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Angiopoietin‐1‐induced phosphatidyl‐inositol 3‐kinase activation prevents neuronal apoptosis
Author(s) -
Valable S.,
Bellail A.,
Lesné S.,
Liot G.,
MacKenzie E.T.,
Vivien D.,
Bernaudin M.,
Petit E.
Publication year - 2003
Publication title -
the faseb journal
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.709
H-Index - 277
eISSN - 1530-6860
pISSN - 0892-6638
DOI - 10.1096/fj.02-0372fje
Subject(s) - neuroprotection , protein kinase b , ly294002 , pi3k/akt/mtor pathway , apoptosis , angiopoietin , microbiology and biotechnology , angiogenesis , chemistry , phosphorylation , kinase , pharmacology , signal transduction , biology , cancer research , vascular endothelial growth factor , biochemistry , vegf receptors
Although angiopoietin‐1 (Ang‐1) is recognized as an endothelial growth factor, its presence in brain following an ischemic event suggests a role in the evolution of neuronal damage. Using primary neuronal cultures, we showed that neurons express Ang‐1 and possess the functional angiopoietin‐receptor Tie‐2, which is phosphorylated in the presence of Ang‐1. We further investigated in vitro whether Ang‐1 could protect neurons against either excitotoxic necrosis or apoptosis induced by serum deprivation (SD). A neuroprotective effect for Ang‐1 was detected exclusively in the apoptotic paradigm. Treatment of cells with the phosphatidyl‐inositol 3‐kinase (PI3‐K) inhibitor, LY294002, inhibited Ang‐1‐induced phosphorylation of Akt, restored the cleavage of the effector caspase‐3, and reduced the protective effect of Ang‐1 against SD‐induced toxicity. These findings suggest that Ang‐1 has a neuroprotective effect against apoptotic stress and that this effect is dependent on the PI3‐K/Akt pathway and inhibition of caspase‐3 cleavage. This study provides evidence that Ang‐1 is not just angiogenic but also neuroprotective. The understanding of neuroprotective mechanisms induced by Ang‐1 may promote strategies based on the pleiotropic effects of angiogenic factors. Such approaches could be useful for the treatment of brain diseases in which both neuronal death and angiogenesis are involved.

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