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Fine-Tuning of Smad Protein Function by Poly(ADP-Ribose) Polymerases and Poly(ADP-Ribose) Glycohydrolase during Transforming Growth Factor β Signaling

机译:聚(ADP-核糖)聚合酶和聚(ADP-核糖)糖水解酶在转化生长因子β信号传导过程中对Smad蛋白功能的微调

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摘要

BACKGROUND: Initiation, amplitude, duration and termination of transforming growth factor β (TGFβ) signaling via Smad proteins is regulated by post-translational modifications, including phosphorylation, ubiquitination and acetylation. We previously reported that ADP-ribosylation of Smads by poly(ADP-ribose) polymerase 1 (PARP-1) negatively influences Smad-mediated transcription. PARP-1 is known to functionally interact with PARP-2 in the nucleus and the enzyme poly(ADP-ribose) glycohydrolase (PARG) can remove poly(ADP-ribose) chains from target proteins. Here we aimed at analyzing possible cooperation between PARP-1, PARP-2 and PARG in regulation of TGFβ signaling. METHODS: A robust cell model of TGFβ signaling, i.e. human HaCaT keratinocytes, was used. Endogenous Smad3 ADP-ribosylation and protein complexes between Smads and PARPs were studied using proximity ligation assays and co-immunoprecipitation assays, which were complemented by in vitro ADP-ribosylation assays using recombinant proteins. Real-time RT-PCR analysis of mRNA levels and promoter-reporter assays provided quantitative analysis of gene expression in response to TGFβ stimulation and after genetic perturbations of PARP-1/-2 and PARG based on RNA interference. RESULTS: TGFβ signaling rapidly induces nuclear ADP-ribosylation of Smad3 that coincides with a relative enhancement of nuclear complexes of Smads with PARP-1 and PARP-2. Inversely, PARG interacts with Smads and can de-ADP-ribosylate Smad3 in vitro. PARP-1 and PARP-2 also form complexes with each other, and Smads interact and activate auto-ADP-ribosylation of both PARP-1 and PARP-2. PARP-2, similar to PARP-1, negatively regulates specific TGFβ target genes (fibronectin, Smad7) and Smad transcriptional responses, and PARG positively regulates these genes. Accordingly, inhibition of TGFβ-mediated transcription caused by silencing endogenous PARG expression could be relieved after simultaneous depletion of PARP-1. CONCLUSION: Nuclear Smad function is negatively regulated by PARP-1 that is assisted by PARP-2 and positively regulated by PARG during the course of TGFβ signaling.
机译:背景:通过Smad蛋白的转化生长因子β(TGFβ)信号传导的起始,幅度,持续时间和终止受翻译后修饰(包括磷酸化,泛素化和乙酰化)的调节。我们以前曾报道说,聚(ADP-核糖)聚合酶1(PARP-1)对Smads的ADP-核糖基化会负面影响Smad介导的转录。已知PARP-1在细胞核中与PARP-2在功能上相互作用,并且聚(ADP-核糖)糖水解酶(PARG)可以从目标蛋白中去除聚(ADP-核糖)链。在这里,我们旨在分析PARP-1,PARP-2和PARG之间可能在调节TGFβ信号传导方面的合作。方法:使用TGFβ信号转导的稳健细胞模型,即人HaCaT角质形成细胞。 Smads和PARPs之间的内源性Smad3 ADP-核糖基化和蛋白复合物的研究方法是使用邻近连接测定法和共免疫沉淀测定法,并辅以使用重组蛋白的体外ADP-核糖基化测定法。 mRNA水平的实时RT-PCR分析和启动子报告基因分析提供了定量分析响应TGFβ刺激和基于RNA干扰的PARP-1 / -2和PARG的基因表达后的基因表达。结果:TGFβ信号迅速诱导Smad3的核ADP-核糖基化,这与Smads与PARP-1和PARP-2的核复合物的相对增强相吻合。相反,PARG与Smads相互作用,可以在体外使Smad3脱ADP-核糖基化。 PARP-1和PARP-2也彼此形成复合物,Smads相互作用并激活PARP-1和PARP-2的自动ADP-核糖基化。与PARP-1相似,PARP-2负调节特定的TGFβ靶基因(纤连蛋白,Smad7)和Smad转录反应,而PARG则正调节这些基因。因此,在同时消耗PARP-1后,可以减轻由沉默内源PARG表达引起的TGFβ介导的转录抑制。结论:在TGFβ信号传导过程中,PARP-1负调控核Smad功能,PARP-2辅助PARP-1负调控核Smad功能。

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