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Murphy, A. R. J.

Publications and source records attributed to Murphy, A. R. J..

2 recordsLinked to original sources

A highly active phosphate-insensitive phosphatase is widely distributed in nature

The regeneration of bioavailable phosphate from immobilised organophosphorus represents a key process in the global phosphorus cycle and is facilitated by enzymes known as phosphatases. Most bacteria possess at least one of three major phosphatases, known as PhoA, PhoX and PhoD, whose activity is optimal under alkaline conditions. The production and activity of these three phosphatase families is negatively regulated by phosphate availability and thus these enzymes play a major role in scavenging phosphorus only during times of phosphate scarcity. Here, we reveal a previously overlooked phosphate-insensitive phosphatase, PafA, prevalent in Bacteroidetes, which is highly abundant in nature and represents a major route for the remineralisation of phosphate in the environment. Using Flavobacterium johnsoniae as the model, we reveal PafA is highly active towards phosphomonoesters. Unlike other major phosphatases, PafA is fully functional in the presence of its metabolic product, phosphate, and is essential for growth on phosphorylated carbohydrates as a sole carbon source. PafA, which is constitutively produced under all growth conditions tested, rapidly remineralises phosphomonoesters producing significant quantities of bioavailable phosphate that can cross feed into neighbouring cells. pafA is both abundant and highly expressed in the global ocean and abundant in plant rhizospheres, highlighting a new and important enzyme in the global phosphorus cycle with applied implications for agriculture as well as biogeochemical cycling. We speculate PafA expands the metabolic niche of Bacteroidetes by enabling utilisation of abundant organophosphorus substrates in the presence of excess phosphate, when other microbes are rendered incapable. Significance statementPhosphorus is an essential element for all life on Earth. Global primary production, and thus the ability for oceans and soils to drawdown atmospheric carbon dioxide, is in part controlled by the availability of inorganic phosphate. Likewise, global food production is also reliant on adequate supplies of phosphorus to both plants and animals. A major fraction of the total phosphorus pool exists as organic phosphorus, which requires mineralisation to phosphate prior to incorporation into cellular biomolecules. This important process is performed by enzymes known as phosphatases. Here, we reveal that the unique bacterial phosphatase, PafA, is a key player in the global phosphorus cycle and presents a major route for the regeneration of bioavailable phosphate required for both primary and secondary production.

microbiology↗

Mechanisms involved in the active secretion of CTX-M-15 β-lactamase by pathogenic E. coli ST131

Infections caused by antimicrobial resistant bacterial pathogens are fast becoming an important global health issue. Strains of Escherichia coli are common causal agents of urinary tract infection and can carry multiple resistance genes. This includes the gene blaCTX-M-15 that encodes for an extended spectrum beta-lactamase (ESBL). While studying antimicrobial resistance (AMR) in the environment we isolated several strains of E. coli ST131 downstream of a WWTP in a local river. These isolates were surviving in the river sediment and characterisation proved that a multi-resistant phenotype was evident. Here, we show that E. coli strain 48 (river isolate ST131), provided a protective effect against a third-generation cephalosporin (cefotaxime) for a susceptible E. coli strain 33 (river isolate ST3576) through secretion of a functional ESBL into the growth medium. Furthermore, extracellular ESBL activity was stable for at least 24 h after secretion. Proteomic and molecular genetic analyses identified CTX-M-15 as the major secreted ESBL responsible for the observed protective effect. In contrast to previous studies, OMVs were not the sole route for CTX-M-15 secretion. Indeed, mutation of the Type I secretion system led to a significant reduction in the growth of the ESBL-producing strain as well as a significantly reduced ability to confer protective effect. We speculate that CTX-M-15 secretion, mediated through active secretion using molecular machinery provides a public goods service by facilitating the survival of otherwise susceptible bacteria in the presence of cefotaxime. Abstract importanceInfections caused by antimicrobial resistant bacterial pathogens have become an important global health issue. Wastewater treatment plants (WWTPs) have been identified as hotspots for the dissemination of antimicrobial resistant genes/bacteria into the environment. In this study, we investigated resistance enzyme secretion by a multi-drug resistant human pathogenic E. coli, isolated from a UK river, downstream of a WWTP. We present evidence that the resistant strain actively secreted an important resistance enzyme into the surrounding medium which degraded the antibiotic cefotaxime. This research provided evidence for the mechanism for secretion of this enzyme which could indicate a new target to tackle antibiotic resistance pathogens.

microbiology↗