Convection and the Extracellular Matrix Dictate Inter- And Intra-Biofilm Quorum Sensing Communication in Environmental Systems

Chuan Hao Tan, Hyun Suk Oh, Vivek M. Sheraton, Emiliano Mancini, Say Chye Joachim Loo, Staffan Kjelleberg, Peter M.A. Sloot, Scott A. Rice

Research output: Contribution to journalArticlepeer-review

36 Scopus citations

Abstract

The mechanisms and impact of bacterial quorum sensing (QS) for the coordination of population-level behaviors are well studied under laboratory conditions. However, it is unclear how, in otherwise open environmental systems, QS signals accumulate to sufficient concentration to induce QS phenotypes, especially when quorum quenching (QQ) organisms are also present. We explore the impact of QQ activity on QS signaling in spatially organized biofilms in scenarios that mimic open systems of natural and engineered environments. Using a functionally differentiated biofilm system, we show that the extracellular matrix, local flow, and QQ interact to modulate communication. In still aqueous environments, convection facilitates signal dispersal while the matrix absorbs and relays signals to the cells. This process facilitates inter-biofilm communication even at low extracellular signal concentrations. Within the biofilm, the matrix further regulates the transport of the competing QS and QQ molecules, leading to heterogenous QS behavior. Importantly, only extracellular QQ enzymes can effectively control QS signaling, suggesting that the intracellular QQ enzymes may not have evolved to degrade environmental QS signals for competition.

Original languageEnglish
Pages (from-to)6730-6740
Number of pages11
JournalEnvironmental Science and Technology
Volume54
Issue number11
DOIs
StatePublished - 2 Jun 2020

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