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Ahlers, C.

Publications and source records attributed to Ahlers, C..

2 recordsLinked to original sources

Single-Stranded nucleic acid binding enhances the in vitro catalytic activity of Chikungunya virus nsP2 protease

Chikungunya virus (CHIKV) is an emerging arbovirus whose replication relies on the multifunctional nonstructural protein 2 (nsP2), particularly its viral protease (nsP2pro), which is essential for polyprotein processing. In this study, we investigated how interactions with nucleic acids influence nsP2pro activity. Using high-throughput sequencing-fluorescent ligand interaction profiling, we identified specific single-stranded DNA aptamers that enhanced nsP2pro activity. Additionally, both random single-stranded DNA and single-stranded RNA were found to stimulate protease activity, whereas double-stranded DNA showed no such effect. Circular dichroism spectroscopy and secondary structure predictions confirmed that the identified aptamers adopt stable folded conformations. Similarly, structured RNA sequences were also capable of promoting protease activity. The observed stimulatory effect depended on the nucleic acid strand type, length, and buffer conditions, suggesting the involvement of electrostatic interactions. Molecular docking analyses further let us assume that these nucleic acids interact specifically with the nsP2pro methyltransferase domain. Our findings provide novel insights into the regulation of nsP2pro, enhancing our understanding of CHIKV replication mechanisms, and may guide future antiviral development strategies.

biochemistry↗

Automated high-throughput selection of DNA aptamers using a common optical next-generation sequencer

Aptamers are conventionally selected via Systematic Evolution of Ligands by Exponential Enrichment (SELEX). This process is, however, laborious, time-consuming, and has a relatively low efficacy. Here, we developed an automated high-throughput screening platform for the selection of DNA aptamers which consists of an optical next-generation sequencer with a modified software and hardware to automatically perform fluorescence-based binding assays on the displayed DNA sequences subsequent to sequencing. Using this platform, after only three to five SELEX rounds we selected highly affine DNA aptamers for the lectins LecA and LecB of Pseudomonas aeruginosa as well as for the Pseudomonas Exotoxin A. In comparison, twelve rounds of conventional SELEX resulted in three-fold less affine aptamers for LecA and PEA and none for LecB. Our high throughput-approach bears great potential to augment SELEX as it significantly increases time efficiency, enabling the selection of aptamers within only one week.

biochemistry↗