Underly Robert G, Shih Andy Y
Department of Neuroscience, Medical University of South Carolina, Charleston, SC, United States.
Center for Developmental Biology and Regenerative Medicine, Seattle Children's Research Institute, Seattle, WA, United States.
Front Physiol. 2021 Jan 11;11:619230. doi: 10.3389/fphys.2020.619230. eCollection 2020.
Nitric oxide serves essential roles in normal vascular physiology, but paradoxically contributes to vascular pathology in disease. During brain ischemia, aberrant nitric oxide levels can cause cellular injury through induction of nitrosative/oxidative stress and post-translational activation of matrix-metalloproteinase-9 (MMP-9). We recently demonstrated that brain pericyte somata were associated with very early and localized MMP-9 activation along capillaries during cerebral ischemia, leading to focal blood-brain barrier disruption. Here, we tested whether this effect was dependent upon nitric oxide production. two-photon imaging was used to directly visualize MMP9 activity using a FITC-gelatin probe and leakage of intravenous dye during photothrombotically induced capillary ischemia. Results showed that the NOS inhibitor, L-NIL, at concentrations affecting both iNOS and constitutive NOS isoforms, attenuated capillary leakage at pericyte soma-specific locations and substantially reduced FITC-gelatin cleavage. We also found that combined administration of L-NIL and anisomycin, an inhibitor of protein synthesis, led to near complete elimination of FITC-gelatin cleavage and vascular leakage. These results indicate that both nitric oxide synthase and new protein synthesis are involved in the rapid activation of MMP-9 at somata of capillary pericytes during ischemia.
一氧化氮在正常血管生理中发挥着重要作用,但矛盾的是,在疾病状态下它会促进血管病变。在脑缺血期间,异常的一氧化氮水平可通过诱导亚硝化/氧化应激和基质金属蛋白酶-9(MMP-9)的翻译后激活而导致细胞损伤。我们最近证明,在脑缺血期间,脑周细胞胞体与沿毛细血管的MMP-9的极早期和局部激活相关,导致局灶性血脑屏障破坏。在此,我们测试了这种效应是否依赖于一氧化氮的产生。利用双光子成像,通过FITC-明胶探针直接观察MMP9活性以及在光血栓诱导的毛细血管缺血期间静脉染料的渗漏情况。结果显示,NOS抑制剂L-NIL在影响诱导型一氧化氮合酶(iNOS)和组成型NOS同工型的浓度下,可减轻周细胞胞体特定位置的毛细血管渗漏,并显著减少FITC-明胶的裂解。我们还发现,联合给予L-NIL和蛋白质合成抑制剂茴香霉素可导致FITC-明胶裂解和血管渗漏几乎完全消除。这些结果表明,一氧化氮合酶和新的蛋白质合成均参与缺血期间毛细血管周细胞胞体处MMP-9的快速激活。