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The Ssl2245-Sll1130 Toxin-Antitoxin System Mediates Heat-induced Programmed Cell Death in Synechocystis sp. PCC6803
Afshan Srikumar1, Pilla Sankara Krishna1, Dokku Sivaramakrishna2
1From the Department of Biotechnology and Bioinformatics, School of Life Sciences and.
Abstract:
Two putative heat-responsive genes, ssl2245 and sll1130, constitute an operon that also has characteristics of a toxin-antitoxin system, thus joining several enigmatic features. Closely related orthologs of Ssl2245 and Sll1130 exist in widely different bacteria, which thrive under environments with large fluctuations in temperature and salinity, among which some are thermo-epilithic biofilm-forming cyanobacteria. Transcriptome analyses revealed that the clustered regularly interspaced short palindromic repeats (CRISPR) genes as well as several hypothetical genes were commonly up-regulated in Δssl2245 and Δsll1130 mutants. Genes coding for heat shock proteins and pilins were also induced in Δsll1130 We observed that the majority of cells in a Δsll1130 mutant strain remained unicellular and viable after prolonged incubation at high temperature (50 °C). In contrast, the wild type formed large cell clumps of dead and live cells, indicating the attempt to form biofilms under harsh conditions. Furthermore, we observed that Sll1130 is a heat-stable ribonuclease whose activity was inhibited by Ssl2245 at optimal temperatures but not at high temperatures. In addition, we demonstrated that Ssl2245 is physically associated with Sll1130 by electrostatic interactions, thereby inhibiting its activity at optimal growth temperature. This association is lost upon exposure to heat, leaving Sll1130 to exhibit its ribonuclease activity. Thus, the activation of Sll1130 leads to the degradation of cellular RNA and thereby heat-induced programmed cell death that in turn supports the formation of a more resistant biofilm for the surviving cells. We suggest to designate Ssl2245 and Sll1130 as MazE and MazF, respectively.
Insights
Two genes, Ssl2245 and Sll1130, form a heat-responsive operon. Ssl2245 inhibits Sll1130
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Two genes, ssl2245 and sll1130, form a heat-responsive operon with toxin-antitoxin system characteristics.
- Orthologs are found in bacteria thriving in fluctuating temperatures and salinity, including cyanobacteria.
- The operon's function in stress response and biofilm formation is largely unknown.
Purpose of the Study:
- Investigate the roles of ssl2245 and sll1130 in heat response and biofilm formation.
- Characterize the interaction between Ssl2245 and Sll1130 and its regulation by temperature.
- Determine the mechanism by which these genes influence cell viability and programmed cell death under heat stress.
Main Methods:
- Transcriptome analysis (RNA sequencing) of wild-type and mutant strains (Δssl2245, Δsll1130).
- Phenotypic analysis of cell viability, morphology, and biofilm formation at high temperatures.
- Biochemical assays to determine Sll1130 ribonuclease activity and its inhibition by Ssl2245, including analysis of protein interactions.
Main Results:
- Mutants Δssl2245 and Δsll1130 showed upregulation of CRISPR and hypothetical genes.
- Δsll1130 mutants remained unicellular and viable at 50°C, unlike wild-type cells forming clumps.
- Sll1130 is a heat-stable ribonuclease inhibited by Ssl2245 at optimal temperatures via electrostatic interactions, with inhibition lost at high temperatures.
Conclusions:
- Ssl2245 and Sll1130 (proposed MazE and MazF) regulate heat-induced programmed cell death and biofilm formation.
- Heat stress disrupts the Ssl2245-Sll1130 interaction, activating Sll1130 ribonuclease activity.
- This leads to RNA degradation, cell death, and promotes the formation of resistant biofilms for surviving cells.
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