| Literature DB >> 29956081 |
Ellis N Ter Horst1,2,3,4, Nynke E Hahn5,6, Dirk Geerts7, René J P Musters5,8, Walter J Paulus5,9, Albert C van Rossum5,10, Christof Meischl5,6, Jan J Piek11, Hans W M Niessen5,6,9, Paul A J Krijnen5,6.
Abstract
Reactive oxygen species (ROS) control forkhead box O (FOXO) transcription factor activity by influencing their nuclear translocation. However, knowledge of the ROS cellular source(s) involved herein remains scarce. Recently, we have shown p47phox-dependent activation of ROS-producing NADPH oxidase (NOX) at the nuclear pore in H9c2 rat cardiomyoblasts in response to ischemia. This localizes NOX perfectly to affect protein nuclear translocation, including that of transcription factors. In the current study, involvement of p47phox-dependent production of ROS in the nuclear translocation of FOXO1 was analyzed in H9c2 cells following 4 h of metabolic inhibition (MI), which mimics the effects of ischemia. Nuclear translocation of FOXO1 was determined by quantitative digital-imaging fluorescence and western blot analysis. Subsequently, the effect of inhibiting p47phox-dependent ROS production by short hairpin RNA (shRNA) transfection on FOXO1 translocation was analyzed by digital-imaging microscopy. MI induced a significant translocation of FOXO1 into the nucleus. Transfection with p47phox-shRNA successfully knocked-down p47phox expression, reduced nuclear nitrotyrosine production, an indirect marker for ROS production, and inhibited the nuclear translocation of FOXO1 following MI. With these results, we show for the first time that nuclear import of FOXO1 induced by MI in H9c2 depends critically on p47phox-mediated ROS production.Entities:
Keywords: FOXO1; Ischemia; NADPH oxidase; Reactive oxygen species; p47phox
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Year: 2018 PMID: 29956081 PMCID: PMC6097050 DOI: 10.1007/s12013-018-0847-4
Source DB: PubMed Journal: Cell Biochem Biophys ISSN: 1085-9195 Impact factor: 2.194
Fig. 1MI increases nuclear p47phox expression of and nuclear nitrotyrosine production. Quantitative fluorescent digital-imaging analysis of p47phox a and nitrotyrosine production b in the nucleus of H9c2 cells under control conditions or after 4 h of MI. Representative images under control and MI condition are shown in c of p47phox and d nitrotyrosine. The expressions are depicted as the percentage relative to non-MI control conditions (n = 4). The average expression level under control conditions was set to 100%. (***P < 0.001). MI metabolic inhibition. Scale bars represent 10 µm
Fig. 2MI induces FOXO1 nuclear translocation. Analysis of the subcellular localization of FOXO1 in H9c2 cells subjected to control conditions or 4 h MI, using quantitative fluorescent digital-imaging microscopy and western blot. a Quantification of fluorescent digital-imaging analysis of FOXO1 expression in the cytosol and the nucleus depicted as the percentage expression levels relative to non-ischemic control conditions (n = 7). The average expression level under control conditions was set to 100%. b Example of the subcellular localization of FOXO1 (green signal). Nuclei were stained with DAPI (red signal). Arrows indicate dispersed expression of FOXO1 in the nucleus (right picture). Scale bar represents 10 µm. c Quantification of western blot analysis of FOXO1 in the cytosolic and nuclear fractions are presented as the expression levels in percentage relative to non-MI control conditions (n = 4). The average expression level under control conditions was set to 100%. Statistical (**P < 0.01; ***P < 0.001). MI metabolic inhibition
Fig. 3p47phox knockdown in MI challenged H9c2 cells. Efficacy validation of p47phox-specific shRNA transfection of H9c2 cells on the expression of p47phox. a Western blot analysis of cellular p47phox protein levels in cells transfected with either a p47phox-specific shRNA (sh-p47phox) or a shRNA carrying a non-targeted RNA sequence (sh-non target) and subsequently subjected to 4 h of MI (n = 3) and quantitatively presented in b. c Quantification of fluorescent digital-imaging microscopy of nuclear p47phox expression in cells transfected with either sh-p47phox or sh-non target and subsequently subjected to 4 h of MI. Expressions are depicted as the expression levels in percentage relative to non-MI control conditions (n = 3). The average expression level under control conditions was set to 100%. (*P < 0.05; ****P < 0.0001). MI metabolic inhibition
Fig. 4p47phox knockdown prevents MI-induced nuclear nitrotyrosine production and FOXO1 expression. Quantitative fluorescent digital-imaging analysis of nuclear nitrotyrosine production (a) or FOXO1 (d) expression in H9c2 cells under control conditions or by 4 h of MI either or not preceded by p47phox-specific shRNA transfection (sh-p47phox). Representative images of nitrotyrosine production (c) and FOXO1 (f) under control conditions and following MI, and the effect of sh-p47phox hereon. Expression levels of nuclear ROS production (b) or FOXO1 (e) expression in H9c2 cells transfected with a shRNA carrying a non-targeting RNA sequence (sh-non target) subjected to either non-MI control conditions or 4 h of MI. Expressions are depicted as the expression levels in percentage relative to non-MI control conditions. The average expression level under control conditions was set to 100%. (*P < 0.05; ***P < 0.001; ****P < 0.0001). MI metabolic inhibition. Scale bars represent 10 µm