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清醒状态下的脑磁共振波谱成像揭示了麻醉敏感性以及区域衰老对小鼠[C]碳酸氢盐代谢的影响。

Awake brain MRSI reveals anesthetic sensitivity and regional aging effects on [C]bicarbonate metabolism in mice.

作者信息

Ono Maiko, Kono Rena, Hirata Kosei, Saito Keita, Nakao Motonao, Takakusagi Yoichi, Araki Rikita, Sumiyoshi Akira, Takado Yuhei

机构信息

Institute for Quantum Life Science, National Institutes for Quantum Science and Technology, Chiba, Japan.

Department of Neuroscience, Genetics, and Genomic Sciences, Icahn School of Medicine at Mount Sinai, New York, NY, United States.

出版信息

Front Neuroimaging. 2025 Feb 12;4:1506126. doi: 10.3389/fnimg.2025.1506126. eCollection 2025.

Abstract

Abnormalities and alterations in the glycolytic pathway in the pathology of neurodegenerative diseases and brain aging have received much attention, as clinical applications of proton-based magnetic resonance spectroscopy (MRS) have recently illuminated the elevation of lactate concentrations in the brains of patients with neurodegenerative diseases, including Alzheimer's disease. Hyperpolarized [1-C]pyruvate MRS has shown promise for neurological applications because it enables the real-time detection of glycolysis and oxidative phosphorylation flux. In studies of the mouse brain using hyperpolarized [1-C]pyruvate, there are few reports that the signal of [C]bicarbonate, a product of oxidative phosphorylation metabolized from [1-C]pyruvate, was detected using MR spectroscopic imaging (MRSI) that allows spatial mapping of metabolism, although there have been reports of [C]bicarbonate signals being detected by pulse-acquire sequences in the entire brain. In the present study, we compared hyperpolarized [1-C]pyruvate metabolism between the brains of awake and isoflurane-anesthetized mice using a custom-made awake mouse restraint device with MRSI. Although the signal for [1-C]lactate, a product of glycolysis metabolized from [1-C]pyruvate, was detectable in multiple brain regions that include the orbitofrontal cortex and hippocampus in both awake and anesthetized mice, the signal for [C]bicarbonate metabolized from [1-C]pyruvate was only detectable in the brains of awake mice. Moreover, a comparison of hyperpolarized [1-C]pyruvate metabolism in young and aged mouse brains using awake MRSI detected age-related decreases in oxidative phosphorylation flux in brain regions that include the hippocampus with variations in the extent of these changes across different brain regions. These results demonstrate that hyperpolarized [1-C]pyruvate MRSI under awake conditions is useful for the spatial detection of abnormalities and alterations in glycolysis and oxidative phosphorylation flux in the brains of mice. Thus, the use of hyperpolarized [1-C]pyruvate MRSI has potential in pathological and mechanistic studies of brain diseases and brain aging.

摘要

神经退行性疾病病理学和脑老化过程中糖酵解途径的异常和改变备受关注,因为基于质子的磁共振波谱(MRS)的临床应用最近揭示了包括阿尔茨海默病在内的神经退行性疾病患者大脑中乳酸浓度的升高。超极化[1-C]丙酮酸MRS在神经学应用中显示出前景,因为它能够实时检测糖酵解和氧化磷酸化通量。在使用超极化[1-C]丙酮酸对小鼠大脑进行的研究中,虽然有报道称通过脉冲采集序列在整个大脑中检测到了[C]碳酸氢盐信号,但很少有报告表明使用能够进行代谢空间映射的磁共振波谱成像(MRSI)检测到了从[1-C]丙酮酸代谢而来的氧化磷酸化产物[C]碳酸氢盐的信号。在本研究中,我们使用定制的清醒小鼠约束装置和MRSI,比较了清醒小鼠和异氟烷麻醉小鼠大脑中[1-C]丙酮酸的超极化代谢情况。虽然在清醒和麻醉小鼠的多个脑区(包括眶额皮质和海马体)中都能检测到从[1-C]丙酮酸代谢而来的糖酵解产物[1-C]乳酸的信号,但从[1-C]丙酮酸代谢而来的[C]碳酸氢盐信号仅在清醒小鼠的大脑中可检测到。此外,使用清醒MRSI对年轻和老年小鼠大脑中[1-C]丙酮酸的超极化代谢进行比较,发现包括海马体在内的脑区中氧化磷酸化通量存在与年龄相关的下降,且不同脑区这些变化的程度有所不同。这些结果表明,清醒条件下的超极化[1-C]丙酮酸MRSI可用于空间检测小鼠大脑中糖酵解和氧化磷酸化通量的异常和改变。因此,超极化[1-C]丙酮酸MRSI在脑部疾病和脑老化的病理学及机制研究中具有潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d201/11861090/bdb514d7805d/fnimg-04-1506126-g001.jpg

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