bioRxiv Science⌕ Search

Biology subjects

Sharkey, L. K. R.

Publications and source records attributed to Sharkey, L. K. R..

3 recordsLinked to original sources

Multi-omic dereplication of antibiotic production by diffusion chamber isolated bacteria from Australian soils

Soil bacteria are a major source of clinically useful antibiotics, yet the majority of soil-dwelling microorganisms remain uncultivable by standard laboratory methods. To access this untapped microbial diversity, we employed microbial diffusion chambers to isolate bacteria from ten Australian soil samples. A total of 1,218 bacterial isolates were recovered, representing a diverse collection spanning 61 genera from 32 families, covering the major known phyla of soil bacteria. Antibiotic activity screening revealed that 16% of isolates inhibited the growth of at least one of E. coli or S. aureus, with 120 isolates displaying activity against multidrug-resistant pathogens including methicillin-resistant Staphylococcus aureus (MRSA) and vancomycin-resistant Enterococcus faecium (VRE). Mass spectrometry-based dereplication using GNPS identified known antibiotics in 33% of bioactive strains, including actinomycin D, nonactins, and valinomycin. Genomic analysis confirmed the presence of corresponding biosynthetic gene clusters (BGCs), while targeted analysis of selected strains uncovered production of additional antibiotics such as nigericin and streptothricin that were not initially detected by mass spectrometry. Our results demonstrate that diffusion chambers enhance bacterial recovery from soil and show the benefits of a combined pipeline including bioactivity screening, mass spectrometry, and genomics for effective antibiotic dereplication and discovery. Impact StatementThis study delivers a significant advance in natural product discovery by demonstrating that microbial diffusion chambers can dramatically improve the recovery of diverse soil bacteria with antibiotic-producing potential from Australian soil samples. By integrating in situ cultivation with high-throughput screening, mass spectrometry-based dereplication and genome mining, this study yielded more than 1,200 bacterial isolates--including many with activity against multidrug-resistant pathogens--and confirms the production of both known and previously undetected antibiotics. The discovery of streptothricin production via genomics, despite its absence from mass spectrometry data, underscores the power of a multi-layered dereplication strategy. This work not only validates the utility of diffusion chambers for unlocking the "rare biosphere" of uncultivable microbes but also highlights critical methodological refinements to diversify antibiotic-producing strains beyond Streptomyces. The findings will inform and accelerate future efforts to discover urgently needed antibiotics from environmental microbiomes. Data SummaryThe whole-genome sequences were deposited in the National Center for Biotechnology Information National Library of Medicine under BioProject accession number PRJNA1272227.

microbiology↗

Phosphorylation by the PknB serine/threonine kinase stimulates dimer formation by WalR

WalKR is a two-component system that regulates cell wall homeostasis and other processes in low-GC Gram-positive bacteria. It is essential for viability in Staphylococcus aureus and regulates genes that encode the autolysins and other critical proteins. The sensor kinase WalK phosphorylates WalR at aspartic acid residue 53 (D53) in the receiver domain, stimulating promoter DNA binding. Unlike other response regulators, WalR is thought to have a second kinase, the serine/threonine kinase PknB, which phosphorylates the receiver domain at threonine residue 101. We previously reported that a walR mutation that changed T101 to a methionine conferred low level resistance to vancomycin and greatly increased susceptibility to tunicamycin along with several other phenotypic traits. In this work we demonstrate similarities between pknB null and the WalRT101M mutants that support a regulatory role for PknB-mediated phosphorylation of WalR. Using a combination of in vitro and in vivo approaches, we confirm the specificity of this posttranslational modification and confirm that phosphorylation at both D53 and T101 is important for dimer formation. Importantly, using an in silico approach, we have discovered that phosphorylation at T101 creates an intermolecular hydrogen bond between the phosphate group and E108, that strengthens contacts along the WalR dimerization interface. This is the first time that a clear molecular role has been assigned to this posttranslational modification and it is the strongest molecular evidence to date for a direct functional relationship between PknB and WalR. We propose that, together with primary activation by WalK, PknB serves as a second potentiating input into the WalKR system, stimulating WalR dimer formation, and target DNA binding and tethering this transcriptional event to important extracellular stimuli.

microbiology↗

The WalKR two-component regulator coordinates cell wall homeostasis with DNA replication in Staphylococcus aureus

Among the 16 two-component systems (TCSs) in the opportunistic human pathogen Staphylococcus aureus, only WalKR is essential. Like orthologous systems in other Bacillota, S. aureus WalKR controls autolysins involved in peptidoglycan remodelling and is therefore intimately involved in cell division. However, despite the importance of WalKR in S. aureus, the basis for its essentiality is not understood and the regulon poorly defined. Here, we defined a consensus WalR DNA-binding motif and the direct WalKR regulon by using functional genomics, including ChIP-seq, with a panel of isogenic walKR mutants that had a spectrum of altered activities. Consistent with prior findings, the direct regulon includes multiple autolysin genes. However, this work also revealed that WalR directly regulates at least five essential genes involved in lipoteichoic acid synthesis (ltaS); translation (rplK); DNA compaction (hup); initiation of DNA replication (dnaA, hup); and purine nucleotide metabolism (prs). Thus, WalKR in S. aureus serves as a polyfunctional regulator that contributes to fundamental control over critical cell processes by co-ordinately linking cell wall homeostasis with purine biosynthesis, protein biosynthesis, and DNA replication. Collectively, our findings address the essentiality of this locus and highlight the importance of WalKR as a bona fide target for novel anti-staphylococcal therapeutics.

microbiology↗