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Gholipour, S.

Publications and source records attributed to Gholipour, S..

2 recordsLinked to original sources

Widespread promiscuous alkaline phosphatases underscore early microbial phosphite utilization

Phosphate is often a limiting resource, directly affecting the availability of key biomolecules such as nucleotides. To cope with phosphate scarcity, bacteria have evolved enzymes that utilize alternative phosphorus compounds, including phosphite (Pt). Although a few enzymes oxidize Pt to produce phosphate, the enzymes responsible for Pt oxidation in many environmental bacteria remain unidentified, and the role of microbial Pt oxidation in the global phosphorus cycle is not yet fully understood. In this study, we performed bioinformatic analyses of three Pt-oxidizing enzymes: the native Pt oxidase phosphite dehydrogenase (PtxD), and two promiscuous Pt oxidases, alkaline phosphatase (AP) and carbon-phosphorus (CP) lyase. Among these, AP was found to be widely distributed across bacteria since the early stages of their evolution. In contrast, PtxD emerged later in a limited number of bacterial lineages that had lost AP. Our biochemical characterizations revealed that most extant and reconstructed ancestral APs tested exhibited Pt oxidation activity. Moreover, disruption of active-site residues diminished Pt oxidase activity in AP, while only partially affecting its native function. This promiscuous function of AP reveals an overlooked mechanism in bacterial phosphate metabolism and underscores the role of Pt in the cycling of bioavailable phosphorus in ecosystems.

biochemistry↗

The global β-lactam resistome revealed by comprehensive sequence analysis

Most antibiotic-resistance genes (ARGs) evolved in environmental microbes long before humanitys antibiotic breakthrough, and widespread antibiotic use expedited the dissemination of ARGs among clinical pathogens. While widely discussed, the investigation of environmental ARG distributions lacks the scalability and taxonomic information necessary for a comprehensive analysis. Here, we present a global distribution of all five classes of {beta}-lactamases among microbes and environments. We generated a {beta}-lactamase taxonomy-environment map by identifying >113,000 {beta}-lactamases across diverse bacterial phyla and environmental ecosystems. Remarkably abundant, their occurrence is only [~]2.6-fold lower than the essential recA gene in various environmental ecosystems, with particularly strong enrichment in wastewater and plant samples. The enrichment in plant samples implies an environment where the arms race of {beta}-lactam producers and resistant bacteria occurred over millions of years. We uncover the origins of clinically relevant {beta}-lactamases (mainly in {gamma}-Proteobacteria) and expand beyond the previously suggested wastewater samples in plant, terrestrial, and other aquatic settings.

bioinformatics↗