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LINC00982 编码蛋白 PRDM16-DT 通过调控剪接抑制结直肠癌转移和化疗耐药。

LINC00982-encoded protein PRDM16-DT regulates splicing to suppress colorectal cancer metastasis and chemoresistance.

机构信息

MOE Key Laboratory of Tumor Molecular Biology and State Key Laboratory of Bioactive Molecules and Druggability Assessment, College of Life Science and Technology, Jinan University, Guangzhou 510632, China.

Biomedicine Research and Development Center, National Engineering Research Center of Genetic Medicine, Jinan University, Guangzhou, Guangdong 510632, China.

出版信息

Theranostics. 2024 May 27;14(8):3317-3338. doi: 10.7150/thno.95485. eCollection 2024.

Abstract

Metastasis is one of the key factors of treatment failure in late-stage colorectal cancer (CRC). Metastatic CRC frequently develops resistance to chemotherapeutic agents. This study aimed to identify the novel regulators from "hidden" proteins encoded by long noncoding RNAs (lncRNAs) involved in tumor metastasis and chemoresistance. CRISPR/Cas9 library functional screening was employed to identify the critical suppressor of cancer metastasis in highly invasive CRC models. Western blotting, immunofluorescence staining, invasion, migration, wound healing, WST-1, colony formation, gain- and loss-of-function experiments, experimental metastasis models, multiplex immunohistochemical staining, immunohistochemistry, qRT-PCR, and RT-PCR were used to assess the functional and clinical significance of FOXP3, PRDM16-DT, HNRNPA2B1, and L-. RNA-sequencing, co-immunoprecipitation, qRT-PCR, RT-PCR, RNA affinity purification, RNA immunoprecipitation, MeRIP-quantitative PCR, fluorescence hybridization, chromatin immunoprecipitation and luciferase reporter assay were performed to gain mechanistic insights into the role of PRDM16-DT in cancer metastasis and chemoresistance. An oxaliplatin-resistant CRC cell line was established by selection. WST-1, colony formation, invasion, migration, Biacore technology, gain- and loss-of-function experiments and an experimental metastasis model were used to determine the function and mechanism of cimicifugoside H-1 in CRC. The novel protein PRDM16-DT, encoded by LINC00982, was identified as a cancer metastasis and chemoresistance suppressor. The down-regulated level of PRDM16-DT was positively associated with malignant phenotypes and poor prognosis of CRC patients. Transcriptionally regulated by FOXP3, PRDM16-DT directly interacted with HNRNPA2B1 and competitively decreased HNRNPA2B1 binding to exon 9 of , resulting in the formation of long (L-), subsequently promoting E-cadherin secretion. PRDM16-DT-induced E-cadherin secretion inhibited fibroblast activation, which in turn suppressed CRC metastasis by decreasing MMP9 secretion. Cimicifugoside H-1, a natural compound, can bind to LEU89, HIS91, and LEU92 of FOXP3 and significantly upregulated PRDM16-DT expression to repress CRC metastasis and reverse oxaliplatin resistance. lncRNA LINC00982 can express a new protein PRDM16-DT to function as a novel regulator in cancer metastasis and drug resistance of CRC. Cimicifugoside H-1 can act on the upstream of the PRDM16-DT signaling pathway to alleviate cancer chemoresistance.

摘要

转移是晚期结直肠癌(CRC)治疗失败的关键因素之一。转移性 CRC 经常对化疗药物产生耐药性。本研究旨在从涉及肿瘤转移和化疗耐药的“隐藏”长非编码 RNA(lncRNA)编码的蛋白质中鉴定新型调节剂。CRISPR/Cas9 文库功能筛选用于鉴定高侵袭性 CRC 模型中癌症转移的关键抑制因子。Western blot、免疫荧光染色、侵袭、迁移、划痕愈合、WST-1、集落形成、增益和失活功能实验、实验性转移模型、多重免疫组化染色、免疫组化、qRT-PCR 和 RT-PCR 用于评估 FOXP3、PRDM16-DT、HNRNPA2B1 和 L-的功能和临床意义。RNA 测序、共免疫沉淀、qRT-PCR、RT-PCR、RNA 亲和纯化、RNA 免疫沉淀、MeRIP-qPCR、荧光杂交、染色质免疫沉淀和荧光素酶报告基因测定用于深入了解 PRDM16-DT 在癌症转移和化疗耐药中的作用机制。通过选择建立了奥沙利铂耐药 CRC 细胞系。WST-1、集落形成、侵袭、迁移、Biacore 技术、增益和失活功能实验以及实验性转移模型用于确定吴茱萸次碱 H-1 在 CRC 中的功能和机制。新型蛋白 PRDM16-DT,由 LINC00982 编码,被鉴定为癌症转移和化疗耐药的抑制因子。PRDM16-DT 下调水平与 CRC 患者的恶性表型和不良预后呈正相关。PRDM16-DT 受 FOXP3 转录调控,直接与 HNRNPA2B1 相互作用,并竞争性降低 HNRNPA2B1 与 的外显子 9 结合,导致长 (L-) 的形成,进而促进 E-钙粘蛋白的分泌。PRDM16-DT 诱导的 E-钙粘蛋白分泌抑制成纤维细胞活化,进而通过减少 MMP9 分泌抑制 CRC 转移。吴茱萸次碱 H-1 是一种天然化合物,可与 FOXP3 的 LEU89、HIS91 和 LEU92 结合,显著上调 PRDM16-DT 的表达,抑制 CRC 转移并逆转奥沙利铂耐药性。lncRNA LINC00982 可以表达一种新的蛋白 PRDM16-DT,作为 CRC 转移和耐药的新型调节剂。吴茱萸次碱 H-1 可以作用于 PRDM16-DT 信号通路的上游,减轻癌症的化疗耐药性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7248/11155395/950ab5f7bc74/thnov14p3317g001.jpg

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