Quan Zhiyan, Yang Zhaoxia, Tang Xiaocui, Fu Caixia, Zhou Xiaoyue, Huang Lu, Xia Liming, Zhang Xiaotong
The Interdisciplinary Institute of Neuroscience and Technology, School of Medicine, Zhejiang University, Hangzhou, China.
Key Laboratory for Biomedical Engineering of Ministry of Education, College of Biomedical Engineering & Instrument Science, Zhejiang University, Hangzhou, China.
NMR Biomed. 2024 Feb;37(2):e5049. doi: 10.1002/nbm.5049. Epub 2023 Sep 28.
Magnetic resonance imaging (MRI)/magnetic resonance spectroscopy (MRS) employing proton nuclear resonance has emerged as a pivotal modality in clinical diagnostics and fundamental research. Nonetheless, the scope of MRI/MRS extends beyond protons, encompassing nonproton nuclei that offer enhanced metabolic insights. A notable example is phosphorus-31 ( P) MRS, which provides valuable information on energy metabolites within the skeletal muscle and cardiac tissues of individuals affected by diabetes. This study introduces a novel double-tuned coil tailored for H and P frequencies, specifically designed for investigating cardiac metabolism in rabbits. The proposed coil design incorporates a butterfly-like coil for P transmission, a four-channel array for P reception, and an eight-channel array for H reception, all strategically arranged on a body-conformal elliptic cylinder. To assess the performance of the double-tuned coil, a comprehensive evaluation encompassing simulations and experimental investigations was conducted. The simulation results demonstrated that the proposed P transmit design achieved acceptable homogeneity and exhibited comparable transmit efficiency on par with a band-pass birdcage coil. In vivo experiments further substantiated the coil's efficacy, revealing that the rabbit with experimentally induced diabetes exhibited a lower phosphocreatine/adenosine triphosphate ratio compared with its normal counterpart. These findings emphasize the potential of the proposed coil design as a promising tool for investigating the therapeutic effects of novel diabetes drugs within the context of animal experimentation. Its capability to provide detailed metabolic information establishes it as an indispensable asset within this realm of research.
利用质子核磁共振的磁共振成像(MRI)/磁共振波谱(MRS)已成为临床诊断和基础研究中的关键手段。尽管如此,MRI/MRS的范围不仅限于质子,还包括能提供更多代谢信息的非质子原子核。一个显著的例子是磷-31(³¹P)MRS,它能为受糖尿病影响个体的骨骼肌和心脏组织中的能量代谢物提供有价值的信息。本研究介绍了一种专为氢(¹H)和³¹P频率定制的新型双调谐线圈,特别设计用于研究兔子的心脏代谢。所提出的线圈设计包括一个用于³¹P发射的蝶形线圈、一个用于³¹P接收的四通道阵列和一个用于¹H接收的八通道阵列,所有这些都巧妙地布置在一个贴合身体的椭圆圆柱体上。为了评估双调谐线圈的性能,进行了包括模拟和实验研究在内的全面评估。模拟结果表明,所提出的³¹P发射设计实现了可接受的均匀性,并且与带通鸟笼线圈相比,具有相当的发射效率。体内实验进一步证实了该线圈的有效性,结果显示,实验性诱导糖尿病的兔子与正常兔子相比,其磷酸肌酸/三磷酸腺苷比值更低。这些发现强调了所提出的线圈设计作为在动物实验背景下研究新型糖尿病药物治疗效果的有前景工具的潜力。它提供详细代谢信息的能力使其成为该研究领域不可或缺的资产。