Synthetic carbon-based lanthanide upconversion nanoparticles for enhanced photothermal therapy

IF 15.7 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Mei Yang, Yida Huang, Zhongxing Chen, Qianfang Ye, Zhenhai Zeng, Xinru You, Bijun Bao, Wenqian Xing, Nan Zhao, Zhilin Zou, Hongxian Pan, Xin Chen, Qingyi Gao, Tingting Chen, Shenrong Zhang, Aodong Chen, Yichen Xiao, Huilin Xu, Jiawei Li, Yongjiang Li, Na Kong, Wei Tao, Xingtao Zhou, Jinhai Huang
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Abstract

Photothermal therapy (PTT), a vanguard strategy in cancer/ocular neovascularization treatment, has attracted considerable attention owing to its precision, controllability, high efficacy, and minimal side effects. Nevertheless, its inherent limitations necessitate innovative solutions. One promising strategy is to develop reagents with enhanced photothermal conversion efficiency under long-wavelength laser irradiation. Carbon nanomaterials, known for their broad absorption spectra, are currently hindered by single-wavelength lasers in clinical treatments. In this study, we address this limitation by coating mesoporous carbon nanomaterials (MCNs) with a lanthanide oxysulfide up-conversion material (Y2O2S:Yb3+,Er3+), converting 980 nm light into visible light. This advancement enhances the photothermal conversion efficiency of the produced MCNs/Ln/GD/FR nanocomposites from 59.48% to 82.86%. Furthermore, the incorporation of gambogic acid and doxorubicin intensifies the synergistic photothermal therapy effect. A dual stimuli-responsive hydrogel (PNIPAM) is employed to ensure controlled drug release and safe delivery to tumors. Evaluations demonstrate that the MCNs/Ln/GD/FR nanocomposites exhibit exceptional tumor targeting and evident photothermal synergistic therapy effects on both subcutaneous and ocular in situ melanoma tumors by activating tumor-suppressive signaling pathways while inhibiting proliferation and differentiation-related pathways. These findings might pave the way for the development of photothermal reagent and offer valuable insights for advancing therapeutic strategies.

Abstract Image

用于增强光热治疗的合成碳基镧系上转化纳米颗粒
光热疗法(PTT)以其精确、可控性、高效、副作用小等优点,成为癌症/眼部新生血管治疗的前沿策略。然而,其固有的局限性需要创新的解决办法。开发在长波长激光照射下具有更高光热转换效率的试剂是一个很有前途的策略。碳纳米材料以其广泛的吸收光谱而闻名,目前在临床治疗中受到单波长激光的阻碍。在这项研究中,我们通过在介孔碳纳米材料(MCNs)上涂上镧系氧硫化物上转换材料(Y2O2S:Yb3+,Er3+)来解决这一限制,将980 nm的光转换为可见光。这一进展使制备的MCNs/Ln/GD/FR纳米复合材料的光热转换效率从59.48%提高到82.86%。此外,甘草酸和阿霉素的掺入增强了协同光热治疗的效果。采用双刺激反应水凝胶(PNIPAM)来确保药物的可控释放和肿瘤的安全递送。评估表明,MCNs/Ln/GD/FR纳米复合材料通过激活肿瘤抑制信号通路同时抑制增殖和分化相关通路,对皮下和眼部原位黑色素瘤肿瘤表现出卓越的肿瘤靶向性和明显的光热协同治疗作用。这些发现可能为光热试剂的发展铺平道路,并为推进治疗策略提供有价值的见解。
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来源期刊
Nature Communications
Nature Communications Biological Science Disciplines-
CiteScore
24.90
自引率
2.40%
发文量
6928
审稿时长
3.7 months
期刊介绍: Nature Communications, an open-access journal, publishes high-quality research spanning all areas of the natural sciences. Papers featured in the journal showcase significant advances relevant to specialists in each respective field. With a 2-year impact factor of 16.6 (2022) and a median time of 8 days from submission to the first editorial decision, Nature Communications is committed to rapid dissemination of research findings. As a multidisciplinary journal, it welcomes contributions from biological, health, physical, chemical, Earth, social, mathematical, applied, and engineering sciences, aiming to highlight important breakthroughs within each domain.
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