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GDNF-RET 信号和 EGR1 形成正反馈回路,通过细胞周期蛋白 D1 促进他莫昔芬耐药性。

GDNF-RET signaling and EGR1 form a positive feedback loop that promotes tamoxifen resistance via cyclin D1.

机构信息

Department of Biomedical and Biological Sciences, College of Veterinary Medicine, Cornell University, Ithaca, USA.

Baker Institute for Animal Health, College of Veterinary Medicine, Cornell University, Ithaca, USA.

出版信息

BMC Cancer. 2023 Feb 10;23(1):138. doi: 10.1186/s12885-023-10559-1.

Abstract

BACKGROUND

Rearranged during transfection (RET) tyrosine kinase signaling has been previously implicated in endocrine resistant breast cancer, however the mechanism by which this signaling cascade promotes resistance is currently not well described. We recently reported that glial cell-derived neurotrophic factor (GDNF)-RET signaling appears to promote a positive feedback loop with the transcription factor early growth response 1 (EGR1). Here we investigate the mechanism behind this feedback loop and test the hypothesis that GDNF-RET signaling forms a regulatory loop with EGR1 to upregulate cyclin D1 (CCND1) transcription, leading to cell cycle progression and tamoxifen resistance.

METHODS

To gain a better understanding of the GDNF-RET-EGR1 resistance mechanism, we studied the GDNF-EGR1 positive feedback loop and the role of GDNF and EGR1 in endocrine resistance by modulating their transcription levels using CRISPR-dCAS9 in tamoxifen sensitive (TamS) and tamoxifen resistant (TamR) MCF-7 cells. Additionally, we performed kinetic studies using recombinant GDNF (rGDNF) treatment of TamS cells. Finally, we performed cell proliferation assays using rGDNF, tamoxifen (TAM), and Palbociclib treatments in TamS cells. Statistical significance for qPCR and chromatin immunoprecipitation (ChIP)-qPCR experiments were determined using a student's paired t-test and statistical significance for the cell viability assay was a one-way ANOVA.

RESULTS

GDNF-RET signaling formed a positive feedback loop with EGR1 and also downregulated estrogen receptor 1 (ESR1) transcription. Upregulation of GDNF and EGR1 promoted tamoxifen resistance in TamS cells and downregulation of GDNF promoted tamoxifen sensitivity in TamR cells. Additionally, we show that rGDNF treatment activated GDNF-RET signaling in TamS cells, leading to recruitment of phospho-ELK-1 to the EGR1 promoter, upregulation of EGR1 mRNA and protein, binding of EGR1 to the GDNF and CCND1 promoters, increased GDNF protein expression, and subsequent upregulation of CCND1 mRNA levels. We also show that inhibition of cyclin D1 with Palbociclib, in the presence of rGDNF, decreases cell proliferation and resensitizes cells to TAM.

CONCLUSION

Outcomes from these studies support the hypotheses that GDNF-RET signaling forms a positive feedback loop with the transcription factor EGR1, and that GDNF-RET-EGR1 signaling promotes endocrine resistance via signaling to cyclin D1. Inhibition of components of this signaling pathway could lead to therapeutic insights into the treatment of endocrine resistant breast cancer.

摘要

背景

在转染过程中重排(RET)酪氨酸激酶信号已被先前牵连到内分泌抵抗性乳腺癌中,但是该信号级联促进抵抗的机制目前尚未很好地描述。我们最近报道,胶质细胞衍生的神经营养因子(GDNF)-RET 信号似乎与转录因子早期生长反应 1(EGR1)形成正反馈回路。在这里,我们研究了这个反馈回路背后的机制,并检验了以下假设:GDNF-RET 信号与 EGR1 形成调节环,以上调细胞周期蛋白 D1(CCND1)转录,从而导致细胞周期进程和他莫昔芬耐药。

方法

为了更好地了解 GDNF-RET-EGR1 耐药机制,我们使用 CRISPR-dCAS9 调节 Tam 敏感(TamS)和 Tam 耐药(TamR)MCF-7 细胞中的转录水平,研究了 GDNF-EGR1 正反馈回路以及 GDNF 和 EGR1 在内分泌抵抗中的作用。此外,我们使用重组 GDNF(rGDNF)处理 TamS 细胞进行了动力学研究。最后,我们在 TamS 细胞中使用 rGDNF、他莫昔芬(TAM)和 Palbociclib 处理进行了细胞增殖测定。使用学生配对 t 检验确定 qPCR 和染色质免疫沉淀(ChIP)-qPCR 实验的统计显着性,使用单向方差分析确定细胞活力测定的统计显着性。

结果

GDNF-RET 信号与 EGR1 形成正反馈回路,还下调了雌激素受体 1(ESR1)转录。GDNF 和 EGR1 的上调促进了 TamS 细胞中的他莫昔芬耐药性,而 GDNF 的下调促进了 TamR 细胞中的他莫昔芬敏感性。此外,我们表明 rGDNF 处理激活了 TamS 细胞中的 GDNF-RET 信号,导致磷酸化 ELK-1 募集到 EGR1 启动子,EGR1 mRNA 和蛋白上调,EGR1 与 GDNF 和 CCND1 启动子结合,GDNF 蛋白表达增加,随后 CCND1 mRNA 水平上调。我们还表明,在存在 rGDNF 的情况下,用 Palbociclib 抑制 cyclin D1 会降低细胞增殖并使细胞对 TAM 重新敏感。

结论

这些研究的结果支持以下假设:GDNF-RET 信号与转录因子 EGR1 形成正反馈回路,并且 GDNF-RET-EGR1 信号通过信号传导至细胞周期蛋白 D1 促进内分泌抵抗。抑制该信号通路的成分可能为治疗内分泌抵抗性乳腺癌提供治疗见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6f50/9912664/ba5eccb8b837/12885_2023_10559_Fig1_HTML.jpg

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