N-Doped graphene quantum dots (N-GQDs) as fluorescent probes for detection of UV induced DNA damage
Азот-допированные графеновые квантовые точки (N-GQDs) в качестве флуоресцентных зондов для обнаружения УФ-индуцированного повреждения ДНК
2022-01-01
SCID: 54.1/auf8rzk8
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N-doped graphene quantum dotsUV-induced DNA damagefluorescent biosensorhydrothermal synthesisstatic fluorescence quenching
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Abstract (AI)
UV induced DNA damage can lead to the development of skin cancer, skin aging and cell death. In this study, we fabricated a fluorescence-based biosensor that can be applied to the detection of DNA damage caused by UV radiation with the help of nitrogen doped graphene quantum dots (N-GQDs) as the probe material. In this paper, N-GQDs with good fluorescence efficiency have been synthesized by the hydrothermal method and were used as a fluorescent probe for the detection of UV damaged DNA. The fluorescence intensity of N-GQDs was quenched by the static quenching of UV damaged DNA through the formation of a N-GQD/UV damaged DNA complex. Moreover, the effects of different values of pH, NaCl and glucose on analytical performances of the sensor were also studied. Thus, using a fluorescence based approach, we demonstrated a quite simple, rapid, and inexpensive biosensor for the detection of DNA damage caused by UV radiation.
Key Findings
1
Fluorescence quenching occurs by static quenching through formation of an N-GQD/UV-damaged DNA complex.
2
N-GQDs function as fluorescent probes that detect UV-induced DNA damage via fluorescence quenching.
3
Nitrogen-doped graphene quantum dots (N-GQDs) were synthesized by a hydrothermal method and exhibit good fluorescence efficiency.
4
The resulting fluorescence-based biosensor is simple, rapid, and inexpensive for detecting UV-induced DNA damage.
5
The sensor's analytical performance was evaluated under varying pH, NaCl, and glucose conditions.
Research Object
Nitrogen-doped graphene quantum dots (N-GQDs) used as fluorescent probe for detecting UV-induced DNA damage
Research Subject
Fluorescence quenching interaction between N-GQDs and UV-damaged DNA (formation of N-GQD/UV-damaged DNA complex) and sensor analytical performance under varying pH, NaCl, and glucose conditions for detecting UV-induced DNA damage
Publication Details
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2022-01-01
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