College of Chemistry and Molecular Sciences, Wuhan University, Wuhan 430072, P. R. China.
Anal Chem. 2021 Nov 23;93(46):15559-15566. doi: 10.1021/acs.analchem.1c04033. Epub 2021 Nov 8.
Polynucleotide kinase (PNK) shows an in-depth correlationship with DNA repair and metabolism processes. The in situ visualization of intracellular PNK revealed an extremely biological significance in supplementing reliable and quantitative information on its spatiotemporal distribution in live cells. Herein, we developed a versatile cascaded DNA amplification circuit through the integration of catalytic DNA assembly and hybridization chain reaction circuits and realized the accurate evaluation of intracellular PNK activity via the Förster resonance energy transfer (FRET) principle. Initially, without PNK, trigger was firmly caged in the PNK-recognizing hairpin , resulting in no disturbance of the concatenated circuit. However, with the introduction of PNK, the 5'-OH terminal of PNK-addressing was phosphorylated, then the phosphorylated could be subsequently digested by λ exonuclease (λ Exo) to produce trigger of the cascaded DNA circuit. As a result, the integrated circuit was stimulated to produce an amplified FRET signal for quantitatively monitoring the activity of PNK. Due to the λ Exo-specific digestion of 5'-phosphate DNA and the high signal gain of the cascade circuit, our proposed strategy enables the sensitive analysis of PNK activity in vitro and in complex biological samples. Furthermore, our PNK-sensing platform was extensively explored in HeLa cells for realizing reliable intracellular PNK imaging and thus showed high potential in the future diagnosis and treatment of kinase-related diseases.
多核苷酸激酶(PNK)与 DNA 修复和代谢过程有着深入的关联。细胞内 PNK 的原位可视化在补充其在活细胞中时空分布的可靠和定量信息方面具有极其重要的生物学意义。在此,我们通过催化 DNA 组装和杂交链式反应电路的整合开发了一种通用的级联 DNA 扩增电路,并通过Förster 共振能量转移(FRET)原理实现了对细胞内 PNK 活性的精确评估。最初,在没有 PNK 的情况下,触发物被牢固地束缚在 PNK 识别发夹中,因此不会干扰串联电路。然而,引入 PNK 后,PNK 寻址的 5'-OH 末端被磷酸化,然后磷酸化的 可以被 λ 外切酶(λ Exo)进一步消化,产生级联 DNA 电路的触发物。结果,集成电路被刺激产生放大的 FRET 信号,用于定量监测 PNK 的活性。由于 λ Exo 对 5'-磷酸化 DNA 的特异性消化和级联电路的高信号增益,我们提出的策略能够在体外和复杂生物样本中灵敏地分析 PNK 活性。此外,我们的 PNK 传感平台在 HeLa 细胞中进行了广泛的探索,实现了可靠的细胞内 PNK 成像,因此在未来与激酶相关的疾病的诊断和治疗方面具有很大的潜力。