Endothelial Akt1 mediates angiogenesis by phosphorylating multiple angiogenic substrates
Author(s) -
Monica Y. Lee,
Amelia K. Luciano,
Eric Ackah,
Juan RodríguezVita,
Tara A. Bancroft,
Anne Eichmann,
Michael Simons,
Themis R. Kyriakides,
Manuel MoralesRuiz,
William C. Sessa
Publication year - 2014
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.1408472111
Subject(s) - akt1 , phosphorylation , akt2 , protein kinase b , angiogenesis , enos , microbiology and biotechnology , gene isoform , proto oncogene proteins c akt , kinase , endothelium , biology , chemistry , cancer research , biochemistry , endocrinology , nitric oxide , nitric oxide synthase , gene
The PI3K/Akt pathway is necessary for several key endothelial cell (EC) functions, including cell growth, migration, survival, and vascular tone. However, existing literature supports the idea that Akt can be either pro- or antiangiogenic, possibly due to compensation by multiple isoforms in the EC when a single isoform is deleted. Thus, biochemical, genetic, and proteomic studies were conducted to examine isoform-substrate specificity for Akt1 vs. Akt2. In vitro, Akt1 preferentially phosphorylates endothelial nitric oxide synthase (eNOS) and promotes NO release, whereas nonphysiological overexpression of Akt2 can bypass the loss of Akt1. Conditional deletion of Akt1 in the EC, in the absence or presence of Akt2, retards retinal angiogenesis, implying that Akt1 exerts a nonredundant function during physiological angiogenesis. Finally, proteomic analysis of Akt substrates isolated from Akt1- or Akt2-deficient ECs documents that phosphorylation of multiple Akt substrates regulating angiogenic signaling is reduced in Akt1-deficient, but not Akt2-deficient, ECs, including eNOS and Forkhead box proteins. Therefore, Akt1 promotes angiogenesis largely due to phosphorylation and regulation of important downstream effectors that promote aspects of angiogenic signaling.
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