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A Highlights from MBoC Selection: Unregulated ARF6 Activation in Epithelial Cysts Generates Hyperactive Signaling Endosomes and Disrupts Morphogenesis

机译:MBoC选择的亮点:上皮囊肿中不受调节的ARF6激活产生信号过度活跃的内体并破坏形态发生

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Tumor development in glandular tissues is associated with structural alterations in the hollow ducts and spherical structures that comprise such tissues. We describe a signaling axis involving sustained activation of the GTP-binding protein, ARF6, that provokes dramatic changes in the organization of epithelial cysts, reminiscent of tumorigenic glandular phenotypes. In reconstituted basement membrane cultures of renal epithelial cysts, enhanced ARF6 activation induces the formation of cell-filled glandular structures with multiple lumens and disassembled cadherin-based cell–cell contacts. All of these alterations are accompanied by growth factor receptor internalization into signaling endosomes and reversed by blocking ARF6 activation or receptor endocytosis. Receptor localization in signaling endosomes results in hyperactive extracellular signal-regulated kinase signaling leading to Bcl-2 stabilization and aberrant cysts. Similarly, formation of hyperproliferative and disorganized mammary acini induced by chronic stimulation of colony-stimulating factor 1 receptor is coupled to endogenous ARF6 activation and constitutive receptor internalization and is reversed by ARF6 inhibition. These findings identify a previously unrecognized link between ARF6-regulated receptor internalization and events that drive dramatic alterations in cyst morphogenesis providing new mechanistic insight into the molecular processes that can promote epithelial glandular disruption.
机译:腺组织中的肿瘤发展与中空导管和构成此类组织的球形结构的结构改变有关。我们描述了一个信号轴,涉及持续激活的GTP结合蛋白,ARF6,引起上皮囊肿组织的戏剧性变化,让人联想到致癌的腺体表型。在肾上皮囊肿的重建基底膜培养物中,增强的ARF6激活诱导形成具有多个腔的细胞填充的腺结构,并分解基于钙粘蛋白的细胞间接触。所有这些改变都伴随着生长因子受体内在化为信号内体,并通过阻断ARF6激活或受体内吞作用而逆转。受体在信号传递内体中的定位导致细胞外信号调节激酶活跃信号转导,导致Bcl-2稳定和异常囊肿。同样,通过长期刺激集落刺激因子1受体诱导的过度增殖和紊乱的乳腺腺泡的形成与内源性ARF6激活和组成型受体内在化相关,并被ARF6抑制逆转。这些发现确定了ARF6调节的受体内在化与驱动囊肿形态发生显着变化的事件之间以前未被认识的联系,从而为可以促进上皮腺破坏的分子过程提供了新的机制性见解。

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