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Signal Amplification-Based Biosensors and Application in RNA Tumor Markers

Tumor markers are important substances for assessing cancer development. In recent years, RNA tumor markers have attracted significant attention, and studies have shown that their abnormal expression of post-transcriptional regulatory genes is associated with tumor progression. Therefore, RNA tumor...

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Published in:Sensors (Basel, Switzerland) Switzerland), 2023-04, Vol.23 (9), p.4237
Main Authors: Li, Haiping, Zhang, Zhikun, Gan, Lu, Fan, Dianfa, Sun, Xinjun, Qian, Zhangbo, Liu, Xiyu, Huang, Yong
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description Tumor markers are important substances for assessing cancer development. In recent years, RNA tumor markers have attracted significant attention, and studies have shown that their abnormal expression of post-transcriptional regulatory genes is associated with tumor progression. Therefore, RNA tumor markers are considered as potential targets in clinical diagnosis and prognosis. Many studies show that biosensors have good application prospects in the field of medical diagnosis. The application of biosensors in RNA tumor markers is developing rapidly. These sensors have the advantages of high sensitivity, excellent selectivity, and convenience. However, the detection abundance of RNA tumor markers is low. In order to improve the detection sensitivity, researchers have developed a variety of signal amplification strategies to enhance the detection signal. In this review, after a brief introduction of the sensing principles and designs of different biosensing platforms, we will summarize the latest research progress of electrochemical, photoelectrochemical, and fluorescent biosensors based on signal amplification strategies for detecting RNA tumor markers. This review provides a high sensitivity and good selectivity sensing platform for early-stage cancer research. It provides a new idea for the development of accurate, sensitive, and convenient biological analysis in the future, which can be used for the early diagnosis and monitoring of cancer and contribute to the reduction in the mortality rate.
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subjects Accuracy
Antigens
Biomarkers
Biomarkers, Tumor - genetics
Biosensing Techniques
Biosensors
Cancer
Cancer research
Catalysis
Cell growth
Development and progression
Diagnosis
Disease
DNA methylation
electrochemical biosensor
Electrochemical Techniques
Electrodes
Enzymes
Fluorescence
fluorescent biosensor
Gene expression
Genes
Genetic aspects
Genetic transcription
Humans
Medical diagnosis
Medical equipment
Metastasis
MicroRNAs
Nanomaterials
Neoplasms - diagnosis
Neoplasms - genetics
photoelectrochemical biosensor
Physiological apparatus
Prognosis
Proteins
Review
RNA
RNA tumor markers
Sensitivity
signal amplification
Tumor markers
Tumors
Voltammetry
title Signal Amplification-Based Biosensors and Application in RNA Tumor Markers
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