Yuzhe Ding, Qingyu Chen, Yicheng Heng, Emily Hoi Pui Chao, Yunus A. Kaiyum, Philip E. Johnson, Juewen Liu
Kanamycin A, or simply referred to as kanamycin, is an aminoglycoside antibiotic with a narrow therapeutic window. Aptamers are useful recognition molecules for their detection and continuous monitoring. However, a short and high-affinity kanamycin aptamer that works under physiological conditions is still lacking. In this work, we revisited a previous aptamer selection done at pH 8, which had been abandoned due to poor sequence enrichment. Its top sequence, named KAN8–1, shows a K d of 51 nM at pH 7.5 for kanamycin as measured by isothermal titration calorimetry, and its affinities to kanamycin A and B are similar. Using NMR spectroscopy methods, the KAN8–1 aptamer undergoes ligand-induced folding and likely has a better-defined structure compared to the KAN6–1 aptamer, which was highly enriched in the pH 6 selection. Using the KAN8–1 aptamer, a strand-displacement biosensor was developed, and it has a limit of detection of 0.9 μM with excellent selectivity. This sensor also has a similar performance in serum. The reason for the poor enrichment of KAN8–1 was attributed to its low hybridization efficiency and poor hybridization stability to the capture strand as demonstrated by a fluorescence titration assay and melting analysis, which indicated a limitation of the capture-SELEX method.