State Key Laboratory of Chemo/Bio-Sensing and Chemometrics, College of Chemistry and Chemical Engineering, Hunan University, Changsha 410082, P. R. China.
Nanoscale. 2020 Apr 30;12(16):8727-8731. doi: 10.1039/d0nr00941e.
A multifunctional theranostic nanoplatform, which integrates diagnostic and therapeutic functions in a single nanosystem, holds great promise for guiding disease treatment and improving the corresponding therapy efficacy. We report the development of a novel g-C3N4 nanosheet-based theranostic nanoassembly for both enhanced imaging of cancer-relevant mRNA in living cells and imaging-guided on-demand photodynamic therapy (PDT) for tumors. The nanoassembly was constructed by using highly fluorescent and water-dispersible g-C3N4 nanosheets which act as nanocarriers, enabling efficient and self-tracking transfection of the DNA hairpin probes. The presence of intracellular mRNA will initiate the DNA hairpin probes, ultimately resulting in an amplified fluorescence signal via hybridization and displacement with mRNA. Moreover, enhanced fluorescence imaging-guided precise PDT for tumors in living cells was also demonstrated, allowing the selective ablation of tumors without any obvious side effects. Therefore, the developed theranostic approach can provide a promising platform for low-abundance biomarker discovery and early treatment of related diseases.
一种多功能治疗诊断纳米平台,将诊断和治疗功能集成在一个纳米系统中,有望用于指导疾病治疗并提高相应的治疗效果。我们报告了一种新型基于 g-C3N4 纳米片的治疗诊断纳米组装体的开发,用于在活细胞中增强对癌症相关 mRNA 的成像以及进行成像引导的按需光动力疗法(PDT)。该纳米组装体是通过使用高荧光性和水分散性的 g-C3N4 纳米片构建的,这些纳米片可作为纳米载体,实现了 DNA 发夹探针的高效和自动转染。细胞内 mRNA 的存在将引发 DNA 发夹探针,最终通过与 mRNA 的杂交和置换,产生放大的荧光信号。此外,还证明了在活细胞中进行增强荧光成像引导的精确 PDT 治疗肿瘤,能够选择性地消融肿瘤而没有明显的副作用。因此,所开发的治疗诊断方法为低丰度生物标志物的发现和相关疾病的早期治疗提供了一个有前途的平台。