LeProust E, Zhang H, Yu P, Zhou X, Gao X
Department of Chemistry, University of Houston, Houston, TX 77204-5641, USA.
Nucleic Acids Res. 2001 May 15;29(10):2171-80. doi: 10.1093/nar/29.10.2171.
Achieving high fidelity chemical synthesis on glass plates has become increasingly important, since glass plates are substrates widely used for miniaturized chemical and biochemical reactions and analyses. DNA chips can be directly prepared by synthesizing oligonucleotides on glass plates, but the characterization of these micro-syntheses has been limited by the sub-picomolar amount of material available. Most DNA chip syntheses have been assayed using in situ coupling of fluorescent molecules to the 5'-OH of the synthesized oligonucleotides. We herein report a systematic investigation of oligonucleotide synthesis on glass plates with the reactions carried out in an automated DNA synthesizer using standard phosphoramidite chemistry. The analyses were performed using (32)P gel electrophoresis of the oligonucleotides cleaved from glass plates to provide product distribution profiles according to chain length of oligonucleotides. 5'-Methoxythymidine was used as the chain terminator, which permits assay of coupling reaction yields as a function of chain length growth. The results of this work reveal that a major cause of lower fidelity synthesis on glass plates is particularly inefficient reactions of the various reagents with functional groups close to glass plate surfaces. These problems cannot be detected by previous in situ fluorescence assays. The identification of this origin of low fidelity synthesis on glass plates should help to achieve improved synthesis for high quality oligonucleotide microarrays.
在玻璃板上实现高保真化学合成变得越来越重要,因为玻璃板是广泛用于小型化化学和生化反应及分析的底物。通过在玻璃板上合成寡核苷酸可以直接制备DNA芯片,但这些微合成的表征受到可用材料亚皮摩尔量的限制。大多数DNA芯片合成都是通过将荧光分子原位偶联到合成寡核苷酸的5'-OH上来进行检测的。我们在此报告了一项关于在玻璃板上进行寡核苷酸合成的系统研究,反应在自动DNA合成仪中使用标准亚磷酰胺化学进行。分析是通过对从玻璃板上切割下来的寡核苷酸进行(32)P凝胶电泳来进行的,以提供根据寡核苷酸链长度的产物分布图谱。5'-甲氧基胸苷用作链终止剂,这使得能够测定偶联反应产率作为链长度增长的函数。这项工作的结果表明,玻璃板上低保真合成的一个主要原因是各种试剂与靠近玻璃板表面的官能团反应效率特别低。这些问题无法通过以前的原位荧光检测来检测。确定玻璃板上低保真合成的根源应有助于实现高质量寡核苷酸微阵列的改进合成。