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三磷酸腺苷通过激活 P2Y 型嘌呤能受体诱导培养的脑毛细血管周细胞收缩。

ATP induces contraction of cultured brain capillary pericytes via activation of P2Y-type purinergic receptors.

机构信息

Department of Pharmacy, Faculty of Health and Medical Sciences, University of Copenhagen, Copenhagen, Denmark.

Department of Neuroscience, Faculty of Health and Medical Sciences, University of Copenhagen, Copenhagen, Denmark.

出版信息

Am J Physiol Heart Circ Physiol. 2021 Feb 1;320(2):H699-H712. doi: 10.1152/ajpheart.00560.2020. Epub 2020 Dec 11.

Abstract

Brain capillary pericytes have been suggested to play a role in the regulation of cerebral blood flow under physiological and pathophysiological conditions. ATP has been shown to cause constriction of capillaries under ischemic conditions and suggested to be involved in the "no-reflow" phenomenon. To investigate the effects of extracellular ATP on pericyte cell contraction, we studied purinergic receptor activation of cultured bovine brain capillary pericytes. We measured intracellular Ca concentration ([Ca]) responses to purinergic agonists with the fluorescent indicators fura-2 and Cal-520 and estimated contraction of pericytes as relative change in cell area, using real-time confocal imaging. Addition of ATP caused an increase in cytosolic calcium and contraction of the brain capillary pericytes, both reversible and inhibited by the purinergic receptor antagonist pyridoxalphosphate-6-azophenyl-2',4'-disulfonic acid (PPADS). Furthermore, we demonstrated that ATP-induced contraction could be eliminated by intracellular calcium chelation with BAPTA, indicating that the contraction was mediated via purinergic P2-type receptor-mediated [Ca] signaling. ATP stimulation induced inositol triphosphate signaling, consistent with the notion of P2Y receptor activation. Receptor profiling studies demonstrated the presence of P2Y and P2Y receptors, using ATP, UTP, ADP, and the subtype specific agonists MRS2365 (P2Y) and 2-thio-UTP (P2Y). Addition of specific P2X agonists only caused an [Ca] increase at high concentrations, attributed to activation of inositol triphosphate signaling. Our results suggest that contraction of brain capillary pericytes in vitro by activation of P2Y-type purinergic receptors is caused by intracellular calcium release. This adds more mechanistic understanding of the role of pericytes in vessel constriction and points toward P2Y receptors as potential therapeutic targets. The study concerns brain capillary pericytes, which have been suggested to play a role in the regulation of cerebral blood flow. We show that extracellular ATP causes contraction of primary brain pericytes by stimulation of purinergic receptors and subsequent release of intracellular Ca concentration ([Ca]). The contraction is mainly mediated through activation of P2Y-receptor subtypes, including P2Y and P2Y. These findings add more mechanistic understanding of the role of pericytes in regulation of capillary blood flow. ATP was earlier suggested to be involved in capillary constriction in brain pathologies, and our study gives a detailed account of a part of this important mechanism.

摘要

脑毛细血管周细胞被认为在生理和病理生理条件下调节脑血流中起作用。已有研究表明,三磷酸腺苷(ATP)在缺血条件下可引起毛细血管收缩,并被认为与“无复流”现象有关。为了研究细胞外 ATP 对周细胞收缩的影响,我们研究了培养的牛脑毛细血管周细胞的嘌呤能受体激活。我们使用荧光指示剂 fura-2 和 Cal-520 测量了嘌呤能激动剂对细胞内 Ca 浓度 ([Ca]) 的反应,并使用实时共焦成像估计了周细胞的收缩,即细胞面积的相对变化。添加 ATP 引起细胞浆钙离子增加和脑毛细血管周细胞收缩,这两种反应均为可逆的,且被嘌呤能受体拮抗剂 Pyridoxalphosphate-6-azophenyl-2',4'-disulfonic acid (PPADS) 抑制。此外,我们证明,ATP 诱导的收缩可以通过细胞内钙螯合作用用 BAPTA 消除,表明收缩是通过嘌呤能 P2 型受体介导的 [Ca] 信号转导介导的。ATP 刺激诱导三磷酸肌醇信号转导,与 P2Y 受体激活的概念一致。受体分析研究表明,使用 ATP、UTP、ADP 和亚型特异性激动剂 MRS2365(P2Y)和 2-硫代 UTP(P2Y),存在 P2Y 和 P2Y 受体。仅在高浓度时,添加特定的 P2X 激动剂才会引起 [Ca] 增加,归因于三磷酸肌醇信号的激活。我们的结果表明,体外通过激活 P2Y 型嘌呤能受体使脑毛细血管周细胞收缩是由细胞内钙释放引起的。这增加了对周细胞在血管收缩中的作用的机制理解,并指出 P2Y 受体可能是潜在的治疗靶点。该研究涉及脑毛细血管周细胞,这些细胞被认为在调节脑血流中起作用。我们表明,细胞外 ATP 通过刺激嘌呤能受体并随后释放细胞内 Ca 浓度 ([Ca]) 引起原代脑周细胞收缩。收缩主要通过激活 P2Y 受体亚型介导,包括 P2Y 和 P2Y。这些发现增加了对周细胞在毛细血管血流调节中作用的机制理解。ATP 先前被认为参与脑病理学中的毛细血管收缩,我们的研究详细说明了这一重要机制的一部分。

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