Voluntary locomotion induces an early and remote hemodynamic decrease in the large cerebral veins.

IF 4.8 2区 医学 Q1 NEUROSCIENCES
Neurophotonics Pub Date : 2025-01-01 Epub Date: 2025-03-24 DOI:10.1117/1.NPh.12.S1.S14609
Beth Eyre, Kira Shaw, Sheila Francis, Clare Howarth, Jason Berwick
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引用次数: 0

Abstract

Significance: Behavior regulates dural and cerebral vessels, with spontaneous locomotion inducing dural vessel constriction and increasing stimulus-evoked cerebral hemodynamic responses. It is vital to investigate the function of different vascular network components, surrounding and within the brain, to better understand the role of the neurovascular unit in health and neurodegeneration.

Aim: We characterized locomotion-induced hemodynamic responses across vascular compartments of the whisker barrel cortex: artery, vein, parenchyma, draining, and meningeal vein.

Approach: Using 2D-OIS, hemodynamic responses during locomotion were recorded in 9- to 12-month-old awake mice: wild-type, Alzheimer's disease (AD), atherosclerosis, or mixed (atherosclerosis/AD) models. Within the somatosensory cortex, responses were taken from pial vessels inside the whisker barrel region [(WBR): "whisker artery" and "whisker vein"], a large vein from the sagittal sinus adjacent to the WBR (draining vein), and meningeal vessels from the dura mater (which do not penetrate cortical tissue).

Results: We demonstrate that locomotion evokes an initial decrease in total hemoglobin (HbT) within the draining vein before the increase in HbT within WBR vessels. The locomotion event size influences the magnitude of the HbT increase in the pial vessels of the WBR but not of the early HbT decrease within the draining veins. Following locomotion onset, an early HbT decrease was also observed in the overlying meningeal vessels, which unlike within the cortex did not go on to exceed baseline HbT levels during the remainder of the locomotion response. We show that locomotion-induced hemodynamic responses are altered in disease in the draining vein and whisker artery, suggesting this could be an important neurodegeneration biomarker.

Conclusions: This initial reduction in HbT within the draining and meningeal veins potentially serves as a "space-saving" mechanism, allowing for large increases in cortical HbT associated with locomotion. Given this mechanism is impacted by disease, it may provide an important target for vascular-based therapeutic interventions.

意义重大:行为会调节硬脑膜血管和脑血管,自发运动会诱发硬脑膜血管收缩并增加刺激诱发的脑血流动力学反应。研究大脑周围和内部不同血管网络成分的功能对于更好地理解神经血管单元在健康和神经退行性病变中的作用至关重要。目的:我们描述了运动诱导的须桶皮层各血管区的血流动力学反应:动脉、静脉、实质、引流和脑膜静脉:方法:使用 2D-OIS 记录 9 至 12 个月大清醒小鼠运动时的血液动力学反应:野生型、阿尔茨海默病(AD)、动脉粥样硬化或混合(动脉粥样硬化/AD)模型。在躯体感觉皮层内,我们采集了须桶区[(WBR):"须动脉 "和 "须静脉"]内的皮质血管、WBR附近矢状窦的大静脉(引流静脉)以及硬脑膜的脑膜血管(它们不会穿透皮层组织)的反应:结果:我们证明,运动会引起引流静脉内总血红蛋白(HbT)的最初下降,然后才会引起WBR血管内HbT的上升。运动事件的大小会影响 WBR 静脉血管内 HbT 增加的幅度,但不会影响引流静脉内早期 HbT 减少的幅度。运动开始后,在上覆的脑膜血管中也观察到了早期 HbT 下降,与皮层内不同的是,在运动反应的剩余时间内,脑膜血管中的 HbT 不会继续超过基线水平。我们的研究表明,在引流静脉和胡须动脉疾病中,运动诱导的血流动力学反应会发生改变,这表明这可能是一种重要的神经变性生物标志物:引流静脉和脑膜静脉中 HbT 的最初减少可能是一种 "节省空间 "的机制,使得与运动相关的皮质 HbT 大量增加。鉴于这种机制会受到疾病的影响,它可能为基于血管的治疗干预提供一个重要目标。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Neurophotonics
Neurophotonics Neuroscience-Neuroscience (miscellaneous)
CiteScore
7.20
自引率
11.30%
发文量
114
审稿时长
21 weeks
期刊介绍: At the interface of optics and neuroscience, Neurophotonics is a peer-reviewed journal that covers advances in optical technology applicable to study of the brain and their impact on the basic and clinical neuroscience applications.
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