Signal Transduction in Malignant Cells – Transformation, Activation and Differentiation
All aspects of cell life are regulated by signal transduction mechanisms. This thesis describes the regulatory roles of a few key signal transduction molecules involved in three major biological responses. The studied pathways include platelet derived growth factor (PDGF)-BB induced transformation o...
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Uppsala universitet, Institutionen för genetik och patologi
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ndltd-UPSALLA1-oai-DiVA.org-uu-63462013-09-05T04:01:42ZSignal Transduction in Malignant Cells – Transformation, Activation and DifferentiationengKårehed, KarinUppsala universitet, Institutionen för genetik och patologiUppsala : Acta Universitatis Upsaliensis2006Molecular medicinetransformationPDGFPI3KRho-GTPaseU-937FcγRImacrophageStat1PKRNFκBATRAdifferentiationMolekylärmedicinMolecular medicine (genetics and pathology)Molekylär medicin (genetik och patologi)All aspects of cell life are regulated by signal transduction mechanisms. This thesis describes the regulatory roles of a few key signal transduction molecules involved in three major biological responses. The studied pathways include platelet derived growth factor (PDGF)-BB induced transformation of murine fibroblasts, interferon (IFN)-γ stimulated monocyte activation and all-trans retinoic acid (ATRA) induced myeloid differentiation. We found that intact phosphoinositide 3OH-kinase (PI3K) activity is essential in the signaling pathway that leads to the morphological alterations and migration pattern characteristic of PDGF-BB transformed NIH/sis and NIH/COL1A1 fibroblasts. Furthermore, our data indicated that the small Rho-GTPase, Rac1 is the predominant mediator of these signals downstream of PI3K. The study of the IFN-γ induced activation of monocytic U-937 cells showed that upregulation of the high affinity receptor for IgG (FcγRI) is dependent on the coordination of several regulatory events: the PKR-mediated serine 727 phosphorylation of Stat1, the expression of the hematopoietic lineage specific transcription factor PU.I, and the activation of the NFκB pathway. ATRA-induced differentiation and cell cycle arrest are impaired in U-937 sublines expressing phosphorylation deficient Stat1 (Stat1Y701F and Stat1S727A). The findings in paper III indicated that the expression pattern of the myeloid specific transcription factors Stat2, ICSBP and c/EBPε was altered in the sublines and that intact Stat1 activation is critical for maintaining the balance of the transcriptional network during ATRA induced terminal differentiation. Finally, ATRA-induced differentiation and growth arrest were blocked by treatment with the IKKα/β inhibitor BMS345541 or by ectopic expression of the NFκB super repressor IκBα (S32A/S36A). The fact that IκB(AA) sublines differentiated normally in response to vitamin D3, showed that NFκB inhibition specifically affected ATRA induced responses. Notably we suggest that the activity of the NFκB pathway may interfere with the differentiation process via a direct effect on the RAR/RXR mediated transcription. Doctoral thesis, comprehensive summaryinfo:eu-repo/semantics/doctoralThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-6346urn:isbn:91-554-6465-3Digital Comprehensive Summaries of Uppsala Dissertations from the Faculty of Medicine, 1651-6206 ; 107application/pdfinfo:eu-repo/semantics/openAccess |
collection |
NDLTD |
language |
English |
format |
Doctoral Thesis |
sources |
NDLTD |
topic |
Molecular medicine transformation PDGF PI3K Rho-GTPase U-937 FcγRI macrophage Stat1 PKR NFκB ATRA differentiation Molekylärmedicin Molecular medicine (genetics and pathology) Molekylär medicin (genetik och patologi) |
spellingShingle |
Molecular medicine transformation PDGF PI3K Rho-GTPase U-937 FcγRI macrophage Stat1 PKR NFκB ATRA differentiation Molekylärmedicin Molecular medicine (genetics and pathology) Molekylär medicin (genetik och patologi) Kårehed, Karin Signal Transduction in Malignant Cells – Transformation, Activation and Differentiation |
description |
All aspects of cell life are regulated by signal transduction mechanisms. This thesis describes the regulatory roles of a few key signal transduction molecules involved in three major biological responses. The studied pathways include platelet derived growth factor (PDGF)-BB induced transformation of murine fibroblasts, interferon (IFN)-γ stimulated monocyte activation and all-trans retinoic acid (ATRA) induced myeloid differentiation. We found that intact phosphoinositide 3OH-kinase (PI3K) activity is essential in the signaling pathway that leads to the morphological alterations and migration pattern characteristic of PDGF-BB transformed NIH/sis and NIH/COL1A1 fibroblasts. Furthermore, our data indicated that the small Rho-GTPase, Rac1 is the predominant mediator of these signals downstream of PI3K. The study of the IFN-γ induced activation of monocytic U-937 cells showed that upregulation of the high affinity receptor for IgG (FcγRI) is dependent on the coordination of several regulatory events: the PKR-mediated serine 727 phosphorylation of Stat1, the expression of the hematopoietic lineage specific transcription factor PU.I, and the activation of the NFκB pathway. ATRA-induced differentiation and cell cycle arrest are impaired in U-937 sublines expressing phosphorylation deficient Stat1 (Stat1Y701F and Stat1S727A). The findings in paper III indicated that the expression pattern of the myeloid specific transcription factors Stat2, ICSBP and c/EBPε was altered in the sublines and that intact Stat1 activation is critical for maintaining the balance of the transcriptional network during ATRA induced terminal differentiation. Finally, ATRA-induced differentiation and growth arrest were blocked by treatment with the IKKα/β inhibitor BMS345541 or by ectopic expression of the NFκB super repressor IκBα (S32A/S36A). The fact that IκB(AA) sublines differentiated normally in response to vitamin D3, showed that NFκB inhibition specifically affected ATRA induced responses. Notably we suggest that the activity of the NFκB pathway may interfere with the differentiation process via a direct effect on the RAR/RXR mediated transcription. |
author |
Kårehed, Karin |
author_facet |
Kårehed, Karin |
author_sort |
Kårehed, Karin |
title |
Signal Transduction in Malignant Cells – Transformation, Activation and Differentiation |
title_short |
Signal Transduction in Malignant Cells – Transformation, Activation and Differentiation |
title_full |
Signal Transduction in Malignant Cells – Transformation, Activation and Differentiation |
title_fullStr |
Signal Transduction in Malignant Cells – Transformation, Activation and Differentiation |
title_full_unstemmed |
Signal Transduction in Malignant Cells – Transformation, Activation and Differentiation |
title_sort |
signal transduction in malignant cells – transformation, activation and differentiation |
publisher |
Uppsala universitet, Institutionen för genetik och patologi |
publishDate |
2006 |
url |
http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-6346 http://nbn-resolving.de/urn:isbn:91-554-6465-3 |
work_keys_str_mv |
AT karehedkarin signaltransductioninmalignantcellstransformationactivationanddifferentiation |
_version_ |
1716597287280443392 |