Lee Dabin, Sun Hyungjin, Bang Jieun, Heo Tae-Young, Pham Duong Thi-Thuy, Jang Jong Dae, Han Young Soo, Shin Tae Joo, Choi Soo-Hyung, Park JaeHong, Doh Junsang, Park Juhyun
Department of Chemical Engineering, Chung-Ang University, Seoul, 06974, Republic of Korea.
Interdisciplinary Program in Bioengineering, Seoul National University, Seoul, 08826, Republic of Korea.
Adv Healthc Mater. 2025 Apr;14(11):e2403570. doi: 10.1002/adhm.202403570. Epub 2024 Nov 28.
This study presents a nanohybrid that simultaneously improves both photothermal (PT) and photodynamic (PD) effects for cancer therapy. The conjugated polymer nanoparticle (CPN) comprises of p-type conjugated polymer as a photosensitizer, charge donor, and PT agent, n-type conjugated polymer as a charge acceptor and PD agent, and Au nanoparticles (NPs) as a PT agent. This nanohybrid is assembled through a film dispersion process using a hydrophobically modified phospholipid, producing a high yield of uniform hybrid NPs in a short timeframe, and displays exceptional photothermal and photodynamic effects, when activated at a single near-infrared wavelength. Photophysical analysis indicates that the inclusion of Au NPs enhances nonradiative exciton relaxation, while the incorporation of a n-type conjugated polymer boosts photoinduced charge transfer and potentially contributes to the charge-recombination mediated triplet-state formation for an enhanced generation of reactive oxygen species. During phototherapy, the nanohybrid demonstrates the most effective suppression of primary tumor growth and significantly boosts anti-tumor immune responses owing to its simultaneous photothermal and photodynamic effects. Furthermore, when combined with immune checkpoint inhibitors, nanohybrid treatment minimizes tumor sizes while maximizing survival rates in mice. Thus, the nanohybrid represents a promising nanoplatform for combination phototherapy in cancer treatment.
本研究提出了一种纳米杂化物,其可同时增强光热(PT)和光动力(PD)效应以用于癌症治疗。共轭聚合物纳米颗粒(CPN)由作为光敏剂、电荷供体和PT剂的p型共轭聚合物、作为电荷受体和PD剂的n型共轭聚合物以及作为PT剂的金纳米颗粒(NP)组成。这种纳米杂化物通过使用疏水改性磷脂的薄膜分散工艺组装而成,可在短时间内高产率地制备出均匀的杂化NP,并且在单一近红外波长下被激活时表现出优异的光热和光动力效应。光物理分析表明,金NP的加入增强了非辐射激子弛豫,而n型共轭聚合物的掺入促进了光诱导电荷转移,并可能有助于电荷复合介导的三重态形成,从而增强活性氧的产生。在光疗过程中,该纳米杂化物表现出对原发性肿瘤生长的最有效抑制,并且由于其同时具有的光热和光动力效应而显著增强了抗肿瘤免疫反应。此外,当与免疫检查点抑制剂联合使用时,纳米杂化物治疗可使小鼠肿瘤尺寸最小化,同时使存活率最大化。因此,该纳米杂化物是癌症治疗中联合光疗的一种有前景的纳米平台。