Tian Haotian, Xu Liang, Qiao Yang, Liu Menghui, Du Zihao, Xu Wei, Wang Juan, Dai Xingliang, Wang Zhongyong, Cheng Hongwei
Department of Neurosurgery, The First Affiliated Hospital of Anhui Medical University, Hefei, 230022, PR China.
Department of Neurosurgery, The Second Affiliated Hospital of Soochow University, Suzhou, 215004, PR China.
Mater Today Bio. 2025 May 12;32:101867. doi: 10.1016/j.mtbio.2025.101867. eCollection 2025 Jun.
Photothermal treatment (PTT) of glioma often requires a large number of animal models to enter the clinical stage, but the individual differences in animal models make the experimental results poor reproducibility. 3D bioprinting tumors made from hydrogels can provide efficient and accurate research models without sacrificing animals and avoiding species diversity. In this study, bioprintable and injectable TiO-loaded hydrogels were reported, which could be used for studying TiO NSs photothermal treatment of glioma. Results from the MTT kit showed that after photothermal treatment with TiO NSs, the survival rate of tumor cells in the 2D model was reduced to 35 ± 3. Rheological tests showed that the TiO-loaded hydrogels had good printability and injectability. 14 consecutive days of culture confirmed the feasibility of constructing tumors using bioinks composed of TiO-loaded hydrogels. In addition, in the photothermal therapy experiment of 3D bioprinting tumor models, the effective killing of tumor cells by TiO NSs confirmed the possibility of combining 3D bioprinted tumor models with photothermal therapy. After injecting TiO-loaded hydrogel , TiO NSs could effectively kill tumor cells by raising the temperature to 55 °C under near-infrared light irradiation for a short time. Bioprintable and injectable TiO-loaded hydrogel models are good for studying photothermal treatment of glioma, and 3D bioprinting tumor models have promising applications in photothermal therapy research for glioma.
胶质瘤的光热治疗(PTT)通常需要大量动物模型才能进入临床阶段,但动物模型的个体差异导致实验结果的可重复性较差。由水凝胶制成的3D生物打印肿瘤可以提供高效、准确的研究模型,且无需牺牲动物并避免物种差异。在本研究中,报道了一种可生物打印和注射的负载TiO的水凝胶,其可用于研究TiO纳米片对胶质瘤的光热治疗。MTT试剂盒结果显示,用TiO纳米片进行光热治疗后,二维模型中肿瘤细胞的存活率降至35±3。流变学测试表明,负载TiO的水凝胶具有良好的可打印性和可注射性。连续14天的培养证实了使用由负载TiO的水凝胶组成的生物墨水构建肿瘤的可行性。此外,在3D生物打印肿瘤模型的光热治疗实验中,TiO纳米片对肿瘤细胞的有效杀伤证实了将3D生物打印肿瘤模型与光热治疗相结合的可能性。注射负载TiO的水凝胶后,TiO纳米片在近红外光照射下短时间内将温度升高到55°C,可有效杀死肿瘤细胞。可生物打印和注射的负载TiO的水凝胶模型有利于研究胶质瘤的光热治疗,3D生物打印肿瘤模型在胶质瘤光热治疗研究中具有广阔的应用前景。