PO.MCB01.01 · 分子与细胞生物学

PTEN功能缺失编码了对多靶点小分子CDK4/6-CDK9-AURKA/B抑制剂LCI133及其他CDK9抑制剂的敏感性

PTEN loss of function encodes sensitivity to multitargeted small molecule CDK4/6-CDK9-AURKA/B inhibitor, LCI133, and other CDK9 inhibitors

海报缩略图:PTEN功能缺失编码了对多靶点小分子CDK4/6-CDK9-AURKA/B抑制剂LCI133及其他CDK9抑制剂的敏感性
编号 1900 展板 8 时间 4/20 09:00–12:00 区域 Section 20 主讲 Halle Goodwin, MD
分会场 Cell Cycle
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作者与单位 Authors & Affiliations

Halle Goodwin1, Qi Zhang1, Vaidehi Mujumdar1, Krishaniah Maddeboina2, Cody McHale2, Bharath Yada2, Hailey Dryden2, Robert Wendel Naumann1, Yovanni Casablanca1, Erin K. Crane1, Jubilee Brown1, Allison Puechl1, Brittany Lees1, Donald Durden2, Dhananjaya Pal2

1Gynecologic Oncology, Atrium Health, Wake Forest University, Levine Cancer Institute, Charlotte, NC,2Molecular Targeted Therapeutics Laboratory, Atrium Health, Wake Forest University, Charlotte, NC

