School of Fundamental Sciences, Bengbu Medical University, Bengbu 233030, China.
Department of Radiology, Guizhou Provincial People's Hospital, Guiyang, Guizhou 550000, China.
ACS Appl Bio Mater. 2024 Nov 18;7(11):7133-7169. doi: 10.1021/acsabm.4c01318. Epub 2024 Nov 4.
Cancer remains a formidable challenge, inflicting profound physical, psychological, and financial burdens on patients. In this context, silica-based nanomaterials have garnered significant attention for their potential in tumor imaging and therapy owing to their exceptional properties, such as biocompatibility, customizable porosity, and versatile functionalization capabilities. This review meticulously examines the latest advancements in the application of silica-based nanomaterials for tumor imaging and therapy. It underscores their potential in enhancing various cancer imaging modalities, including fluorescence imaging, magnetic resonance imaging, computed tomography, positron emission tomography, ultrasound imaging, and multimodal imaging approaches. Moreover, the review delves into their therapeutic efficacy in chemotherapy, radiotherapy, phototherapy, immunotherapy, gas therapy, sonodynamic therapy, chemodynamic therapy, starvation therapy, and gene therapy. Critical evaluations of the biosafety profiles and degradation pathways of these nanomaterials within biological environments are also presented. By discussing the current challenges and prospects, this review aims to provide a nuanced perspective on the clinical translation of silica-based nanomaterials, thereby highlighting their promise in revolutionizing cancer diagnostics, enabling real-time monitoring of therapeutic responses, and advancing personalized medicine.
癌症仍然是一个严峻的挑战,给患者带来了深刻的身体、心理和经济负担。在这种情况下,基于硅的纳米材料因其独特的性质,如生物相容性、可定制的孔隙率和多功能的功能化能力,在肿瘤成像和治疗方面引起了广泛关注。
本综述详细研究了基于硅的纳米材料在肿瘤成像和治疗中的最新应用进展。它强调了它们在增强各种癌症成像方式(包括荧光成像、磁共振成像、计算机断层扫描、正电子发射断层扫描、超声成像和多模态成像方法)中的潜力。此外,本综述还探讨了它们在化学疗法、放射疗法、光疗、免疫疗法、气体疗法、声动力学疗法、化学动力学疗法、饥饿疗法和基因疗法中的治疗效果。还介绍了这些纳米材料在生物环境中的生物安全性概况和降解途径的批判性评估。
通过讨论当前的挑战和前景,本综述旨在提供对基于硅的纳米材料临床转化的细致视角,从而突出它们在癌症诊断方面的革命性潜力,实现治疗反应的实时监测,并推进个性化医疗。