Li Bei, Li Ruyu, Zan Qi, Chai Xiaojing, Sun Xincheng, Zhang Xiaoran, Dong Chuan, Shuang Shaomin
College of Chemistry and Chemical Engineering, Institute of Environmental Science, Shanxi University, Taiyuan, 030006, China.
Department of Energy Chemistry and Materials Engineering, Shanxi Institute of Energy, Taiyuan, 030006, China.
Analyst. 2025 Jul 21;150(15):3378-3392. doi: 10.1039/d5an00426h.
A multifunctional fluorescent polypyrrole nanotherapeutic probe (denoted as PPy@RhB-PAA-FITC) was constructed for pH-sensing-guided photothermal therapy (PTT) of cancer and self-monitoring temperature variations during PTT. Temperature-responsive rhodamine B (RhB) and pH-sensitive fluorescein isothiocyanate (FITC) fluorescent dyes were linked to polypyrrole (PPy) nanoparticles, which served as the photothermal therapy material matrix, through encapsulation and electrostatic interaction, respectively. The fluorescence intensity of FITC increased dramatically with increasing pH, while little variation was observed in the emission intensity of RhB, enabling ratiometric fluorescent pH sensing performance. For pH detection, the nanoprobes exhibited linearity in the pH range from 4.54 to 6.4, with an acid dissociation constant (p) of 5.80. The PPy nanoparticles were responsible for PTT and endowed this nanotherapeutic system with 36.24% photothermal conversion efficiency. Meanwhile, the fluorescence intensity of RhB decreased with an increase in heat-induced temperature, thus enabling self-monitoring of temperature during PTT. A thermal sensitivity of 1.4% °C was observed for the probe in temperature-sensing assays. Moreover, due to the combination of ratiometric fluorescent pH imaging, photothermal conversion and self-detection of temperature, PPy@RhB-PAA-FITC was successfully applied for pH-mediated tumor diagnosis and could self-monitor the treatment process. The proposed PPy@RhB-PAA-FITC broadens the application of PPy-based nanomaterials in ratiometric fluorescent pH imaging and self-feedback temperature-change-guided photothermal therapy.
构建了一种多功能荧光聚吡咯纳米治疗探针(记为PPy@RhB-PAA-FITC),用于癌症的pH传感引导光热疗法(PTT)以及PTT过程中温度变化的自我监测。温度响应性罗丹明B(RhB)和pH敏感的异硫氰酸荧光素(FITC)荧光染料分别通过包封和静电相互作用与用作光热治疗材料基质的聚吡咯(PPy)纳米颗粒相连。FITC的荧光强度随pH升高而显著增加,而RhB的发射强度变化很小,实现了比率荧光pH传感性能。对于pH检测,纳米探针在4.54至6.4的pH范围内呈线性,酸解离常数(p)为5.80。PPy纳米颗粒负责PTT,并赋予该纳米治疗系统36.24%的光热转换效率。同时,RhB的荧光强度随热诱导温度升高而降低,从而能够在PTT过程中自我监测温度。在温度传感测定中,该探针的热灵敏度为1.4%/°C。此外,由于比率荧光pH成像、光热转换和温度自我检测的结合,PPy@RhB-PAA-FITC成功应用于pH介导的肿瘤诊断,并能够自我监测治疗过程。所提出的PPy@RhB-PAA-FITC拓宽了基于PPy的纳米材料在比率荧光pH成像和自我反馈温度变化引导光热疗法中的应用。