Cargando…

Role of Caveolin 1, E-Cadherin, Enolase 2 and PKCalpha on resistance to methotrexate in human HT29 colon cancer cells

BACKGROUND: Methotrexate is one of the earliest cytotoxic drugs used in cancer therapy, and despite the isolation of multiple other folate antagonists, methotrexate maintains its significant role as a treatment for different types of cancer and other disorders. The usefulness of treatment with metho...

Descripción completa

Detalles Bibliográficos
Autores principales: Selga, Elisabet, Morales, Cristina, Noé, Véronique, Peinado, Miguel A, Ciudad, Carlos J
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2527490/
https://www.ncbi.nlm.nih.gov/pubmed/18694510
http://dx.doi.org/10.1186/1755-8794-1-35
_version_ 1782158806562635776
author Selga, Elisabet
Morales, Cristina
Noé, Véronique
Peinado, Miguel A
Ciudad, Carlos J
author_facet Selga, Elisabet
Morales, Cristina
Noé, Véronique
Peinado, Miguel A
Ciudad, Carlos J
author_sort Selga, Elisabet
collection PubMed
description BACKGROUND: Methotrexate is one of the earliest cytotoxic drugs used in cancer therapy, and despite the isolation of multiple other folate antagonists, methotrexate maintains its significant role as a treatment for different types of cancer and other disorders. The usefulness of treatment with methotrexate is limited by the development of drug resistance, which may be acquired through different ways. To get insights into the mechanisms associated with drug resistance and sensitization we performed a functional analysis of genes deregulated in methotrexate resistant cells, either due to its co-amplification with the dhfr gene or as a result of a transcriptome screening using microarrays. METHODS: Gene expression levels were compared between triplicate samples from either HT29 sensitive cells and resistant to 10(-5 )M MTX by hybridization to the GeneChip(® )HG U133 PLUS 2.0 from Affymetrix. After normalization, a list of 3-fold differentially expressed genes with a p-value < 0.05 including multiple testing correction (Benjamini and Hochberg false discovery rate) was generated. RT-Real-time PCR was used to validate the expression levels of selected genes and copy-number was determined by qPCR. Functional validations were performed either by siRNAs or by transfection of an expression plasmid. RESULTS: Genes adjacent to the dhfr locus and included in the 5q14 amplicon were overexpressed in HT29 MTX-resistant cells. Treatment with siRNAs against those genes caused a slight reduction in cell viability in both HT29 sensitive and resistant cells. On the other hand, microarray analysis of HT29 and HT29 MTX resistant cells unveiled overexpression of caveolin 1, enolase 2 and PKCα genes in resistant cells without concomitant copy number gain. siRNAs against these three genes effectively reduced cell viability and caused a decreased MTX resistance capacity. Moreover, overexpression of E-cadherin, which was found underexpressed in MTX-resistant cells, also sensitized the cells toward the chemotherapeutic agent. Combined treatments targeting siRNA inhibition of caveolin 1 and overexpression of E-cadherin markedly reduced cell viability in both sensitive and MTX-resistant HT29 cells. CONCLUSION: We provide functional evidences indicating that caveolin 1 and E-cadherin, deregulated in MTX resistant cells, may play a critical role in cell survival and may constitute potential targets for coadjuvant therapy.
format Text
id pubmed-2527490
institution National Center for Biotechnology Information
language English
publishDate 2008
