医学
体内
药物输送
免疫疗法
生物医学中的光声成像
肺
归巢(生物学)
癌症研究
生物发光成像
药品
病理
治疗性超声
吲哚青绿
治疗效果
炎症
巨噬细胞
治疗指标
肺癌
生物医学工程
免疫系统
肺损伤
药理学
分布(数学)
纳米医学
肺纤维化
毒品携带者
全身给药
纳米载体
靶向给药
临床前影像学
作者
Yibo Tang,Chaohao Liang,Fan Meng,Wenjie Yin,Fengbing He,Jian Zhang
摘要
Background: Acute lung injury (ALI) is a life-threatening condition lacking effective real-time monitoring and targeted therapeutic strategies. Cell-based drug delivery systems offer promise but are limited by the inability to track their in vivo distribution and therapeutic response. Methods: Macrophages were engineered to carry aluminum hydroxide-stabilized Tocilizumab (Alum/Toc) and labeled with indocyanine green (ICG) for photoacoustic (PA) imaging. The resulting platform (MΦ/ICG@Alum/Toc) was intravenously administered to Lipopolysaccharides (LPS)-induced ALI mice. Photoacoustic computed tomography (PACT) was used to monitor the dynamic recruitment, pulmonary accumulation, and clearance of the engineered cells over 48 h. Therapeutic efficacy was evaluated by histopathology and lung wet/dry ratio, and biosafety was assessed in major organs. Results: PACT enabled non-invasive, high-resolution tracking of nanoengineered macrophages, revealing rapid homing to inflamed lungs within 6 h, peak accumulation at 24 h, and subsequent hepatic clearance. Three-dimensional (3D) volumetric analysis confirmed targeted pulmonary delivery with minimal off-target distribution. The MΦ/ICG@Alum/Toc platform significantly reduced alveolar edema, inflammatory infiltration, and histopathological scores compared to free Toc, demonstrating superior therapeutic efficacy with excellent biocompatibility. Conclusion: This study establishes PACT as a powerful tool for guiding and monitoring cell-based therapies in real time. The nanoengineered macrophage platform offers a clinically translatable strategy for precision immunotherapy of ALI, with potential applications in other inflammatory diseases.
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