advantage of not being limited in the scenarios they can test by the ethical consideration of an in vivo system, thus significantly contributing to dental biofilm research.

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来源期刊
mSphere
mSphere Immunology and Microbiology-Microbiology
CiteScore
8.50
自引率
2.10%
发文量
192
审稿时长
11 weeks
期刊介绍: mSphere™ is a multi-disciplinary open-access journal that will focus on rapid publication of fundamental contributions to our understanding of microbiology. Its scope will reflect the immense range of fields within the microbial sciences, creating new opportunities for researchers to share findings that are transforming our understanding of human health and disease, ecosystems, neuroscience, agriculture, energy production, climate change, evolution, biogeochemical cycling, and food and drug production. Submissions will be encouraged of all high-quality work that makes fundamental contributions to our understanding of microbiology. mSphere™ will provide streamlined decisions, while carrying on ASM''s tradition for rigorous peer review.
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