Matches in SemOpenAlex for { <https://semopenalex.org/work/W2521089643> ?p ?o ?g. }
- W2521089643 endingPage "43" @default.
- W2521089643 startingPage "32" @default.
- W2521089643 abstract "To improve the treatment of advanced prostate cancer, the development of effective and innovative antitumor agents is needed. Our previous work demonstrated that the ROS (reactive oxygen species) scavenger, MnTE-2-PyP, inhibited human prostate cancer growth and also inhibited prostate cancer migration and invasion. We showed that MnTE-2-PyP treatment altered the affinity of the histone acetyltransferase enzyme, p300, to bind to DNA. We speculate that this may be one mechanism by which MnTE-2-PyP inhibits prostate cancer progression. Specifically, MnTE-2-PyP decreased p300/HIF-1/CREB complex (p300/hypoxia-inducible factor-1/cAMP response element-binding protein) binding to a specific hypoxia-response element (HRE) motif within the plasminogen activator inhibitor-1 (PAI-1) gene promoter region, and consequently, repressed PAI-1 expression. However, it remains unclear how MnTE-2-PyP reduces p300 complex binding affinity to the promoter region of specific genes. In this study, we found that overexpression of Cu/ZnSOD (superoxide dismutase 1, SOD1) significantly suppressed PAI-1 gene expression and p300 complex binding to the promoter region of PAI-1 gene, just as was observed in cells treated with MnTE-2-PyP. Furthermore, catalase (CAT) overexpression rescued the inhibition of PAI-1 expression and p300 binding by MnTE-2-PyP. Taken together, the above findings suggest that hydrogen peroxide (H2O2) is likely the mediator through which MnTE-2-PyP inhibits the PAI-1 expression and p300 complex binding in PC3 cells. To confirm this, we measured the production of H2O2 following overexpression of SOD1 or catalase with MnTE-2-PyP treatment in the presence or absence of radiation. We found that MnTE-2-PyP increased the intracellular steady-state levels of H2O2 and increased nuclear H2O2 levels. As expected, catalase overexpression significantly decreased the levels of intracellular H2O2 induced by MnTE-2-PyP. We then determined if this increased H2O2 production could result in oxidized protein thiol groups. In the presence of MnTE-2-PyP, there was a significant increase in oxidized thiols in PC3 cell lysates and this was reversed with catalase overexpression. Specifically, we showed that p300 was oxidized after MnTE-2-PyP treatment, indicating that MnTE-2-PyP is creating a more oxidizing environment and this is altering the oxidation state of p300 thiol residues. Our data provide an in depth mechanism by which MnTE-2-PyP regulates gene transcription through induced H2O2 mediated oxidation of particular proteins, supporting an important role for MnTE-2-PyP as an effective and innovative antitumor agent to enhance treatment outcomes in prostate cancer radiotherapy." @default.
- W2521089643 created "2016-09-30" @default.
- W2521089643 creator A5003388702 @default.
- W2521089643 creator A5014756434 @default.
- W2521089643 creator A5029832085 @default.
- W2521089643 creator A5037779489 @default.
- W2521089643 creator A5057349004 @default.
- W2521089643 creator A5064842126 @default.
- W2521089643 creator A5087519630 @default.
- W2521089643 date "2016-12-01" @default.
- W2521089643 modified "2023-09-22" @default.
- W2521089643 title "MnTE-2-PyP modulates thiol oxidation in a hydrogen peroxide-mediated manner in a human prostate cancer cell" @default.
- W2521089643 cites W151349690 @default.
- W2521089643 cites W191793640 @default.
- W2521089643 cites W1963783185 @default.
- W2521089643 cites W1965431285 @default.
- W2521089643 cites W1966986944 @default.
- W2521089643 cites W1972264015 @default.
- W2521089643 cites W1982415526 @default.
- W2521089643 cites W1983324628 @default.
- W2521089643 cites W1988124761 @default.
- W2521089643 cites W1988131776 @default.
- W2521089643 cites W1994043227 @default.
- W2521089643 cites W1995199032 @default.
- W2521089643 cites W1996571477 @default.
