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Biology subjects

Sedgwick, A.

Publications and source records attributed to Sedgwick, A..

2 recordsLinked to original sources

Large extracellular vesicles regulate endothelial angiogenic potential via paracrine and autocrine signaling

Angiogenesis, a process typically associated with tumor growth and development, is often linked to advanced disease and poor clinical outcomes. Tumor cells establish a pro-angiogenic microenvironment through the release of paracrine signaling mediators including extracellular vesicles (EVs). EVs have been shown to facilitate intercellular communication and encompass a diverse range of secreted vesicles, including small EVs (sEVs) which range in size from [~]60 to 100nm and large EVs (L-EVs) which are even more diverse and range from 200nm to >1m in size. Despite advancements in anti-angiogenic cancer therapies, such as bevacizumab, late-stage tumors, including advanced melanomas, exhibit mixed clinical responses. In this study, we elucidate a unique role for melanoma-derived L-EVs in promoting bevacizumab-insensitive endothelial angiogenic phenotypes. This L-EV-mediated increase in endothelial tube formation is sensitive to the effects of sorafenib, a multi-kinase inhibitor, but not SU5416, a selective VEGF-receptor inhibitor. We also demonstrate that melanoma L-EVs contain VEGF as luminal cargo and induce paracrine effects by modulating the endothelial EV secretome. The release from endothelial cells of soluble VEGF, EVs, and pro-angiogenic cytokines such as IL-8, MIF, and PAI-1 drive sustained endothelial tube formation through autocrine signaling. Finally, we show that EV subtypes have distinct effects on the acquisition of angiogenic phenotypes and their roles vary with tumor type. These findings provide new insight into the mechanisms of angiogenic therapy resistance in melanoma and demonstrate the differential functions of EV subtypes in angiogenesis across tumor types.

cancer biology↗

Mechanisms underlying melanoma invasion as a consequence of MLK3 loss

Invasive melanoma is an aggressive form of skin cancer with high incidence of mortality. The process of invasion is a crucial primary step in the metastatic cascade, yet the mechanisms involved are still under investigation. Here we document a critical role for MLK3 (MAP3K11) in the regulation of melanoma cell invasion. We report that cellular loss of MLK3 in melanoma cells promotes cell invasion. Knock down of MLK3 expression results in the hyperactivation of ERK, which is linked to the formation of a BRAF/Hsp90/Cdc37 protein complex. ERK hyperactivation leads to enhanced phosphorylation and inactivation of GSK3{beta} and the stabilization of c-Jun and JNK activity. Blocking of ERK and JNK signaling as well as Hsp90 activity downstream of MLK3-silencing significantly reduces melanoma invasion. Furthermore, our studies show that ERK activation in the aforementioned context is coupled to MT1-MMP transcription as well as the TOM1L1-dependent localization of the membrane protease to invadopodia at the invasive front. These studies provide critical insight into the mechanisms that couple MLK3 loss with BRAF hyperactivation and its consequence on melanoma invasion.

cell biology↗