首页> 美国卫生研究院文献>Journal of Cerebral Blood Flow Metabolism >Temporal analysis of blood–brain barrier disruption and cerebrospinal fluid matrix metalloproteinases in rhesus monkeys subjected to transient ischemic stroke
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Temporal analysis of blood–brain barrier disruption and cerebrospinal fluid matrix metalloproteinases in rhesus monkeys subjected to transient ischemic stroke

机译:短暂性缺血性卒中恒河猴血脑屏障破坏和脑脊液基质金属蛋白酶的时间分析

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摘要

Blood–brain barrier (BBB) disruption plays an important role in pathophysiological progress of ischemic stroke. However, our knowledge of the dynamic change of BBB permeability and its mechanism remains limited. In the current study, we used a non-human primate (NHP) MCAO model and a serial CSF sampling method that allowed us to determine the dynamic change of BBB permeability by calculating the CSF/serum albumin ratio (AR). We showed that AR increased rapidly and significantly after ischemia, and the fold increase of AR is highly correlated with the infarction size during the subacute phase. Moreover, we determined the temporal change of MMP-1, MMP-2, MMP-3, MMP-9, MMP-10, MMP-13, TIMP-1, and TIMP-2 in CSF and serum. Each MMP and TIMP showed different change patterns when comparing their values in CSF and serum. Based on the longitudinal dataset, we showed that the fold increase of MMP-9 in serum and CSF are both correlated to infarction size. Among the measured MMPs and TIMPs, only MMP-2, MMP-13, and TIMP-2 in CSF correlated with AR to some extent. Our data suggest there is no single MMP or TIMP fully responsible for BBB breakdown, which is regulated by a much more complicated signal network and further investigations of the mechanisms are needed.
机译:血脑屏障(BBB)的破坏在缺血性中风的病理生理过程中起重要作用。然而,我们对血脑屏障通透性的动态变化及其机制的认识仍然有限。在当前的研究中,我们使用了非人类灵长类动物(NHP)MCAO模型和串行CSF采样方法,该方法允许我们通过计算CSF /血清白蛋白比(AR)来确定BBB渗透性的动态变化。我们发现缺血后AR迅速而显着增加,并且AR的倍数增加与亚急性期梗死面积高度相关。此外,我们确定了脑脊液和血清中MMP-1,MMP-2,MMP-3,MMP-9,MMP-10,MMP-13,TIMP-1和TIMP-2的时间变化。比较CSF和血清中的MMP和TIMP值时,它们显示出不同的变化模式。基于纵向数据集,我们显示血清和脑脊液中MMP-9的倍数增加均与梗死面积有关。在测得的MMP和TIMP中,脑脊液中只有MMP-2,MMP-13和TIMP-2在一定程度上与AR相关。我们的数据表明,没有单独的MMP或TIMP完全负责BBB的分解,而BBB的分解则由更为复杂的信号网络进行调节,因此需要进一步研究其机理。

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