Neonatal Stroke in Mice Causes Long-Term Changes in Neuronal Notch-2 Expression That May Contribute to Prolonged Injury

Author:

Albéri Lavinia1,Chi Zhikai1,Kadam Shilpa D.1,Mulholland Justin D.1,Dawson Valina L.1,Gaiano Nicholas1,Comi Anne M.1

Affiliation:

1. From the Department of Neurology (L.A., Z.C., S.D.K., V.L.D., N.G., A.M.C.), Johns Hopkins University School of Medicine, Baltimore, Md; Institute for Cell Engineering (L.A., Z.C., V.L.D., N.G.), Johns Hopkins University School of Medicine, Baltimore, Md; Department of Neuroscience (Z.C., V.L.D., N.G.), Johns Hopkins University School of Medicine, Baltimore, Md; Department of Pediatrics (A.M.C.), Johns Hopkins University School of Medicine, Baltimore, Md; Department of Neurology and Developmental...

Abstract

Background and Purpose— Notch receptors (1–4) are membrane proteins that, on ligand stilumation, release their cytoplasmic domains to serve as transcription factors. Notch-2 promotes proliferation both during development and cancer, but its role in response to ischemic injury is less well understood. The purpose of this study was to understand whether Notch-2 is induced after neonatal stroke and to investigate its functional relevance. Methods— P12 CD1 mice were subjected to permanent unilateral (right-sided) double ligation of the common carotid artery. Results— Neonatal ischemia induces a progressive brain injury with prolonged apoptosis and Notch-2 up-regulation. Notch-2 expression was induced shortly after injury in hippocampal areas with elevated c-fos activation and increased cell death. Long-term induction of Notch-2 also occurred in CA1 and CA3 in and around areas of cell death, and had a distinct pattern of expression as compared to Notch-1. In vitro oxygen glucose deprivation treatment showed a similar increase in Notch-2 in apoptotic cells. In vitro gain of function experiments, using an active form of Notch-2, show that Notch-2 induction is neurotoxic to a comparable extent as oxygen glucose deprivation treatment. Conclusions— These results suggest that Notch-2 up-regulation after neonatal ischemia is detrimental to neuronal survival.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Advanced and Specialised Nursing,Cardiology and Cardiovascular Medicine,Clinical Neurology

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