Investigarion of Activated Phosphaidylinositol 3’ Kinase Signaling in Stem Cell Self-renewal and Tumorigenesis

The phosphatidylinositol 3' kinase (PI3K) pathway is involved in many cellular processes including cell proliferation, survival, and glucose transport, and is implicated in various disease states such as cancer and diabetes. Though there have been numerous studies dissecting the role of PI3K s...

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Bibliographic Details
Main Author: Ling, Ling
Other Authors: Woodgett, James
Language:en_US
Published: 2012
Subjects:
PKB
Online Access:http://hdl.handle.net/1807/32815
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spelling ndltd-TORONTO-oai-tspace.library.utoronto.ca-1807-328152013-04-19T19:57:19ZInvestigarion of Activated Phosphaidylinositol 3’ Kinase Signaling in Stem Cell Self-renewal and TumorigenesisLing, LingPI3K pathwayPDK1myr-PDK1PKBPKB-DDGSK-3p70S6Kβ-cateninAxin-2Wnt pathwayembyronic stem cellspluripotencyself-renewalOct-4cell fatedifferentiationembryoid bodiesteratoma formationtumorigenesisAkti-1/2mTORrapamycinendothelial cellsvascularizationproliferationapoptosisFlp-In systemisogenic cell linessignal transductionmyristoylationphosphomimetic03070379The phosphatidylinositol 3' kinase (PI3K) pathway is involved in many cellular processes including cell proliferation, survival, and glucose transport, and is implicated in various disease states such as cancer and diabetes. Though there have been numerous studies dissecting the role of PI3K signaling in different cell types and disease models, the mechanism by which PI3K signaling regulates embryonic stem (ES) cell fate remains unclear. It is believed that in addition to proliferation and tumorigenicity, PI3K activity might also be important for self-renewal of ES cells. Paling et al. (2004) reported that the inhibition of PI3K led to a reduction in the ability of leukemia inhibitory factor (LIF) to maintain self-renewal causing cells to differentiate. Studies in our lab have revealed that ES cells completely lacking GSK-3 remain undifferentiated compared to wildtype ES cells. GSK-3 is negatively regulated by PI3K suggesting that PI3K may play a vital role in maintaining pluripotency in ES cells through GSK-3. By using a modified Flp recombinase system, we expressed activated alleles of PDK-1 and PKB to create stable, isogenic ES cell lines to further study the role of the PI3K signaling pathway in stem cell fate determination. In vitro characterization of the transgenic cell lines revealed a strong tendency towards maintenance of pluripotency, and this phenotype was found to be independent of canonical Wnt signal transduction. To assess growth and differentiation capacity in vivo, the ES cell lines were grown as subcutaneous teratomas. The constitutively active PDK-1 and PKB ES cell lines were able to form all three germ layers when grown in this manner – in contrast to ES cells engineered to lack GSK-3. The resulting PI3K pathway activated cells exhibited a higher growth rate which resulted in large teratomas. In summary, PI3K signaling is sufficient to maintain self-renewal and survival of stem cells. Since this pathway is frequently mutationally activated in cancers, its effect on suppressing differentiation may contribute to its oncogenicity.Woodgett, James2012-062012-08-31T14:33:22ZNO_RESTRICTION2012-08-31T14:33:22Z2012-08-31Thesishttp://hdl.handle.net/1807/32815en_US
collection NDLTD
language en_US
sources NDLTD
topic PI3K pathway
PDK1
myr-PDK1
PKB
PKB-DD
GSK-3
p70S6K
β-catenin
Axin-2
Wnt pathway
embyronic stem cells
pluripotency
self-renewal
Oct-4
cell fate
differentiation
embryoid bodies
teratoma formation
tumorigenesis
Akti-1/2
mTOR
rapamycin
endothelial cells
vascularization
proliferation
apoptosis
Flp-In system
isogenic cell lines
signal transduction
myristoylation
phosphomimetic
0307
0379
spellingShingle PI3K pathway
PDK1
myr-PDK1
PKB
PKB-DD
GSK-3
p70S6K
β-catenin
Axin-2
Wnt pathway
embyronic stem cells
pluripotency
self-renewal
Oct-4
cell fate
differentiation
embryoid bodies
teratoma formation
tumorigenesis
Akti-1/2
mTOR
rapamycin
endothelial cells
vascularization
proliferation
apoptosis
Flp-In system
isogenic cell lines
signal transduction
myristoylation
phosphomimetic
0307
0379
Ling, Ling
Investigarion of Activated Phosphaidylinositol 3’ Kinase Signaling in Stem Cell Self-renewal and Tumorigenesis
description The phosphatidylinositol 3' kinase (PI3K) pathway is involved in many cellular processes including cell proliferation, survival, and glucose transport, and is implicated in various disease states such as cancer and diabetes. Though there have been numerous studies dissecting the role of PI3K signaling in different cell types and disease models, the mechanism by which PI3K signaling regulates embryonic stem (ES) cell fate remains unclear. It is believed that in addition to proliferation and tumorigenicity, PI3K activity might also be important for self-renewal of ES cells. Paling et al. (2004) reported that the inhibition of PI3K led to a reduction in the ability of leukemia inhibitory factor (LIF) to maintain self-renewal causing cells to differentiate. Studies in our lab have revealed that ES cells completely lacking GSK-3 remain undifferentiated compared to wildtype ES cells. GSK-3 is negatively regulated by PI3K suggesting that PI3K may play a vital role in maintaining pluripotency in ES cells through GSK-3. By using a modified Flp recombinase system, we expressed activated alleles of PDK-1 and PKB to create stable, isogenic ES cell lines to further study the role of the PI3K signaling pathway in stem cell fate determination. In vitro characterization of the transgenic cell lines revealed a strong tendency towards maintenance of pluripotency, and this phenotype was found to be independent of canonical Wnt signal transduction. To assess growth and differentiation capacity in vivo, the ES cell lines were grown as subcutaneous teratomas. The constitutively active PDK-1 and PKB ES cell lines were able to form all three germ layers when grown in this manner – in contrast to ES cells engineered to lack GSK-3. The resulting PI3K pathway activated cells exhibited a higher growth rate which resulted in large teratomas. In summary, PI3K signaling is sufficient to maintain self-renewal and survival of stem cells. Since this pathway is frequently mutationally activated in cancers, its effect on suppressing differentiation may contribute to its oncogenicity.
author2 Woodgett, James
author_facet Woodgett, James
Ling, Ling
author Ling, Ling
author_sort Ling, Ling
title Investigarion of Activated Phosphaidylinositol 3’ Kinase Signaling in Stem Cell Self-renewal and Tumorigenesis
title_short Investigarion of Activated Phosphaidylinositol 3’ Kinase Signaling in Stem Cell Self-renewal and Tumorigenesis
title_full Investigarion of Activated Phosphaidylinositol 3’ Kinase Signaling in Stem Cell Self-renewal and Tumorigenesis
title_fullStr Investigarion of Activated Phosphaidylinositol 3’ Kinase Signaling in Stem Cell Self-renewal and Tumorigenesis
title_full_unstemmed Investigarion of Activated Phosphaidylinositol 3’ Kinase Signaling in Stem Cell Self-renewal and Tumorigenesis
title_sort investigarion of activated phosphaidylinositol 3’ kinase signaling in stem cell self-renewal and tumorigenesis
publishDate 2012
url http://hdl.handle.net/1807/32815
work_keys_str_mv AT lingling investigarionofactivatedphosphaidylinositol3kinasesignalinginstemcellselfrenewalandtumorigenesis
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