- W2521089643 cites W2001183341 @default.
- W2521089643 cites W2006833515 @default.
- W2521089643 cites W2014740048 @default.
- W2521089643 cites W2015679062 @default.
- W2521089643 cites W2021316856 @default.
- W2521089643 cites W2025995838 @default.
- W2521089643 cites W2028234690 @default.
- W2521089643 cites W2030575063 @default.
- W2521089643 cites W2053313106 @default.
- W2521089643 cites W2057314273 @default.
- W2521089643 cites W2070620272 @default.
- W2521089643 cites W2079310705 @default.
- W2521089643 cites W2081674688 @default.
- W2521089643 cites W2082537826 @default.
- W2521089643 cites W2083860566 @default.
- W2521089643 cites W2092078309 @default.
- W2521089643 cites W2092466076 @default.
- W2521089643 cites W2101645278 @default.
- W2521089643 cites W2104571078 @default.
- W2521089643 cites W2106912600 @default.
- W2521089643 cites W2108833026 @default.
- W2521089643 cites W2111651157 @default.
- W2521089643 cites W2113352370 @default.
- W2521089643 cites W2125425490 @default.
- W2521089643 cites W2125653641 @default.
- W2521089643 cites W2127785542 @default.
- W2521089643 cites W2136220225 @default.
- W2521089643 cites W2140538799 @default.
- W2521089643 cites W2158975050 @default.
- W2521089643 cites W2160217483 @default.
- W2521089643 cites W2165948908 @default.
- W2521089643 cites W2168243468 @default.
- W2521089643 cites W2180889206 @default.
- W2521089643 cites W2292166857 @default.
- W2521089643 cites W4230563314 @default.
- W2521089643 cites W952995637 @default.
- W2521089643 doi "https://doi.org/10.1016/j.freeradbiomed.2016.09.019" @default.
- W2521089643 hasPubMedCentralId "https://www.ncbi.nlm.nih.gov/pmc/articles/5486925" @default.
- W2521089643 hasPubMedId "https://pubmed.ncbi.nlm.nih.gov/27671770" @default.
- W2521089643 hasPublicationYear "2016" @default.
- W2521089643 type Work @default.
- W2521089643 sameAs 2521089643 @default.
- W2521089643 citedByCount "31" @default.
- W2521089643 countsByYear W25210896432017 @default.
- W2521089643 countsByYear W25210896432018 @default.
- W2521089643 countsByYear W25210896432019 @default.
- W2521089643 countsByYear W25210896432020 @default.
- W2521089643 countsByYear W25210896432021 @default.
- W2521089643 countsByYear W25210896432022 @default.
- W2521089643 countsByYear W25210896432023 @default.
- W2521089643 crossrefType "journal-article" @default.
- W2521089643 hasAuthorship W2521089643A5003388702 @default.
- W2521089643 hasAuthorship W2521089643A5014756434 @default.
- W2521089643 hasAuthorship W2521089643A5029832085 @default.
- W2521089643 hasAuthorship W2521089643A5037779489 @default.
- W2521089643 hasAuthorship W2521089643A5057349004 @default.
- W2521089643 hasAuthorship W2521089643A5064842126 @default.
- W2521089643 hasAuthorship W2521089643A5087519630 @default.
- W2521089643 hasBestOaLocation W25210896432 @default.
- W2521089643 hasConcept C101762097 @default.
- W2521089643 hasConcept C104317684 @default.
- W2521089643 hasConcept C121608353 @default.
- W2521089643 hasConcept C150194340 @default.
- W2521089643 hasConcept C153911025 @default.
- W2521089643 hasConcept C185592680 @default.
- W2521089643 hasConcept C2775838275 @default.
- W2521089643 hasConcept C2776151105 @default.
- W2521089643 hasConcept C2778979269 @default.
- W2521089643 hasConcept C2780192828 @default.
- W2521089643 hasConcept C48349386 @default.
- W2521089643 hasConcept C502942594 @default.
- W2521089643 hasConcept C54355233 @default.
- W2521089643 hasConcept C55493867 @default.