Department of Radiology, First Affiliated Hospital of Ningbo University, 59 Liuting Street, Ningbo, 315010, P. R. China.
Cixi Institute of Biomedical Engineering, International Cooperation Base of Biomedical Materials Technology and Application, CAS Key Laboratory of Magnetic Materials and Devices and Zhejiang Engineering Research Center for Biomedical Materials, Ningbo Institute of Materials Technology and Engineering, Chinese Academy of Sciences (CAS), Ningbo Key Laboratory of Biomedical Imaging Probe Materials and Technology, Ningbo, Zhejiang Province, 315201, P. R. China.
Small. 2024 Jul;20(28):e2308850. doi: 10.1002/smll.202308850. Epub 2024 Feb 16.
Personalized radiotherapy strategies enabled by the construction of hypoxia-guided biological target volumes (BTVs) can overcome hypoxia-induced radioresistance by delivering high-dose radiotherapy to targeted hypoxic areas of the tumor. However, the construction of hypoxia-guided BTVs is difficult owing to lack of precise visualization of hypoxic areas. This study synthesizes a hypoxia-responsive T, T, T mapping tri-modal MRI molecular nanoprobe (SPION@ND) and provides precise imaging of hypoxic tumor areas by utilizing the advantageous features of tri-modal magnetic resonance imaging (MRI). SPION@ND exhibits hypoxia-triggered dispersion-aggregation structural transformation. Dispersed SPION@ND can be used for routine clinical BTV construction using T-contrast MRI. Conversely, aggregated SPION@ND can be used for tumor hypoxia imaging assessment using T-contrast MRI. Moreover, by introducing T mapping, this work designs a novel method (adjustable threshold-based hypoxia assessment) for the precise assessment of tumor hypoxia confidence area and hypoxia level. Eventually this work successfully obtains hypoxia tumor target and accurates hypoxia tumor target, and achieves a one-stop hypoxia-guided BTV construction. Compared to the positron emission tomography-based hypoxia assessment, SPION@ND provides a new method that allows safe and convenient imaging of hypoxic tumor areas in clinical settings.
通过构建缺氧指导的生物靶区(BTV),可以实现个体化放疗策略,从而通过对肿瘤缺氧区域进行高剂量放疗来克服缺氧诱导的放射抵抗。然而,由于缺乏对缺氧区域的精确可视化,缺氧指导的 BTV 的构建具有一定的难度。本研究合成了一种缺氧响应的 T,T,T 映射三模态磁共振成像分子探针(SPION@ND),并利用三模态磁共振成像(MRI)的优势,对缺氧肿瘤区域进行精确成像。SPION@ND 表现出缺氧触发的分散-聚集结构转变。分散的 SPION@ND 可用于使用 T 对比 MRI 进行常规临床 BTV 构建。相反,聚集的 SPION@ND 可用于使用 T 对比 MRI 进行肿瘤缺氧成像评估。此外,通过引入 T 映射,本工作设计了一种新的方法(基于可调阈值的缺氧评估),用于精确评估肿瘤缺氧置信区和缺氧水平。最终,本工作成功获得了缺氧肿瘤靶区,并准确地获得了缺氧肿瘤靶区,实现了一站式缺氧指导的 BTV 构建。与基于正电子发射断层扫描的缺氧评估相比,SPION@ND 提供了一种新的方法,可以在临床环境中安全方便地对缺氧肿瘤区域进行成像。