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-25274902008-09-01 Role of Caveolin 1, E-Cadherin, Enolase 2 and PKCalpha on resistance to methotrexate in human HT29 colon cancer cells Selga, Elisabet Morales, Cristina Noé, Véronique Peinado, Miguel A Ciudad, Carlos J BMC Med Genomics Research Article BACKGROUND: Methotrexate is one of the earliest cytotoxic drugs used in cancer therapy, and despite the isolation of multiple other folate antagonists, methotrexate maintains its significant role as a treatment for different types of cancer and other disorders. The usefulness of treatment with methotrexate is limited by the development of drug resistance, which may be acquired through different ways. To get insights into the mechanisms associated with drug resistance and sensitization we performed a functional analysis of genes deregulated in methotrexate resistant cells, either due to its co-amplification with the dhfr gene or as a result of a transcriptome screening using microarrays. METHODS: Gene expression levels were compared between triplicate samples from either HT29 sensitive cells and resistant to 10(-5 )M MTX by hybridization to the GeneChip(® )HG U133 PLUS 2.0 from Affymetrix. After normalization, a list of 3-fold differentially expressed genes with a p-value < 0.05 including multiple testing correction (Benjamini and Hochberg false discovery rate) was generated. RT-Real-time PCR was used to validate the expression levels of selected genes and copy-number was determined by qPCR. Functional validations were performed either by siRNAs or by transfection of an expression plasmid. RESULTS: Genes adjacent to the dhfr locus and included in the 5q14 amplicon were overexpressed in HT29 MTX-resistant cells. Treatment with siRNAs against those genes caused a slight reduction in cell viability in both HT29 sensitive and resistant cells. On the other hand, microarray analysis of HT29 and HT29 MTX resistant cells unveiled overexpression of caveolin 1, enolase 2 and PKCα genes in resistant cells without concomitant copy number gain. siRNAs against these three genes effectively reduced cell viability and caused a decreased MTX resistance capacity. Moreover, overexpression of E-cadherin, which was found underexpressed in MTX-resistant cells, also sensitized the cells toward the chemotherapeutic agent. Combined treatments targeting siRNA inhibition of caveolin 1 and overexpression of E-cadherin markedly reduced cell viability in both sensitive and MTX-resistant HT29 cells. CONCLUSION: We provide functional evidences indicating that caveolin 1 and E-cadherin, deregulated in MTX resistant cells, may play a critical role in cell survival and may constitute potential targets for coadjuvant therapy. BioMed Central 2008-08-11 /pmc/articles/PMC2527490/ /pubmed/18694510 http://dx.doi.org/10.1186/1755-8794-1-35 Text en Copyright © 2008 Selga 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
Selga, Elisabet
Morales, Cristina
Noé, Véronique
Peinado, Miguel A
Ciudad, Carlos J
Role of Caveolin 1, E-Cadherin, Enolase 2 and PKCalpha on resistance to methotrexate in human HT29 colon cancer cells
title Role of Caveolin 1, E-Cadherin, Enolase 2 and PKCalpha on resistance to methotrexate in human HT29 colon cancer cells
title_full Role of Caveolin 1, E-Cadherin, Enolase 2 and PKCalpha on resistance to methotrexate in human HT29 colon cancer cells
title_fullStr Role of Caveolin 1, E-Cadherin, Enolase 2 and PKCalpha on resistance to methotrexate in human HT29 colon cancer cells
title_full_unstemmed Role of Caveolin 1, E-Cadherin, Enolase 2 and PKCalpha on resistance to methotrexate in human HT29 colon cancer cells
title_short Role of Caveolin 1, E-Cadherin, Enolase 2 and PKCalpha on resistance to methotrexate in human HT29 colon cancer cells
title_sort role of caveolin 1, e-cadherin, enolase 2 and pkcalpha on resistance to methotrexate in human ht29 colon cancer cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2527490/
https://www.ncbi.nlm.nih.gov/pubmed/18694510
http://dx.doi.org/10.1186/1755-8794-1-35
work_keys_str_mv AT selgaelisabet roleofcaveolin1ecadherinenolase2andpkcalphaonresistancetomethotrexateinhumanht29coloncancercells
AT moralescristina roleofcaveolin1ecadherinenolase2andpkcalphaonresistancetomethotrexateinhumanht29coloncancercells
AT noeveronique roleofcaveolin1ecadherinenolase2andpkcalphaonresistancetomethotrexateinhumanht29coloncancercells
AT peinadomiguela roleofcaveolin1ecadherinenolase2andpkcalphaonresistancetomethotrexateinhumanht29coloncancercells
AT ciudadcarlosj roleofcaveolin1ecadherinenolase2andpkcalphaonresistancetomethotrexateinhumanht29coloncancercells