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Differential regulation of TRPV1 channels by H2O2: implications for diabetic microvascular dysfunction

机译:H2O2对TRPV1通道的差异调节:对糖尿病微血管功能障碍的影响

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摘要

We demonstrated previously that TRPV1-dependent coupling of coronary blood flow (CBF) to metabolism is disrupted in diabetes. A critical amount of H2O2 contributes to CBF regulation; however, excessive H2O2 impairs responses. We sought to determine the extent to which differential regulation of TRPV1 by H2O2 modulates CBF and vascular reactivity in diabetes. We used contrast echocardiography to study TRPV1 knockout (V1KO), db/db diabetic, and wild type C57BKS/J (WT) mice. H2O2 dose-dependently increased CBF in WT mice, a response blocked by the TRPV1 antagonist SB366791. H2O2-induced vasodilation was significantly inhibited in db/db and V1KO mice. H2O2 caused robust SB366791-sensitive dilation in WT coronary microvessels; however, this response was attenuated in vessels from db/db and V1KO mice, suggesting H2O2-induced vasodilation occurs, in part, via TRPV1. Acute H2O2 exposure potentiated capsaicin-induced CBF responses and capsaicin-mediated vasodilation in WT mice, whereas prolonged luminal H2O2 exposure blunted capsaicin-induced vasodilation. Electrophysiology studies re-confirms acute H2O2 exposure activated TRPV1 in HEK293A and bovine aortic endothelial cells while establishing that H2O2 potentiate capsaicin-activated TRPV1 currents, whereas prolonged H2O2 exposure attenuated TRPV1 currents. Verification of H2O2-mediated activation of intrinsic TRPV1 specific currents were found in isolated mouse coronary endothelial cells from WT mice and decreased in endothelial cells from V1KO mice. These data suggest prolonged H2O2 exposure impairs TRPV1-dependent coronary vascular signaling. This may contribute to microvascular dysfunction and tissue perfusion deficits characteristic of diabetes.
机译:我们以前证明糖尿病患者冠状动脉血流(CBF)依赖TRPV1的耦合被破坏。临界量的H2O2有助于CBF的调节;但是,过量的H2O2会损害反应。我们试图确定H2O2对TRPV1的差异调节在糖尿病中调节CBF和血管反应性的程度。我们使用对比超声心动图来研究TRPV1基因敲除(V1KO),db / db糖尿病和野生型C57BKS / J(WT)小鼠。 H2O2剂量依赖性地增加WT小鼠的CBF,这一反应被TRPV1拮抗剂SB366791阻断。 H2O2诱导的血管舒张作用在db / db和V1KO小鼠中得到显着抑制。 H2O2在WT冠状动脉微血管中引起强大的SB366791敏感性扩张;但是,这种反应在db / db和V1KO小鼠的血管中减弱了,这表明H2O2诱导的血管舒张部分通过TRPV1发生。急性H2O2暴露增强了辣椒素诱导的WT小鼠的CBF反应和辣椒素介导的血管舒张,而长时间的腔内H 2 O 2 暴露却使辣椒素诱导的血管舒张减弱。电生理研究重新证实了急性H 2 O 2 暴露激活了HEK293A和牛主动脉内皮细胞中的TRPV1,同时确定了H 2 O 2 增强了辣椒素激活的TRPV1电流,而延长的H 2 O 2 暴露则减弱了TRPV1电流。在WT小鼠的分离的小鼠冠状内皮细胞中发现了H 2 O 2 介导的内在TRPV1特异性电流的激活,而在V1KO小鼠的内皮细胞中降低了。这些数据表明,长时间的H 2 O 2 暴露会损害TRPV1依赖性冠状血管信号传导。这可能导致糖尿病的微血管功能障碍和组织灌注不足。

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