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Impacts of quantum dots in molecular detection and bioimaging of cancer

机译:量子点对癌症分子检测和生物成像的影响

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摘要

Introduction: A number of assays have so far been exploited for detection of cancer biomarkers in various malignancies. However, the expression of cancer biomarker(s) appears to be extremely low, therefore accurate detection demands sensitive optical imaging probes. While optical detection using conventional fluorophores often fail due to photobleaching problems, quantum dots (QDs) offer stable optical imaging in vitro and in vivo. Methods: In this review, we briefly overview the impacts of QDs in biology and its applications in bioimaging of malignancies. We will also delineate the existing obstacles for early detection of cancer and the intensifying use of QDs in advancement of diagnostic devices. Results: Of the QDs, unlike the II-VI type QDs (e.g., cadmium (Cd), selenium (Se) or tellurium (Te)) that possess inherent cytotoxicity, the I-III-VI 2 type QDs (e.g., AgInS2, CuInS2, ZnS-AgInS2) appear to be less toxic bioimaging agents with better control of band-gap energies. As highly-sensitive bioimaging probes, advanced hybrid QDs (e.g., QD-QD, fluorochrome-QD conjugates used for sensing through fluorescence resonance energy transfer (FRET), quenching, and barcoding techniques) have also been harnessed for the detection of biomarkers and the monitoring of delivery of drugs/genes to the target sites. Antibody-QD (Ab-QD) and aptamer- QD (Ap-QD) bioconjugates, once target the relevant biomarker, can provide highly stable photoluminescence (PL) at the target sites. In addition to their potential as nanobiosensors, the bioconjugates of QDs with homing devices have successfully been used for the development of smart nanosystems (NSs) providing targeted bioimaging and photodynamic therapy (PDT). Conclusion: Having possessed great deal of photonic characteristics, QDs can be used for development of seamless multifunctional nanomedicines, theranostics and nanobiosensors.
机译:简介:迄今为止,已利用许多检测方法来检测各种恶性肿瘤中的癌症生物标志物。然而,癌症生物标志物的表达似乎极低,因此准确的检测需要灵敏的光学成像探针。尽管使用常规荧光团的光学检测通常会因光漂白问题而失败,但量子点(QD)可以在体外和体内提供稳定的光学成像。方法:在这篇综述中,我们简要概述了量子点在生物学中的影响及其在恶性肿瘤生物成像中的应用。我们还将勾画出早期发现癌症和在诊断设备发展中越来越多地使用QD的现有障碍。结果:与具有固有细胞毒性的II-VI型QD(例如镉(Cd),硒(Se)或碲(Te))不同,这些QD具有I-III-VI 2型QD(例如AgInS2, CuInS2,ZnS-AgInS2)似乎是毒性较小的生物成像剂,可以更好地控制带隙能量。作为高灵敏度的生物成像探针,还利用了先进的杂交QD(例如,用于通过荧光共振能量转移(FRET),淬灭和条形码技术进行传感的QD-QD,荧光染料-QD共轭物)来检测生物标志物和监测药物/基因向目标部位的传递。抗体-QD(Ab-QD)和适体-QD(Ap-QD)生物共轭物一旦靶向相关生物标志物,便可以在目标部位提供高度稳定的光致发光(PL)。除了具有作为纳米生物传感器的潜力外,具有导引装置的量子点生物共轭物已成功用于开发智能纳米系统(NSs),从而提供靶向生物成像和光动力疗法(PDT)。结论:量子点具有很强的光子特性,可用于开发无缝的多功能纳米药物,治疗学和纳米生物传感器。

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