| Literature DB >> 25599042 |
Omar Tanweer1, Taylor A Wilson1, Eleni Metaxa2, Howard A Riina1, Hui Meng3.
Abstract
OBJECTIVE: Cerebral aneurysms (CAs) and abdominal aortic aneurysms (AAAs) are degenerative vascular pathologies that manifest as abnormal dilations of the arterial wall. They arise with different morphologies in different types of blood vessels under different hemodynamic conditions. Although treated as different pathologies, we examine common pathways in their hemodynamic pathogenesis in order to elucidate mechanisms of formation.Entities:
Keywords: Abdominal aortic aneurysms; Blood flow; Cerebral aneurysms; Endothelial cells; Hemodynamics; Inflammation; Pathogenesis
Year: 2014 PMID: 25599042 PMCID: PMC4296046 DOI: 10.7461/jcen.2014.16.4.335
Source DB: PubMed Journal: J Cerebrovasc Endovasc Neurosurg ISSN: 2234-8565
Definition of basic hemodynamic terms
WSS = wall shear stress; WSSG = wall shear stress gradient
Fig. 1This depicts a cerebral artery bifurcation and serves as a representation of impinging flow at the apex of the bifurcation (A) and acceleration zone with high wall shear stress and high wall shear stress gradient (B). This image is adapted from Meng, et al., 2007.75)
Fig. 2A representation of laminar flow adjacent to an arterial wall during a systole-diastole phase resulting in retrograde flow.
Fig. 3A computational fluid dynamic representation of an early stage abdominal aortic aneurysm (A) and a cerebral bifurcation with proximal stenosis (B) and a formed cerebral aneurysm (C). Scale represents wall shear stress (dyns/cm2). The images shown in B and C are taken from Kono, et al., 2013.56)
Fig. 4Comparison of the proposed pathological mechanisms of cerebral and abdominal aortic aneurysm formation.
Comparison of various hemodynamic and cellular factors that play a role in AAA and CA pathogenesis
AAA = abdominal aortic aneurysm; CA = cerebral aneurysm; WSS = wall shear stress; WSSG = wall shear stress gradient; EC = endothelial cell; SMC = smooth muscle cell; MMPs = matrix metalloproteinases; ROS = reactive oxygen species