bioRxiv Science⌕ Search

Biology subjects

Brignoli, D.

Publications and source records attributed to Brignoli, D..

2 recordsLinked to original sources

Role of Tad Pili during the transition from Planktonic to Biofilm State in Bradyrhizobium diazoefficiens USDA 110

Free-living soil bacteria may exist in two states: planktonic as swimmer cells, and sessile within biofilms. In biofilms, bacterial cells are embedded into an extracellular matrix, which confers protection against environmental stresses and extends bacterial survival. The transition from planktonic to biofilm state involves surface sensing and attachment mediated by flagella and pili. Here, we explored the role of Tad pili (Type IVc) in surface sensing, adhesion, and biofilm formation in Bradyrhizobium diazoefficiens, a nitrogen-fixing symbiont of soybean. Bioinfor-matic analyses revealed that Tad pili are widely distributed and highly conserved in Bradyrhi-zobium. In other model bacteria, pili deletion leads to decrease in biofilm-forming capacity, but other functions are also affected depending on the microorganism. Surprisingly, deletion of the most conserved genomic cluster encoding Tad pili in B. diazoefficiens caused an increased ad-hesion to abiotic surfaces and loss of movement, indicating a physiological shift towards a bio-film state. These observations suggest a sensor or regulatory role for this apparatus that could affect cell-cell interactions or interactions with the extracellular matrix. Additionally, a connec-tion between pili and c-di-GMP levels in the cell was established. These findings highlight the critical role of Tad pili in B. diazoefficiens physiology, providing insights into bacterial adaptabil-ity and potential applications in agriculture and biotechnology. Understanding these mecha-nisms is key to improving biofilm management strategies and generating novel approaches to enhance bacterial viability in soil and inoculants as well as to optimize the symbiosis. ImportanceBiofilm formation is critical for bacterial survival in the soil. In this study we analyzed the role of Tad pili in Bradyrhizobium diazoefficiens biofilm forming capacity and its connection with the second messenger c-di-GMP, which is involved in regulating the transition between plank-tonic and sessile states. Since bacteria applied in inoculants are in the planktonic state, where-as bacterial survival is optimal in the sessile (biofilm) state, our findings may contribute to im-prove the switch towards the sessile state in novel inoculant formulations, enhancing bacterial persistence in formulations and soil.

microbiology↗

Quality control of Bradyrhizobium inoculant strains: Detection of nosZ and correlation of symbiotic efficiency with soybean leaf chlorophyll levels

Greenhouse gas emissions, such as N2O from excessive N-fertilizer use, are of concern. Symbiotic N2-fixation by pulses as soybean might mitigate this issue, for which inoculants carrying locally adapted Bradyrhizobium strains are recommended. In the frame of this goal, enhancing the quality control of these inoculants is required on two key aspects: determining the presence of nosZ, for the strains being able to reduce N2O, and assessing N2-fixation potential. Yet, simple and non- destructive methods to assess N2-fixation are lacking. Here we aimed to leverage the correlation between N and chlorophyll levels by cultivating soybeans in vermiculite with N-free nutrient solution, inoculating them with various Bradyrhizobium field isolates, and subsequently measuring chlorophyll with a portable chlorophyllometer, correlating it to symbiotic parameters. We observed significant correlations between chlorophyll and shoot nitrogen levels as well as with nodule dry mass. Two B. diazoefficiens strains stood out and possessed nosZ. In contrast, B. elkanii and B. japonicum isolates displayed lower chlorophyll and symbiotic performance, and lacked nosZ. Our findings highlight the potential of measuring chlorophyll contents and testing for the presence of nosZ as two straightforward techniques that may enhance quality control, enabling selection of superior and safe locally isolated strains for soybean inoculants.

plant biology↗