In silico bacteria evolve robust cooperation via complex quorum-sensing strategies

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作者
Yifei Wang
Jennifer B. Rattray
Stephen A. Thomas
James Gurney
Sam P. Brown
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[1] School of Biological Sciences,
[2] Georgia Institute of Technology,undefined
[3] The Institute for Data Engineering and Science (IDEaS),undefined
[4] Georgia Institute of Technology,undefined
[5] Graduate Program in Quantitative Biosciences (QBioS),undefined
[6] Georgia Institute of Technology,undefined
[7] Center for Microbial Dynamics and Infection,undefined
[8] Georgia Institute of Technology,undefined
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Many species of bacteria collectively sense and respond to their social and physical environment via ‘quorum sensing’ (QS), a communication system controlling extracellular cooperative traits. Despite detailed understanding of the mechanisms of signal production and response, there remains considerable debate over the functional role(s) of QS: in short, what is it for? Experimental studies have found support for diverse functional roles: density sensing, mass-transfer sensing, genotype sensing, etc. While consistent with theory, these results cannot separate whether these functions were drivers of QS adaption, or simply artifacts or ‘spandrels’ of systems shaped by distinct ecological pressures. The challenge of separating spandrels from drivers of adaptation is particularly hard to address using extant bacterial species with poorly understood current ecologies (let alone their ecological histories). To understand the relationship between defined ecological challenges and trajectories of QS evolution, we used an agent-based simulation modeling approach. Given genetic mixing, our simulations produce behaviors that recapitulate features of diverse microbial QS systems, including coercive (high signal/low response) and generalized reciprocity (signal auto-regulation) strategists — that separately and in combination contribute to QS-dependent resilience of QS-controlled cooperation in the face of diverse cheats. We contrast our in silico results given defined ecological challenges with bacterial QS architectures that have evolved under largely unknown ecological contexts, highlighting the critical role of genetic constraints in shaping the shorter term (experimental evolution) dynamics of QS. More broadly, we see experimental evolution of digital organisms as a complementary tool in the search to understand the emergence of complex QS architectures and functions.
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