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Copy number alterations in small intestinal neuroendocrine tumors determined by array comparative genomic hybridization

BACKGROUND: Small intestinal neuroendocrine tumors (SI-NETs) are typically slow-growing tumors that have metastasized already at the time of diagnosis. The purpose of the present study was to further refine and define regions of recurrent copy number (CN) alterations (CNA) in SI-NETs. METHODS: Genom...

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Autores principales: Hashemi, Jamileh, Fotouhi, Omid, Sulaiman, Luqman, Kjellman, Magnus, Höög, Anders, Zedenius, Jan, Larsson, Catharina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3819709/
https://www.ncbi.nlm.nih.gov/pubmed/24165089
http://dx.doi.org/10.1186/1471-2407-13-505
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author Hashemi, Jamileh
Fotouhi, Omid
Sulaiman, Luqman
Kjellman, Magnus
Höög, Anders
Zedenius, Jan
Larsson, Catharina
author_facet Hashemi, Jamileh
Fotouhi, Omid
Sulaiman, Luqman
Kjellman, Magnus
Höög, Anders
Zedenius, Jan
Larsson, Catharina
author_sort Hashemi, Jamileh
collection PubMed
description BACKGROUND: Small intestinal neuroendocrine tumors (SI-NETs) are typically slow-growing tumors that have metastasized already at the time of diagnosis. The purpose of the present study was to further refine and define regions of recurrent copy number (CN) alterations (CNA) in SI-NETs. METHODS: Genome-wide CNAs was determined by applying array CGH (a-CGH) on SI-NETs including 18 primary tumors and 12 metastases. Quantitative PCR analysis (qPCR) was used to confirm CNAs detected by a-CGH as well as to detect CNAs in an extended panel of SI-NETs. Unsupervised hierarchical clustering was used to detect tumor groups with similar patterns of chromosomal alterations based on recurrent regions of CN loss or gain. The log rank test was used to calculate overall survival. Mann–Whitney U test or Fisher’s exact test were used to evaluate associations between tumor groups and recurrent CNAs or clinical parameters. RESULTS: The most frequent abnormality was loss of chromosome 18 observed in 70% of the cases. CN losses were also frequently found of chromosomes 11 (23%), 16 (20%), and 9 (20%), with regions of recurrent CN loss identified in 11q23.1-qter, 16q12.2-qter, 9pter-p13.2 and 9p13.1-11.2. Gains were most frequently detected in chromosomes 14 (43%), 20 (37%), 4 (27%), and 5 (23%) with recurrent regions of CN gain located to 14q11.2, 14q32.2-32.31, 20pter-p11.21, 20q11.1-11.21, 20q12-qter, 4 and 5. qPCR analysis confirmed most CNAs detected by a-CGH as well as revealed CNAs in an extended panel of SI-NETs. Unsupervised hierarchical clustering of recurrent regions of CNAs revealed two separate tumor groups and 5 chromosomal clusters. Loss of chromosomes 18, 16 and 11 and again of chromosome 20 were found in both tumor groups. Tumor group II was enriched for alterations in chromosome cluster-d, including gain of chromosomes 4, 5, 7, 14 and gain of 20 in chromosome cluster-b. Gain in 20pter-p11.21 was associated with short survival. Statistically significant differences were observed between primary tumors and metastases for loss of 16q and gain of 7. CONCLUSION: Our results revealed recurrent CNAs in several candidate regions with a potential role in SI-NET development. Distinct genetic alterations and pathways are involved in tumorigenesis of SI-NETs.
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spelling pubmed-38197092013-11-08 Copy number alterations in small intestinal neuroendocrine tumors determined by array comparative genomic hybridization Hashemi, Jamileh Fotouhi, Omid Sulaiman, Luqman Kjellman, Magnus Höög, Anders Zedenius, Jan Larsson, Catharina BMC Cancer Research Article BACKGROUND: Small intestinal neuroendocrine tumors (SI-NETs) are typically slow-growing tumors that have metastasized already at the time of diagnosis. The purpose of the present study was to further refine and define regions of recurrent copy number (CN) alterations (CNA) in SI-NETs. METHODS: Genome-wide CNAs was determined by applying array CGH (a-CGH) on SI-NETs including 18 primary tumors and 12 metastases. Quantitative PCR analysis (qPCR) was used to confirm CNAs detected by a-CGH as well as to detect CNAs in an extended panel of SI-NETs. Unsupervised hierarchical clustering was used to detect tumor groups with similar patterns of chromosomal alterations based on recurrent regions of CN loss or gain. The log rank test was used to calculate overall survival. Mann–Whitney U test or Fisher’s exact test were used to evaluate associations between tumor groups and recurrent CNAs or clinical parameters. RESULTS: The most frequent abnormality was loss of chromosome 18 observed in 70% of the cases. CN losses were also frequently found of chromosomes 11 (23%), 16 (20%), and 9 (20%), with regions of recurrent CN loss identified in 11q23.1-qter, 16q12.2-qter, 9pter-p13.2 and 9p13.1-11.2. Gains were most frequently detected in chromosomes 14 (43%), 20 (37%), 4 (27%), and 5 (23%) with recurrent regions of CN gain located to 14q11.2, 14q32.2-32.31, 20pter-p11.21, 20q11.1-11.21, 20q12-qter, 4 and 5. qPCR analysis confirmed most CNAs detected by a-CGH as well as revealed CNAs in an extended panel of SI-NETs. Unsupervised hierarchical clustering of recurrent regions of CNAs revealed two separate tumor groups and 5 chromosomal clusters. Loss of chromosomes 18, 16 and 11 and again of chromosome 20 were found in both tumor groups. Tumor group II was enriched for alterations in chromosome cluster-d, including gain of chromosomes 4, 5, 7, 14 and gain of 20 in chromosome cluster-b. Gain in 20pter-p11.21 was associated with short survival. Statistically significant differences were observed between primary tumors and metastases for loss of 16q and gain of 7. CONCLUSION: Our results revealed recurrent CNAs in several candidate regions with a potential role in SI-NET development. Distinct genetic alterations and pathways are involved in tumorigenesis of SI-NETs. BioMed Central 2013-10-29 /pmc/articles/PMC3819709/ /pubmed/24165089 http://dx.doi.org/10.1186/1471-2407-13-505 Text en Copyright © 2013 Hashemi et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Hashemi, Jamileh
Fotouhi, Omid
Sulaiman, Luqman
Kjellman, Magnus
Höög, Anders
Zedenius, Jan
Larsson, Catharina
Copy number alterations in small intestinal neuroendocrine tumors determined by array comparative genomic hybridization
title Copy number alterations in small intestinal neuroendocrine tumors determined by array comparative genomic hybridization
title_full Copy number alterations in small intestinal neuroendocrine tumors determined by array comparative genomic hybridization
title_fullStr Copy number alterations in small intestinal neuroendocrine tumors determined by array comparative genomic hybridization
title_full_unstemmed Copy number alterations in small intestinal neuroendocrine tumors determined by array comparative genomic hybridization
title_short Copy number alterations in small intestinal neuroendocrine tumors determined by array comparative genomic hybridization
title_sort copy number alterations in small intestinal neuroendocrine tumors determined by array comparative genomic hybridization
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3819709/
https://www.ncbi.nlm.nih.gov/pubmed/24165089
http://dx.doi.org/10.1186/1471-2407-13-505
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