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基于聚集诱导发光(AIE)和流通过杂交技术的 HPV 基因型检测平台的开发。

Development of an HPV Genotype Detection Platform Based on Aggregation-Induced Emission (AIE) and Flow-Through Hybridization Technologies.

机构信息

Department of Chemical and Biological Engineering, Department of Chemistry, Hong Kong Branch of Chinese National Engineering Research Center for Tissue Restoration and Reconstruction, The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, China.

Guangzhou Hybribio Biotech Limited, No 71, Fenghuang 3rd Road, Sino-Singapore Guangzhou Knowledge City, Guangzhou 510000, China.

出版信息

Molecules. 2022 Oct 18;27(20):7036. doi: 10.3390/molecules27207036.

Abstract

Genetic mutations can cause life-threatening diseases such as cancers and sickle cell anemia. Gene detection is thus of importance for disease-risk prediction or early diagnosis and treatment. Apart from genetic defects, gene detection techniques can also be applied to gene-related diseases with high risk to human health such as human papillomavirus (HPV) infection. HPV infection has been strongly linked to cervical cancer. To achieve a high-throughput HPV gene detection platform, the flow-through hybridization system appears to be one of the commercialized diagnostic techniques for this purpose. The flow-through hybridization technique is based on a vacuum-guided flow of DNA fragments which is continuously directed toward the oligoprobes that are immobilized on the testing membrane. However, the conventional colorimetric method and signal read-out approach suffers a problem of low sensitivity. On the contrary, fluorescence approaches allow more sensitive detection and broad sensing ranges. In this work, a fluorescent dye HCAP, which possesses aggregation-induced emission (AIE) properties and is responsive to alkaline phosphatase, was developed and applied to the flow-through hybridization platform to achieve HPV genome diagnosis of clinical samples. Also, an automatic membrane reader was constructed based on the AIE-based diagnosis platform which can identify the diagnostic result of patient DNA with a total concordance rate of 100% in the clinical trial.

摘要

基因突变可能导致危及生命的疾病,如癌症和镰状细胞贫血。因此,基因检测对于疾病风险预测或早期诊断和治疗非常重要。除了遗传缺陷外,基因检测技术还可以应用于与基因相关的疾病,如对人类健康有高风险的人乳头瘤病毒 (HPV) 感染。HPV 感染与宫颈癌密切相关。为了实现高通量 HPV 基因检测平台,流动杂交系统似乎是为此目的商业化诊断技术之一。流动杂交技术基于 DNA 片段的真空引导流动,这些片段不断指向固定在测试膜上的寡探针。然而,传统的比色法和信号读出方法存在灵敏度低的问题。相比之下,荧光方法可以实现更灵敏的检测和更广泛的感应范围。在这项工作中,开发了一种具有聚集诱导发射 (AIE) 特性且对碱性磷酸酶有响应的荧光染料 HCAP,并将其应用于流动杂交平台,以实现临床样本的 HPV 基因组诊断。此外,还基于基于 AIE 的诊断平台构建了一种自动膜读取器,该读取器可以在临床试验中以 100%的总一致性率识别患者 DNA 的诊断结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8d1b/9609701/791b13ef2df2/molecules-27-07036-g001.jpg

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