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The PI3K signaling pathway regulates cell growth and movement and is heavily mutated in cancer. Class I PI3Ks synthesize the lipid messenger PI(3,4,5)P. PI(3,4,5)P can be dephosphorylated by 3- or 5-phosphatases, the latter producing PI(3,4)P. The PTEN tumor suppressor is thought to function primarily as a PI(3,4,5)P 3-phosphatase, limiting activation of this pathway. Here we show that PTEN also functions as a PI(3,4)P 3-phosphatase, both in vitro and in vivo. PTEN is a major PI(3,4)P phosphatase in Mcf10a cytosol, and loss of PTEN and INPP4B, a known PI(3,4)P 4-phosphatase, leads to synergistic accumulation of PI(3,4)P, which correlated with increased invadopodia in epidermal growth factor (EGF)-stimulated cells. PTEN deletion increased PI(3,4)P levels in a mouse model of prostate cancer, and it inversely correlated with PI(3,4)P levels across several EGF-stimulated prostate and breast cancer lines. These results point to a role for PI(3,4)P in the phenotype caused by loss-of-function mutations or deletions in PTEN.
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http://dx.doi.org/10.1016/j.molcel.2017.09.024 | DOI Listing |
Mol Cell
September 2018
Department of Chemistry, University of Illinois at Chicago, Chicago, IL 60607, USA; Department of Genetic Engineering, Kyung Hee University, Yongin 446-701, Republic of Korea. Electronic address:
Activation of class I phosphatidylinositol 3-kinase (PI3K) leads to formation of phosphatidylinositol-3,4,5-trisphophate (PIP) and phosphatidylinositol-3,4-bisphophate (PI34P), which spatiotemporally coordinate and regulate a myriad of cellular processes. By simultaneous quantitative imaging of PIP and PI34P in live cells, we here show that they have a distinctively different spatiotemporal distribution and history in response to growth factor stimulation, which allows them to selectively induce the membrane recruitment and activation of Akt isoforms. PI34P selectively activates Akt2 at both the plasma membrane and early endosomes, whereas PIP selectively stimulates Akt1 and Akt3 exclusively at the plasma membrane.
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