Exploring the potential of water channels for developing genetically encoded reporters and biosensors for diffusion-weighted MRI

IF 2 3区 化学 Q3 BIOCHEMICAL RESEARCH METHODS Journal of magnetic resonance Pub Date : 2024-08-01 DOI:10.1016/j.jmr.2024.107743
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Abstract

Genetically encoded reporters for magnetic resonance imaging (MRI) offer a valuable technology for making molecular-scale measurements of biological processes within living organisms with high anatomical resolution and whole-organ coverage without relying on ionizing radiation. However, most MRI reporters rely on synthetic contrast agents, typically paramagnetic metals and metal complexes, which often need to be supplemented exogenously to create optimal contrast. To eliminate the need for synthetic contrast agents, we previously introduced aquaporin-1, a mammalian water channel, as a new reporter gene for the fully autonomous detection of genetically labeled cells using diffusion-weighted MRI. In this study, we aimed to expand the toolbox of diffusion-based genetic reporters by modulating aquaporin membrane trafficking and harnessing the evolutionary diversity of water channels across species. We identified a number of new water channels that functioned as diffusion-weighted reporter genes. In addition, we show that loss-of-function variants of yeast and human aquaporins can be leveraged to design first-in-class diffusion-based sensors for detecting the activity of a model protease within living cells.

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探索水通道在开发用于扩散加权核磁共振成像的基因编码报告器和生物传感器方面的潜力。
用于磁共振成像(MRI)的基因编码报告物提供了一种宝贵的技术,可在不依赖电离辐射的情况下,以高解剖分辨率和全器官覆盖范围对生物体内的生物过程进行分子尺度测量。然而,大多数核磁共振成像报告器依赖于合成造影剂,通常是顺磁性金属和金属复合物,这些造影剂往往需要外源补充才能产生最佳对比度。为了消除对合成造影剂的需求,我们之前引入了哺乳动物水通道 aquaporin-1 作为新的报告基因,利用扩散加权核磁共振成像完全自主地检测基因标记的细胞。在这项研究中,我们旨在通过调节水通道蛋白的膜贩运和利用水通道在不同物种间的进化多样性来扩展基于扩散的遗传报告基因工具箱。我们发现了一些可作为扩散加权报告基因的新水通道。此外,我们还展示了酵母和人类水通道蛋白的功能缺失变体可用于设计一流的基于扩散的传感器,以检测活细胞内模型蛋白酶的活性。
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来源期刊
CiteScore
3.80
自引率
13.60%
发文量
150
审稿时长
69 days
期刊介绍: The Journal of Magnetic Resonance presents original technical and scientific papers in all aspects of magnetic resonance, including nuclear magnetic resonance spectroscopy (NMR) of solids and liquids, electron spin/paramagnetic resonance (EPR), in vivo magnetic resonance imaging (MRI) and spectroscopy (MRS), nuclear quadrupole resonance (NQR) and magnetic resonance phenomena at nearly zero fields or in combination with optics. The Journal''s main aims include deepening the physical principles underlying all these spectroscopies, publishing significant theoretical and experimental results leading to spectral and spatial progress in these areas, and opening new MR-based applications in chemistry, biology and medicine. The Journal also seeks descriptions of novel apparatuses, new experimental protocols, and new procedures of data analysis and interpretation - including computational and quantum-mechanical methods - capable of advancing MR spectroscopy and imaging.
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