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Rap-Phr systems in B. subtilis 3610 affect matrix gene expression and play a role in biofilm formation in vitro and on the plant root

Christensen, M. N.; Rosenbek Mortensen, R. M.; Kirk, N. K.; Gallegos-Monterrosa, R.; Kovacs, A. T.

2021-03-17 microbiology
10.1101/2021.03.15.435437 bioRxiv
Show abstract

Natural isolates of the soil-dwelling bacterium Bacillus subtilis form robust biofilms under laboratory conditions and colonize plant roots. B. subtilis biofilm gene expression displays phenotypic heterogeneity that is influenced by a family of Rap-Phr regulatory systems. Most Rap-Phr systems in B. subtilis have been studied independently, in different genetic backgrounds and under distinct conditions, hampering true comparison of the Rap-Phr systems impact on bacterial differentiation. Here, we investigated each of the 12 Rap-Phr systems of B. subtilis NCIB 3610 for their effect on biofilm formation. By studying single {Delta}rap-phr mutants, we show that despite redundancy between the cell-cell communication systems, deletion of each of the 12 Rap-Phr systems influences matrix gene expression, which could possibly enable fine-tuning of the timing and level of matrix production in response to specific conditions. Furthermore, some of the {Delta}rap-phr mutants demonstrated altered biofilm formation in vitro and colonization of Arabidopsis thaliana roots, but not necessarily similarly in both processes, indicating that the pathways regulating matrix gene expression and other factors important for biofilm formation may be differently regulated under these distinct conditions. Significance StatementNatural isolates of Bacillus subtilis form robust biofilms in vitro and on plant roots. The formation of these heterogeneous populations is regulated by diverse Rap-Phr systems. However, most Rap-Phr systems in B. subtilis have been studied independently and in different genetic backgrounds. Here, we report that all 12 Rap-Phr systems affect matrix gene expression, while some of them affect development of in vitro biofilms and plant root colonization. Our study highlights the importance of the Rap-Phr systems in environmental adaptation of B. subtilis, specifically during biofilm formation in the rhizosphere.

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