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Sensitivity and specificity of metal surface-immobilized 'molecular beacon' biosensors

机译:金属表面固定的“分子信标”生物传感器的敏感性和特异性

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The separate developments of microarray patterning of DNA oligonucleotides, and of DNA hairpins as sensitive probes for oligonucleotide identification in solution, have had a tremendous impact on basic biological research and clinical applications. We have combined these two approaches to develop arrayable and label-free biological sensors based on fluorescence unquenching of DNA hairpins immobilized on metal surfaces. The thermodynamic and kinetic response of these sensors, and the factors important in hybridization efficiency, were investigated. Hybridization efficiency was found to be sensitive to hairpin secondary structure, as well as to the surface distribution of DNA hairpins on the substrate. The identity of the bases used in the hairpin stem as well as the overall loop length significantly affected sensitivity and selectivity. Surface-immobilized hairpins discriminated between two sequences with a single base-pair mismatch with high sensitivity (over an order of magnitude difference in signal) under identical assay conditions (no change in stringency). This represents a significant improvement over other microarray-based techniques.
机译:DNA寡核苷酸的微阵列阵列图谱的发展以及DNA发夹作为溶液中寡核苷酸鉴定的灵敏探针的发展,已对基础生物学研究和临床应用产生了巨大影响。我们结合了这两种方法,基于固定在金属表面的DNA发夹的荧光猝灭,开发了可阵列且无标签的生物传感器。研究了这些传感器的热力学和动力学响应,以及影响杂交效率的重要因素。发现杂交效率对发夹的二级结构以及底物上DNA发夹的表面分布敏感。发夹茎中所用碱基的身份以及整个环的长度显着影响了灵敏度和选择性。在相同的分析条件下(严格度不变),具有单一碱基对错配的两个表面之间的表面固定发夹具有高灵敏度(信号差超过一个数量级)。这代表了相对于其他基于微阵列技术的重大改进。

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