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Gene circuit-driven amplified selection enables evolution of fast-growing Escherichia coli

Hamrick, G. S.; Son, H.-I.; Maddamsetti, R.; Zhou, Z.; Lok, K.; Chen, X.; Yip, A.; Qian, J.-M.; Villalobos, C.; Ma, Q.; Moghimianavval, H.; Shyti, I.; Shende, A. R.; Chory, E. J.; Dunlop, M.; You, L.

2026-08-06 synthetic biology
10.64898/2026.08.05.743033 bioRxiv
Show abstract

The laboratory Escherichia coli K-12 strain has doubled no faster than [~]20 minutes for decades. This plateau could reflect a biophysical limit or simply the way batch culture selects on growth rate. Here we show it can be broken through amplified selection with a Red Queen gene circuit, which takes advantage of growth rate heterogeneity in monoclonal populations to selectively suppress slow-growing cells and creates a tunable mapping from intrinsic growth rate to survival. After 70 days ([~]1,000 generations) of amplified selection in MG1655+FHr and subsequent removal of the circuit, a top evolved clone (RQ70) reached a maximum specific growth rate of 2.61 h-{superscript 1} in shake-flask culture. This corresponds to a doubling time of 15.9 minutes, to our knowledge the shortest reported for E. coli K-12, against 18.1 minutes for evolved controls and 20.3 minutes for the ancestor. The gain came at the cost of a [~]3-fold increase in lag time, indicating that the 20-minute plateau is a multi-trait optimum under conventional batch selection rather than an absolute constraint. We argue that synthetic gene circuits can therefore reshape the evolutionary process itself, pushing performance beyond apparent physiological limits.

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