Oligonucleotide synthesis
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Oligonucleotide synthesis
Oligonucleotide synthesis is the non-biological, chemical synthesis of defined short sequences of nucleic acids. It is extremely useful in laboratory procedures covering a wide range of molecular biology applications. Automated synthesizers allow the synthesis of oligonucleotides up to 160 to 200 bases. Typically, synthesized oligonucleotides are single-stranded DNA molecules around 15-20 bases in length. They are most commonly used as primers for DNA sequencing and amplification, as probes for detecting complementary DNA or RNA via molecular hybridization, and for the targeted introduction of mutations and restriction sites, allowing for the synthesis of artificial genes.
Synthesis substrates
Phosphoramidite of cytosine. Sequential synthesisWhereas enzymes synthesize DNA in a 5' to 3' direction, chemical DNA synthesis is done backwards in a 3' to 5' reaction. Based on the desired nucleotide sequence of the product, the phosphoramidites for the bases A, C, G, and T are added sequentially to react with the growing chain in a repeating cycle until the sequence is complete. In each cycle, the product's 5' phosphate is deprotected and a new base is added for extension. However, incorrect reactions may occur and therefore the process is only suitable for short oligonucleotides as the number of errors increases with the length of the oligonucleotide sequence that is being synthesized. Products are often purified by HPLC to isolate the products with the proper sequence. Solid-phase synthesisIn solid-phase synthesis, the 3' end of the oligonucleotide is bound to a solid support column on which all reactions take place. The 3' group of the first base is immobilized via a linker onto a solid support (polystyrene beads or similar). This allows for easy addition and removal of reactants. In each step, the solutions with the nucleotides for the next reaction are pumped through the column from an attached reagent delivery system and washed out before the next nucleotide is added. In modern synthesizers, reagent delivery and washing steps are controlled via computer based on the desired sequence. At the end of the synthesis program, the oligonucleotide is cleaved off the solid support and eluted from the column. Synthesis cycleOligonucleotide synthesis is done via a cycle of four chemical reactions that are repeated until all desired bases have been added:
Post-synthesis processingAfter synthesis is complete, the oligonucleotides are cleaved off the column and deprotected (base and phosphate) by base hydrolysis using ammonium hydroxide at high temperature. This removes all remaining protection groups, resulting in a reaction mixture containing the wanted product. For some applications, additional reporter groups are added post-synthesis. The oligonucleotide can be purified further from this mix by desalting through ethanol precipitation, size exclusion chromatography, or reversed-phase chromatography. To eliminate unwanted truncation products, the oligonucleotides can be purified via polyacrylamide electrophoresis or HPLC. Gram Scale Oligonucleotide SynthesisThe process described above only producing larger amounts of oligonucleotide. This large scale synthesis is done primarily by solid-phase technique except that a packed column rather that a loosely packed cartridge is employed. This method minimizes the amount of solvent required and maximizes concentration of expensive monomer reagent in order to drive the coupling reaction to completion. Often a chromatography-based platform is modified to perform the gram scale synthesis (GE Healthcare Pharmacia), however the company Genomic Technologies has developed a process specific platform. These platforms often utilize additional sensors over the umole scale synthesizers of the past. These sensors can monitor the amount of trityl released from the process and terminate the delivery of detritylating acid to minimize deleterious extended contact. The sensors can be conductivity or colorimetric based or both as in the case of the Genomic Technologies systems. Several companies provide a service for the preparation and purification of gram scale oligonucleotide synthesis. The Oligo Factory www.oligofactory.com is the only one to utilize the QMaster Gram Scale system developed by Genomic Technologies www.Genomictechnologies.com . MicroarraysAn interesting development of this technology has allowed genechips to be made, where the probes are synthesised on the silicon chip, and not printed, allowing a higher resolution. This can be done via a mechanical mask where thin silicon rubber capillaries are put on a glass slide and the probes synthesised. More high-tech versions employ photolayable products and Photolithographic mask or micromirrors. The 1cm2 surface of silicon is coated with a linker and a photoprotecting group such as nitroveratryloxycarbonyl is used and the mask exposes to a lamp the spots that will receive the subsequent nucleotide: this step is repeated for all four bases, but only one correct one is added to the growing probes on each spot (www.affymetrix.com). Thanks to digital light processing (DLP) technology (that give HD TVs) micromirrors were developed which have more detail and speed compared to masks, allowing the generation of microarray chips having one million and more features (www.nimblegen.com). DLP technology and improved synthesis chemistry is the basis for an extremely fast and flexible DNA microarray synthesizer, recently commercialized for cutting-edge research projects (www.febit.com).http://www3.interscience.wiley.com/cgi-bin/accessdenied?ID=112615334&Code=4717&Framed=FALSE&MRWImpl=redesign-2006&MRWAcronym=els&Page=http://www.mrw.interscience.wiley.com/emrw/9780470015902/els/article/a0003387/current/pdf Further reading
pl:Chemiczna synteza oligonukleotydów Source: Wikipedia | The above article is available under the GNU FDL. | Edit this article
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