Live tracking metabolic networks and physiological responses within microbial assemblages at single-cell level

Author:

Cui Li1ORCID,Xin Yuhan1,Yang Kai1ORCID,Li Hongzhe1,Tan Fengjiao1,Zhang Yulong2,Li Xingrui3,Zhu Zhi3ORCID,Yang Jun1ORCID,Kao Shuh-Ji4,Ren Bin3ORCID,Zhu Yong-Guan1ORCID,Musat Florin5,Musat Niculina6ORCID

Affiliation:

1. Key Lab of Urban Environment and Health, Fujian Key Laboratory of Watershed Ecology, Institute of Urban Environment, Chinese Academy of Sciences , Xiamen 361021 , China

2. Pen-Tung Sah Institute of Micro-Nano Science and Technology, Xiamen University , Xiamen 361005 , China

3. State Key Laboratory of Physical Chemistry of Solid Surfaces, College of Chemistry and Chemical Engineering, Xiamen University , Xiamen 361005 , China

4. College of Ocean and Earth Sciences, Xiamen University , Xiamen 361102 , China

5. Department of Molecular Biology and Biotechnology, Faculty of Biology and Geology, Babeş-Bolyai University , Cluj-Napoca 400084 , Romania

6. Department of Isotope Biogeochemistry, Helmholtz Centre for Environmental Research–UFZ , Leipzig 04318 , Germany

Abstract

Abstract Microbial interactions impact the functioning of both natural and engineered systems, yet our ability to directly monitor these highly dynamic and spatially resolved interactions in living cells is very limited. Here, we developed a synergistic approach coupling single-cell Raman microspectroscopy with 15N2 and 13CO2 stable isotope probing in a microfluidic culture system (RMCS-SIP) for live tracking of the occurrence, rate, and physiological shift of metabolic interactions in active microbial assemblages. Quantitative and robust Raman biomarkers specific for N2 and CO2 fixation in both model and bloom-forming diazotrophic cyanobacteria were established and cross-validated. By designing a prototype microfluidic chip allowing simultaneous microbial cultivation and single-cell Raman acquisition, we achieved temporal tracking of both intercellular (between heterocyst and vegetative cells of cyanobacteria) and interspecies N and C metabolite exchange (from diazotroph to heterotroph). Moreover, single-cell N and C fixation and bidirectional transfer rate in living cells were quantified via SIP-induced characteristic Raman shifts. Remarkably, RMCS captured physiological responses of metabolically active cells to nutrient stimuli through comprehensive metabolic profiling, providing multimodal information on the evolution of microbial interactions and functions under fluctuating conditions. This noninvasive RMCS-SIP is an advantageous approach for live-cell imaging and represents an important advancement in the single-cell microbiology field. This platform can be extended for real-time tracking of a wide range of microbial interactions with single-cell resolution and advances the understanding and manipulation of microbial interactions for societal benefit.

Funder

Natural Science Foundation of China

Chinese Academy of Sciences

Publisher

Oxford University Press (OUP)

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