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Recent Advances in and Application of Fluorescent Microspheres for Multiple Nucleic Acid Detection

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Specialty Biotechnology
Date 2024 Jun 26
PMID 38920569
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Abstract

Traditional single nucleic acid assays can only detect one target while multiple nucleic acid assays can detect multiple targets simultaneously, providing comprehensive and accurate information. Fluorescent microspheres in multiplexed nucleic acid detection offer high sensitivity, specificity, multiplexing, flexibility, and scalability advantages, enabling precise, real-time results and supporting clinical diagnosis and research. However, multiplexed assays face challenges like complexity, costs, and sample handling issues. The review explores the recent advancements and applications of fluorescent microspheres in multiple nucleic acid detection. It discusses the versatility of fluorescent microspheres in various fields, such as disease diagnosis, drug screening, and personalized medicine. The review highlights the possibility of adjusting the performance of fluorescent microspheres by modifying concentrations and carrier forms, allowing for tailored applications. It emphasizes the potential of fluorescent microsphere technology in revolutionizing nucleic acid detection and advancing health, disease treatment, and medical research.

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References
1.
Zhong W, Zhang Y, Zhao H, Liang Z, Shi J, Ma Q . High electrochemical active Au-NP/2D zinc-metal organic frameworks heterostructure-based ECL sensor for the miRNA-522 detection in triple negative breast cancer. Talanta. 2023; 265:124875. DOI: 10.1016/j.talanta.2023.124875. View

2.
Pan P, Zhang T, Yu B, Ma R, Yue Q, Alghamdi A . A facile construction of bifunctional core-shell magnetic fluorescent FeO@YVO:Eu microspheres for latent fingerprint detection. J Colloid Interface Sci. 2021; 605:425-431. DOI: 10.1016/j.jcis.2021.07.074. View

3.
Malla M, Loree J, Kasi P, Parikh A . Using Circulating Tumor DNA in Colorectal Cancer: Current and Evolving Practices. J Clin Oncol. 2022; 40(24):2846-2857. PMC: 9390824. DOI: 10.1200/JCO.21.02615. View

4.
Hapsianto B, Kojima N, Kurita R, Yamagata H, Fujita H, Fujii T . Direct Capture and Amplification of Small Fragmented DNAs Using Nitrogen-Mustard-Coated Microbeads. Anal Chem. 2022; 94(21):7594-7600. DOI: 10.1021/acs.analchem.2c00531. View

5.
Pickar-Oliver A, Gersbach C . The next generation of CRISPR-Cas technologies and applications. Nat Rev Mol Cell Biol. 2019; 20(8):490-507. PMC: 7079207. DOI: 10.1038/s41580-019-0131-5. View