PO.MCB10.02 · 分子与细胞生物学

参与化疗耐药性三阴性乳腺癌的特定非编码转录本的功能表征

Functional characterization of specific non-coding transcripts involved in chemo-resistant triple negative breast cancer

编号 5909 展板 16 时间 4/21 02:00–05:00 区域 Section 20 主讲 Melina Sedano, MS
分会场 Functional Roles of Noncoding RNAs in Cancer Progression, Metabolism, and Therapy Response
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作者与单位 Authors & Affiliations

Melina J. Sedano1, Barbara Yang2, Subramanian Dhandayuthapani1, Murali Yallappu1, Subhash Chauhan1, Shrikanth Gadad1

1Division of Cancer Immunology and Microbiology, Medicine and Oncology Integrated Service Unit, The University of Texas Rio Grande Valley School of Medicine, McAllen, TX,2Department of Biological Sciences, The University of Texas at El Paso, El Paso, TX

摘要 Abstract

中文摘要
三阴性乳腺癌(TNBC)占许多新发乳腺癌病例,其预后较其他分子亚型更差。与其他乳腺癌亚型相比,TNBC通常伴有更大、级别更高的肿瘤,以及降低的总体生存率和无复发生存率。这类癌症的治疗往往具有侵袭性,包括蒽环类等化疗药物,如多柔比星。然而,由于剂量限制性毒性以及随时间发展出的对多柔比星的耐药性,治疗并不总是有效。耐药机制背后存在诸多理论,可能归因于基因层面、转录组、细胞通路或表观遗传修饰的变化,值得进一步研究。为研究耐药机制,我们建立了多柔比星耐药的MDAMB231和HCC1143 TNBC细胞系,采用生理浓度或低剂量多柔比星并逐步增加多柔比星浓度进行改造。我们进行了整合基因组分析,以鉴定可能促成耐药机制并驱动癌症进展的转录本。这些转录本涵盖编码RNA、microRNA、假基因、发散转录本和长链非编码RNA。我们聚焦于与非耐药TNBC细胞相比差异表达的基因间长链非编码RNA。我们通过根据染色体位置探究其邻近区域来分析这些RNA,揭示它们可能参与细胞可塑性,使癌细胞能够适应多柔比星的存在,可能通过转录重编程实现。其中一部分定位于染色质和细胞核,具有重编程表观遗传格局并驱动耐药特异性基因和细胞通路的潜力,目前我们正在研究它们在染色质组织中的作用。此外,我们还使用带有基因工程改造的化疗敏感和化疗耐药细胞的体内异种移植小鼠模型评估其临床应用价值,将结局与患者样本中观察到的变化及临床预后相关联的变化联系起来。总之,我们的研究为驱动TNBC中多柔比星耐药的机制提供了见解,这可能为诊断标志物和靶向治疗的开发提供新途径。
查看英文原文 English abstract
Triple-negative breast cancer (TNBC) accounts for many new breast cancer cases, with poorer outcomes than other molecular subtypes. Compared to other subtypes of breast cancer, TNBC is typically associated with larger, higher-grade tumors and decreased overall and recurrence-free survival rates. Treatment for this type of cancer is often aggressive and includes chemotherapeutic agents like anthracyclines, such as doxorubicin. However, it is not always effective due to dose-limiting toxicity and the development of resistance to doxorubicin over time. There are many theories behind the mechanism of resistance, possibly due to changes at the genetic level, transcriptome, cellular pathways, or epigenetic modifications, warranting further investigation. To study the mechanism of resistance, we developed doxorubicin-resistant MDAMB231 and HCC1143 TNBC cell lines that were engineered using physiological or low-dose doxorubicin concentrations with gradual increments of doxorubicin. We performed integrated genomic analyses to identify transcripts that are potentially contributing to the resistance mechanisms and also drive cancer progression. These transcripts range from coding RNAs, microRNAs, pseudogenes, divergent transcripts, and long noncoding RNAs. We focused on the intergenic long noncoding RNAs that are differentially expressed compared to non-resistant TNBC cells. We analyzed these RNAs by interrogating their neighborhood based on their chromosomal location, revealing that they could be involved in cellular plasticity, which allows cancer cells to adjust to the presence of doxorubicin, possibly through transcriptional reprogramming. A subset of them are localized to chromatin and the nucleus, which have the potential to reprogram the epigenetic landscape and drive resistance-specific genes and cellular pathways, and currently we are studying them for their role in chromatin organization. Additionally, we are also assessing their clinical utility using in vivo xenograft mouse models with genetically engineered chemo-sensitive and chemo-resistant cells, linking outcomes to changes observed in patient samples and associated with clinical prognosis. Collectively, our studies provide insights into mechanisms driving doxorubicin resistance in TNBC, which may offer new avenues for the development of diagnostic markers and targeted therapies.
利益披露 Disclosure
M. J. Sedano, None.. B. Yang, None.. S. Dhandayuthapani, None.. M. Yallappu, None.. S. Chauhan, None.. S. Gadad, None.

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