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dc.contributor.authorSingha, Prosanta
dc.contributor.authorMäklin, Kiira
dc.contributor.authorVihavainen, Taina
dc.contributor.authorLaitinen, Tuomo
dc.contributor.authorNevalainen, Tapio
dc.contributor.authorPatil, Mahadeo
dc.contributor.authorTonduru, Arun
dc.contributor.authorPoso, Antti
dc.contributor.authorLaitinen, Jarmo
dc.contributor.authorSavinainen, Juha
dc.date.accessioned2020-06-11T10:05:59Z
dc.date.available2020-06-11T10:05:59Z
dc.date.issued2020
dc.identifier.urihttps://erepo.uef.fi/handle/123456789/8166
dc.description.abstractDe novo synthesis of fatty acids is essential to maintain intensive proliferation of cancer cells. Unlike normal cells that utilize food-derived circulating lipids for their fuel, cancer cells rely on heightened lipogenesis irrespective of exogenous lipid availability. Overexpression and activity of the multidomain enzyme fatty acid synthase (FASN) is crucial in supplying palmitate for protumorigenic activity. Therefore, FASN has been proposed as an attractive target for drug development. As an effort to set up an effective toolkit to study FASN inhibitors in human and rodent tissues, we validated activity-based protein profiling (ABPP) as a viable approach to unveil inhibitors targeting FASN thioesterase domain (FASN-TE). ABPP was combined with multi-well plate-assays designed for classical substrate-based FASN activity analysis together with powerful monitoring of cancer cell proliferation using IncuCyte® Live Cell Analyzing System. FASN-TE inhibitors were identified by competitive ABPP using HEK293 cell lysates in a screen of in-house compounds (200+) designed to target serine hydrolase (SH) family. The identified compounds were tested for their inhibitor potencies in vitro using a substrate-based activity assay monitoring FASN-dependent NADPH consumption in LNCaP prostate cancer cell preparation, in parallel with selected reference inhibitors, including orlistat (THL), GSK2194069, GSK837149A, platensimycin and BI-99179. LNCaP lysate supernatant was validated as a reliable native preparation to monitor FASN-dependent NADPH consumption as opposed to human glioma GAMG cells, whereas FASN enrichment was a prerequisite for accurate assays. While inhibitor pharmacology was identical between human prostate and glioma cancer cell FASN preparations, notable differences were revealed between human and rodent FASN preparations, especially for inhibitors targeting FASN-TE. ABPP combined with substrate-based assays facilitated identification of pan thiol-reactive inhibitor scaffolds, exemplified by the 1,2,4-thiadiazole moiety. Finally, selected compounds were evaluated for their antiproliferative efficacy in situ using GAMG cells. These studies revealed that while the tested compounds acted as potent FASN inhibitors in vitro, only a few showed antiproliferative efficacy in situ. To conclude, we describe a versatile toolkit to study FASN inhibitors in vitro and in situ using human cancer cells and reveal dramatic pharmacological differences between human and rodent FASN preparations.
dc.language.isoenglanti
dc.publisherElsevier BV
dc.relation.ispartofseriesEuropean journal of pharmaceutical sciences
dc.relation.urihttp://dx.doi.org/10.1016/j.ejps.2020.105321
dc.rightsCC BY-NC-ND 4.0
dc.subjectfatty acid synthesis
dc.subjectinhibition
dc.subjectcancer
dc.subjectglioma
dc.subjectanti-proliferation
dc.subjectpan-assay interfering compounds (PAINs)
dc.titleEvaluation of FASN inhibitors by a versatile toolkit reveals differences in pharmacology between human and rodent FASN preparations and in antiproliferative efficacy in vitro vs. in situ in human cancer cells
dc.description.versionfinal draft
dc.contributor.departmentSchool of Medicine / Biomedicine
dc.contributor.departmentSchool of Medicine / Clinical Medicine,School of Pharmacy, Activities
uef.solecris.id69933790en
dc.type.publicationTieteelliset aikakauslehtiartikkelit
dc.relation.doi10.1016/j.ejps.2020.105321
dc.description.reviewstatuspeerReviewed
dc.publisher.countryAlankomaat
dc.relation.articlenumber105321
dc.relation.issn0928-0987
dc.relation.volume149
dc.rights.accesslevelopenAccess
dc.type.okmA1
uef.solecris.openaccessEi
dc.rights.copyright© 2020 Elsevier B.V.
dc.type.displayTypearticleen
dc.type.displayTypeartikkelifi
dc.rights.urlhttps://creativecommons.org/licenses/by-nc-nd/4.0/


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