PO.ET01.05 · 实验与分子治疗
NEK2和AURKB在三阴性乳腺癌进展中的作用
The role of NEK2 and AURKB on triple-negative breast cancer progression
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
三阴性乳腺癌(TNBC)是乳腺癌最具侵袭性的亚型,占所有病例的10-20%。TNBC的侵袭性主要归因于其高度的染色体不稳定性、增殖和转移潜能。分子分型揭示,有丝分裂激酶NEK2和AURKB的过表达与染色体不稳定性和上皮-间质转化(EMT)有关。近期研究表明,有丝分裂激酶NEK2和TTK(一种受AURKB调控的激酶)通过不同的转录通路促进EMT、细胞迁移和侵袭,从而参与早期转移信号传导。尽管它们具有临床相关性,但目前尚无共靶向治疗策略来中断由这些激酶驱动的不同有丝分裂信号通路。因此,我们的研究旨在探究NEK2和AURKB信号通路作为TNBC中EMT和转移进展驱动因素的功能性汇聚。我们假设NEK2和AURKB协同调控推动早期转移的有丝分裂及EMT相关磷酸化事件。我们的方法利用代表祖源不同起源的TNBC细胞模型(MDA-MB-231和MDA-MB-157),并采用基因敲低来剖析NEK2和AURKB的单独及双重抑制如何改变TNBC细胞的磷酸化状态和功能行为。使用Kaplan-Meier生存分析的初步发现证实,NEK2或AURKB的高表达与总生存期和无复发生存期显著相关。STRING(相互作用基因/蛋白检索工具)蛋白-蛋白相互作用分析显示,AURKB和NEK2可能汇聚于EMT相关过程,而基于STRING的GO富集分析提示,抑制它们可能通过破坏TNBC中的EMT信号传导来削弱转移进展。Western blot分析证实,在单独及双重敲低NEK2和AURKB后,EMT生物标志物Vimentin和Slug下降。此外,侵袭实验表明,在单独及双重敲低这两种激酶后侵袭出现统计学上的显著降低。总体而言,这些结果提示抑制有丝分裂激酶NEK2和AURKB可能破坏TNBC MDA-MB-231细胞中EMT相关的转移潜能。正在进行的实验将进一步证实并拓展这些发现。该项目可能推动为TNBC开发更有效的精准靶向策略,尤其是针对受影响比例过高的非裔美国及加勒比裔西班牙裔/拉丁裔女性。
查看英文原文 English abstract
Triple-negative breast cancer (TNBC) is the most aggressive subtype of breast cancer, accounting for 10-20% of all cases. TNBC's aggressiveness is mostly attributed to its high rates of chromosomal instability, proliferation, and metastatic potential. Molecular subtyping has revealed that overexpression of mitotic kinases NEK2 and AURKB is implicated in chromosomal instability and epithelial-to-mesenchymal transition (EMT). Recent studies have shown that the mitotic kinases NEK2 and TTK (a kinase regulated by AURKB) are involved in early metastatic signaling by promoting EMT, cell migration, and invasion through distinct transcriptional pathways. Despite their clinical relevance, no co-targeting therapeutic strategy exists to interrupt the distinct mitotic signaling pathways driven by these kinases. Thus, our study aims to investigate the functional convergence of NEK2 and AURKB signaling pathways as drivers of EMT and metastatic progression in TNBC. We hypothesize that NEK2 and AURKB cooperatively regulate mitotic and EMT-associated phosphorylation events that fuel early metastasis. Our approach leverages TNBC cell models representing ancestrally distinct origins (MDA-MB-231 and MDA-MB-157) and utilizes genetic knockdown to dissect how individual and dual suppression of NEK2 and AURKB alters the phosphorylation state and functional behavior of TNBC cells. Preliminary findings using Kaplan-Meier survival analysis confirm that high expression of NEK2 or AURKB is significantly associated with overall survival and relapse-free survival. STRING (Search Tool for the Retrieval of Interacting Genes/Proteins) protein-protein interaction analysis showed that both AURKB and NEK2 may converge on EMT-related processes, while STRING-based GO enrichment suggested that their inhibition may impair metastatic progression by disrupting EMT signaling in TNBC. Western blot analysis confirmed a decrease in EMT biomarkers Vimentin and Slug after individual and dual knockdown of NEK2 and AURKB. Moreover, invasion assays demonstrated a statistically significant reduction after individual and dual knockdown of both kinases. Overall, these results suggest that suppression of the mitotic kinases NEK2 and AURKB could disrupt EMT-associated metastatic potential in TNBC MDA-MB-231 cells. Ongoing experiments will further confirm and expand these findings. This project may advance the development of more effective precision-targeted approaches for TNBC, particularly for African American and Caribbean Hispanic/Latino women who are disproportionately affected.
利益披露 Disclosure
E. Rodriguez-Lopez, None..
A. Aquino-Acevedo, None..
J. Orengo-Orengo, None..
G. Albarran-Acosta, None..
K. Berrocales, None..
H. Saavedra, None.