Search bioRxiv⌕ Search

Biology subjects

Sun, Q.-X.

Publications and source records attributed to Sun, Q.-X..

2 recordsLinked to original sources

A complex two-component system CdgKA-CdgSH fine-tunes c-di-GMP homeostasis in a Cyanobacterium

The second messenger c-di-GMP plays a critical role in regulating cell size and growth in the cyanobacterium Anabaena sp. PCC 7120. While all 16 c-di-GMP metabolic enzymes and the primary receptor CdgR have been identified, how metabolic enzyme activity is controlled to maintain c-di-GMP homeostasis remains largely unexplored. Here, using a suppressor-screening approach based on c-di-GMP-deficient mutants, we identify All0729 (CdgKA) as a regulator that orchestrates c-di-GMP homeostasis and cell size regulation. Genetic and quantitative analyses demonstrate that CdgKA acts upstream of All2306 (CdgSHA), the reported major c-di-GMP hydrolase, to modulate the activity of the latter. While c-di-GMP synthesis mutants displayed reduced c-di-GMP levels and decreased cell size, inactivation of cdgKA or cdgSHA in these mutant backgrounds rescued both the c-di-GMP levels and cell size. We propose that CdgKA and CdgSHA form a complex two-component system, and the phosphorylation of CdgSHA enhances its c-di-GMP-degrading activity. While the previously identified two-component system composed of CdgK-CdgS regulates c-di-GMP synthesis, the CdgKA-CdgSHA system controls its degradation. Together, they constitute a dual TCS network that precisely tunes c-di-GMP levels and cell size, establishing a regulatory link between two-component signaling and second messenger homeostasis in cyanobacteria.

microbiology↗

An Electromechanical Relay-like Multi-enzymatic System Gates c-di-GMP-Dependent Cell Fate in a Cyanobacterium

Cyclic-di-GMP is a ubiquitous bacterial second messenger that regulates diverse cellular processes. Although many bacteria harbor multiple enzymes for metabolism, the mechanisms underlying coordinated regulation remain unclear. Using the cyanobacterium Anabaena PCC 7120, we generate mutant strains with varying numbers of c-di-GMP metabolic genes deleted, including cdg0 (all degradation genes deleted) and cdgmax (all synthesis genes deleted). We found that cyclic-di-GMP is essential for both cell viability and size regulation. Quantitative analysis identified two critical physiological thresholds: one for maintaining normal cell size and a lower, lethal threshold required for survival. The 16 cyclic-di-GMP metabolic enzymes function as an electromechanical-like dual relay system, where different enzyme groups maintain cyclic-di-GMP homeostasis or activate SOS-like alarm responses when cyclic-di-GMP concentrations drop below the lethal threshold. These regulatory effects are mediated by the cyclic-di-GMP receptor CdgR, depending on the fraction of apo-CdgR form. This dual-threshold system enables dynamic cellular adaptation while preventing lethal consequences, representing a fundamental growth-survival trade-off strategy in living organisms.

microbiology↗