Unveiling microbial single-cell growth dynamics under rapid periodic oxygen oscillations.

Kasahara, Keitaro; Seiffarth, Johannes; Stute, Birgit; von Lieres, Eric; Drepper, Thomas; Nöh, Katharina; Kohlheyer, Dietrich · Lab Chip · 2025

basic_science · Level V

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Abstract

Microbial metabolism and growth are tightly linked to oxygen (O<sub>2</sub>). Microbes experience fluctuating O<sub>2</sub> levels in natural environments; however, our understanding of how cells respond to fluctuating O<sub>2</sub> over various time scales remains limited due to challenges in observing microbial growth at single-cell resolution under controlled O<sub>2</sub> conditions and in linking individual cell growth with the specific O<sub>2</sub> microenvironment. We performed time-resolved microbial growth analyses at single-cell resolution under a temporally controlled O<sub>2</sub> supply. A multilayer microfluidic device was developed, featuring a gas supply above a cultivation layer, separated by a thin membrane enabling efficient gas transfer. This platform allows microbial cultivation under constant, dynamic, and oscillating O<sub>2</sub> conditions. Automated time-lapse microscopy and deep-learning-based image analysis provide access to spatiotemporally resolved growth data at the single-cell level. O<sub>2</sub> switching within tens of seconds, coupled with precise microenvironment monitoring, allows us to accurately correlate cellular growth with local O<sub>2</sub> concentrations. Growing <i>Escherichia coli</i> microcolonies subjected to varying O<sub>2</sub> oscillation periods show distinct growth dynamics characterized by response and recovery phases. The comprehensive growth data and insights gained from our unique platform are a crucial step forward to systematically study cell response and adaptation to fluctuating O<sub>2</sub> environments at single-cell resolution.

Medical subject headings