Search bioRxivSearch

Biology subjects

Fernandez, N. L.

Publications and source records attributed to Fernandez, N. L..

2 recordsLinked to original sources

One gene, multiple ecological strategies: a biofilm regulator is a capacitor for sustainable diversity

Many bacteria cycle between sessile and motile forms in which they must sense and respond to internal and external signals to coordinate appropriate physiology. Maintaining fitness requires genetic networks that have been honed in variable environments to integrate these signals. The identity of the major regulators and how their control mechanisms evolved remain largely unknown in most organisms. During four different evolution experiments with the opportunist betaproteobacterium Burkholderia cenocepacia in a biofilm model, mutations were most frequently selected in the conserved gene rpfR. RpfR uniquely integrates two major signaling systems -- quorum sensing and the motile-sessile switch mediated by cyclic-d-GMP -- by two domains that sense, respond to, and control synthesis of the autoinducer cis-2-dodecenoic acid (BDSF). The BDSF response in turn regulates activity of diguanylate cyclase and phosphodiesterase domains acting on cyclic-di-GMP. Parallel adaptive substitutions evolved in each of these domains to produce unique life history strategies by regulating cyclic-di-GMP levels, global transcriptional responses, biofilm production, and polysaccharide composition. These phenotypes translated into distinct ecology and biofilm structures that enabled mutants to coexist and produce more biomass than expected from their constituents grown alone. This study shows that when bacterial populations are selected in environments challenging the limits of their plasticity, the evolved mutations not only alter genes at the nexus of signaling networks but also reveal the scope of their regulatory functions. Significance statementMany organisms including bacteria live in fluctuating environments requiring attachment and dispersal. These lifestyle decisions require multiple external signals to be processed by several genetic pathways, but how they are integrated is largely unknown. We conducted multiple evolution experiments totaling >20,000 generations with Burkholderia cenocepacia populations grown in a model of the biofilm life cycle and identified parallel mutations in one gene, rpfR, that is a conserved central regulator. Because RpfR has multiple sensor and catalytic domains, different mutations can produce different ecological strategies that can coexist and even increase net growth. This study demonstrates that a single gene may coordinate complex life histories in biofilm-dwelling bacteria and that selection in defined environments can reshape niche breadth by single mutations.

microbiology

VIBRIO CHOLERAE ADAPTS TO SESSILE AND MOTILE LIFESTYLES BY CYCLIC DI-GMP REGULATION OF CELL SHAPE

The cell morphology of rod-shaped bacteria is determined by the rigid net of peptidoglycan forming the cell wall. While V. cholerae grows into a curved shape under most conditions, straight rods have been observed. However, the signals and regulatory pathways controlling cell shape transitions in V. cholerae and the benefits of switching between rod and curved shape have not been determined. We demonstrate that cell shape in V. cholerae is regulated by the bacterial second messenger cyclic dimeric guanosine monophosphate (c-di-GMP) by repressing expression of crvA, a gene encoding an intermediate filament-like protein necessary for curvature formation in V. cholerae. This regulation is mediated by the transcriptional cascade that also induces production of biofilm matrix components, indicating that cell shape is coregulated with V. choleraes induction of sessility. Wild-type V. cholerae cells adhering to a surface lose their characteristic curved shape to become as straight as cells lacking crvA while genetically engineering cells to maintain high curvature reduced microcolony formation and biofilm density. Conversely, straight V. cholerae mutants have reduced speed when swimming using flagellar motility in liquid. Our results demonstrate regulation of cell shape in bacteria is a mechanism to increase fitness in planktonic or biofilm lifestyles.

microbiology