Huang Wei, Shi Sujiang, Lv Haoran, Ju Zhenyu, Liu Qinghua, Chen Tianfeng
Jieyang Medical Research Center, Jieyang People's Hospital, Tianfu Road 107, Rongcheng District, Jieyang, Guangdong, 522000, China.
Department of Chemistry, Jinan University, Guangzhou, 510632, China.
Bioact Mater. 2023 May 12;27:560-573. doi: 10.1016/j.bioactmat.2023.04.010. eCollection 2023 Sep.
The therapeutic efficacy of radioimmunotherapy against triple negative breast cancer (TNBC) is largely limited by the complicated tumor microenvironment (TME) and its immunosuppressive state. Thus developing a strategy to reshape TME is expected to achieve highly efficient radioimmunotherapy. Therefore, we designed and synthesized a tellurium (Te)-driven maple leaf manganese carbonate nanotherapeutics (MnCO@Te) by gas diffusion method, but also provided a chemical catalytic strategy to augment ROS level and activate immune cells for improving cancer radioimmunotherapy. As expected, with the help of HO in TEM, MnCO@Te heterostructure with reversible Mn/Mn transition could catalyze the intracellular ROS overproduction to amplify radiotherapy. In addition, by virtue of the ability to scavenge H in TME by carbonate group, MnCO@Te directly promote the maturation of dendritic cells and macrophage M1 repolarization by stimulator of interferon genes (STING) pathway activation, resulting in remodeling immuno-microenvironment. As a result, MnCO@Te synergized with radiotherapy and immune checkpoint blockade therapy effectively inhibited the breast cancer growth and lung metastasis . Collectively, these findings indicate that MnCO@Te as an agonist, successfully overcome radioresistance and awaken immune systems, showing promising potential for solid tumor radioimmunotherapy.
放射免疫疗法对三阴性乳腺癌(TNBC)的治疗效果在很大程度上受到复杂的肿瘤微环境(TME)及其免疫抑制状态的限制。因此,开发一种重塑TME的策略有望实现高效的放射免疫疗法。为此,我们通过气体扩散法设计并合成了碲(Te)驱动的枫叶状碳酸锰纳米治疗剂(MnCO@Te),同时还提供了一种化学催化策略来提高活性氧水平并激活免疫细胞,以改善癌症放射免疫疗法。正如预期的那样,在TEM中HO的帮助下,具有可逆Mn/Mn转变的MnCO@Te异质结构可以催化细胞内活性氧的过量产生,从而增强放射治疗效果。此外,凭借碳酸根在TME中清除H的能力,MnCO@Te通过刺激干扰素基因(STING)途径激活,直接促进树突状细胞的成熟和巨噬细胞M1极化,从而重塑免疫微环境。结果,MnCO@Te与放射治疗和免疫检查点阻断疗法协同作用,有效抑制了乳腺癌的生长和肺转移。总的来说,这些发现表明MnCO@Te作为一种激动剂,成功克服了放射抗性并唤醒了免疫系统,在实体瘤放射免疫疗法中显示出有前景的潜力。