Pseudomonas aeruginosa relies on heme acquisition to sustain growth and virulence in the iron-limited environment of the host, particularly in the acidic airways of patients with cystic fibrosis where antibiotic efficacy is markedly reduced. The Has heme assimilation system is initiated by the secreted hemophore HasA, which binds extracellular heme and delivers it to the outer-membrane receptor HasR. During infection, HasA is proteolytically processed, generating a truncated form that constitutes the biologically relevant species. Here, we characterise the structural and functional properties of truncated HasA under disease-associated acidic conditions (pH 6.5) and perform a rationally designed Systemic Evolution of Ligands by EXponential enrichment (SELEX) method to identify DNA aptamers capable of binding this hemophore. Biophysical analyses revealed that truncated HasA is folded, displays a mixed α/β secondary structure, and exists as a concentration-dependent mixture of monomers and domain-swapped dimers. Circular dichroism and nano-differential scanning fluorimetry identified two thermal transitions, consistent with the coexistence of apo/holo and monomer/dimer species. The apo protein bound heme with high affinity (KD = 113 nM) and a 1:1 stoichiometry, confirming preservation of its functional binding mechanism. Twelve rounds of SELEX, incorporating target switching and platform switching, yielded a highly enriched aptamer pool dominated by two sequences, HasA_1 and HasA_2. ELONA (Enzyme-Linked Oligonucleotide Assay) assays demonstrated that both aptamers bind specifically to truncated HasA, and biolayer interferometry revealed nanomolar dissociation constants (KD = 0.59 μM and 0.32 μM, respectively). These aptamers did not bind full-length HasA, BSA, or control sequences, confirming that selection under acidic conditions drove specificity toward the physiologically relevant form of the hemophore. Our findings identify HasA-binding DNA aptamers that retain function in acidic environments where antibiotic potency is compromised, highlighting their potential as molecular tools to disrupt heme acquisition in P. aeruginosa. This work establishes a foundation for developing aptamer-based antimicrobial strategies targeting the Has system, particularly under acidic conditions where conventional antibiotics are compromised.
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