Notch signalling in carcinogenesis : With special emphasis on T-cell lymphoma and colorectal cancer

The Notch signalling pathway is an evolutionary conserved pathway, named after the Notch receptors, Notch1-4 in mammals, which upon cell-cell contact and ligand binding releases the intracellular domain (NICD). NICD translocates into the nucleus where it binds the transcriptional repressor RBP-Jk, w...

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Main Author: Ungerbäck, Jonas
Format: Others
Language:English
Published: Linköpings universitet, Cellbiologi 2009
Subjects:
Online Access:http://urn.kb.se/resolve?urn=urn:nbn:se:liu:diva-51692
http://nbn-resolving.de/urn:isbn:978-91-7393-510-4
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record_format oai_dc
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language English
format Others
sources NDLTD
topic Notch signalling
T-cell lymphoma
colorectal cancer
Wnt signalling
transcription
Cell and Molecular Biology
Cell- och molekylärbiologi
spellingShingle Notch signalling
T-cell lymphoma
colorectal cancer
Wnt signalling
transcription
Cell and Molecular Biology
Cell- och molekylärbiologi
Ungerbäck, Jonas
Notch signalling in carcinogenesis : With special emphasis on T-cell lymphoma and colorectal cancer
description The Notch signalling pathway is an evolutionary conserved pathway, named after the Notch receptors, Notch1-4 in mammals, which upon cell-cell contact and ligand binding releases the intracellular domain (NICD). NICD translocates into the nucleus where it binds the transcriptional repressor RBP-Jk, which together with co-activators belonging to the Mastermind-like family of proteins form a transcriptional activation complex. This complex activates genes controlling cell fate decision, embryonic development, proliferation, differentiation, adult homeostasis and stem cell maintenance. On the other hand, disrupted Notch signalling may result in pathological conditions like cancer, although the mechanisms behind the disruption are often complex and in many cases largely unknown. Notch1 drives the lymphocyte differentiation towards a T-cell fate and activating mutations in the gene have been suggested to be involved in T-cell lymphoma. In paper I, genetic alterations in Notch1 and the Notch1 regulating gene CDC4 were investigated in tumours from murine T-cell lymphoma induced with phenolphthalein, 1,3-butadiene or 2’,3’-dideoxycytidine. We identified activating Notch1 mutations in 39% of the lymphomas, suggesting that Notch1 is an important target gene for mutations in chemically induced lymphomas. While it is known that constitutively activated Notch signalling has a clear oncogenic function in several solid malignancies as well, the molecular mechanisms are less known in this context. Unpublished data of our lab, together with other recent studies, suggest that mutations of Notch and Notch-related genes per se are uncommon in solid malignancies including colorectal cancer, while a growing body of evidence indicates that aberrant Wnt/b-catenin signalling may result in pro-tumoural Notch activation in these contexts. In paper II, we therefore investigated potential transcriptional interactions between the Notch and Wnt signalling pathways in colorectal cancer cell lines. The proximal Notch and Wnt pathway gene promoters were bioinformatically identified and screened for putative TCF/LEF1 and RBP-Jk sites. In canonical Wnt signalling, Apc negatively regulates b-catenin leading to repression of TCF/LEF1 target genes. Upon repression of the Wnt pathway we observed that several genes in the Notch pathway, including Notch2, were transcriptionally downregulated. We also confirmed binding of Lef1 to Notch2 as well as other Notch pathway gene promoters and luciferase assays showed an increased activity for at least one LEF1/TCF-site in the Notch2 promoter upon co-transfection of HT29 or HCT116 cells with mutated b-catenin. HT29 cell lines were also treated with the g-secretase inhibitor DAPT, leading to inactivation of the Notch pathway by preventing release of NICD. However, results showed no effects on Apc, b-catenin or their target cyclin D1. Taken together, these results indicate that the Wnt pathway may function as a regulator of the Notch pathway through the TCF/LEF1 target gene program in colon cancer cell lines. In summary, Notch pathway deregulation is of importance in both murine T-cell lymphoma and human colorectal cancer, although the mechanisms differ. The current results give new insights in Notch pathway alterations as well as the signalling networks in which the Notch pathway interacts, and thus increase the understanding of Notch’s involvement in malignant diseases. === Studies on molecular genetic alterations in colorectal cancer
author Ungerbäck, Jonas
author_facet Ungerbäck, Jonas
author_sort Ungerbäck, Jonas
title Notch signalling in carcinogenesis : With special emphasis on T-cell lymphoma and colorectal cancer
title_short Notch signalling in carcinogenesis : With special emphasis on T-cell lymphoma and colorectal cancer
