Key Laboratory of Optoelectronic Devices and Systems of Guangdong Province and Ministry of Education, College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen, China.
Cancer Med. 2024 Oct;13(19):e70155. doi: 10.1002/cam4.70155.
The tumor microenvironment (TME) plays a critical role in cancer progression and response to immunotherapy. Immunotherapy targeting the immune system has emerged as a promising treatment modality, but challenges in understanding the TME limit its efficacy. Optical imaging strategies offer noninvasive, real-time insights into the interactions between immune cells and the TME.
This review assesses the progress of optical imaging technologies in monitoring immunotherapy within the TME and explores their potential applications in clinical trials and personalized cancer treatment.
This is a comprehensive literature review based on the advances in optical imaging modalities including fluorescence imaging (FLI), bioluminescence imaging (BLI), and photoacoustic imaging (PAI). These modalities were analyzed for their capacity to provide high-resolution, real-time imaging of immune cell dynamics, tumor vasculature, and other critical components of the TME.
Optical imaging techniques have shown significant potential in tracking immune cell infiltration, assessing immune checkpoint inhibitors, and visualizing drug delivery within the TME. Technologies like FLI and BLI are pivotal in tracking immune responses in preclinical models, while PAI provides functional imaging with deeper tissue penetration. The integration of these modalities with immunotherapy holds promise for improving treatment monitoring and outcomes.
Optical imaging is a powerful tool for understanding the complexities of the TME and optimizing immunotherapy. Further advancements in imaging technologies, combined with nanomaterial-based approaches, could pave the way for enhanced diagnostic accuracy and therapeutic efficacy in cancer treatment.
肿瘤微环境(TME)在癌症进展和免疫治疗反应中起着关键作用。针对免疫系统的免疫疗法已成为一种有前途的治疗方式,但对 TME 的理解挑战限制了其疗效。光学成像策略提供了对免疫细胞与 TME 之间相互作用的非侵入性、实时洞察。
本综述评估了光学成像技术在监测 TME 中免疫疗法的进展,并探讨了它们在临床试验和个性化癌症治疗中的潜在应用。
这是一项基于光学成像方式(包括荧光成像(FLI)、生物发光成像(BLI)和光声成像(PAI))进展的综合文献综述。这些方式被分析了其提供免疫细胞动力学、肿瘤血管生成和 TME 其他关键成分的高分辨率、实时成像的能力。
光学成像技术在跟踪免疫细胞浸润、评估免疫检查点抑制剂和可视化 TME 内药物输送方面显示出了巨大的潜力。FLI 和 BLI 等技术在临床前模型中跟踪免疫反应方面至关重要,而 PAI 则提供了具有更深组织穿透能力的功能成像。这些方式与免疫疗法的结合有望改善治疗监测和结果。
光学成像技术是理解 TME 复杂性和优化免疫疗法的有力工具。成像技术的进一步发展,结合纳米材料方法,可能为癌症治疗中的诊断准确性和治疗效果的提高铺平道路。