摘要 Abstract

中文摘要
目的:针对子宫内膜癌(EC)的靶向治疗已显示出前景,使得多靶点治疗药物尤为引人关注。LCI133是一种新型的、经计算机(in silico)设计的CDK4/6-CDK9-AURKA/B三重抑制剂,在48小时IC50中表现出纳摩尔级效力,并在PTEN突变的EC细胞系中选择性地诱导剂量依赖性凋亡。在体内,LCI133对PTEN突变的EC异种移植物表现出抗肿瘤活性,并呈现出可接受的安全性特征。鉴于这些数据,我们的目的是阐明PTEN状态作为LCI133及其他转录抑制剂敏感性生物标志物的机制。 方法:1. 将PTEN野生型(WT)HEC-1-B细胞用PTEN shRNA和对照shRNA转染,以生成PTEN敲低及对照HEC-1-B细胞系。将PTEN缺失的AN3 CA细胞用慢病毒转导,以生成一个多西环素(Dox)诱导型PTEN WT AN3 CA细胞系。2. 进行同基因体外研究,通过发光活力测定、7-AAD/Annexin V和DNA染料流式细胞术测定,确定LCI133和AZD4375(单药CDK9抑制剂)的效力。新生RNA(nRNA)通过Click-it新生RNA捕获试剂盒检测,并通过qRT-PCR或共聚焦显微镜评估。采用免疫共沉淀(Co-IP)、反向Co-IP和Western印迹检查蛋白质-蛋白质相互作用。3. 在NSG小鼠中建立HEC-1-B PTEN shRNA或对照shRNA异种移植物,随机分组并每日腹腔注射LCI133(50mg/kg)或溶媒(VEH)治疗21天。监测肿瘤体积和动物体重,并在终点采集生物样本。 结果:1. 在HEC-1-B细胞中敲低PTEN,通过活力测定(p ≤ 0.0001)和凋亡测定(p ≤ 0.001)显示相较对照增加了对LCI133和AZD4375的敏感性。相反,Dox诱导的PTEN表达通过凋亡测定降低了对LCI133的敏感性(p ≤ 0.001)。2. 在同基因HEC-1-B细胞中,PTEN敲低导致相对nRNA转录增强,随后在LCI133处理后nRNA显著减少。在同基因HEC-1-B-shRNA和PTEN重建的AN3 CA细胞中,显示出RNA聚合酶(Pol)II与PTEN之间存在PTEN依赖性的蛋白质-蛋白质相互作用。3. 与对照相比,HEC-1-B PTEN-shRNA组的肿瘤更快达到50-75 mm3(p ≤ 0.0001)。在PTEN敲低组中,LCI133治疗相较VEH导致肿瘤生长更慢(p ≤ 0.0001),而在对照shRNA组中,LCI133与VEH之间的肿瘤生长无差异。 结论:这些数据证明,PTEN的缺失通过促进RNA Pol II依赖性的转录延伸、随后在PTEN敲低的EC细胞中nRNA显著减少,与对LCI133和AZD4375的敏感性存在因果关联。PTEN表达可能有助于作为一种生物标志物,用于为通过转录激活驱动的EC选择靶向治疗药物。
查看英文原文 English abstract
Objective Targeted therapies for endometrial cancer (EC) have shown promise, making multitargeted therapeutics of particular interest. LCI133 is a novel, in silico -designed triple inhibitor of CDK4/6-CDK9-AURKA/B that demonstrated nanomolar potency by 48-hour IC 50 and selective dose-dependent apoptosis induction in PTEN mutant EC cell lines. In vivo , LCI133 showed antitumor activity against PTEN mutant EC xenografts and presented an acceptable safety profile. Given these data, our objective is to define the mechanism by which PTEN status serves as a biomarker for LCI133 and other transcriptional inhibitor sensitivity in EC. Methods 1. PTEN WT HEC-1-B cells were transfected with PTEN shRNA and control shRNA to generate PTEN knockdown and control HEC-1-B cell lines. PTEN null AN3 CA cells were transduced with lentivirus to generate a doxycycline (Dox) inducible PTEN WT AN3 CA cell line.2. Isogenic in vitro studies were performed to determine potency of LCI133 and AZD4375 (single agent CDK9 inhibitor) by luminescent viability assay, 7-AAD/Annexin V and DNA dye flow cytometry assays. Nascent RNA (nRNA) was detected by Click-it Nascent RNA Capture Kit and assessed by qRT-PCR or confocal microscopy. Co-immunoprecipitation (Co-IP), reciprocal Co-IP, and Western blotting were used to examine protein-protein interactions.3. HEC-1-B PTEN shRNA or control shRNA xenografts were established in NSG mice, which were randomized and treated with LCI133 (50mg/kg) or vehicle (VEH) by daily intraperitoneal injection for 21 days. Tumor volume and animal mass were monitored, and biosamples were collected at end point. Results 1. PTEN knockdown in HEC-1-B cells increased sensitivity to LCI133 and AZD4375 compared to control by viability assay (p ≤ 0.0001) and apoptosis assays (p ≤ 0.001). Conversely, Dox induced PTEN expression reduced sensitivity to LCI133 by apoptosis assay (p ≤ 0.001).2. In isogenic HEC-1-B cells, PTEN knockdown resulted in augmented relative nRNA transcription, followed by a significant decrease in nRNA after LCI133 treatment. A PTEN -dependent protein-protein interaction between RNA Polymerase (Pol) II and PTEN was shown in isogenic HEC-1-B-shRNA and PTEN -reconstituted AN3 CA cells.3. Tumors reached 50-75 mm 3 more quickly in the HEC-1-B PTEN- shRNA group compared to control (p ≤ 0.0001). In the PTEN knockdown group, treatment with LCI133 resulted in slower tumor growth compared to VEH (p ≤ 0.0001), while in the control-shRNA group, there was no difference in tumor growth between LCI133 and VEH. Conclusions These data prove that the absence of PTEN is causally linked to sensitivity to LCI133 and AZD4375 via facilitating RNA Pol II dependent transcriptional elongation followed by a marked decrease in nRNA in PTEN knockdown EC cells. PTEN expression may be useful as a biomarker in selecting targeted therapeutics for EC driven through transcriptional activation.
利益披露 Disclosure
H. Goodwin, None.. Q. Zhang, None.. V. Mujumdar, None.. K. Maddeboina, None.. C. McHale, None.. B. Yada, None.. H. Dryden, None. R. W. Naumann, Amgen Stock. Johnson & Johnson/MedTech Other, Honoraria. Merck Sharp & Dohme Other, Consulting. AstraZeneca Other, Consulting. Eisai Other, Consulting. Bristol-Myers Squibb ), Other, Consulting. Seagen Other, Consulting, Speakers' Bureau. Agenus Other, Consulting. Sutro-Bio ), Other, Consulting. GOG Partners ), Consulting. GSK/Tesaro ), Other, Consulting. Genelux Other, Consulting. Laekna Other, Consulting. Immunogen Other, Consulting. EMD Serono Other, Consulting. Virtual Incision Other, Consulting. Incyclix Bio Other, Consulting. Nimbus Other, Consulting. OncoMed; Mersana; Schrodinger (3 different companies) ). Aadi Bioscience; Genmab/Seattle Genetics (2 different companies) Other, Consulting. Y. Casablanca, AstraZeneca Other, Advisory board. GSK ), Other, Advisory board. Corcept therapeutics Other, Advisory board. Onc Live Other, Speaker. E. K. Crane, Corcept Other, Consulting. GSK Other, Advisory Board. Merck Other, Advisory Board. AstraZeneca Other, Advisory Board. J. Brown, GSK/Tesaro ), Other, Advisory board/consulting. Genentech/Roche ). Caris Life Sciences Other, Advisory board/consulting. Natera Other, Advisory board/consulting. Abbvie Other, Advisory board/consulting. Verastem Other, Advisory board/consulting. A. Puechl, None.. B. Lees, None.. D. Durden, None.. D. Pal, None.

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