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dc.contributor.authorPEREZ AÑORVE, ISIDRO XAVIER-
dc.contributor.authorFLORES FORTIS, MAURICIO-
dc.contributor.authorPATIÑO MORALES, CARLOS CESAR-
dc.contributor.authorORTIZ GUTIERREZ, ELIZABETH-
dc.contributor.authorDEL MURAL HERNANDEZ, OSCAR-
dc.contributor.authorGONZALEZ DE LA ROSA, CLAUDIA HAYDEE-
dc.contributor.authorSOTO REYES, ERNESTO-
dc.contributor.authorBONILLA MORENO, RAUL-
dc.contributor.authorCHAVEZ SALDAÑA, MARGARITA-
dc.contributor.authorLANDERO HUERTA, DANIEL A.-
dc.contributor.authorORTEGA BERNAL, DANIEL-
dc.contributor.authorVILLEGAS, NICOLAS-
dc.contributor.authorARECHAGA OCAMPO, ELENA-
dc.coverage.spatial<dc:creator id="info:eu-repo/dai/mx/cvu/416929">ISIDRO XAVIER PEREZ AÑORVE</dc:creator>-
dc.coverage.spatial<dc:creator id="info:eu-repo/dai/mx/cvu/472137">MAURICIO FLORES FORTIS</dc:creator>-
dc.coverage.spatial<dc:creator id="info:eu-repo/dai/mx/cvu/416000">CARLOS CESAR PATIÑO MORALES</dc:creator>-
dc.coverage.spatial<dc:creator id="info:eu-repo/dai/mx/cvu/40114">CLAUDIA HAYDEE GONZALEZ DE LA ROSA</dc:creator>-
dc.coverage.spatial<dc:creator id="info:eu-repo/dai/mx/cvu/48051">ERNESTO SOTO REYES SOLIS</dc:creator>-
dc.coverage.spatial<dc:creator id="info:eu-repo/dai/mx/cvu/330044">DANIEL ORTEGA BERNAL</dc:creator>-
dc.coverage.spatial<dc:creator id="info:eu-repo/dai/mx/cvu/40111">ELENA ARECHAGA OCAMPO</dc:creator>-
dc.date.accessioned2025-11-03T21:36:32Z-
dc.date.available2025-11-03T21:36:32Z-
dc.date.issued2024-
dc.identifier.citationAdvanced Therapeutics, 2024, 7, 2300274en_US
dc.identifier.urihttp://ilitia.cua.uam.mx:8080/jspui/handle/123456789/1274-
dc.description.abstractBreast cancer cells exposed to radiotherapy frequently develop radiation resistance through molecular and phenotypic changes. While there is evidences of pathways controlling radioresistance, the evolution of diverse cell phenotypes and transcriptional changes as mediators of radioresistance in breast cancer are restricted. Moreover, the effectiveness of the chemotherapy on radioresistant cells remains uncertain. In this work, an isogenic model of radioresistant breast cancer cells (RR cells) is used to study this phenotype. RR cells show high survival rates after radiation, moreover, RR cells of the triple negative breast cancer (TNBC) subtype show a significantly advanced invasiveness phenotype. Notably, RR cells are significantly sensitive to chemotherapy by inhibit cell survival and promote apoptosis. Transcriptomics and gene co-expression network analysis identify differentially expressed genes (DEGs) and hub genes related to survival and apoptosis pathways in the RR cells of luminal subtype, while in TNBC subtype, cell migration, cell differentiation, and immune pathways are enriched. Hub genes predict the failure of radiotherapy in breast cancer patients, but they are also related to pathological complete response after chemotherapy. Transcriptome changes during acquired radioresistance uncover genes and pathways associated to radio and chemotherapy response. These results demonstrate that radioresistant pathways may converge to develop collateral chemo-sensitivity.en_US
dc.language.isoInglésen_US
dc.publisherReino Unido : Wileyen_US
dc.relation.haspart2366-3987-
dc.rightshttps://doi.org/10.1002/adtp.202300274-
dc.subjectCancer - investigacionesen_US
dc.subjectCélulas cancerosas - tratamientoen_US
dc.titleIntegrated transcriptome analysis of radioresistant cells revealed genes and pathways predictive of tumor response to radiotherapy and chemotherapy in breast canceren_US
dc.typeArtículoen_US
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