bioRxiv · 10.64898/2026.09.25.753839
Biosynthetic Olfactory System from Multiplexed Engineered Microbes (BOSMEM)
Abstract
Whole-cell biosensors can detect many types of chemicals in complex environments, but existing designs force a tradeoff in multiplexed sensing: separating sensor strains into individual reservoirs limits how many analytes can be monitored at once, while pooling strains in open co-culture lets faster-growing strains take over within days, corrupting the signal. The microfluidic "mother machine" has been used for over a decade, mostly to study individual bacterial strains with single-cell resolution, but never to house multiple engineered strains simultaneously for sensing applications. We repurpose this device to hold a library of genetically distinct biosensor strains, physically isolating each strain in its own growth channel while continuous flow keeps every strain fed. Each strain reports on a target chemical through a unique combination of three fluorescent proteins, so seven distinguishable signals emerge from only three optical channels. We characterized turn-on and turn-off kinetics of several biosensors in the mother machine. Over a multi-day experiment with repeated chemical exposures, biosensors housed this way matched the expected on/off state and held stable population ratios, while biosensors in an open batch co-culture drifted and lost reliable signal. This establishes mother-machine-based multiplexing as a scalable route to long-term chemical monitoring with living sensors.
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Tu, H. X., Vanaei, S., Balasubramanian, B., Mundada, P., Deshpande, R., Kulkarni, S., Sahoo, I., Joshi, N.. 2026-09-28. Biosynthetic Olfactory System from Multiplexed Engineered Microbes (BOSMEM). https://doi.org/10.64898/2026.09.25.753839
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