Cyanobacteria and Chloroflexota cooperate to structure light-responsive biofilms.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 39879238.
- Also identified by DOI 10.1073/pnas.2423574122 and PMC identifier 11804611.
- Licence recorded as CC BY-NC-ND.
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Abstract
Microbial mats are stratified communities often dominated by unicellular and filamentous phototrophs within an exopolymer matrix. It is challenging to quantify the dynamic responses of community members in situ as they experience steep gradients and rapid fluctuations of light. To address this, we developed a binary consortium using two representative isolates from hot spring mats: the unicellular oxygenic phototrophic cyanobacterium <i>Synechococcus</i> OS-B' (Syn OS-B') and the filamentous anoxygenic phototroph <i>Chloroflexus</i> MS-CIW-1 (Chfl MS-1). We quantified the motility of individual cells and entire colonies and demonstrated that Chfl MS-1 formed bundles of filaments that moved in all directions with no directional bias to light. Syn OS-B' was slightly less motile but exhibited positive phototaxis. This binary consortium displayed cooperative behavior by moving further than either species alone and formed ordered arrays where both species aligned with the light source. No cooperative motility was observed when a nonmotile <i>pilB</i> mutant of Syn OS-B' was used instead of Syn OS-B'. The binary consortium also produced more adherent biofilm than individual species, consistent with the close interspecies association revealed by electron microscopy. We propose that cyanobacteria and Chloroflexota cooperate in forming natural microbial mats by colonizing new niches and building robust biofilms.
Medical subject headings
- Biofilms
- Light
- Synechococcus
- Chloroflexus
- Cyanobacteria