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Patrauchan, M. A.

Publications and source records attributed to Patrauchan, M. A..

3 recordsLinked to original sources

A novel non-catalytic function of PA2803-encoded PcrP contributes to polymyxin B resistance in P. aeruginosa and redefines the functional role of the PA2803 subfamily.

The opportunistic human pathogen Pseudomonas aeruginosa (Pa), a leading cause of severe infections, becomes increasingly resistant to antibiotics, including the last resort antibiotic, polymyxin-B (PMB). Previous studies have shown that calcium (Ca2+) at the levels encountered during infections increases Pa resistance to PMB. However, the mechanisms of this Ca2+ regulation are not known. Here, we identified three novel genes (PA2803, PA3237 and PA5317) that contribute to the Ca2+-dependent PMB resistance in Pa. PA2803, the focus of this work, encodes a putative phosphonatase and is a founding member of the PA2803 subfamily from the Haloacid Dehalogenase Superfamily. Since the transcription of this gene is regulated by both Ca2+ and inorganic phosphate (Pi), we named it "Pi and Ca2+ regulated protein, PcrP". Congruent with sequence-based predictions, we showed that PcrP lacks catalytic activity and instead binds protein partners, revealing a novel non-catalytic function for PA2803 subfamily proteins. By using pull-down assays and bacterial two-hybrid system, we identified and validated two protein partners of PcrP: Acp3 and PA3518. We show that PcrP is involved in oxidative stress responses in Pa, which are likely mediated by its interactions with Acp3, and may support its role in PMB resistance. In addition, PcrP imparts a Ca2+-dependent growth advantage to Pa during Pi starvation and plays a role in polyphosphate accumulation in a Ca2+-dependent manner. Overall, this study identified a novel protein-binding function for the PA2803 subfamily representative that mediates Pa responses to elevated Ca2+ and Pi starvation and enhances PMB resistance. IMPORTANCEPseudomonas aeruginosa (Pa) is a critical human pathogen that presents significant clinical challenges, underscoring the urgent need for understanding its resistance mechanisms. Previous studies have shown that calcium (Ca2+) at the levels detected during infections increase Pa resistance to the last resort antibiotic polymyxin-B (PMB). For the first time, we identified three novel genes, whose products are required for the Ca2+-dependent PMB resistance in Pa. One of them, PA2803, regulated by Ca2+ and phosphate, was named phosphate and Ca2+ regulated protein, PcrP. This study discovered a novel protein-binding function of PcrP and identified two protein partners. The protein-binding function is likely shared by the entire PA2803 subfamily of proteins, which redefines their previous functional assignment as enzymes.

microbiology↗

The Response Regulator BqsR/CarR Controls Ferrous Iron (Fe2+) Acquisition in Pseudomonas aeruginosa

Pseudomonas aeruginosa is a ubiquitous, Gram-negative bacterium that forms biofilms and is responsible for antibiotic-resistant hospital-acquired infections in humans. The P. aeruginosa BqsRS two-component system regulates biofilm formation and dispersal by sensing extracytoplasmic Fe2+, but the mechanistic details of this process are poorly understood. In this work, we report the crystal and solution structures of the PaBqsR response regulator receiver domain, comprising a ({beta})5 response regulator assembly, and the DNA-binding domain, comprising a helix-turn-helix motif. Consistent with its cognate stimulus being Fe2+, we show that PaBqsR binds directly to the promoter region of the feo operon that encodes the bacterial Fe2+ transport system FeoABC. Corroborating these in vitro results, transcriptional studies show that PaBqsR is a global regulator controlling many important genes in PAO1, including the feo operon. Intriguingly, promoter-based assays reveal that PaBqsR is a dynamic regulator that responds to bioavailable Fe2+, likely through the ability of PaBqsR to bind Fe2+ directly via a His-rich motif, independent of the PaBqsS membrane His kinase. This mode of regulation is unprecedented among OmpR-like response regulators but represents an important level of control over Fe2+ acquisition in P. aeruginosa that could be an attractive therapeutic target to treat hospital-acquired infections.

biochemistry↗

EF-Hand Calcium Sensor, EfhP, Controls Transcriptional Regulation of Iron Uptake by Calcium in Pseudomonas aeruginosa

The human pathogen Pseudomonas aeruginosa poses a major risk for a range of severe infections, particularly lung infections in patients suffering from cystic fibrosis (CF). As previously reported, the virulent behavior of this pathogen is enhanced by elevated levels of Ca2+ that are commonly present in CF nasal and lung fluids. In addition, a Ca2+-binding EF-hand protein, EfhP (PA4107), was partially characterized and shown to be critical for the Ca2+-regulated virulence in P. aeruginosa. Here we describe the rapid (10 min, 60 min), and adaptive (12 h) transcriptional responses of PAO1 to elevated Ca2+ detected by genome-wide RNA sequencing and show that efhP deletion significantly hindered both rapid and adaptive Ca2+ regulation. The most differentially regulated genes included multiple Fe sequestering mechanisms, a large number of extracytoplasmic function sigma factors (ECF{sigma}) and several virulence factors, such as production of pyocins. The Ca2+ regulation of Fe uptake was also observed in CF clinical isolates and appeared to involve the global regulator Fur. In addition, we showed that the efhP transcription is controlled by Ca2+ and Fe, and this regulation required Ca2+-dependent two-component regulatory system CarSR. Furthermore, the efhP expression is significantly increased in CF clinical isolates and upon pathogen internalization into epithelial cells. Overall, the results established for the first time that Ca2+ controls Fe sequestering mechanisms in P. aeruginosa and that EfhP plays a key role in the regulatory interconnectedness between Ca2+ and Fe signaling pathways, the two distinct and important signaling pathways that guide the pathogens adaptation to host. IMPORTANCEPseudomonas aeruginosa (Pa) poses a major risk for severe infections, particularly in patients suffering from cystic fibrosis (CF). For the first time, kinetic RNA sequencing analysis identified Pa rapid and adaptive transcriptional responses to Ca2+ levels consistent with those present in CF respiratory fluids. The most highly upregulated processes include iron sequestering, iron starvation sigma factors, and self-lysis factors pyocins. An EF-hand Ca2+ sensor, EfhP, is required for at least 1/3 of the Ca2+ response, including all the iron uptake mechanisms and production of pyocins. Transcription of efhP itself is regulated by Ca2+, Fe, and increases during interactions with host epithelial cells, suggesting the proteins important role in Pa infections. The findings establish the regulatory interconnectedness between Ca2+ and iron signaling pathways that shape Pa transcriptional responses. Therefore, understanding Pas transcriptional response to Ca2+ and associated regulatory mechanisms will serve the development of future therapeutics targeting Pa dangerous infections.

microbiology↗