Essential roles of PI(3)K-p110beta in cell growth, metabolism and tumorigenesis.

TitleEssential roles of PI(3)K-p110beta in cell growth, metabolism and tumorigenesis.
Publication TypeJournal Article
Year of Publication2008
AuthorsJia S, Liu Z, Zhang S, Liu P, Zhang L, Lee SHyun, Zhang J, Signoretti S, Loda M, Roberts TM, Zhao JJ
JournalNature
Volume454
Issue7205
Pagination776-9
Date Published2008 Aug 07
ISSN1476-4687
KeywordsAnimals, Cell Proliferation, Cell Transformation, Neoplastic, Epidermal Growth Factor, Fibroblasts, Glucose, Glucose Intolerance, Homeostasis, Humans, Insulin, Insulin Resistance, Liver, Male, Mice, Mice, Inbred C57BL, Phosphatidylinositol 3-Kinases, Phosphorylation, Prostatic Neoplasms, Proto-Oncogene Proteins c-akt, PTEN Phosphohydrolase, Signal Transduction
Abstract

On activation by receptors, the ubiquitously expressed class IA isoforms (p110alpha and p110beta) of phosphatidylinositol-3-OH kinase (PI(3)K) generate lipid second messengers, which initiate multiple signal transduction cascades. Recent studies have demonstrated specific functions for p110alpha in growth factor and insulin signalling. To probe for distinct functions of p110beta, we constructed conditional knockout mice. Here we show that ablation of p110beta in the livers of the resulting mice leads to impaired insulin sensitivity and glucose homeostasis, while having little effect on phosphorylation of Akt, suggesting the involvement of a kinase-independent role of p110beta in insulin metabolic action. Using established mouse embryonic fibroblasts, we found that removal of p110beta also had little effect on Akt phosphorylation in response to stimulation by insulin and epidermal growth factor, but resulted in retarded cell proliferation. Reconstitution of p110beta-null cells with a wild-type or kinase-dead allele of p110beta demonstrated that p110beta possesses kinase-independent functions in regulating cell proliferation and trafficking. However, the kinase activity of p110beta was required for G-protein-coupled receptor signalling triggered by lysophosphatidic acid and had a function in oncogenic transformation. Most strikingly, in an animal model of prostate tumour formation induced by Pten loss, ablation of p110beta (also known as Pik3cb), but not that of p110alpha (also known as Pik3ca), impeded tumorigenesis with a concomitant diminution of Akt phosphorylation. Taken together, our findings demonstrate both kinase-dependent and kinase-independent functions for p110beta, and strongly indicate the kinase-dependent functions of p110beta as a promising target in cancer therapy.

DOI10.1038/nature07091
Alternate JournalNature
PubMed ID18594509
Related Faculty: 
Massimo Loda, M.D.

Pathology & Laboratory Medicine 1300 York Avenue New York, NY 10065 Phone: (212) 746-6464
Surgical Pathology: (212) 746-2700