Department of Head and Neck Oncology and Department of Radiation Oncology, Cancer Center and State Key Laboratory of Biotherapy, West China Hospital, Sichuan University, Chengdu, 610041, China.
J Nanobiotechnology. 2024 Sep 4;22(1):536. doi: 10.1186/s12951-024-02793-x.
Adverse effects and multidrug resistance remain significant obstacles in conventional cancer therapy. Nanomedicines, with their intrinsic properties such as nano-sized dimensions and tunable surface characteristics, have the potential to mitigate the side effects of traditional cancer treatments. While nanomaterials have been widely applied in cancer treatment, challenges such as low targeting efficiency and poor tumor penetration persist. Recent research has shown that anaerobic bacteria exhibit high selectivity for primary tumors and metastatic cancers, offering good safety and superior tumor penetration capabilities. This suggests that combining nanomaterials with bacteria could complement their respective limitations, opening vast potential applications in cancer therapy. The use of bacteria in combination with nanomaterials for anticancer treatments, including chemotherapy, radiotherapy, and photothermal/photodynamic therapy, has contributed to the rapid development of the field of bacterial oncology treatments. This review explores the mechanisms of bacterial tumor targeting and summarizes strategies for synthesizing bacterial-nanomaterial and their application in cancer therapy. The combination of bacterial-nanomaterial hybrids with modern therapeutic approaches represents a promising avenue for future cancer treatment research, with the potential to improve treatment outcomes for cancer patients.
不良反应和多药耐药性仍然是传统癌症治疗的重大障碍。纳米医学具有纳米尺寸和可调节表面特性等固有特性,有可能减轻传统癌症治疗的副作用。虽然纳米材料已广泛应用于癌症治疗,但仍存在靶向效率低和肿瘤穿透性差等挑战。最近的研究表明,厌氧菌对原发性肿瘤和转移性癌症具有高度选择性,具有良好的安全性和优异的肿瘤穿透能力。这表明将纳米材料与细菌结合可以互补各自的局限性,为癌症治疗开辟广阔的应用前景。细菌与纳米材料联合应用于癌症治疗,包括化学疗法、放射疗法和光热/光动力疗法,推动了细菌肿瘤治疗领域的快速发展。本文探讨了细菌肿瘤靶向的机制,并总结了细菌-纳米材料的合成策略及其在癌症治疗中的应用。细菌-纳米材料杂合体与现代治疗方法的结合代表了未来癌症治疗研究的一个有前途的方向,有可能改善癌症患者的治疗效果。