Institute of Pharmaceutics, College of Pharmaceutical Sciences, Zhejiang University, Hangzhou, 310058, P. R. China.
Interdisciplinary Institute of Neuroscience and Technology, School of Medicine, Zhejiang University, Hangzhou, 310029, P. R. China.
Adv Mater. 2021 Jan;33(2):e2004917. doi: 10.1002/adma.202004917. Epub 2020 Dec 2.
The assessment of vascular anatomy and functions using magnetic resonance imaging (MRI) is critical for medical diagnosis, whereas the commonly used low-field MRI system (≤3 T) suffers from low spatial resolution. Ultrahigh field (UHF) MRI (≥7 T), with significantly improved resolution and signal-to-noise ratio, shows great potential to provide high-resolution vasculature images. However, practical applications of UHF MRI technology for vascular imaging are currently limited by the low sensitivity and accuracy of single-mode (T or T ) contrast agents. Herein, a UHF-tailored T -T dual-mode iron oxide nanoparticle-based contrast agent (UDIOC) with extremely small core size and ultracompact hydrophilic surface modification, exhibiting dually enhanced T -T contrast effect under the 7 T magnetic field, is reported. The UDIOC enables clear visualization of microvasculature as small as ≈140 µm in diameter under UHF MRI, extending the detection limit of the 7 T MR angiography. Moreover, by virtue of high-resolution UHF MRI and a simple double-checking process, UDIOC-based dual-mode dynamic contrast-enhanced MRI is successfully applied to detect tumor vascular permeability with extremely high sensitivity and accuracy, providing a novel paradigm for the precise medical diagnosis of vascular-related diseases.
利用磁共振成像(MRI)评估血管解剖结构和功能对于医学诊断至关重要,而常用的低场 MRI 系统(≤3T)存在空间分辨率低的问题。超高场(UHF)MRI(≥7T)具有显著提高的分辨率和信噪比,显示出提供高分辨率血管图像的巨大潜力。然而,UHF MRI 技术在血管成像中的实际应用目前受到单模(T1 或 T2)对比剂灵敏度和准确性低的限制。在此,报道了一种针对 UHF 的 T1-T2 双模态氧化铁纳米颗粒基造影剂(UDIOC),其具有极小的核尺寸和超紧凑的亲水表面修饰,在 7T 磁场下表现出双重增强的 T1-T2 对比效果。UDIOC 能够在 UHF MRI 下清晰地可视化直径约为 ≈140µm 的微血管,将 7T 磁共振血管成像的检测极限扩展。此外,借助高分辨率 UHF MRI 和简单的双重检查过程,UDIOC 基双模态动态对比增强 MRI 成功应用于检测肿瘤血管通透性,具有极高的灵敏度和准确性,为血管相关疾病的精确医学诊断提供了一种新的范例。