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Arg/N 去稳定化途径靶向转录因子并调节特定基因。

The Arg/N-degron pathway targets transcription factors and regulates specific genes.

机构信息

Division of Biology and Biological Engineering, California Institute of Technology, Pasadena, CA 91125.

Department of Cell Biology, Harvard Medical School, Boston, MA 02115.

出版信息

Proc Natl Acad Sci U S A. 2020 Dec 8;117(49):31094-31104. doi: 10.1073/pnas.2020124117. Epub 2020 Nov 23.

Abstract

The Arg/N-degron pathway targets proteins for degradation by recognizing their N-terminal or internal degrons. Our previous work produced double-knockout (2-KO) HEK293T human cell lines that lacked the functionally overlapping UBR1 and UBR2 E3 ubiquitin ligases of the Arg/N-degron pathway. Here, we studied these cells in conjunction with RNA-sequencing, mass spectrometry (MS), and split-ubiquitin binding assays. 1) Some mRNAs, such as those encoding lactate transporter MCT2 and β-adrenergic receptor ADRB2, are strongly (∼20-fold) up-regulated in 2-KO cells, whereas other mRNAs, including those encoding MAGEA6 (a regulator of ubiquitin ligases) and LCP1 (an actin-binding protein), are completely repressed in 2-KO cells, in contrast to wild-type cells. 2) Glucocorticoid receptor (GR), an immunity-modulating transcription factor (TF), is up-regulated in 2-KO cells and also physically binds to UBR1, strongly suggesting that GR is a physiological substrate of the Arg/N-degron pathway. 3) PREP1, another TF, was also found to bind to UBR1. 4) MS-based analyses identified ∼160 proteins whose levels were increased or decreased by more than 2-fold in 2-KO cells. For example, the homeodomain TF DACH1 and the neurofilament subunits NF-L (NFEL) and NF-M (NFEM) were expressed in wild-type cells but were virtually absent in 2-KO cells. 5) The disappearance of some proteins in 2-KO cells took place despite up-regulation of their mRNAs, strongly suggesting that the Arg/N-degron pathway can also modulate translation of specific mRNAs. In sum, this multifunctional proteolytic system has emerged as a regulator of mammalian gene expression, in part through conditional targeting of TFs that include ATF3, GR, and PREP1.

摘要

Arg/N 降解途径通过识别其 N 端或内部降解基序来靶向蛋白质进行降解。我们之前的工作产生了缺乏 Arg/N 降解途径中功能重叠的 UBR1 和 UBR2 E3 泛素连接酶的双敲除 (2-KO) HEK293T 人细胞系。在这里,我们结合 RNA 测序、质谱 (MS) 和分裂泛素结合测定研究了这些细胞。1) 一些 mRNA,如编码乳酸转运蛋白 MCT2 和 β-肾上腺素能受体 ADRB2 的 mRNA,在 2-KO 细胞中强烈上调(约 20 倍),而其他 mRNA,包括编码 MAGEA6(一种泛素连接酶调节剂)和 LCP1(一种肌动蛋白结合蛋白)的 mRNA,在 2-KO 细胞中完全被抑制,而在野生型细胞中则没有。2) 糖皮质激素受体 (GR),一种免疫调节转录因子 (TF),在 2-KO 细胞中上调,并且与 UBR1 强烈结合,这强烈表明 GR 是 Arg/N 降解途径的生理底物。3) 另一个 TF,PREP1,也被发现与 UBR1 结合。4) MS 分析鉴定出约 160 种蛋白质,其在 2-KO 细胞中的水平增加或减少超过 2 倍。例如,同源域 TF DACH1 和神经丝亚基 NF-L (NFEL) 和 NF-M (NFEM) 在野生型细胞中表达,但在 2-KO 细胞中几乎不存在。5) 一些蛋白质在 2-KO 细胞中的消失发生在其 mRNA 上调的情况下,这强烈表明 Arg/N 降解途径还可以调节特定 mRNA 的翻译。总之,这个多功能的蛋白水解系统已成为哺乳动物基因表达的调节剂,部分通过条件性靶向包括 ATF3、GR 和 PREP1 在内的 TF。

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