Ischemia-Reperfusion (IR) injury is found to be the frequent cause of various debilitating complications and deaths associated with stroke, myocardial infarction, trauma, peripheral vascular disease and traumatic brain injury1,2. IR injury in cerebral vessels is an early secondary injury leading to inflammation and edema3. One of the serious complications that occurs as a result of oxidative and metabolic stress following inflammation is loss of homeostatic balance leading to free radical formation, alterations in the blood-brain barrier (BBB) tight junctions (TJs) and microvascular permeability4,5.
Currently, in vivo models used to study the effects of IR injury on the BBB include middle cerebral artery occlusion (MCAO), microembolism, and transgenic or knockout animals. However, each has its drawbacks and limitations as discussed by Hossmann6. MCAO model is used to study the effects of redox stress, changes in junctional communications of the BBB and the interactions between brain and immune cells. However, they present various technical challenges such as the need for precise microsurgical procedures and the difficulties therein. Microembolism instantaneously breaks down the BBB while use of transgenic or knockout animals to study cerebral ischemia may have challenges like gene-dependent molecular influences on infarct formation, changes in vascular anatomy and varying body weights6. Hence, in vitro models of ischemia have found increasing interest in recent times mainly due to their applicability in performing mechanistic studies for drugs. However, the results of in vitro studies may not fully represent an in vivo study and must be interpreted with caution6.
Counteractive effect of low oxygen concentrations on endothelial cell monolayers and microvascular permeability have been studied by Ogawa7. Rat brain microvascular endothelial cells (RBMECs) were used to develop the in vitro BBB. The oxygen-glucose deprivation and reoxygenation (OGD-R) technique presented in this protocol has been adapted from studies by Zulueta et al and Zhu et al8,9. We exposed brain endothelial cells to OGD-R by placing them in a hypoxia/anoxia chamber containing 0% O2, 5% CO2 and 95% N2. Cells were later assessed for alterations in TJ integrity and stress fiber formation using immunofluorescence localization and rhodamine phalloidin labeling respectively. Immunofluorescence staining for zonula occludens-1 (ZO-1) is performed to determine TJ integrity, as ZO-1 is an important scaffolding membrane bound TJ protein. Rhodamine Phalloidin labeling determines the filamentous actin (f-actin) in the cell cytoskeleton and is a clear indication of actin stress fiber formation in endothelial cells.
The goal of this method is to provide insight into developing OGD-R as an in vitro IR model for studying BBB endothelial cell TJ integrity and f-actin stress fiber formation. The results will provide information on the fate of TJ protein, ZO-1 and stress fiber formation following OGD-R. Understanding these relationships will provide an opportunity to determine the underlying molecular mechanisms that are triggered following OGD-R and develop potential therapeutic strategies to enhance the BBB disruption following OGD-R treatment.