Department of Chemistry, National University of Singapore, 3 Science Drive 3, Singapore 117543, Singapore.
School of Pharmaceutical Sciences (Shen Zhen), Sun Yat-sen University, Shenzhen 518107, China.
ACS Appl Mater Interfaces. 2020 Dec 30;12(52):57695-57709. doi: 10.1021/acsami.0c16491. Epub 2020 Dec 15.
Detection of endogenous tumor-related RNA is vital for cancer diagnostics. Despite advancements made, live-cell RNA detection still faces numerous problems, such as low signal output and cell-to-cell variations arising from differences in probe uptake. To address these issues, we designed a versatile and highly sensitive mRNA/miRNA nanosensor featuring, for the first time, signal amplification and in-built signal normalization. Using dye-loaded mesoporous silica nanoquenchers (MSNs) capped with target-corresponding antisense oligos (ASOs), direct fluorescence "Turn-ON" with signal amplification was achieved upon target binding. By readily varying the capping ASOs as well as cargo dyes, a suite of RNA nanosensors for multiplex target detection could be easily prepared. Further modification of glyceraldehyde 3-phosphate dehydrogenase (GAPDH) mRNA-responsive molecular beacons (MBs) onto our nanosensor enabled dual detection of target RNA and GAPDH mRNA, allowing for target signal normalization using GAPDH as a reference. We demonstrated that this newly developed nanosensor could successfully differentiate between noncancer and cancer cells, as well as accurately monitor the relative expression levels of multiple tumor-related RNAs simultaneously in different cancer cell lines, with a high degree of specificity and sensitivity, functioning as a noninvasive "PCR mimic" imaging tool in live cells.
内源性肿瘤相关 RNA 的检测对于癌症诊断至关重要。尽管已经取得了进展,但活细胞 RNA 检测仍然面临许多问题,例如信号输出低以及由于探针摄取的差异导致的细胞间变化。为了解决这些问题,我们设计了一种多功能且高灵敏度的 mRNA/miRNA 纳米传感器,该传感器首次具有信号放大和内置信号归一化功能。使用负载染料的介孔硅纳米荧光猝灭剂(MSNs),其表面覆盖有与靶标相对应的反义寡核苷酸(ASO),在靶标结合后可实现直接荧光“开启”和信号放大。通过轻松改变封端 ASO 和货物染料,可以轻松制备用于多重靶标检测的一系列 RNA 纳米传感器。进一步将甘油醛 3-磷酸脱氢酶(GAPDH)mRNA 响应分子信标(MB)修饰到我们的纳米传感器上,可同时检测靶标 RNA 和 GAPDH mRNA,使用 GAPDH 作为参考进行靶标信号归一化。我们证明,这种新开发的纳米传感器能够成功地区分非癌细胞和癌细胞,并且能够准确地同时监测不同癌细胞系中多种肿瘤相关 RNA 的相对表达水平,具有高度的特异性和灵敏度,可作为活细胞中的非侵入性“PCR 模拟”成像工具。