Senescent Endothelial Cells in Cerebral Microcirculation Are Key Drivers of Age-Related Blood–Brain Barrier Disruption, Microvascular Rarefaction, and Neurovascular Coupling Impairment in Mice

IF 7.1 1区 医学 Q1 Biochemistry, Genetics and Molecular Biology Aging Cell Pub Date : 2025-04-01 DOI:10.1111/acel.70048
Boglarka Csik, Ádám Nyúl-Tóth, Rafal Gulej, Roland Patai, Tamas Kiss, Jordan Delfavero, Raghavendra Y. Nagaraja, Priya Balasubramanian, Santny Shanmugarama, Anna Ungvari, Siva Sai Chandragiri, Kiana Vali Kordestan, Mark Nagykaldi, Peter Mukli, Andriy Yabluchanskiy, Sharon Negri, Stefano Tarantini, Shannon Conley, Tae Gyu Oh, Zoltan Ungvari, Anna Csiszar
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Abstract

With advancing age, neurovascular dysfunction manifests as impaired neurovascular coupling (NVC), microvascular rarefaction, and blood–brain barrier (BBB) disruption, contributing to vascular cognitive impairment (VCI). Our previous research established a causal link between vascular senescence induced cerebromicrovascular dysfunction and cognitive decline in accelerated aging models. The present study examines whether chronological aging promotes endothelial senescence, adversely affecting neurovascular health, and whether senolytic therapies can enhance neurovascular function and cognitive performance in aged mice. We used transgenic p16-3MR mice to identify and eliminate senescent cells and employed genetic (ganciclovir) and pharmacological (ABT263/Navitoclax) senolytic approaches. Evaluations included spatial memory performance, NVC responses, cortical microvascular density, BBB permeability, and detection of senescent endothelial cells via flow cytometry. Brain endothelial cells exhibited heightened sensitivity to aging-induced senescence, undergoing senescence at a greater rate and earlier than other brain cell types, particularly during middle age. This microvascular endothelial cell senescence was associated with NVC dysfunction, microvascular rarefaction, BBB disruption, and deteriorating cognitive performance. On the other hand, senolytic treatments in aged mice improved NVC responses, BBB integrity, microvascular density, and learning capabilities. Notably, these findings suggest that the most effective time window for senolytic treatment is in middle-aged mice, where early intervention could better prevent neurovascular dysfunction and mitigate age-related cognitive impairment.

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脑微循环中的衰老内皮细胞是小鼠年龄相关血脑屏障破坏、微血管稀疏和神经血管偶联损伤的关键驱动因素。
随着年龄的增长,神经血管功能障碍表现为神经血管偶联(NVC)受损、微血管稀疏和血脑屏障(BBB)破坏,导致血管性认知障碍(VCI)。我们之前的研究在加速衰老模型中建立了血管衰老引起的脑血管功能障碍与认知能力下降之间的因果关系。本研究探讨了时间衰老是否会促进内皮细胞衰老,对神经血管健康产生不利影响,以及抗衰老疗法是否能增强老年小鼠的神经血管功能和认知能力。我们使用转基因p16-3MR小鼠来识别和消除衰老细胞,并采用遗传(更昔洛韦)和药物(ABT263/Navitoclax)方法进行衰老治疗。评估包括空间记忆表现、NVC反应、皮质微血管密度、血脑屏障通透性以及通过流式细胞术检测衰老内皮细胞。脑内皮细胞对衰老引起的衰老表现出高度的敏感性,比其他类型的脑细胞更快、更早地衰老,尤其是在中年时期。微血管内皮细胞衰老与NVC功能障碍、微血管稀疏、血脑屏障破坏和认知能力恶化有关。另一方面,老年小鼠的抗衰老治疗改善了NVC反应、血脑屏障完整性、微血管密度和学习能力。值得注意的是,这些发现表明,最有效的衰老治疗时间窗口是在中年小鼠中,早期干预可以更好地预防神经血管功能障碍,减轻与年龄相关的认知障碍。
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来源期刊
Aging Cell
Aging Cell 生物-老年医学
CiteScore
14.40
自引率
2.60%
发文量
212
审稿时长
8 weeks
期刊介绍: Aging Cell, an Open Access journal, delves into fundamental aspects of aging biology. It comprehensively explores geroscience, emphasizing research on the mechanisms underlying the aging process and the connections between aging and age-related diseases.
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