Department of Drug Design and Pharmacology, Faculty of Health and Medical Sciences, University of Copenhagen, Copenhagen, Denmark.
J Neurochem. 2024 May;168(5):704-718. doi: 10.1111/jnc.15814. Epub 2023 Apr 7.
Ca/calmodulin-dependent protein kinase II alpha (CaMKIIα) is a key regulator of neuronal signaling and synaptic plasticity. Synaptic activity and neurotransmitter homeostasis are closely coupled to the energy metabolism of both neurons and astrocytes. However, whether CaMKIIα function is implicated in brain energy and neurotransmitter metabolism remains unclear. Here, we explored the metabolic consequences of CaMKIIα deletion in the cerebral cortex using a genetic CaMKIIα knockout (KO) mouse. Energy and neurotransmitter metabolism was functionally investigated in acutely isolated cerebral cortical slices using stable C isotope tracing, whereas the metabolic function of synaptosomes was assessed by the rates of glycolytic activity and mitochondrial respiration. The oxidative metabolism of [U-C]glucose was extensively reduced in cerebral cortical slices of the CaMKIIα KO mice. In contrast, metabolism of [1,2-C]acetate, primarily reflecting astrocyte metabolism, was unaffected. Cellular uptake, and subsequent metabolism, of [U-C]glutamate was decreased in cerebral cortical slices of CaMKIIα KO mice, whereas uptake and metabolism of [U-C]GABA were unaffected, suggesting selective metabolic impairments of the excitatory system. Synaptic metabolic function was maintained during resting conditions in isolated synaptosomes from CaMKIIα KO mice, but both the glycolytic and mitochondrial capacities became insufficient when the synaptosomes were metabolically challenged. Collectively, this study shows that global deletion of CaMKIIα significantly impairs cellular energy and neurotransmitter metabolism, particularly of neurons, suggesting a metabolic role of CaMKIIα signaling in the brain.
钙/钙调蛋白依赖性蛋白激酶 II 阿尔法(CaMKIIα)是神经元信号转导和突触可塑性的关键调节因子。突触活动和神经递质稳态与神经元和星形胶质细胞的能量代谢密切相关。然而,CaMKIIα 功能是否与大脑能量和神经递质代谢有关尚不清楚。在这里,我们使用基因敲除(KO)小鼠探索了大脑皮层中 CaMKIIα 缺失的代谢后果。使用稳定的 C 同位素示踪技术在急性分离的大脑皮质切片中对能量和神经递质代谢进行了功能研究,而突触体的代谢功能则通过糖酵解活性和线粒体呼吸率来评估。[U-C]葡萄糖的氧化代谢在 CaMKIIα KO 小鼠的大脑皮质切片中广泛减少。相比之下,[1,2-C]乙酸的代谢,主要反映星形胶质细胞的代谢,不受影响。[U-C]谷氨酸在 CaMKIIα KO 小鼠大脑皮质切片中的摄取和随后代谢减少,而[U-C]GABA 的摄取和代谢不受影响,提示兴奋性系统的选择性代谢损伤。在 CaMKIIα KO 小鼠分离的突触体中,在休息状态下保持突触代谢功能,但当代谢受到挑战时,糖酵解和线粒体的能力都变得不足。总的来说,这项研究表明,CaMKIIα 的全局缺失显著损害了细胞能量和神经递质代谢,特别是神经元的代谢,这表明 CaMKIIα 信号在大脑中的代谢作用。