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用于婴儿脑积水的可持续预极化磁共振成像系统的设计

Design of a sustainable prepolarizing magnetic resonance imaging system for infant hydrocephalus.

作者信息

Obungoloch Johnes, Harper Joshua R, Consevage Steven, Savukov Igor M, Neuberger Thomas, Tadigadapa Srinivas, Schiff Steven J

机构信息

Center for Neural Engineering, The Pennsylvania State University, University Park, 16802, USA.

Department of Biomedical Engineering, The Pennsylvania State University, University Park, 16802, USA.

出版信息

MAGMA. 2018 Oct;31(5):665-676. doi: 10.1007/s10334-018-0683-y. Epub 2018 Apr 11.

Abstract

OBJECTIVES

The need for affordable and appropriate medical technologies for developing countries continues to rise as challenges such as inadequate energy supply, limited technical expertise, and poor infrastructure persist. Low-field magnetic resonance imaging (LF MRI) is a technology that can be tailored to meet specific imaging needs within such countries. Its low power requirements and the possibility of operating in minimally shielded or unshielded environments make it especially attractive. Although the technology has been widely demonstrated over several decades, it is yet to be shown that it can be diagnostic and improve patient outcomes in clinical applications. We here demonstrate the robustness of prepolarizing MRI (PMRI) technology for assembly and deployment in developing countries for the specific application to infant hydrocephalus. Hydrocephalus treatment planning and management requires only modest spatial resolution, such that the brain can be distinguished from fluid-tissue contrast detail within the brain parenchyma is not essential.

MATERIALS AND METHODS

We constructed an internally shielded PMRI system based on the Lee-Whiting coil system with a 22-cm diameter of spherical volume.

RESULTS

In an unshielded room, projection phantom images were acquired at 113 kHz with in-plane resolution of 3 mm × 3 mm, by introducing gradient fields of sufficient magnitude to dominate the 5000 ppm inhomogeneity of the readout field.

DISCUSSION

The low cost, straightforward assembly, deployment potential, and maintenance requirements demonstrate the suitability of our PMRI system for developing countries. Further improvement in image spatial resolution and contrast of LF MRI will broaden its potential clinical utility beyond hydrocephalus.

摘要

目标

随着能源供应不足、技术专业知识有限和基础设施薄弱等挑战持续存在,发展中国家对经济适用且合适的医疗技术的需求不断增加。低场磁共振成像(LF MRI)是一种可以进行定制以满足这些国家特定成像需求的技术。其低功率要求以及在最小屏蔽或无屏蔽环境中运行的可能性使其格外具有吸引力。尽管该技术在过去几十年中已得到广泛验证,但尚未证明其在临床应用中能够进行诊断并改善患者预后。我们在此展示了预极化MRI(PMRI)技术在发展中国家进行组装和部署以专门应用于婴儿脑积水的稳健性。脑积水的治疗规划和管理仅需要适度的空间分辨率,这样就能区分脑实质内的脑与液体组织对比细节并非至关重要。

材料与方法

我们基于Lee-Whiting线圈系统构建了一个内部屏蔽的PMRI系统,其球形体积直径为22厘米。

结果

在一个无屏蔽的房间里,通过引入足够强度的梯度场以主导读出场5000 ppm的不均匀性,在113 kHz下采集投影体模图像,面内分辨率为3毫米×3毫米。

讨论

低成本、简单的组装、部署潜力和维护要求表明我们的PMRI系统适用于发展中国家。LF MRI图像空间分辨率和对比度的进一步提高将拓宽其在脑积水之外的潜在临床应用。

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Lancet. 2016 Feb 20;387(10020):788-99. doi: 10.1016/S0140-6736(15)60694-8. Epub 2015 Aug 6.
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