Project description:Filamentous cyanobacteria of the Nostocaceae family are able to differentiate into multicellular forms to adapt to environmental stresses, and members can establish symbiosis with various embryophytes. Representative laboratory strains are typically grown under continuous light to maintain stable metabolic conditions, however, this departure from a natural diel cycle can result in extended stress. Early genomic examination of Nostoc punctiforme suggests the genetic potential for a circadian clock, but we lack insight into global cellular dynamics through the natural diel cycle for this model organism. Here, we comprehensively assess changes in expression of core cellular processes and the mobilome of accessory genetic elements during diel growth of N. punctiforme PCC 73102. The primary transcriptome confirmed that multicellular cyanobacteria precisely coordinate photosynthesis and carbon assimilation for cell division during the day, while control of DNA recombination and repair appeared to be sequestered to darkness. Moreover, we expanded the known repertoire of light sensing proteins to uncover a putative regulator of circadian rhythm that itself exhibits striking oscillation between day-night expression. This was in sharp contrast to the arrhythmic pattern observed for a homolog of the canonical circadian regulator in unicellular cyanobacteria. Looking beyond cellular coordination of diel growth, we uncovered dynamic mobile elements, and notably, targeted hypermutation by retroelements that are likely maintained to ensure conflict mitigation, which is crucial to a multicellular lifestyle.
Project description:Gene expression changes were followed in cultures of the cyanobacterium Synechocystis sp. PCC 6803 substrain GT-T cultivated at ambient air or supplemented with 3% CO2. The acclimation to different CO2 concentrations is crucial for photoautotrophic organisms living in aquatic environments such as cyanobacteria. Samples were taken before and 1 h and 24 h after transfer to the3 % CO2 environment. The analyzed strains were wild type, a deletion mutant of gene ssl2982/rpoZ (ΔrpoZ) and two suppressor strains (R1, ΔrpoZ-S1 and R2, ΔrpoZ-S2). In cyanobacteria, elevated CO2 is known to down-regulate carbon concentrating mechanisms and accelerate photosynthesis and growth, but mechanism(s) of carbon signalling remains only poorly understood. Here we reveal a novel signalling cascade connecting the amount of CO2 and growth in the model cyanobacterium Synechocystis sp. PCC 6803. Deletion of the small ω subunit of the RNA polymerase (RNAP) in the ΔrpoZ strain prevents normal high-CO2-induced up-regulation of numerous photosynthetic genes, and low expression of peptidoglycan synthesis genes induced lysis of dividing ΔrpoZ cells in high CO2. Spontaneously raised secondary mutations in the ssr1600 gene rescued the high-CO2-sensitive phenotype of the ΔrpoZ strain. Biochemical analyses showed that the ssr1600 gene encodes an anti-σ factor antagonist of group 2 σ factor SigC, and 3D structural modelling suggest that Slr1861 functions as an anti-SigC factor. In ΔrpoZ, excess formation of RNAP-SigC lead to high CO2 sensitive phenotype, whereas the drastically reduced Ssr1600 content in the suppressor mutants reduce the formation of the RNAP-SigC holoenzyme to the similar level as in the control strain, allowing almost normal transcriptome and growth of suppressor lines in high CO2. We propose that the SigC σ factor, the anti-SigC factor Slr1861 and the anti-SigC antagonist Ssr1600 forms a growth regulating signalling cascade in cyanobacteria.