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Visual Detection of Multiple Nucleic Acids in a Capillary Array
Published on: November 15, 2017
Sensitive detection of T4 polynucleotide kinase activity based on multifunctional magnetic probes and polymerization
Xia Li1, Xiaowen Xu2, Juan Song3
1Key Laboratory for Colloid and Interface Chemistry of Education Ministry, School of Chemistry and Chemical Engineering, Shandong University, 250100 Jinan, PR China; Department of Chemistry, Liaocheng University, Liao cheng 252059, PR China.
Abstract:
T4 polynucleotide kinase (PNK) plays critical roles in regulating DNA phosphorylation modes during the repair of DNA lesions. The aberrant activity of T4 PNK has been proven to be associated with a variety of human pathologies. Sensitive detection of T4 PNK activity is critical to both clinical diagnosis and therapeutics. Herein, a background-eliminated fluorescence assay for sensitive detection of T4 PNK activity has been developed by multifunctional magnetic probes and polymerization nicking reactions mediated hyperbranched rolling circle amplification (HRCA). First, the streptavidin-magnetic nanobeads (MBs) were functionalized with the biotin modified hairpin probe (HP) with 3'-phosphoryl, forming multifunctional magnetic probes (HP-MBs). Then, in the presence of T4 PNK, the 3'-phosphoryl of HP-MBs was hydrolyzed to 3'-hydroxyl, thus serving as primers to initiate the polymerization extension and nicking endonuclease cleavage reaction. Next, the primers released from above "polymerization-nicking" cycles were separated out to trigger the subsequently HRCA process, producing plenty of dsDNA. Finally, the intercalating dye SYBR Green I (SG) was inserted into the dsDNA, generating enhanced fluorescence signals. In our design, the HP-MBs here serve together as the T4 PNK, DNA polymerase, and endonuclease recognition probe, and thus avoid the demands of utilizing multiple probes design. Moreover, it performed primary "polymerization-nicking" amplification and mediate secondary HRCA. In addition to, performing the separation function, the binding of HP-MBs and SG could be avoided while a low background was acquired. This method showed excellent sensitivity with a detection limit of 0.0436 mU/mL, and accomplished exceptional characterization T4 PNK activity in cell extracts, offering a powerful tool for biomedical research and clinical diagnosis.
Insights
A new fluorescence assay detects T4 polynucleotide kinase (PNK) activity using magnetic probes and DNA amplification. This method offers sensitive detection for diagnosing diseases linked to aberrant T4 PNK activity.
Area of Science:
- Biochemistry
- Molecular Biology
- Biotechnology
Background:
- T4 polynucleotide kinase (PNK) is crucial for DNA repair, and its abnormal activity is linked to human diseases.
- Sensitive detection of T4 PNK activity is vital for clinical diagnosis and therapeutic strategies.
- Existing detection methods may lack sensitivity or require multiple probes.
Purpose of the Study:
- To develop a sensitive, background-eliminated fluorescence assay for detecting T4 PNK activity.
- To utilize multifunctional magnetic probes and a dual amplification strategy (polymerization-nicking and HRCA).
- To provide a robust tool for biomedical research and clinical diagnostics.
Main Methods:
- Functionalized magnetic nanobeads with a biotin-modified hairpin probe (HP-MBs) containing a 3'-phosphoryl group.
- Used T4 PNK to hydrolyze the 3'-phosphoryl group, initiating polymerization-nicking cycles.
- Employed hyperbranched rolling circle amplification (HRCA) triggered by released primers, followed by SYBR Green I (SG) fluorescence detection.
Main Results:
- The assay demonstrated high sensitivity with a detection limit of 0.0436 mU/mL.
- The multifunctional probes acted as recognition elements and amplification mediators, simplifying the assay design.
- Achieved low background fluorescence and successful characterization of T4 PNK activity in cell extracts.
Conclusions:
- The developed assay offers a sensitive and efficient method for T4 PNK activity detection.
- The combination of magnetic probes, polymerization-nicking, and HRCA provides a powerful platform for diagnostics.
- This tool has significant potential for advancing biomedical research and clinical applications related to DNA repair and associated pathologies.
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