Tetraiodothyroacetic acid (Tetrac) and nanoparticulate tetrac arrest growth of medullary carcinoma of the thyroid

dc.contributor.authorDyskin, Evgeny
dc.contributor.authorLansing, Lawrence S.
dc.contributor.authorBharali, Dhruba Jyoti
dc.contributor.authorMousa, Shaymaa S.
dc.contributor.authorBridoux, Alexandre
dc.contributor.authorHercbergs, Aleck A.
dc.contributor.authorLin, Hungyung
dc.contributor.authorDavis, Faith B.
dc.contributor.authorGlinsky, Gennadi Victor
dc.contributor.authorGlinskii, Anna B.
dc.contributor.authorMa, J.
dc.contributor.authorDavis, Paul J.
dc.contributor.authorMousa, S. A.
dc.contributor.buuauthorYalçın, Murat
dc.contributor.departmentUludağ Üniversitesi/Veterinerlik Fakültesi/Temel Bilimler Bölümü.tr_TR
dc.contributor.orcid0000-0002-5600-8162tr_TR
dc.contributor.researcheridAAG-6956-2021tr_TR
dc.contributor.scopusid57192959734tr_TR
dc.date.accessioned2022-03-30T13:45:33Z
dc.date.available2022-03-30T13:45:33Z
dc.date.issued2010-04
dc.description.abstractContext: Tetraiodothyroacetic acid (tetrac) blocks angiogenic and tumor cell proliferation actions of thyroid hormone initiated at the cell surface hormone receptor on integrin alpha v beta 3. Tetrac also inhibits angiogenesis initiated by vascular endothelial growth factor and basic fibroblast growth factor. Objective: We tested antiangiogenic and antiproliferative efficacy of tetrac and tetrac nanoparticles (tetrac NP) against human medullary thyroid carcinoma (h-MTC) implants in the chick chorioallantoic membrane (CAM) and h-MTC xenografts in the nude mouse. Design: h-MTCcells were implanted in the CAM model (n = 8 per group); effects of tetrac and tetrac NP at 1 mu g/CAM were determined on tumor angiogenesis and tumor growth after 8 d. h-MTC cells were also implanted sc in nude mice (n = 6 animals per group), and actions on established tumor growth of unmodified tetrac and tetrac NP ip were determined. Results: In the CAM, tetrac and tetrac NP inhibited tumor growth and tumor-associated angiogenesis. In the nude mouse xenograft model, established 450-500 mm(3) h-MTC tumors were reduced in size over 21 d by both tetrac formulations to less than the initial cell mass (100 mm(3)). Tumor tissue hemoglobin content of xenografts decreased by 66% over the course of administration of each drug. RNA microarray and quantitative real-time PCR of tumor cell mRNAs revealed that both tetrac formulations significantly induced antiangiogenic thrombospondin 1 and apoptosis activator gene expression. Conclusions: Acting via a cell surface receptor, tetrac and tetrac NP inhibit growth of h-MTC cells and associated angiogenesis in CAM and mouse xenograft models.en_US
dc.description.sponsorshipCharitable Leadership Foundation/Medical Technology Acceleration Programen_US
dc.description.sponsorshipPharmaceutical Research Institute of Albany College of Pharmacyen_US
dc.identifier.citationYalçın, M. vd. (2010). "Tetraiodothyroacetic acid (Tetrac) and nanoparticulate tetrac arrest growth of medullary carcinoma of the thyroid". Journal of Clinical Endocrinology and Metabolism, 95(4), 1972-1980.en_US
dc.identifier.endpage1980tr_TR
dc.identifier.issn0021-972X
dc.identifier.issn1945-7197
dc.identifier.issue4tr_TR
dc.identifier.pubmed20133461tr_TR
dc.identifier.scopus2-s2.0-77951630790tr_TR
dc.identifier.startpage1972tr_TR
dc.identifier.urihttps://doi.org/10.1210/jc.2009-1926
dc.identifier.urihttps://academic.oup.com/jcem/article/95/4/1972/2597596?login=true
dc.identifier.urihttp://hdl.handle.net/11452/25463
dc.identifier.volume95tr_TR
dc.identifier.wos000276402300060tr_TR
dc.indexed.pubmedPubMeden_US
dc.indexed.scopusScopusen_US
dc.indexed.wosSCIEen_US
dc.language.isoenen_US
dc.publisherEndocrineen_US
dc.relation.collaborationYurt dışıtr_TR
dc.relation.collaborationSanayitr_TR
dc.relation.journalJournal of Clinical Endocrinology and Metabolismen_US
dc.relation.publicationcategoryMakale - Uluslararası Hakemli Dergitr_TR
dc.rightsinfo:eu-repo/semantics/openAccessen_US
dc.subjectActivated protein-kinaseen_US
dc.subjectCell-surface receptoren_US
dc.subjectAlpha-cateninen_US
