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Structural basis for RNA polymerase III transcription repression by Maf1.Maf1 抑制 RNA 聚合酶 III 转录的结构基础。
Nat Struct Mol Biol. 2020 Mar;27(3):229-232. doi: 10.1038/s41594-020-0383-y. Epub 2020 Feb 17.
2
Maf1-dependent transcriptional regulation of tRNAs prevents genomic instability and is associated with extended lifespan.Maf1 依赖性 tRNA 转录调控可防止基因组不稳定性,并与延长寿命相关。
Aging Cell. 2020 Feb;19(2):e13068. doi: 10.1111/acel.13068. Epub 2019 Dec 12.
3
Maf1 ameliorates cardiac hypertrophy by inhibiting RNA polymerase III through ERK1/2.Maf1 通过 ERK1/2 抑制 RNA 聚合酶 III 来改善心肌肥厚。
Theranostics. 2019 Sep 25;9(24):7268-7281. doi: 10.7150/thno.33006. eCollection 2019.
4
Polymerase III transcription is necessary for T cell priming by dendritic cells.聚合酶 III 转录对于树突状细胞引发 T 细胞免疫反应是必需的。
Proc Natl Acad Sci U S A. 2019 Nov 5;116(45):22721-22729. doi: 10.1073/pnas.1904396116. Epub 2019 Oct 21.
5
Target of Rapamycin kinase: central regulatory hub for plant growth and metabolism.雷帕霉素激酶靶点:植物生长和代谢的核心调控枢纽
J Exp Bot. 2019 Apr 15;70(8):2211-2216. doi: 10.1093/jxb/erz108.
6
Characterization of Maf1 in Arabidopsis: function under stress conditions and regulation by the TOR signaling pathway.拟南芥 Maf1 蛋白的特性研究:胁迫条件下的功能及其受 TOR 信号通路的调控。
Planta. 2019 Feb;249(2):527-542. doi: 10.1007/s00425-018-3024-5. Epub 2018 Oct 6.
7
Maf1 and Repression of RNA Polymerase III-Mediated Transcription Drive Adipocyte Differentiation.Maf1 和 RNA 聚合酶 III 介导的转录抑制驱动脂肪细胞分化。
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8
Structural visualization of RNA polymerase III transcription machineries.RNA聚合酶III转录机制的结构可视化
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9
Beyond regulation of pol III: Role of MAF1 in growth, metabolism, aging and cancer.超越 pol III 的调控:MAF1 在生长、代谢、衰老和癌症中的作用。
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10
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MAF1 磷酸化调节区控制 MAF1 与 RNA 聚合酶 III C34 亚基的相互作用和植物中的转录抑制。

The MAF1 Phosphoregulatory Region Controls MAF1 Interaction with the RNA Polymerase III C34 Subunit and Transcriptional Repression in Plants.

机构信息

Brazilian Biosciences National Laboratory, Brazilian Center for Research in Energy and Materials, 13083-100 Campinas, São Paulo, Brazil.

Brazilian Biosciences National Laboratory, Brazilian Center for Research in Energy and Materials, 13083-100 Campinas, São Paulo, Brazil

出版信息

Plant Cell. 2020 Sep;32(9):3019-3035. doi: 10.1105/tpc.20.00297. Epub 2020 Jul 8.

DOI:10.1105/tpc.20.00297
PMID:32641350
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7474290/
Abstract

MAF1 is a phosphoprotein that plays a critical role in cell growth control as the central regulator of RNA polymerase (Pol) III activity. Citrus MAF1 (CsMAF1) was identified as a direct target of PthA4, a bacterial effector protein required to induce tumors in citrus. CsMAF1 binds to Pol III to restrict transcription; however, exactly how CsMAF1 interacts with the polymerase and how phosphorylation modulates this interaction is unknown. Moreover, how CsMAF1 binds PthA4 is also obscure. Here we show that CsMAF1 binds predominantly to the WH1 domain of the citrus Pol III subunit C34 (CsC34) and that its phosphoregulatory region, comprising loop-3 and α-helix-2, contributes to this interaction. We also show that phosphorylation of this region decreases CsMAF1 affinity to CsC34, leading to Pol III derepression, and that Ser 45, found only in plant MAF1 proteins, is critical for CsC34 interaction and is phosphorylated by a new citrus AGC1 kinase. Additionally, we show that the C-terminal region of the citrus TFIIIB component BRF1 competes with CsMAF1 for CsC34 interaction, whereas the C-terminal region of CsMAF1 is essential for PthA4 binding. Based on CsMAF1 structural data, we propose a mechanism for how CsMAF1 represses Pol III transcription and how phosphorylation controls this process.

摘要

MAF1 是一种磷酸化蛋白,作为 RNA 聚合酶 (Pol) III 活性的中央调节剂,在细胞生长控制中起着关键作用。柑橘 MAF1 (CsMAF1) 被鉴定为细菌效应蛋白 PthA4 的直接靶标,该蛋白是诱导柑橘肿瘤所必需的。CsMAF1 与 Pol III 结合以限制转录;然而,CsMAF1 如何与聚合酶相互作用以及磷酸化如何调节这种相互作用尚不清楚。此外,CsMAF1 如何结合 PthA4 也不清楚。在这里,我们表明 CsMAF1 主要与柑橘 Pol III 亚基 C34(CsC34)的 WH1 结构域结合,其磷酸化调节区,包括环 3 和α-螺旋 2,有助于这种相互作用。我们还表明,该区域的磷酸化会降低 CsMAF1 与 CsC34 的亲和力,导致 Pol III 去抑制,并且仅在植物 MAF1 蛋白中发现的 Ser 45 对于 CsC34 相互作用和被新的柑橘 AGC1 激酶磷酸化至关重要。此外,我们表明,柑橘 TFIIIB 成分 BRF1 的 C 端区域与 CsMAF1 竞争与 CsC34 的相互作用,而 CsMAF1 的 C 端区域对于 PthA4 结合是必需的。基于 CsMAF1 的结构数据,我们提出了 CsMAF1 如何抑制 Pol III 转录以及磷酸化如何控制这一过程的机制。