bioRxiv Science⌕ Search

Biology subjects

Kivisaar, M.

Publications and source records attributed to Kivisaar, M..

2 recordsLinked to original sources

Adaptive evolution of Pseudomonas putida in the presence of fluoride exposes moonlighting transporter functions

Fluoride (F-), the anionic form of fluorine and the 13th most abundant element in Earths crust, is toxic to most organisms above relatively low threshold concentrations. Environmental bacteria often tolerate elevated fluoride levels, but the only known resistance mechanism so far involves CrcB-mediated efflux. In the environmental bacterium Pseudomonas putida, CrcB export is the primary defense against fluoride stress. Yet, spontaneous NaF-tolerant mutants emerge even without this transporter, suggesting the existence of additional pathways. To uncover these mechanisms, we performed a genome-wide screen of over 141,000 transposon mutants. We identified PP_3125, a Cro/cI-type transcriptional regulator, as essential for high fluoride tolerance in a {Delta}crcB background. Transcriptomic and proteomic analyses revealed PP_3125-regulated genes, including the benzoate transporter BenE-I, which contributes directly to fluoride tolerance. These findings demonstrate that bacterial transporters can acquire moonlighting functions beyond their canonical roles and reveal previously unrecognized fluoride tolerance strategies in P. putida. Together, our results expand understanding of microbial adaptation to toxic ions and provide new targets for engineering stress-resilient strains for environmental and industrial applications. IMPORTANCEOur work identifies a new fluoride tolerance mechanism in Pseudomonas putida that functions independently of the well-characterized CrcB efflux system. We show that inactivation of transcriptional regulator, PP_3125, activates a transporter with an unexpected moonlighting role in fluoride tolerance, highlighting how bacteria can repurpose existing functions to survive environmental stress. This discovery deepens our understanding of microbial stress responses and suggests strategies to engineer robust microbial strains capable of thriving in fluoride-contaminated settings. Such strains could be valuable for bioremediation, sustainable bioprocessing, and other biotechnological applications where fluoride exposure limits microbial performance.

microbiology↗

Conversion of aromatic compounds from fractionated industrial hydrolysis lignin by Pseudomonas putida and environmental strains

BackgroundThe utilization of Pseudomonas putida was explored in this study as a promising approach for lignin valorization. To this end, dry hydrolysis lignin was used as a feedstock for the first time. Hydrolysis lignin is a product of the enzymatic hydrolysis and separation of cellulose and hemicellulose from the lignin backbone in diverse lignocellulosic sources. Various fractionation techniques were applied to obtain lignin monomers and multimers in solution for use as a growth medium for P. putida, whose tolerance of inhibitory phenolic compounds distinguishes it from most bacteria. ResultsPhysiological evaluations revealed that Pseudomonas putida strains KT2440 and PaW85 exhibited broad pH tolerance ranges, with robust growth observed at elevated pH levels. Batch fermentations using hydrolysis lignin (HL) solutions showed complete consumption of sugars within 24 hours, demonstrating the viability of fractionated HL as a substrate for P. putida cultivation. HPLC analysis of HL monomer concentrations during simulated fed-batch fermentation revealed rapid catabolism of catechol and increased CCMA concentration, followed by stabilization, indicating that CCMA is synthesized more quickly than degraded when the initial catechol concentration is high. Filtered alkaline HL fractionations yielded more than twice as much catechol as unfiltered fractionations. Screening of indigenous bacterial strains isolated from various soil and water samples (CELMS Collection, website http://eemb.ut.ee) identified five new candidate strains for CCMA production, two for PCA production, and three for vanillic acid production. ConclusionsThe novel use of fractionated hydrolysis lignin as a growth medium shows potential for lignin valorization and chemical production. Filtered alkaline fractionation yields more catechol and is superior for cis,cis-muconic acid production; however, unfiltered fractionations may be more suitable for other compounds and upscaling. Further investigation of screened strains could reveal more efficient enzymes, which could be optimized and transformed into P. putida in future research.

microbiology↗