Purification of small interfering RNA using nondenaturing anion-exchange chromatography. 2011

Bernhard Noll, and Stephan Seiffert, and Frank Hertel, and Harald Debelak, and Philipp Hadwiger, and Hans-Peter Vornlocher, and Ingo Roehl
Roche Kulmbach GmbH, Kulmbach, Germany. bernhard_noll@gmx.de

A manufacturing and purification process for duplex oligonucleotides was established, which shortens and simplifies currently used procedures, yielding a product of higher purity. The reported procedure is based on nondenaturing anion-exchange (AEX) chromatography, which is performed on the annealed duplex rather than the individual single strands. The duplex is formed early in the process by annealing of the crude single strands directly after solid-phase synthesis. Two 30 μmol manufacturing runs using duplex purification were performed on 2 different AEX resins and compared with a manufacturing run of the same scale using conventional single-strand chromatography. The same pooling strategy was employed for all purifications. Content of optimal duplex (duplex exclusively comprising full-length single strands) was 90.5% and 90.2% for the batches obtained by duplex purification and 86.1% for the batch obtained by single-strand purification. Maximum chromatographic recoveries were 67% for the duplex purification and 68% for the single-strand purification. Hence, the manufacture of small interfering RNA (siRNA) using duplex purification was simpler and faster than conventional single-strand purification and provided better purity and similar yield of final siRNA.

UI MeSH Term Description Entries
D009841 Oligonucleotides Polymers made up of a few (2-20) nucleotides. In molecular genetics, they refer to a short sequence synthesized to match a region where a mutation is known to occur, and then used as a probe (OLIGONUCLEOTIDE PROBES). (Dorland, 28th ed) Oligonucleotide
D002852 Chromatography, Ion Exchange Separation technique in which the stationary phase consists of ion exchange resins. The resins contain loosely held small ions that easily exchange places with other small ions of like charge present in solutions washed over the resins. Chromatography, Ion-Exchange,Ion-Exchange Chromatography,Chromatographies, Ion Exchange,Chromatographies, Ion-Exchange,Ion Exchange Chromatographies,Ion Exchange Chromatography,Ion-Exchange Chromatographies
D000837 Anion Exchange Resins High-molecular-weight insoluble polymers that contain functional cationic groups capable of undergoing exchange reactions with anions. Anion Exchange Resin,Anion Exchangers (Resins),Exchange Resin, Anion,Exchange Resins, Anion,Resin, Anion Exchange,Resins, Anion Exchange
D013058 Mass Spectrometry An analytical method used in determining the identity of a chemical based on its mass using mass analyzers/mass spectrometers. Mass Spectroscopy,Spectrometry, Mass,Spectroscopy, Mass,Spectrum Analysis, Mass,Analysis, Mass Spectrum,Mass Spectrum Analysis,Analyses, Mass Spectrum,Mass Spectrum Analyses,Spectrum Analyses, Mass
D034741 RNA, Small Interfering Small double-stranded, non-protein coding RNAs (21-31 nucleotides) involved in GENE SILENCING functions, especially RNA INTERFERENCE (RNAi). Endogenously, siRNAs are generated from dsRNAs (RNA, DOUBLE-STRANDED) by the same ribonuclease, Dicer, that generates miRNAs (MICRORNAS). The perfect match of the siRNAs' antisense strand to their target RNAs mediates RNAi by siRNA-guided RNA cleavage. siRNAs fall into different classes including trans-acting siRNA (tasiRNA), repeat-associated RNA (rasiRNA), small-scan RNA (scnRNA), and Piwi protein-interacting RNA (piRNA) and have different specific gene silencing functions. RNA, Scan,Repeat-Associated siRNA,Scan RNA,Small Scan RNA,Trans-Acting siRNA,siRNA,siRNA, Repeat-Associated,siRNA, Trans-Acting,Short Hairpin RNA,Short Interfering RNA,Small Hairpin RNA,Small Interfering RNA,scnRNA,shRNA,tasiRNA,Hairpin RNA, Short,Hairpin RNA, Small,Interfering RNA, Short,Interfering RNA, Small,RNA, Short Hairpin,RNA, Short Interfering,RNA, Small Hairpin,RNA, Small Scan,Repeat Associated siRNA,Scan RNA, Small,Trans Acting siRNA,siRNA, Repeat Associated,siRNA, Trans Acting

Related Publications

Bernhard Noll, and Stephan Seiffert, and Frank Hertel, and Harald Debelak, and Philipp Hadwiger, and Hans-Peter Vornlocher, and Ingo Roehl
March 2010, RNA (New York, N.Y.),
Bernhard Noll, and Stephan Seiffert, and Frank Hertel, and Harald Debelak, and Philipp Hadwiger, and Hans-Peter Vornlocher, and Ingo Roehl
January 2018, Methods in molecular biology (Clifton, N.J.),
Bernhard Noll, and Stephan Seiffert, and Frank Hertel, and Harald Debelak, and Philipp Hadwiger, and Hans-Peter Vornlocher, and Ingo Roehl
September 2001, Analytical biochemistry,
Bernhard Noll, and Stephan Seiffert, and Frank Hertel, and Harald Debelak, and Philipp Hadwiger, and Hans-Peter Vornlocher, and Ingo Roehl
November 2005, Human gene therapy,
Bernhard Noll, and Stephan Seiffert, and Frank Hertel, and Harald Debelak, and Philipp Hadwiger, and Hans-Peter Vornlocher, and Ingo Roehl
May 1998, Journal of chromatography. A,
Bernhard Noll, and Stephan Seiffert, and Frank Hertel, and Harald Debelak, and Philipp Hadwiger, and Hans-Peter Vornlocher, and Ingo Roehl
May 2001, Current protocols in molecular biology,
Bernhard Noll, and Stephan Seiffert, and Frank Hertel, and Harald Debelak, and Philipp Hadwiger, and Hans-Peter Vornlocher, and Ingo Roehl
July 1984, Analytical biochemistry,
Bernhard Noll, and Stephan Seiffert, and Frank Hertel, and Harald Debelak, and Philipp Hadwiger, and Hans-Peter Vornlocher, and Ingo Roehl
July 2009, Analytical biochemistry,
Bernhard Noll, and Stephan Seiffert, and Frank Hertel, and Harald Debelak, and Philipp Hadwiger, and Hans-Peter Vornlocher, and Ingo Roehl
July 2010, Journal of chromatography. B, Analytical technologies in the biomedical and life sciences,
Bernhard Noll, and Stephan Seiffert, and Frank Hertel, and Harald Debelak, and Philipp Hadwiger, and Hans-Peter Vornlocher, and Ingo Roehl
November 2007, Se pu = Chinese journal of chromatography,
Copied contents to your clipboard!