Lai Marta, Gruetter Rolf, Lanz Bernard
Laboratory for Functional and Metabolic Imaging (LIFMET), École Polytechnique Fédérale de Lausanne, 1015 Lausanne, Switzerland.
Laboratory for Functional and Metabolic Imaging (LIFMET), École Polytechnique Fédérale de Lausanne, 1015 Lausanne, Switzerland; Department of Radiology, University of Geneva, 1205 Geneva, Switzerland; Department of Radiology, University of Lausanne, 1015 Lausanne, Switzerland.
Anal Biochem. 2017 Jul 15;529:229-244. doi: 10.1016/j.ab.2017.01.019. Epub 2017 Jan 22.
The combination of dynamic C MRS data under infusion of C-labelled substrates and compartmental models of cerebral metabolism enabled in vivo measurement of metabolic fluxes with a quantitative and distinct determination of cellular-specific activities. The non-invasive nature and the chemical specificity of the C dynamic data obtained in those tracer experiments makes it an attractive approach offering unique insights into cerebral metabolism. Genetically engineered mice present a wealth of disease models particularly interesting for the neuroscience community. Nevertheless, in vivoC NMR studies of the mouse brain are only recently appearing in the field due to the numerous challenges linked to the small mouse brain volume and the difficulty to follow the mouse physiological parameters within the NMR system during the infusion experiment. This review will present the progresses in the quest for a higher in vivoC signal-to-noise ratio up to the present state of the art techniques, which made it feasible to assess glucose metabolism in different regions of the mouse brain. We describe how experimental results were integrated into suitable compartmental models and how a deep understanding of cerebral metabolism depends on the reliable detection of C in the different molecules and carbon positions.
在输注碳标记底物的情况下,动态碳磁共振波谱(C MRS)数据与脑代谢的房室模型相结合,能够在体内测量代谢通量,并对细胞特异性活性进行定量且明确的测定。在这些示踪实验中获得的碳动态数据的非侵入性本质和化学特异性,使其成为一种具有吸引力的方法,能够为脑代谢提供独特的见解。基因工程小鼠提供了大量对神经科学界特别有意义的疾病模型。然而,由于与小鼠脑体积小相关的众多挑战以及在输注实验期间难以在核磁共振系统内跟踪小鼠生理参数,小鼠脑的体内碳核磁共振研究直到最近才出现在该领域。本综述将介绍在追求更高的体内碳信噪比方面取得的进展,直至目前的先进技术水平,这些技术使得评估小鼠脑不同区域的葡萄糖代谢成为可能。我们描述了实验结果如何被整合到合适的房室模型中,以及对脑代谢的深入理解如何依赖于在不同分子和碳位置对碳的可靠检测。