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国际空间站微生物组的代谢建模揭示了关键的微生物相互作用。

Metabolic modeling of the International Space Station microbiome reveals key microbial interactions.

机构信息

Robert Bosch Centre for Data Science and Artificial Intelligence (RBCDSAI), Indian Institute of Technology Madras, Chennai, 600 036, India.

Center for Integrative Biology and Systems mEdicine (IBSE), Indian Institute of Technology Madras, Chennai, 600 036, India.

出版信息

Microbiome. 2022 Jul 6;10(1):102. doi: 10.1186/s40168-022-01279-y.

Abstract

BACKGROUND

Recent studies have provided insights into the persistence and succession of microbes aboard the International Space Station (ISS), notably the dominance of Klebsiella pneumoniae. However, the interactions between the various microbes aboard the ISS and how they shape the microbiome remain to be clearly understood. In this study, we apply a computational approach to predict possible metabolic interactions in the ISS microbiome and shed further light on its organization.

RESULTS

Through a combination of a systems-based graph-theoretical approach, and a constraint-based community metabolic modeling approach, we demonstrated several key interactions in the ISS microbiome. These complementary approaches provided insights into the metabolic interactions and dependencies present amongst various microbes in a community, highlighting key interactions and keystone species. Our results showed that the presence of K. pneumoniae is beneficial to many other microorganisms it coexists with, notably those from the Pantoea genus. Species belonging to the Enterobacteriaceae family were often found to be the most beneficial for the survival of other microorganisms in the ISS microbiome. However, K. pneumoniae was found to exhibit parasitic and amensalistic interactions with Aspergillus and Penicillium species, respectively. To prove this metabolic prediction, K. pneumoniae and Aspergillus fumigatus were co-cultured under normal and simulated microgravity, where K. pneumoniae cells showed parasitic characteristics to the fungus. The electron micrography revealed that the presence of K. pneumoniae compromised the morphology of fungal conidia and degenerated its biofilm-forming structures.

CONCLUSION

Our study underscores the importance of K. pneumoniae in the ISS, and its potential positive and negative interactions with other microbes, including potential pathogens. This integrated modeling approach, combined with experiments, demonstrates the potential for understanding the organization of other such microbiomes, unravelling key organisms and their interdependencies. Video Abstract.

摘要

背景

最近的研究深入了解了国际空间站(ISS)上微生物的持久性和演替,特别是肺炎克雷伯菌的优势地位。然而,ISS 上各种微生物之间的相互作用以及它们如何塑造微生物组仍有待清楚理解。在这项研究中,我们应用计算方法来预测 ISS 微生物组中可能存在的代谢相互作用,并进一步阐明其组织。

结果

通过系统基于图论的方法和基于约束的群落代谢建模方法的组合,我们证明了 ISS 微生物组中的几个关键相互作用。这些互补的方法提供了对群落中各种微生物之间存在的代谢相互作用和依赖性的深入了解,突出了关键相互作用和关键物种。我们的结果表明,肺炎克雷伯菌的存在对它共存的许多其他微生物有益,特别是泛菌属的微生物。肠杆菌科的物种通常被发现对 ISS 微生物组中其他微生物的生存最有益。然而,肺炎克雷伯菌与曲霉属和青霉属的物种分别表现出寄生和共栖相互作用。为了证明这种代谢预测,肺炎克雷伯菌和烟曲霉在正常和模拟微重力下共培养,其中肺炎克雷伯菌细胞表现出对真菌的寄生特性。电子显微镜显示,肺炎克雷伯菌的存在损害了真菌分生孢子的形态并使其生物膜形成结构退化。

结论

我们的研究强调了肺炎克雷伯菌在 ISS 中的重要性及其与其他微生物(包括潜在病原体)的潜在正相互作用和负相互作用。这种综合建模方法与实验相结合,展示了理解其他此类微生物组组织的潜力,揭示了关键生物及其相互依存关系。视频摘要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/34ab/9258157/e7e0bbe889e2/40168_2022_1279_Fig1_HTML.jpg

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