title_full Notch signalling in carcinogenesis : With special emphasis on T-cell lymphoma and colorectal cancer
title_fullStr Notch signalling in carcinogenesis : With special emphasis on T-cell lymphoma and colorectal cancer
title_full_unstemmed Notch signalling in carcinogenesis : With special emphasis on T-cell lymphoma and colorectal cancer
title_sort notch signalling in carcinogenesis : with special emphasis on t-cell lymphoma and colorectal cancer
publisher Linköpings universitet, Cellbiologi
publishDate 2009
url http://urn.kb.se/resolve?urn=urn:nbn:se:liu:diva-51692
http://nbn-resolving.de/urn:isbn:978-91-7393-510-4
work_keys_str_mv AT ungerbackjonas notchsignallingincarcinogenesiswithspecialemphasisontcelllymphomaandcolorectalcancer
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spelling ndltd-UPSALLA1-oai-DiVA.org-liu-516922021-12-29T05:59:34ZNotch signalling in carcinogenesis : With special emphasis on T-cell lymphoma and colorectal cancerengUngerbäck, JonasLinköpings universitet, CellbiologiLinköpings universitet, HälsouniversitetetLinköping : Linköping University Electronic Press2009Notch signallingT-cell lymphomacolorectal cancerWnt signallingtranscriptionCell and Molecular BiologyCell- och molekylärbiologiThe Notch signalling pathway is an evolutionary conserved pathway, named after the Notch receptors, Notch1-4 in mammals, which upon cell-cell contact and ligand binding releases the intracellular domain (NICD). NICD translocates into the nucleus where it binds the transcriptional repressor RBP-Jk, which together with co-activators belonging to the Mastermind-like family of proteins form a transcriptional activation complex. This complex activates genes controlling cell fate decision, embryonic development, proliferation, differentiation, adult homeostasis and stem cell maintenance. On the other hand, disrupted Notch signalling may result in pathological conditions like cancer, although the mechanisms behind the disruption are often complex and in many cases largely unknown. Notch1 drives the lymphocyte differentiation towards a T-cell fate and activating mutations in the gene have been suggested to be involved in T-cell lymphoma. In paper I, genetic alterations in Notch1 and the Notch1 regulating gene CDC4 were investigated in tumours from murine T-cell lymphoma induced with phenolphthalein, 1,3-butadiene or 2’,3’-dideoxycytidine. We identified activating Notch1 mutations in 39% of the lymphomas, suggesting that Notch1 is an important target gene for mutations in chemically induced lymphomas. While it is known that constitutively activated Notch signalling has a clear oncogenic function in several solid malignancies as well, the molecular mechanisms are less known in this context. Unpublished data of our lab, together with other recent studies, suggest that mutations of Notch and Notch-related genes per se are uncommon in solid malignancies including colorectal cancer, while a growing body of evidence indicates that aberrant Wnt/b-catenin signalling may result in pro-tumoural Notch activation in these contexts. In paper II, we therefore investigated potential transcriptional interactions between the Notch and Wnt signalling pathways in colorectal cancer cell lines. The proximal Notch and Wnt pathway gene promoters were bioinformatically identified and screened for putative TCF/LEF1 and RBP-Jk sites. In canonical Wnt signalling, Apc negatively regulates b-catenin leading to repression of TCF/LEF1 target genes. Upon repression of the Wnt pathway we observed that several genes in the Notch pathway, including Notch2, were transcriptionally downregulated. We also confirmed binding of Lef1 to Notch2 as well as other Notch pathway gene promoters and luciferase assays showed an increased activity for at least one LEF1/TCF-site in the Notch2 promoter upon co-transfection of HT29 or HCT116 cells with mutated b-catenin. HT29 cell lines were also treated with the g-secretase inhibitor DAPT, leading to inactivation of the Notch pathway by preventing release of NICD. However, results showed no effects on Apc, b-catenin or their target cyclin D1. Taken together, these results indicate that the Wnt pathway may function as a regulator of the Notch pathway through the TCF/LEF1 target gene program in colon cancer cell lines. In summary, Notch pathway deregulation is of importance in both murine T-cell lymphoma and human colorectal cancer, although the mechanisms differ. The current results give new insights in Notch pathway alterations as well as the signalling networks in which the Notch pathway interacts, and thus increase the understanding of Notch’s involvement in malignant diseases. Studies on molecular genetic alterations in colorectal cancerLicentiate thesis, comprehensive summaryinfo:eu-repo/semantics/masterThesistexthttp://urn.kb.se/resolve?urn=urn:nbn:se:liu:diva-51692urn:isbn:978-91-7393-510-4Linköping Studies in Health Sciences. Thesis, 1100-6013 ; 106application/pdfinfo:eu-repo/semantics/openAccess