Contributions of synaptic glutamate versus neuronal spiking activity to cerebral vascular responses in awake mice.

IF 4.5 2区 医学 Q1 ENDOCRINOLOGY & METABOLISM
Jenna M Peretin, Christopher G Cover, Alberto L Vazquez
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引用次数: 0

Abstract

Neurovascular coupling is the temporal relationship between neuronal activity and regional blood flow changes presumably to meet the high metabolic demands of the brain. Prior fMRI studies have reported excitatory synaptic transmission as more metabolically demanding than neuronal spiking, thus correlating better with cerebral hemodynamics. To investigate this finding with newer optical imaging techniques, we used fluorescent markers for extracellular synaptic glutamate and intracellular neuronal calcium to directly measure relationships between synaptic and spiking activities on local vascular changes in awake mice under evoked and spontaneous conditions. To determine which signal better predicts hemodynamic responses, we used a linear convolution model. Using wide field optical imaging (WFOI), we observed peak fluorescence values of 0.38% and 5.60% in synaptic glutamate and neuronal calcium, respectively, to whisker stimulation, and values of 3.13% and 35.77%, respectively, using two-photon microscopy (2PM). Following whisker stimulation, mean R2 values were 0.64 and 0.79 for synaptic glutamate and neuronal calcium, respectively, with WFOI and 0.67 and 0.56, respectively, with 2PM. From WFOI resting-state, mean R2 values were 0.73 and 0.68 for synaptic glutamate and neuronal calcium, respectively. Altogether, both signals perform similarly in predicting hemodynamic responses, with no significant differences in their prediction efficacy.

突触谷氨酸和神经元尖峰活动对清醒小鼠脑血管反应的贡献。
神经血管耦合是神经元活动和区域血流变化之间的时间关系,可能是为了满足大脑的高代谢需求。先前的fMRI研究表明,兴奋性突触传递比神经元尖峰更需要代谢,因此与脑血流动力学的相关性更好。为了用新的光学成像技术研究这一发现,我们使用细胞外突触谷氨酸和细胞内神经元钙的荧光标记来直接测量在诱发和自发条件下清醒小鼠局部血管变化中突触和尖峰活动之间的关系。为了确定哪个信号能更好地预测血流动力学反应,我们使用了线性卷积模型。利用广角光学成像(WFOI)观察到,在须须刺激下,突触谷氨酸和神经元钙的峰值荧光值分别为0.38%和5.60%,双光子显微镜(2PM)的峰值荧光值分别为3.13%和35.77%。须刺激后,WFOI组突触谷氨酸和神经元钙的平均R2分别为0.64和0.79,2PM组分别为0.67和0.56。从WFOI静息状态来看,突触谷氨酸和神经元钙的平均R2分别为0.73和0.68。总之,这两种信号在预测血流动力学反应方面表现相似,在预测效果上没有显著差异。
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来源期刊
Journal of Cerebral Blood Flow and Metabolism
Journal of Cerebral Blood Flow and Metabolism 医学-内分泌学与代谢
CiteScore
12.00
自引率
4.80%
发文量
300
审稿时长
3 months
期刊介绍: JCBFM is the official journal of the International Society for Cerebral Blood Flow & Metabolism, which is committed to publishing high quality, independently peer-reviewed research and review material. JCBFM stands at the interface between basic and clinical neurovascular research, and features timely and relevant research highlighting experimental, theoretical, and clinical aspects of brain circulation, metabolism and imaging. The journal is relevant to any physician or scientist with an interest in brain function, cerebrovascular disease, cerebral vascular regulation and brain metabolism, including neurologists, neurochemists, physiologists, pharmacologists, anesthesiologists, neuroradiologists, neurosurgeons, neuropathologists and neuroscientists.
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