School of Biomedical Engineering, Shenzhen University Medical School, Shenzhen University, Shenzhen, Guangdong, 518055, China.
Center for AIE Research, Guangdong Provincial Key Laboratory of New Energy Materials Service Safety, College of Materials Science and Engineering, Shenzhen University, Shenzhen, 518060, P. R. China.
Adv Mater. 2024 Sep;36(38):e2406474. doi: 10.1002/adma.202406474. Epub 2024 Jul 26.
One-for-all phototheranostics based on a single molecule is recognized as a convenient approach for cancer treatment, whose efficacy relies on precise lesion localization through multimodal imaging, coupled with the efficient exertion of phototherapy. To unleash the full potential of phototheranostics, advancement in both phototheranostic agents and light delivery methods is essential. Herein, an integrated strategy combining a versatile molecule featuring aggregation-induced emission, namely tBuTTBD, with a modified optical fiber to realize comprehensive tumor diagnosis and "inside-out" irradiation in the orthotopic breast tumor, is proposed for the first time. Attributed to the intense donor-acceptor interaction, highly distorted conformation, abundant molecular rotors, and loose intermolecular packing upon aggregation, tBuTTBD can synchronously undergo second near-infrared (NIR-II) fluorescence emission, photothermal and photodynamic generation under laser irradiation, contributing to a trimodal NIR-II fluorescence-photoacoustic (PA)-photothermal imaging-guided phototherapy. The tumor treatment is further carried out following the insertion of a modified optical fiber, which is fabricated by splicing a flat-end fiber with an air-core fiber. This configuration aims to enable effective in situ phototherapy by maximizing energy utilization for therapeutic benefits. This work not only enriches the palette of NIR-II phototheranostic agents but also provides valuable insight for exploring an integrated phototheranostic protocol for practical cancer treatment.
基于单个分子的万能光热治疗被认为是癌症治疗的一种便捷方法,其疗效依赖于通过多模态成像进行精确的病变定位,同时结合光疗的有效发挥。为了充分发挥光热治疗的潜力,光热治疗剂和光传输方法的改进都至关重要。在此,首次提出了一种将具有聚集诱导发射特性的多功能分子 tBuTTBD 与改良光纤相结合的综合策略,以实现原位乳腺癌的全面肿瘤诊断和“内向外”照射。由于强烈的供体-受体相互作用、高度扭曲的构象、丰富的分子转子和聚集时松散的分子间堆积,tBuTTBD 可以在激光照射下同步进行第二次近红外(NIR-II)荧光发射、光热和光动力产生,有助于实现 NIR-II 荧光-光声(PA)-光热成像引导的光疗。肿瘤治疗是在插入改良光纤后进行的,改良光纤是通过将平头光纤与空心光纤拼接而成的。这种配置旨在通过最大化能量利用来实现有效的原位光疗,以获得治疗效益。这项工作不仅丰富了 NIR-II 光热治疗剂的选择,还为探索用于实际癌症治疗的综合光热治疗方案提供了有价值的见解。