Yang Yubiao, Zhang Lei, Xiao Chao, Huang Zhencheng, Zhao Fuli, Yin Jinchang
School of Physics, State Key Laboratory of Optoelectronic Materials and Technologies, Sun Yat-Sen University, Guangzhou 510275, China.
School of Biomedical Engineering, Health Science Center, Shenzhen University, Shenzhen 518060, China.
Nanophotonics. 2024 Feb 5;13(4):443-455. doi: 10.1515/nanoph-2023-0772. eCollection 2024 Feb.
Upconversion photodynamic therapy (UC-PDT), which integrates upconversion nanoparticles (UCNPs) with photosensitizers (PSs), presents a promising advancement in the field of phototherapy. However, despite the extensive studies focused on the design and synthesis of UCNPs, there is a paucity of systematic research on the mechanisms underlying the synergistic upconversion photodynamic effects. Here we have synthesized upconversion core@dotted-shell nanoparticles (CDSNPs) and covalently tethered them with two distinct PSs, thereby constructing a dual-PS UC-PDT system with high synergistic photodynamic performance. To unravel the mechanism underlying the synergism, we employed a combination of quantum mechanical calculations and ultrafast time-resolved spectroscopy techniques. The results indicate that rare earth oxides play a pivotal role in enhancing the intersystem crossing processes of PSs through modulating their excited electronic states. Additionally, Förster resonance energy transfer between two distinct PSs contributes to the amplification of triplet state populations, thus further enhancing the photodynamic effect. experiments demonstrate that the prepared CDSNPs based dual-PS system exhibits excellent biocompatibility with normal cells and exceptional synergistic photodynamic efficacy against tumor cells upon near-infrared excitation. This research contributes theoretical insights into the design and application of multi-photosensitizer UC-PDT systems, laying the groundwork for more efficient preclinical implementations in the future.
上转换光动力疗法(UC-PDT)将上转换纳米颗粒(UCNPs)与光敏剂(PSs)相结合,在光疗领域展现出了有前景的进展。然而,尽管对UCNPs的设计和合成进行了广泛研究,但对上转换光动力协同效应背后的机制却缺乏系统研究。在此,我们合成了上转换核@点壳纳米颗粒(CDSNPs),并将其与两种不同的PSs共价连接,从而构建了具有高协同光动力性能的双PS UC-PDT系统。为了揭示协同作用的机制,我们结合了量子力学计算和超快时间分辨光谱技术。结果表明,稀土氧化物通过调节PSs的激发电子态,在增强其系间窜越过程中起着关键作用。此外,两种不同PSs之间的Förster共振能量转移有助于三重态种群的放大,从而进一步增强光动力效应。实验表明,所制备的基于CDSNPs的双PS系统对正常细胞具有优异的生物相容性,在近红外激发下对肿瘤细胞具有出色的协同光动力疗效。本研究为多光敏剂UC-PDT系统的设计和应用提供了理论见解,为未来更高效的临床前应用奠定了基础。