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首页> 外文期刊>RSC Advances >Detection of nucleic acids via G-quadruplex-controlled l-cysteine oxidation and catalyzed hairpin assembly-assisted signal amplification
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Detection of nucleic acids via G-quadruplex-controlled l-cysteine oxidation and catalyzed hairpin assembly-assisted signal amplification

机译:通过G-四链体控制的L-半胱氨酸氧化和催化的发夹组装辅助信号放大检测核酸

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The development of simple, sensitive and cost-effective methods for specific nucleic acid detection has attracted tremendous attention due to its importance to the early diagnosis of genetic diseases and to biodefense applications. In this work, we demonstrated a fluorescent turn-off mode DNA assay based on L -cysteine-modulated synthesis of CdTe quantum dots (CdTe QDs), horseradish peroxidase-mimicking G-quadruplex–hemin–K ~(+) complex controlled oxidation of L -cysteine to cystine, and catalyzed hairpin assembly (CHA)-assisted signal amplification. After the addition of target DNA, the CHA signal amplification reaction was triggered and numerous H1–H2 double-stranded DNA were formed, initiating the release of G-quadruplex sequences in H2 simultaneously. Thus, the degree of inhibition of the synthesis of CdTe QDs is proportional to the concentration of the G-quadruplex sequence in this method. In contrast, when the target DNA was absent, the CHA could not be triggered, and the fluorescence signal was high due to the remaining intact L -cysteine. Under optimal experimental conditions, the homogeneous fluorescence method achieved the detection of HIV DNA with a linear range from 0.1 pM to 1 nM and a detection limit of 0.12 pM. This novel biosensor exhibits excellent specificity in differentiating DNA sequences with a single-base and two-base mismatch. To the best of our knowledge, this a label-free and highly sensitive bioassay utilizing CHA-assisted signal amplification and G-quadruplex control of in situ synthesis of CdTe QDs strategy was not reported in previous. Thus, this proposed strategy is anticipated to find use in basic biochemical research and clinical diagnosis.
机译:由于其对遗传疾病的早期诊断和生物防御应用的重要性,开发用于特异性核酸检测的简单,灵敏且具有成本效益的方法已引起了极大的关注。在这项工作中,我们展示了基于L-半胱氨酸调节的CdTe量子点(CdTe QDs)合成,辣根过氧化物酶模拟G-四链体-hemin -K〜(+)复合物控制氧化的荧光关闭模式DNA分析。 L-半胱氨酸转化为胱氨酸,并催化发夹组装(CHA)辅助信号放大。加入目标DNA后,CHA信号扩增反应被触发,并形成了许多H1-H2双链DNA,同时开始在H2中释放G-四链体序列。因此,在此方法中,CdTe QD合成的抑制程度与G-四链体序列的浓度成正比。相反,当缺少靶DNA时,不能触发CHA,并且由于保留了完整的L-半胱氨酸,荧光信号很高。在最佳实验条件下,均相荧光法实现了对HIV DNA的检测,线性范围为0.1 pM至1 nM,检测极限为0.12 pM。这种新型生物传感器在区分具有单碱基和两碱基错配的DNA序列中显示出极好的特异性。据我们所知,这种无标记的高灵敏度生物测定法利用CHA辅助信号放大和G-四链体控制,原位合成CdTe QDs策略尚未见报道。因此,预期该提出的策略可用于基础生化研究和临床诊断。

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