Stoichiometric Control of Bismaleimide Conjugation of DNA to Silica Surfaces Through Quantitative Fluorescence Analysis of Thiolated DNA.

IF 2.2 3区 化学 Q2 INSTRUMENTS & INSTRUMENTATION
Grant J Myres, Jay P Kitt, Joel M Harris
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引用次数: 0

Abstract

Surface immobilization of DNA for biosensing or separations applications requires covalent attachment chemistry that is efficient, reproducible, and stable. In this work, an approach to link thiol-functionalized DNA to thiol-modified silica surfaces using N,N'-1,4-phenylene-bismaleimide is optimized by developing an efficient, one-pot synthesis of the maleimide-conjugated DNA followed by its immediate reaction with thiolated porous silica particles. The methodology takes advantage of a Michael addition reaction that couples a phenyl-bismaleimide cross-linking reagent and thiol-modified DNA to form a monomeric DNA-maleimide conjugate. The 1:1 stoichiometry of this reaction must be carefully controlled to avoid excess thiol-DNA, which generates unreactive bismaleimide-linked DNA dimers, or excess bismaleimide, which competes with the DNA-maleimide conjugate for reaction with the thiolated silica surface. To achieve control over the reaction forming the DNA conjugate, we adapt a fluorescence assay for free-thiols using 7-diethylamino-3-(4-maleimidophenyl)-4-methyl-coumarin (CPM) to determine the concentration of thiol-modified DNA that emerges from its synthesis, disulfide labeling, reduction to a thiol, and purification. The fluorescence response of the CPM reagent was calibrated using reduced glutathione as a standard, which allowed determination of the concentrations of thiolated-DNA and control over the stoichiometry of its reaction with a bismaleimide linker. The maleimide-conjugated DNA product thus formed was then reacted with thiolated-silica in order to bind the DNA to the internal surfaces of porous silica, whose surface populations were determined in individual particles by confocal Raman microscopy. Self-modeling curve resolution of the Raman spectra of surface-bound molecules validated the efficiency of the bismaleimide:thiolated DNA reaction, which provided stoichiometric control over formation of the monomeric DNA-maleimide conjugate and its optimized reaction with thiolated-silica surfaces.

通过定量荧光分析硫代DNA双马来酰亚胺偶联二氧化硅表面的化学计量学控制。
用于生物传感或分离应用的DNA表面固定化需要高效、可重复和稳定的共价附着化学。在这项工作中,利用N,N'-1,4-苯乙烯-双马来酰亚胺将硫醇功能化的DNA与硫醇修饰的二氧化硅表面连接的方法通过开发一种高效的,一锅合成马来酰亚胺共轭DNA,然后与硫化多孔二氧化硅颗粒立即反应,从而优化了这种方法。该方法利用迈克尔加成反应,偶联苯基-双马来酰亚胺交联试剂和巯基修饰的DNA形成单体DNA-马来酰亚胺偶联物。必须仔细控制该反应的1:1化学计量,以避免过量的硫醇-DNA,产生不反应的双马来酰亚胺连接的DNA二聚体,或过量的双马来酰亚胺,与DNA-马来酰亚胺偶联物竞争,与硫化二氧化硅表面反应。为了控制形成DNA偶联物的反应,我们使用7-二乙基氨基-3-(4-马来酰亚苯基)-4-甲基香豆素(CPM)对游离硫醇进行荧光测定,以确定硫醇修饰DNA的浓度,这些DNA从合成、二硫标记、还原到硫醇和纯化中产生。CPM试剂的荧光响应使用还原型谷胱甘肽作为标准进行校准,以确定硫代dna的浓度,并控制其与双马来酰亚胺连接剂反应的化学计量学。这样形成的马来酰亚胺共轭DNA产物然后与硫代二氧化硅反应,以便将DNA结合到多孔二氧化硅的内表面,其表面数量通过共聚焦拉曼显微镜在单个颗粒中确定。表面结合分子拉曼光谱的自建模曲线分辨率验证了双马来酰亚胺:硫化DNA反应的效率,这为单体DNA-马来酰亚胺共轭物的形成及其与硫化二氧化硅表面的优化反应提供了化学计量控制。
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来源期刊
Applied Spectroscopy
Applied Spectroscopy 工程技术-光谱学
CiteScore
6.60
自引率
5.70%
发文量
139
审稿时长
3.5 months
期刊介绍: Applied Spectroscopy is one of the world''s leading spectroscopy journals, publishing high-quality peer-reviewed articles, both fundamental and applied, covering all aspects of spectroscopy. Established in 1951, the journal is owned by the Society for Applied Spectroscopy and is published monthly. The journal is dedicated to fulfilling the mission of the Society to “…advance and disseminate knowledge and information concerning the art and science of spectroscopy and other allied sciences.”
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