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Updated: Aug 12, 2026

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Nucleoside Triphosphates - From Synthesis to Biochemical Characterization
Published on: April 3, 2014
Improvements to solid phase phosphotriester synthesis of deoxyoligonucleotides
Nucleic Acids Research
|September 25, 1982
Summary
A novel benzenesulfonic acid solution effectively removes protecting groups from DNA during solid-phase synthesis. This method offers lower depurination and supports efficient coupling reactions for automated DNA synthesis.
Area of Science:
- Organic Chemistry
- Biochemistry
- Molecular Biology
Background:
- Solid-phase DNA synthesis is crucial for research and diagnostics.
- Protecting groups are essential for controlled oligonucleotide assembly.
- Efficient and mild deprotection methods are needed to minimize DNA damage.
Purpose of the Study:
- To evaluate a new reagent for deoxyoligonucleotide detritylation.
- To assess the efficiency and side-product profile of the new reagent.
- To integrate the detritylation and coupling steps into an automated synthesis system.
Main Methods:
- A 3% benzenesulfonic acid solution in DMF/DCM (9:1) was used for detritylation.
- Depurination levels were compared to trichloroacetic acid.
- Coupling reactions were performed at elevated temperatures.
- The developed procedures were incorporated into an automated DNA synthesizer.
Main Results:
- The benzenesulfonic acid reagent demonstrated effective detritylation of solid-supported deoxyoligonucleotides.
- Lower depurination levels were observed compared to trichloroacetic acid.
- Coupling reactions at elevated temperatures showed no significant increase in side products.
- The automated system achieved synthesis rates comparable to the phosphite approach.
Conclusions:
- Benzenesulfonic acid in DMF/DCM is a highly effective and mild reagent for oligonucleotide detritylation.
- This method minimizes DNA damage and allows for efficient coupling reactions.
- The developed automated system offers a competitive alternative for DNA synthesis.

