State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Shanghai Engineering Research Center of Nano-Biomaterials and Regenerative Medicine, College of Biological Science and Medical Engineering, Donghua University, Shanghai 201620, China.
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Shanghai Engineering Research Center of Nano-Biomaterials and Regenerative Medicine, College of Biological Science and Medical Engineering, Donghua University, Shanghai 201620, China.
J Control Release. 2023 Mar;355:171-183. doi: 10.1016/j.jconrel.2023.01.076. Epub 2023 Feb 6.
Tumor vaccine that can effectively activate or strengthen the body's antitumor immune response to kill and eliminate tumor cells has attracted widespread attention. Currently developed tumor vaccines have severe shortcomings such as low bioavailability and lack of dual or multiple functions, resulting in poor antitumor efficacy. Herein, we report the development of an advanced nanosystem integrated with phenylboronic acid (PBA)-functionalized poly(amidoamine) dendrimers of generation 5 (G5), copper sulfide nanoparticles, and cyclic GMP-AMP (cGAMP), an immune adjuvant (for short, G5-PBA@CuS/cGAMP) to act as a photothermal-triggered nanovaccine. We show that the prepared functional nanosystem possesses an average CuS core size of 3.6 nm, prominent near-infrared absorption feature to have an excellent photothermal conversion efficiency of 44.0%, and good protein adsorption characteristics due to the PBA modification. With these features, the developed nanosystem can be adopted for photothermal therapy of primary melanoma tumors and simultaneously absorb the whole tumor cell antigens, thus creating photothermal-triggered dendrimeric nanovaccine of G5-PBA@CuS/cGAMP/antigen in situ to induce antitumor immune response to inhibit the distal tumors as well. Meanwhile, melanoma cells treated with the G5-PBA@CuS in vitro under laser irradiation allowed the creation of G5-PBA@CuS/antigen complexes that could be further integrated with cGAMP to form preformed nanovaccine for effective primary tumor inhibition and tumor occurrence prevention. The designed photothermal-triggered dendrimeric nanovaccine may represent an advanced nanomedicine formulation to effectively inhibit the growth of primary and distal tumors, and prevent tumor occurrence through the stimulated systemic antitumor immunity.
能够有效激活或增强机体抗肿瘤免疫反应,从而杀伤和消除肿瘤细胞的肿瘤疫苗受到了广泛关注。目前开发的肿瘤疫苗存在生物利用度低、缺乏双重或多重功能等严重缺点,导致抗肿瘤疗效不佳。在此,我们报告了一种先进的纳米系统的开发,该系统集成了苯硼酸(PBA)功能化的第 5 代聚酰胺-胺(PAMAM)树状大分子、硫化铜纳米粒子和环鸟苷酸-腺苷酸(cGAMP),一种免疫佐剂(简称 G5-PBA@CuS/cGAMP),用作光热触发的纳米疫苗。我们表明,所制备的功能纳米系统具有平均 3.6nm 的 CuS 核尺寸、显著的近红外吸收特征,具有优异的光热转换效率 44.0%,以及由于 PBA 修饰而具有良好的蛋白质吸附特性。凭借这些特性,所开发的纳米系统可用于原发性黑色素瘤肿瘤的光热治疗,同时吸收整个肿瘤细胞抗原,从而原位产生 G5-PBA@CuS/cGAMP/抗原光热触发树状纳米疫苗,以诱导抗肿瘤免疫反应抑制远端肿瘤。同时,体外在激光照射下用 G5-PBA@CuS 处理的黑色素瘤细胞允许形成 G5-PBA@CuS/抗原复合物,该复合物可以进一步与 cGAMP 整合形成预形成的纳米疫苗,以有效抑制原发性肿瘤和预防肿瘤发生。设计的光热触发树状纳米疫苗可能代表一种先进的纳米医学制剂,可通过刺激全身性抗肿瘤免疫来有效抑制原发性和远端肿瘤的生长并预防肿瘤发生。