Shaffer Annabelle, Kwok Susanna S, Naik Anant, Anderson Aaron T, Lam Fan, Wszalek Tracey, Arnold Paul M, Hassaneen Wael
Carle Illinois College of Medicine, University of Illinois at Urbana-Champaign, Champaign, IL, United States.
Beckman Institute for Advanced Science and Technology, University of Illinois at Urbana-Champaign, Champaign, IL, United States.
Front Neurol. 2022 Apr 5;13:857825. doi: 10.3389/fneur.2022.857825. eCollection 2022.
Gliomas, tumors of the central nervous system, are classically diagnosed through invasive surgical biopsy and subsequent histopathological study. Innovations in ultra-high field (UHF) imaging, namely 7-Tesla magnetic resonance imaging (7T MRI) are advancing preoperative tumor grading, visualization of intratumoral structures, and appreciation of small brain structures and lesions.
Summarize current innovative uses of UHF imaging techniques in glioma diagnostics and treatment.
A systematic review in accordance with PRISMA guidelines was performed utilizing PubMed. Case reports and series, observational clinical trials, and randomized clinical trials written in English were included. After removing unrelated studies and those with non-human subjects, only those related to 7T MRI were independently reviewed and summarized for data extraction. Some preclinical animal models are briefly described to demonstrate future usages of ultra-high-field imaging.
We reviewed 46 studies (43 human and 3 animal models) which reported clinical usages of UHF MRI in the diagnosis and management of gliomas. Current literature generally supports greater resolution imaging from 7T compared to 1.5T or 3T MRI, improving visualization of cerebral microbleeds and white and gray matter, and providing more precise localization for radiotherapy targeting. Additionally, studies found that diffusion or susceptibility-weighted imaging techniques applied to 7T MRI, may be used to predict tumor grade, reveal intratumoral structures such as neovasculature and microstructures like axons, and indicate isocitrate dehydrogenase 1 mutation status in preoperative imaging. Similarly, newer imaging techniques such as magnetic resonance spectroscopy and chemical exchange saturation transfer imaging can be performed on 7T MRI to predict tumor grading and treatment efficacy. Geometrical distortion, a known challenge of 7T MRI, was at a tolerable level in all included studies.
UHF imaging has the potential to preoperatively and non-invasively grade gliomas, provide precise therapy target areas, and visualize lesions not seen on conventional MRI.
胶质瘤是中枢神经系统肿瘤,传统上通过侵入性手术活检及后续组织病理学研究来诊断。超高场(UHF)成像技术的创新,即7特斯拉磁共振成像(7T MRI),正在推动术前肿瘤分级、肿瘤内部结构可视化以及对小脑结构和病变的识别。
总结UHF成像技术在胶质瘤诊断和治疗中的当前创新应用。
按照PRISMA指南,利用PubMed进行系统综述。纳入用英文撰写的病例报告及系列研究、观察性临床试验和随机临床试验。在剔除无关研究及非人类受试者研究后,仅对与7T MRI相关的研究进行独立评审和总结以提取数据。简要描述了一些临床前动物模型以展示超高场成像的未来用途。
我们回顾了46项研究(43项人体研究和3项动物模型研究),这些研究报告了UHF MRI在胶质瘤诊断和管理中的临床应用。当前文献普遍支持7T MRI相比1.5T或3T MRI具有更高的分辨率成像,能改善脑微出血以及白质和灰质的可视化,并为放射治疗靶点提供更精确的定位。此外,研究发现应用于7T MRI的扩散或 susceptibility加权成像技术可用于预测肿瘤分级、揭示肿瘤内部结构如新生血管以及轴突等微观结构,并在术前成像中显示异柠檬酸脱氢酶1突变状态。同样,诸如磁共振波谱和化学交换饱和转移成像等更新的成像技术可在7T MRI上进行,以预测肿瘤分级和治疗效果。几何畸变是7T MRI已知的一个挑战,在所有纳入研究中均处于可耐受水平。
UHF成像有潜力在术前对胶质瘤进行非侵入性分级,提供精确的治疗靶区,并可视化传统MRI上未见的病变。