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Novel combinatorial selection of phosphorothioate oligonucleotide aptamers
D J King1, D A Ventura, A R Brasier
1Sealy Center for Structural Biology, Department of Human Biological Chemistry & Genetics, University of Texas Medical Branch, Galveston 77555-1157, USA. david@nmr.utmb.edu
Biochemistry
|December 8, 1998
Summary
Researchers developed nuclease-resistant phosphorothioate DNA aptamers that bind tightly to the nuclear factor for human IL6 (NF-IL6). These novel aptamers exhibit enhanced specificity and binding stoichiometry compared to existing methods.
Area of Science:
- Molecular Biology
- Biochemistry
- Immunology
Background:
- Nuclear factor for human IL6 (NF-IL6) is a transcription factor crucial for inflammatory gene induction.
- Existing methods for targeting NF-IL6 face challenges with nuclease resistance and binding specificity.
- Phosphorothioate DNA aptamers offer potential for enhanced stability and targeted therapeutic applications.
Purpose of the Study:
- To develop and screen nuclease-resistant phosphorothioate DNA aptamers for high-affinity binding to NF-IL6.
- To investigate the binding characteristics and stoichiometry of selected aptamers.
- To explore the potential of these aptamers as therapeutic agents targeting inflammatory pathways.
Main Methods:
- A novel combinatorial approach was employed for the construction and screening of DNA aptamers.
- PCR amplification using dNTP(alphaS) was utilized to generate phosphorothioate backbone substitutions.
- A 22-nucleotide-long random duplex library was screened for specific binding to NF-IL6.
Main Results:
- Specific 22-mer thiophosphate backbone substituted aptamers with nanomolar binding affinity for NF-IL6 were selected.
- These aptamers demonstrated a distinct consensus sequence compared to wild-type NF-IL6 binding sites.
- Selected aptamers exhibited a higher binding stoichiometry (2 dimers/duplex) compared to wild-type sequences (1 dimer/duplex).
Conclusions:
- Novel phosphorothioate DNA aptamers targeting NF-IL6 have been successfully developed using a combinatorial approach.
- These aptamers possess enhanced nuclease resistance, specificity, and binding stoichiometry.
- The findings suggest potential therapeutic applications for these aptamers in modulating inflammatory responses.