Saleem Saqib, Teal Paul D, Kleijn W Bastiaan, O'Donnell Terrence, Witter Trevor, Tzeng Yu-Chieh
School of Engineering and Computer Science, Victoria University of Wellington (VUW), Wellington, New Zealand; Cardiovascular Systems Laboratory, Centre for Translational Physiology, University of Otago (UO), Wellington, New Zealand.
School of Engineering and Computer Science, Victoria University of Wellington (VUW), Wellington, New Zealand.
PLoS One. 2015 Sep 30;10(9):e0139470. doi: 10.1371/journal.pone.0139470. eCollection 2015.
Cerebral metabolism is critically dependent on the regulation of cerebral blood flow (CBF), so it would be expected that vascular mechanisms that play a critical role in CBF regulation would be tightly conserved across individuals. However, the relationships between blood pressure (BP) and cerebral blood velocity fluctuations exhibit inter-individual variations consistent with heterogeneity in the integrity of CBF regulating systems. Here we sought to determine the nature and consistency of dynamic cerebral autoregulation (dCA) during the application of oscillatory lower body negative pressure (OLBNP). In 18 volunteers we recorded BP and middle cerebral artery blood flow velocity (MCAv) and examined the relationships between BP and MCAv fluctuations during 0.03, 0.05 and 0.07Hz OLBNP. dCA was characterised using project pursuit regression (PPR) and locally weighted scatterplot smoother (LOWESS) plots. Additionally, we proposed a piecewise regression method to statistically determine the presence of a dCA curve, which was defined as the presence of a restricted autoregulatory plateau shouldered by pressure-passive regions. Results show that LOWESS has similar explanatory power to that of PPR. However, we observed heterogeneous patterns of dynamic BP-MCAv relations with few individuals demonstrating clear evidence of a dCA central plateau. Thus, although BP explains a significant proportion of variance, dCA does not manifest as any single characteristic BP-MCAv function.
脑代谢严重依赖于脑血流量(CBF)的调节,因此可以预期,在CBF调节中起关键作用的血管机制在个体间会高度保守。然而,血压(BP)与脑血流速度波动之间的关系存在个体差异,这与CBF调节系统完整性的异质性一致。在此,我们试图确定在施加振荡性下体负压(OLBNP)期间动态脑自动调节(dCA)的性质和一致性。在18名志愿者中,我们记录了血压和大脑中动脉血流速度(MCAv),并检查了在0.03、0.05和0.07Hz的OLBNP期间血压与MCAv波动之间的关系。使用投影追踪回归(PPR)和局部加权散点图平滑(LOWESS)图对dCA进行表征。此外,我们提出了一种分段回归方法,以统计学方式确定dCA曲线的存在,该曲线定义为存在由压力被动区域界定的受限自动调节平台。结果表明,LOWESS与PPR具有相似的解释力。然而,我们观察到动态血压-MCAv关系存在异质性模式,只有少数个体表现出明显的dCA中心平台证据。因此,尽管血压解释了很大一部分方差,但dCA并未表现为任何单一的特征性血压-MCAv函数。