PO.CL12.02 · 临床研究

浆细胞样尿路上皮癌的临床前建模以研究癌症机制和治疗反应

Preclinical modeling of plasmacytoid urothelial carcinoma to study cancer mechanisms and therapeutic response

海报缩略图:浆细胞样尿路上皮癌的临床前建模以研究癌症机制和治疗反应
编号 7914 展板 19 时间 4/22 09:00–12:00 区域 Section 48 主讲 Kanisha Kar
分会场 Translational Biomarkers and Emerging Molecular Approaches
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作者与单位 Authors & Affiliations

Kanisha Kar1, Caroline Dickey1, William Kim1, Kathryn Gessner2

1UNC Lineberger Comprehensive Cancer Center, Chapel Hill, NC,2University of North Carolina at Chapel Hill, Chapel Hill, NC

摘要 Abstract

中文摘要
浆细胞样尿路上皮癌(PUC)是膀胱癌的一种侵袭性组织学亚型,患者预后差,且对标准化疗的反应比传统组织学尿路上皮癌(CUC)更差。PUC的标志性分子改变是E-cadherin的缺失,这可通过CDH1(编码E-cadherin的基因)的突变或启动子高甲基化发生。除E-cadherin缺失外,PUC的突变谱与CUC相似,尽管PUC中RB1和p53的突变率更高。E-cadherin是一种对上皮黏附和完整性至关重要的跨膜糖蛋白,是EMT的核心调控因子。E-cadherin表达降低通过转录抑制因子(Snail、Slug、Twist、ZEB1/2)、钙黏蛋白转换和表观遗传重塑促进EMT,从而增强侵袭性和转移潜能。尽管我们对E-cadherin的功能有所了解,但E-cadherin缺失促进尿路上皮癌疾病进展和治疗耐药的确切机制仍不清楚。此外,由于缺乏临床前PUC模型,且在这种罕见肿瘤类型中进行随机对照试验的能力有限,临床医生在哪些治疗药物最有效方面面临不确定性,这进一步强化了对创新性临床前研究的需求。因此,我们旨在通过临床前建模,探究CDH1缺失对PUC癌症表型的影响,阐明机制见解,并确定PUC的新型治疗策略。为模拟PUC生物学,我们利用CRISPR/Cas9介导的敲除,使用三种独立的gRNA在两个管腔型(UPPL1541、UPPL1595)和一个基底型(BBN963)先前已建立的小鼠膀胱癌细胞系中产生CDH1缺失。通过Sanger测序确认了CRISPR-Cas9靶位点处产生的CDH1突变,并通过western blot确认了E-cadherin蛋白缺失。与非靶向、CDH1完整的对照细胞相比,CDH1敲除细胞通过western blot显示出N-cadherin蛋白表达增加以及间充质标志物Snail、Slug、ZEB1和Vimentin表达增加。通过cell-titer glo检测,CDH1敲除细胞与非靶向对照相比在细胞增殖上未表现出差异。在transwell侵袭实验中,与非靶向、CDH1完整的对照细胞相比,CDH1敲除细胞显示出显著增加的细胞侵袭。这些发现表明,CDH1缺失与尿路上皮癌中上皮-间充质转化的上调和体外细胞侵袭增强相关。我们将通过在同基因模型中剖析肿瘤-微环境相互作用和治疗反应来继续推进这项工作,将该平台定位为针对临床上具有挑战性的PUC变体的新型临床前资源。
查看英文原文 English abstract
Plasmacytoid urothelial carcinoma (PUC) is an aggressive histologic subtype of bladder cancer with poor patient outcomes and worse response to standard chemotherapies than conventional histology urothelial carcinoma (CUC). The hallmark molecular alteration in PUC is loss of E-cadherin, which can occur through mutations or promoter hypermethylation of CDH1 , the gene encoding E-cadherin. Aside from E-cadherin loss, the mutational spectrum of PUC is similar to that of CUC, although with higher rates of mutations in RB1 and p53 in PUC. E-cadherin, a transmembrane glycoprotein essential for epithelial adhesion and integrity, is a central regulator of EMT. Decreased expression of E-cadherin promotes EMT through transcriptional repressors (Snail, Slug, Twist, ZEB1/2), a cadherin switch, and epigenetic remodeling, driving enhanced invasiveness and metastatic potential. Despite our knowledge regarding the function of E-cadherin, the precise mechanism by which E-cadherin loss promotes disease progression and therapeutic resistance within urothelial carcinoma is not understood. Additionally, due to the lack of a preclinical PUC model and the limited ability to perform randomized controlled trials in this rare tumor type, clinicians face uncertainty regarding which therapeutic agents are most effective, reinforcing the need for innovative preclinical studies. Therefore, we aim to interrogate the impact of CDH1 loss in PUC on cancer phenotypes, elucidate mechanistic insights, and identify novel therapeutic strategies for PUC through preclinical modeling. To model PUC biology, we utilized CRISPR/Cas9 mediated knockout to generate CDH1 loss in two luminal (UPPL1541, UPPL1595) and one basal (BBN963) previously established murine bladder cancer cell lines using three independent gRNAs. Resulting CDH1 mutations at the CRISPR-Cas9 target site were confirmed by Sanger sequencing and E-cadherin protein loss confirmed by western blot. Compared to non-targeted, CDH1-intact control cells, CDH1-knockout cells demonstrate increased N-cadherin protein expression and increased expression of the mesenchymal markers Snail, Slug, ZEB1, and Vimentin by western blot. CDH1 knockout cells did not demonstrate a difference in cell proliferation compared to non-targeting controls, as determined by cell-titer glo assay. On transwell invasion assay, CDH1 knockout cells demonstrate significantly increased cell invasion compared to nontargeted, CDH1-intact control cells. These findings demonstrate that CDH1 loss is associated with upregulation of the epithelial-to-mesenchymal transition and enhanced in vitro cell invasion in urothelial carcinoma. We will continue to advance this work by dissecting tumor-microenvironment interactions and therapeutic responses in syngeneic models, positioning this platform as a novel preclinical resource for the clinically-challenging PUC variant.
利益披露 Disclosure
K. Kar, None.. C. Dickey, None.

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