MOE Key Laboratory of Laser Life Science & Institute of Laser Life Science, College of Biophotonics, South China Normal University, Guangzhou 510631, China.
Guangdong Provincial Key Laboratory of Laser Life Science, College of Biophotonics, South China Normal University, Guangzhou 510631, China.
ACS Nano. 2023 Aug 8;17(15):14604-14618. doi: 10.1021/acsnano.3c01723. Epub 2023 Jul 20.
Accurately monitoring the three-dimensional (3D) temperature distribution of the tumor area is a critical task that remains challenging in precision cancer photothermal (PT) therapy. Here, by ingeniously constructing a polyethylene glycol-coated tungsten-doped vanadium dioxide (W-VO@PEG) photoacoustic (PA) nanothermometer (NThem) that linearly and reversibly responds to the thermal field near the human-body-temperature range, the authors propose a method to realize quantitative 3D temperature rendering of deep tumors to promote precise cancer PT therapy. The prepared NThems exhibit a mild phase transition from the monoclinic phase to the rutile phase when their temperature grows from 35 to 45 °C, with the optical absorption sharply increased ∼2-fold at 1064 nm in an approximately linear manner in the near-infrared-II (NIR-II) region, enabling W-VO@PEG to be used as NThems for quantitative temperature monitoring of deep tumors with basepoint calibration, as well as diagnostic agents for PT therapy. Experimental results showed that the temperature measurement accuracy of the proposed method can reach 0.3 °C, with imaging depths up to 2 and 0.65 cm in tissue-mimicking phantoms and mouse tumor tissue, respectively. In addition, it was verified through PT therapy experiments in mice that the proposed method can achieve extremely high PT therapy efficiency by monitoring the temperature of the target area during PT therapy. This work provides a potential demonstration promoting precise cancer PT therapy through quantitative 3D temperature rendering of deep tumors by PA NThems with higher security and higher efficacy.
准确监测肿瘤区域的三维(3D)温度分布是精准癌症光热(PT)治疗中的一项关键任务,但仍然具有挑战性。在这里,作者通过巧妙构建一种聚乙二醇(PEG)包覆的掺钨二氧化钒(W-VO@PEG)光声(PA)纳米温度计(NThem),使其在接近人体温度范围内的热场中呈线性和可逆响应,提出了一种实现深层肿瘤定量 3D 温度渲染以促进精准癌症 PT 治疗的方法。所制备的 NThem 从 35°C 升高到 45°C 时,从单斜相到金红石相发生温和的相变,在近红外二区(NIR-II)中,其在 1064nm 处的光学吸收以近似线性方式急剧增加约 2 倍,从而使 W-VO@PEG 可用作深部肿瘤定量温度监测的 NThem,实现以基点校准,以及用于 PT 治疗的诊断剂。实验结果表明,该方法的温度测量精度可达 0.3°C,在组织模拟体模和小鼠肿瘤组织中的成像深度分别可达 2cm 和 0.65cm。此外,通过在小鼠中的 PT 治疗实验验证,通过在 PT 治疗期间监测目标区域的温度,该方法可以实现极高的 PT 治疗效率。这项工作通过具有更高安全性和更高疗效的 PA NThem 实现了深层肿瘤的定量 3D 温度渲染,为精准癌症 PT 治疗提供了潜在的示范。