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International journal of oral science. 2025 May 27;17(1):42. doi: 10.1038/s41368-025-00365-9 Q110.82024

Physiologically relevant coculture model for oral microbial-host interactions

口腔微生物-宿主互作的生理相关共培养模型 翻译改进

Zeyang Pang  1, Nicole M Cady  2, Lujia Cen  3, Thomas M Schmidt  2  4  5, Xuesong He  3, Jiahe Li  6

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作者单位

  • 1 Department of Biomedical Engineering, College of Engineering and School of Medicine, University of Michigan, Ann Arbor, MI, USA.
  • 2 Department of Microbiology and Immunology, University of Michigan Medical School, Ann Arbor, MI, USA.
  • 3 Department of Microbiology, The ADA Forsyth Institute, Somerville, MA, USA.
  • 4 Department of Internal Medicine, University of Michigan, Ann Arbor, MI, USA.
  • 5 Department of Ecology and Evolutionary Biology, University of Michigan, Ann Arbor, MI, USA.
  • 6 Department of Biomedical Engineering, College of Engineering and School of Medicine, University of Michigan, Ann Arbor, MI, USA. jiaheli@umich.edu.
  • DOI: 10.1038/s41368-025-00365-9 PMID: 40425581

    摘要 中英对照阅读

    Understanding microbial-host interactions in the oral cavity is essential for elucidating oral disease pathogenesis and its systemic implications. In vitro bacteria-host cell coculture models have enabled fundamental studies to characterize bacterial infection and host responses in a reductionist yet reproducible manner. However, existing in vitro coculture models fail to establish conditions that are suitable for the growth of both mammalian cells and anaerobes, thereby hindering a comprehensive understanding of their interactions. Here, we present an asymmetric gas coculture system that simulates the oral microenvironment by maintaining distinct normoxic and anaerobic conditions for gingival epithelial cells and anaerobic bacteria, respectively. Using a key oral pathobiont, Fusobacterium nucleatum, as the primary test bed, we demonstrate that the system preserves bacterial viability and supports the integrity of telomerase-immortalized gingival keratinocytes. Compared to conventional models, this system enhanced bacterial invasion, elevated intracellular bacterial loads, and elicited more robust host pro-inflammatory responses, including increased secretion of CXCL10, IL-6, and IL-8. In addition, the model enabled precise evaluation of antibiotic efficacy against intracellular pathogens. Finally, we validate the ability of the asymmetric system to support the proliferation of a more oxygen-sensitive oral pathobiont, Porphyromonas gingivalis. These results underscore the utility of this coculture platform for studying oral microbial pathogenesis and screening therapeutics, offering a physiologically relevant approach to advance oral and systemic health research.

    Keywords:oral microbial; host interactions; coculture model

    理解口腔微生物与宿主之间的相互作用对于阐明口腔疾病的发生机制及其系统性影响至关重要。体外细菌-宿主细胞共培养模型能够以简约且可重复的方式进行基础研究,从而表征细菌感染和宿主反应。然而,现有的体外共培养模型无法建立同时适合哺乳动物细胞和厌氧菌生长的条件,这阻碍了对它们相互作用的全面理解。在这里,我们提出了一种不对称气体共培养系统,该系统通过为牙龈上皮细胞维持正常的氧气条件,为厌氧细菌维持无氧条件,来模拟口腔微环境。使用关键的口腔病原共生菌福赛氏杆菌(Fusobacterium nucleatum)作为主要测试对象,我们证明了该系统能够保持细菌活力并支持端粒酶永生化牙龈角质形成细胞的完整性。与传统模型相比,这种系统增强了细菌入侵能力、提高了胞内细菌负荷,并引发了更强的宿主促炎反应,包括CXCL10、IL-6和IL-8分泌量增加。此外,该模型能够精确评估抗生素对胞内病原体的效果。最后,我们验证了不对称系统支持更敏感于氧气的口腔病原共生菌牙龈卟啉单胞菌(Porphyromonas gingivalis)增殖的能力。这些结果强调了这种共培养平台在研究口腔微生物致病机制和筛选疗法方面的实用性,并为推进口腔健康和系统性健康的研究提供了一种生理相关的方法。

    © 2025. The Author(s).

    关键词:口腔微生物; 宿主相互作用; 共培养模型

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    Copyright © International journal of oral science. 中文内容为AI机器翻译,仅供参考!

    期刊名:International journal of oral science

    缩写:INT J ORAL SCI

    ISSN:1674-2818

    e-ISSN:2049-3169

    IF/分区:10.8/Q1

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    Physiologically relevant coculture model for oral microbial-host interactions