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Phorbol esters selectively downregulate contractile protein gene expression in terminally differentiated myotubes through transcriptional repression and message destabilization

机译:佛波酯通过转录抑制和信息不稳定来选择性下调终末分化肌管中的收缩蛋白基因表达

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摘要

Chronic exposure of differentiated avian skeletal muscle cells in culture to the phorbol ester, 12-O-tetradecanoyl phorbol-13-acetate (PMA), results in the selective disassembly of sarcomeric structures and loss of muscle-specific contractile proteins, leaving cytoskeletal structures and their associated proteins intact. We demonstrate here that these morphological and biochemical changes are accompanied by dramatic and selective decreases in the level of the mRNAs that encode the contractile proteins. We measured the effects of PMA on the transcriptional activity and mRNA stability of four contractile protein genes (alpha-cardiac and alpha-skeletal actin, cardiac troponin C [cTnC], and myosin light chain lf [MLClf]) and two nonmuscle genes (beta-cytoplasmic actin and the glycolytic enzyme, glyceraldehyde-3- phosphate dehydrogenase [GAPDH]). The transcriptional activity of the alpha-cardiac actin and cTnC genes dramatically decreased by 8 h after the addition of PMA, while other muscle and nonmuscle genes examined showed no change. Pulse-chase experiments of in vivo labeled RNA showed significant reductions in mRNA half-lifes for all the contractile protein mRNAs examined, while the half-lifes of beta-actin and GAPDH mRNA were unchanged. All of the above effects occurred under conditions in which cellular protein kinase C (PKC) levels had been reduced by greater than 90%. The fact that many of the contractile protein genes remained transcriptionally active despite the fact that the cells were unable to accumulate their mRNAs to any significant extent indicated that the treated cells were still committed to skeletal muscle differentiation. The selective changes in the stability of the contractile protein mRNAs suggest that the control of mRNA stability may be part of the normal regulatory program of skeletal muscle differentiation and that this control may be linked to the integrity of the contractile apparatus and mediated by second messenger pathways involving PKC activation.
机译:将培养中的分化禽骨骼肌细胞长期暴露于佛波酯12-O-十四烷酰佛波13-乙酸酯(PMA),会导致肌节结构的选择性拆卸和肌肉特异性收缩蛋白的丢失,从而留下细胞骨架结构和它们相关的蛋白质完好无损。我们在这里证明这些形态和生化变化伴随着编码收缩蛋白的mRNA水平的显着和选择性降低。我们测量了PMA对四个收缩蛋白基因(α-心脏和α-骨骼肌动蛋白,心肌肌钙蛋白C [cTnC]和肌球蛋白轻链lf​​ [MLClf])和两个非肌肉基因(beta)的转录活性和mRNA稳定性的影响-胞质肌动蛋白和糖酵解酶,甘油醛-3-磷酸脱氢酶[GAPDH])。加入PMA后8小时,α-心脏肌动蛋白和cTnC基因的转录活性急剧下降,而其他肌肉和非肌肉基因均未发现变化。体内标记RNA的脉冲追踪实验显示,所有检测到的收缩蛋白mRNA的mRNA半衰期均显着降低,而β-肌动蛋白和GAPDH mRNA的半衰期未改变。所有上述影响都发生在细胞蛋白激酶C(PKC)水平降低了90%以上的条件下。尽管细胞不能以任何显着程度积累其mRNA,但许多收缩蛋白基因仍保持转录活性,这一事实表明经处理的细胞仍致力于骨骼肌的分化。收缩蛋白mRNA稳定性的选择性变化表明,mRNA稳定性的控制可能是骨骼肌分化正常调控程序的一部分,并且这种控制可能与收缩装置的完整性有关,并由第二信使途径介导涉及PKC激活。

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