Yu Haixiang, Xu Xiaowen, Liang Pingping, Loh Kang Yong, Guntupalli Bhargav, Roncancio Daniel, Xiao Yi
Department of Chemistry and Biochemistry, Florida International University , 11200 SW Eighth Street, Miami, Florida 33199, United States.
Department of Chemistry, University of Illinois at Urbana-Champaign , Urbana, Illinois 61801, United States.
Bioconjug Chem. 2017 Apr 19;28(4):933-943. doi: 10.1021/acs.bioconjchem.6b00660. Epub 2017 Feb 15.
DNA-modified particles are used extensively for applications in sensing, material science, and molecular biology. The performance of such DNA-modified particles is greatly dependent on the degree of surface coverage, but existing methods for quantitation can only be employed for certain particle compositions and/or conjugation chemistries. We have developed a simple and broadly applicable exonuclease III (Exo III) digestion assay based on the cleavage of phosphodiester bonds-a universal feature of DNA-modified particles-to accurately quantify DNA probe surface coverage on diverse, commonly used particles of different compositions, conjugation chemistries, and sizes. Our assay utilizes particle-conjugated, fluorophore-labeled probes that incorporate two abasic sites; these probes are hybridized to a complementary DNA (cDNA) strand, and quantitation is achieved via cleavage and digestion of surface-bound probe DNA via Exo III's apurinic endonucleolytic and exonucleolytic activities. The presence of the two abasic sites in the probe greatly speeds up the enzymatic reaction without altering the packing density of the probes on the particles. Probe digestion releases a signal-generating fluorophore and liberates the intact cDNA strand to start a new cycle of hybridization and digestion, until all fluorophore tags have been released. Since the molar ratio of fluorophore to immobilized DNA is 1:1, DNA surface coverage can be determined accurately based on the complete release of fluorophores. Our method delivers accurate, rapid, and reproducible quantitation of thiolated DNA on the surface of gold nanoparticles, and also performs equally well with other conjugation chemistries, substrates, and particle sizes, and thus offers a broadly useful assay for quantitation of DNA surface coverage.
DNA修饰的颗粒广泛应用于传感、材料科学和分子生物学领域。此类DNA修饰颗粒的性能在很大程度上取决于表面覆盖程度,但现有的定量方法仅适用于某些颗粒组成和/或偶联化学。我们开发了一种简单且广泛适用的核酸外切酶III(Exo III)消化测定法,该方法基于磷酸二酯键的切割——这是DNA修饰颗粒的一个普遍特征——以准确量化不同组成、偶联化学和尺寸的常用颗粒上的DNA探针表面覆盖情况。我们的测定法利用与颗粒偶联的、荧光团标记的探针,这些探针包含两个无碱基位点;这些探针与互补DNA(cDNA)链杂交,并通过Exo III的脱嘌呤内切核酸酶和外切核酸酶活性对表面结合的探针DNA进行切割和消化来实现定量。探针中两个无碱基位点的存在极大地加速了酶促反应,而不会改变探针在颗粒上的堆积密度。探针消化释放出产生信号的荧光团,并释放完整的cDNA链以开始新的杂交和消化循环,直到所有荧光团标签都被释放。由于荧光团与固定化DNA的摩尔比为1:1,因此可以根据荧光团的完全释放准确确定DNA表面覆盖情况。我们的方法能够准确、快速且可重复地定量金纳米颗粒表面的硫醇化DNA,并且在其他偶联化学、底物和颗粒尺寸方面也表现出色,因此为DNA表面覆盖定量提供了一种广泛有用的测定方法。