School of Environmental and Chemical Engineering, Shanghai University, Shanghai 200444, China.
School of Environmental and Chemical Engineering, Shanghai University, Shanghai 200444, China.
J Colloid Interface Sci. 2025 Jan 15;678(Pt C):583-594. doi: 10.1016/j.jcis.2024.09.108. Epub 2024 Sep 20.
Biological engineering bacteria hold great promise in tumor therapy due to their targeted delivery, tumor penetration, and tumor-specific activation capabilities. However, the use of live bacteria raises safety concerns, as they can potentially cause infections or adverse immune responses in patients. Additionally, most biological engineering bacteria are only responsive to blue light, which has limited penetration depth within biological tissues. To address these limitations, we have developed a nanoplatform that combines dual-emission upconversion nanoparticles (referred to as DDUCNPs), which can realize dual-wavelength emission under dual-wavelength excitation, with biological engineering bacteria for tumor treatment and the self-clearance of biological engineering bacteria after therapy in the near-infrared (NIR) window. This design allows us to utilize 980 nm light, which is converted to blue light by the DDUCNPs, to activate the bacteria and promote the controlled release of tumor necrosis factor-alpha (TNF-α) for precise tumor ablation. Subsequently, we employ 808 nm excitation to achieve light conversion into the red light, thereby activating photosensitizer molecules and generating singlet oxygen (ROS) for in vivo clearance of the bacteria involved in the treatment. Simultaneously, the generated ROS also undergoes photodynamic therapy (PDT) on the tumor to enhance the therapeutic effect. By combining these elements on a single platform, our system achieves the activation and self-clearance of biological engineering bacteria in the NIR window, effectively enabling tumor treatment. This approach overcomes the limitations of blue light penetration and addresses safety concerns associated with live bacteria, offering a promising strategy for precise and controlled tumor therapy.
生物工程细菌由于其靶向递药、肿瘤穿透和肿瘤特异性激活能力,在肿瘤治疗中具有很大的应用前景。然而,使用活细菌会引起安全性问题,因为它们可能会在患者中引起感染或不良反应。此外,大多数生物工程细菌仅对蓝光有响应,而蓝光在生物组织内的穿透深度有限。为了解决这些限制,我们开发了一种纳米平台,将双发射上转换纳米粒子(简称 DDUCNPs)与生物工程细菌结合,用于肿瘤治疗,并在近红外(NIR)窗口中实现生物工程细菌治疗后的自我清除。该设计允许我们利用 980nm 光,通过 DDUCNPs 将其转换为蓝光,以激活细菌并促进肿瘤坏死因子-α(TNF-α)的控制释放,从而实现精确的肿瘤消融。随后,我们采用 808nm 激发来实现光转换为红光,从而激活光敏剂分子并产生单线态氧(ROS),用于体内清除参与治疗的细菌。同时,生成的 ROS 还对肿瘤进行光动力治疗(PDT),以增强治疗效果。通过在单个平台上结合这些元素,我们的系统实现了生物工程细菌在 NIR 窗口中的激活和自我清除,有效地实现了肿瘤治疗。这种方法克服了蓝光穿透的限制,并解决了活细菌相关的安全性问题,为精确和可控的肿瘤治疗提供了一种有前途的策略。