College of Chemistry & Environmental Science, Analytical Chemistry Key Laboratory of Hebei Province, Hebei University, Baoding 071002, P.R. China.
Key Laboratory of Medicinal Chemistry and Molecular Diagnosis of the Ministry of Education, Institute of Life Science and Green Development, Hebei University, Baoding 071002, P.R. China.
ACS Nano. 2021 Jan 26;15(1):1100-1110. doi: 10.1021/acsnano.0c08068. Epub 2020 Nov 25.
Hypoxia can increase the resistance of tumor cells to radiotherapy and chemotherapy. However, the dense extracellular matrix, high interstitial fluid pressure, and irregular blood supply often serve as physical barriers to inhibit penetration of drugs or nanodrugs across tumor blood microvessels into hypoxic regions. Therefore, it is of great significance and highly desirable to improve the efficiency of hypoxia-targeted therapy. In this work, living photosynthetic bacteria (PSB) are utilized as hypoxia-targeted carriers for hypoxic tumor therapy due to their near-infrared (NIR) chemotaxis and their physiological characteristics as facultative aerobes. More interestingly, we discovered that PSB can serve as a kind of photothermal agent to generate heat through nonradiative relaxation pathways due to their strong photoabsorption in the NIR region. Therefore, PSB integrate the properties of hypoxia targeting and photothermal therapeutic agents in an "all-in-one" manner, and no postmodification is needed to achieve hypoxia-targeted cancer therapy. Moreover, as natural bacteria, noncytotoxic PSB were found to enhance immune response that induced the infiltration of cytotoxicity T lymphocyte. Our results indicate PSB specifically accumulate in hypoxic tumor regions, and they show a high efficiency in the elimination of cancer cells. This proof of concept may provide a smart therapeutic system in the field of hypoxia-targeted photothermal therapeutic platforms.
缺氧可以增加肿瘤细胞对放疗和化疗的抵抗力。然而,致密的细胞外基质、高间质液压力和不规则的血液供应常常成为物理屏障,抑制药物或纳米药物穿透肿瘤血管进入缺氧区域。因此,提高缺氧靶向治疗的效率具有重要意义和高度需求。在这项工作中,由于具有近红外(NIR)化学趋向性和兼性需氧的生理特性,活光合细菌(PSB)被用作缺氧肿瘤治疗的缺氧靶向载体。更有趣的是,我们发现 PSB 可以作为一种光热剂,通过非辐射弛豫途径产生热量,因为它们在 NIR 区域具有很强的光吸收。因此,PSB 以“一体化”的方式整合了缺氧靶向和光热治疗剂的特性,无需进行后期修饰即可实现缺氧靶向癌症治疗。此外,作为天然细菌,非细胞毒性的 PSB 被发现可以增强免疫反应,诱导细胞毒性 T 淋巴细胞的浸润。我们的结果表明 PSB 特异性地聚集在缺氧的肿瘤区域,并显示出高效消除癌细胞的能力。这一概念验证可能为缺氧靶向光热治疗平台领域提供了一种智能治疗系统。