dc.subjectProangiogenic actionen_US
dc.subjectMicroarray analysisen_US
dc.subjectGamma-cateninen_US
dc.subjectE-cadherinen_US
dc.subjectHormoneen_US
dc.subjectExpressionen_US
dc.subjectIntegrinen_US
dc.subjectEndocrinology & metabolismen_US
dc.subjectAnimaliaen_US
dc.subjectMus musculusen_US
dc.subject.emtreeAlpha cateninen_US
dc.subject.emtreeAngiogenesis inhibitoren_US
dc.subject.emtreeCaspase 2en_US
dc.subject.emtreeCaspase 8 associated protein 2en_US
dc.subject.emtreeDFFA proteinen_US
dc.subject.emtreeFas antigenen_US
dc.subject.emtreeGlyceraldehyde 3 phosphate dehydrogenaseen_US
dc.subject.emtreeHemoglobinen_US
dc.subject.emtreeMessenger RNAen_US
dc.subject.emtreeNanoparticleen_US
dc.subject.emtreeProteinen_US
dc.subject.emtreeTetraiodothyroacetic aciden_US
dc.subject.emtreeThrombospondin 1en_US
dc.subject.emtreeUnclassified drugen_US
dc.subject.emtreeVasculotropin Aen_US
dc.subject.emtreeAntineoplastic agenten_US
dc.subject.emtreeDrug derivativeen_US
dc.subject.emtreeExcipienten_US
dc.subject.emtreeHemoglobinen_US
dc.subject.emtreeLactic aciden_US
dc.subject.emtreeNanoparticleen_US
dc.subject.emtreePolyglycolic aciden_US
dc.subject.emtreePolylactic acid polyglycolic acid copolymeren_US
dc.subject.emtreePolylactic acid-polyglycolic acid copolymeren_US
dc.subject.emtreeRNAen_US
dc.subject.emtreeTetraiodothyroacetic aciden_US
dc.subject.emtreeThyroxineen_US
dc.subject.emtreeAnimal experimenten_US
dc.subject.emtreeAnimal tissueen_US
dc.subject.emtreeAntiangiogenic activityen_US
dc.subject.emtreeArticleen_US
dc.subject.emtreeCancer cell cultureen_US
dc.subject.emtreeCancer inhibitionen_US
dc.subject.emtreeCancer sizeen_US
dc.subject.emtreeCell cycle arresten_US
dc.subject.emtreeChorioallantoisen_US
dc.subject.emtreeControlled studyen_US
dc.subject.emtreeDrug distributionen_US
dc.subject.emtreeDrug effecten_US
dc.subject.emtreeDrug efficacyen_US
dc.subject.emtreeFemaleen_US
dc.subject.emtreeGene expressionen_US
dc.subject.emtreeHumanen_US
dc.subject.emtreeHuman cellen_US
dc.subject.emtreeHuman cell cultureen_US
dc.subject.emtreeMicroarray analysisen_US
dc.subject.emtreeMouseen_US
dc.subject.emtreeNonhumanen_US
dc.subject.emtreePriority journalen_US
dc.subject.emtreeReal time polymerase chain reactionen_US
dc.subject.emtreeThyroid medullary carcinomaen_US
dc.subject.emtreeTissue levelen_US
dc.subject.emtreeAnimalen_US
dc.subject.emtreeBiosynthesisen_US
dc.subject.emtreeBody weighten_US
dc.subject.emtreeCell cultureen_US
dc.subject.emtreeChick embryoen_US
dc.subject.emtreeDNA microarrayen_US
dc.subject.emtreeDrug screeningen_US
dc.subject.emtreeGeneticsen_US
dc.subject.emtreeMedullary carcinomaen_US
dc.subject.emtreeMetabolismen_US
dc.subject.emtreeNeovascularization (pathology)en_US
dc.subject.emtreeNude mouseen_US
dc.subject.emtreePathologyen_US
dc.subject.emtreeReverse transcription polymerase chain reactionen_US
dc.subject.emtreeThyroid tumoren_US
dc.subject.meshAnimalsen_US
dc.subject.meshAntineoplastic agentsen_US
dc.subject.meshBody weighten_US
dc.subject.meshCarcinoma, medullaryen_US
dc.subject.meshCells, cultureden_US
dc.subject.meshChick embryoen_US
dc.subject.meshChorioallantoic membraneen_US
dc.subject.meshExcipientsen_US
dc.subject.meshFemaleen_US
dc.subject.meshHemoglobinsen_US
dc.subject.meshHumansen_US
dc.subject.meshLactic aciden_US
dc.subject.meshMiceen_US
dc.subject.meshMice, nudeen_US
dc.subject.meshNanoparticlesen_US
dc.subject.meshNeovascularization, pathologicen_US
dc.subject.meshOligonucleotide array sequence analysisen_US
dc.subject.meshPolyglycolic aciden_US
dc.subject.meshReverse transcriptase polymerase chain reactionen_US
dc.subject.meshRNA, neoplasmen_US
dc.subject.meshThyroid neoplasmsen_US
dc.subject.meshThyroxineen_US
dc.subject.meshXenograft model antitumor assaysen_US
dc.subject.scopusIntegrin; Thyroid Hormones; Nano-Diamino-Tetracen_US
dc.subject.wosEndocrinology & metabolismen_US
dc.titleTetraiodothyroacetic acid (Tetrac) and nanoparticulate tetrac arrest growth of medullary carcinoma of the thyroiden_US
dc.typeArticle
dc.wos.quartileQ1en_US

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