2017
DOI: 10.1039/c7ra08063h
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Piecing together the puzzle: nanopore technology in detection and quantification of cancer biomarkers

Abstract: Cancer is the result of a multistep process, including various genetic and epigenetic alterations, such as structural variants, transcriptional factors, telomere length, DNA methylation, histone-DNA modification, and aberrant expression of miRNAs. These changes cause gene defects in one of two ways: (1) gain in function which shows enhanced expression or activation of oncogenes, or (2) loss of function which shows repression or inactivation of tumor-suppressor genes. However, most conventional methods for scre… Show more

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Cited by 15 publications
(9 citation statements)
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“…Nanopore technology has the potential for detecting and characterizing biomolecules including DNA , RNA and proteins , viruses , and polysaccharides . As biomolecules pass through the nanopore, they cause ionic current blockages, which can be analyzed to characterize physical and chemical properties of the biomolecule . Although both biological and solid‐state nanopores are effective in biomolecular detection, solid‐state nanopores have the added benefit of increased durability and size tuning …”
Section: Introductionmentioning
confidence: 99%
“…Nanopore technology has the potential for detecting and characterizing biomolecules including DNA , RNA and proteins , viruses , and polysaccharides . As biomolecules pass through the nanopore, they cause ionic current blockages, which can be analyzed to characterize physical and chemical properties of the biomolecule . Although both biological and solid‐state nanopores are effective in biomolecular detection, solid‐state nanopores have the added benefit of increased durability and size tuning …”
Section: Introductionmentioning
confidence: 99%
“…In the human genome, DNA methylation is an epigenetic modification, including 5-methylcytosine (5-mC), N4-methylcytosine (4-mC), and N6-methyladenine (6-mA) [84]. In mammalian cells, CpG methylation can directly or indirectly suppress gene expression [85]. Moreover, the degree of abnormal methylation (high or low methylation) is associated with some cancers.…”
Section: Dna Methylationmentioning
confidence: 99%
“…Therefore, each ionic current response contains small ionic fluctuations, which offer continuous snapshots of the confined single molecule. After statistical time-domain analyses of duration, current amplitude, and occurrence of characteristic ionic current events as well as the frequency domain decomposition, differences in the features of single molecules, such as chemical properties, conformational changes, and charge distributions, could be detected. ,,, Therefore, nanopore-based single-molecule analysis possesses features such as high temporal resolution, high throughput, in situ detection, and label-free operation, which meets the requirements for measuring the dynamic and stochastic behaviors of single molecules within biological environments. , …”
Section: Introductionmentioning
confidence: 99%