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Haussler, S.

Publications and source records attributed to Haussler, S..

2 recordsLinked to original sources

Resistance to antibacterial peptide nucleic acids through altered ribosome function

When used as antibacterial agents, Peptide Nucleic Acid (PNAs) are generally designed to base-pair with complementary sequences of an essential mRNA and block translation initiation. Although bacterial susceptibility to peptide-conjugated PNAs is strongly influenced by cellular uptake, intracellular determinants of PNA activity remain poorly understood. Here, we identify a ribosome-centered mechanism of resistance to antibacterial PNAs in Escherichia coli. The rpsLI82N mutation increased the minimum inhibitory concentration (MIC) of an argininerich cell penetrating peptide-conjugated PNA targeting acpP eightfold. The effect of rpsLI82N was additive with mutations that reduce PNA entry into bacterial cells PNA resistance conferred by rpsLI82N was independent of carrier peptide and also applied when naked PNA was tested in an envelope-permeable strain. Similarly, rpsLI82N-associated resistance was independent of the targeted mRNA, as it applied to PNAs targeting either the Shine-Dalgarno or AUG region of acpP or ftsZ mRNA. Several additional substitutions within residues 74-82 of ribosomal protein uS12 conferred PNA resistance. Because resistance occurred among both error-restrictive and ribosomal-ambiguity alleles, it did not correlate with the classical decoding-fidelity phenotypes measured by stop-codon readthrough. Proteomic analysis revealed widespread changes in proteins under post-transcriptional control in rpsLI82N cells. The effect on selected sRNA-regulated genes correlated with the location of the sRNA-binding site: repression was less efficient when binding overlapped the translation-initiation region whereas it was more efficient when regulatory sites were located outside this region. In parallel, rpsLI82N increased the 30S and 50S ribosomal fractions and reduced the 70S fraction. Both loss of KsgA, which disrupts 30S maturation, and treatment with kasugamycin, which perturbs translation initiation, increased PNA resistance. We propose that rpsLI82N alters uS12-dependent 30S assembly and initiation-complex dynamics, thereby changing the effective occupancy of mRNA translation-initiation regions. This limits access of PNAs and sRNAs to overlapping sequences, resulting in PNA resistance and reduced sRNA-mediated repression. Conversely, a longer-lived 30S initiation state may facilitate sRNA binding to flanking regions and strengthen repression. These findings identify the ribosome-mRNA interface as an intracellular determinant of antibacterial PNA susceptibility.

molecular biology↗

Pseudopaline-mediated zinc uptake by Pseudomonas aeruginosa determines specific clinically relevant phenotypes and infection outcome

AUTHOR SUMMARYThe host-pathogen interface is a biological niche in which two entities competes for essential resources. The hosts nutritional immunity restrict access to metals, while a successful pathogen overcomes these restrictions using dedicated uptake pathways. Pseudopaline is a high-affinity metallophore allowing Pseudomonas aeruginosa to acquire zinc in chelated environments. We demonstrate that this pathway is the last-resort solution to acquire zinc for this dreadful pathogen. The capacity to provide this metal to zinc-metalloproteins drives clinically relevant phenotypes, such as the capacity to form a mature and antibiotic-tolerant biofilm, or to affect the outcome of an infection. These results place pseudopaline as a potential drug target for blocking P. aeruginosa pathogenic capacity and resensitizing established biofilm to classic antibiotic treatment. ABSTRACTBiological metals are essential trace elements which are required by metalloproteins, involved in virtually every cellular, structural and catalytic function of the bacterial cell. Bacterial pathogenesis involves a tug-of-war between the host nutritional immunity, sequestering essential metals and the invading pathogens that deploy high-metal affinity uptake strategies in order to overcome these defence mechanisms. Metallophores are high-affinity, low-molecular mass metal chelators produced and secreted by bacteria to access chelated metals from the environment. Pseudopaline is a metallophore produced and secreted by Pseudomonas aeruginosa to acquire zinc when the bioavailability of this metal is severely restricted, as in the presence of a strong metal chelator such as EDTA, or during infections when the nutritional immunity of the host is active, in mammals through the production of the zing binding protein calprotectin. We show that under the conditions of metal deprivation, a pseudopaline-deficient P. aeruginosa strain exhibit a severe intracellular zinc deficiency, establishing that the pseudopaline pathway is the last-resort and unique pathway for the bacteria to acquire zinc under these restricted growth conditions. The present study explores the pleiotropic role of pseudopaline-mediated zinc acquisition on several clinically relevant phenotypes and its capacity to drive infection outcomes, placing this machinery as a promising therapeutic target for P. aeruginosas infection, acting synergistically as a pathogenicity determinant as well as an adaptative trait allowing the establishment of a mature and antibiotic resistance biofilm necessary for recalcitrant chronic infections.

microbiology↗