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Llombart-Bosch, A.

Publications and source records attributed to Llombart-Bosch, A..

2 recordsLinked to original sources

EWS::FLI1-DHX9 interaction promotes Ewing sarcoma sensitivity to DNA topoisomerase 1 poisons by altering R-loop metabolism

Drug resistance is one of the major factors associated with poor outcome of cancer patients. Treatment of Ewing sarcoma (EwS), an aggressive neoplasm mainly affecting children, adolescents and young adults, is associated with therapy failure and tumor relapse in 30-80% of the cases. Thus, it supports the need to explore the mechanisms modulating drug activity. Here, we describe a novel mechanism of drug sensitivity based on the role of EWS::FLI1 in R-loop metabolism. Our results demonstrate that EWS::FLI1 promotes R-loop formation favoring the interaction between DHX9 and elongating RNA polymerase II. In addition, we discovered that EWS::FLI1 kidnaps DHX9 preventing the resolution of TOP1 poisoning-associated R-loops. Our findings indicate that R-loops accumulation promotes replicative stress, genome instability and cell sensitivity to SN-38. Collectively, these results uncover a novel mechanism behind EwS sensitivity to genotoxic agents, with relevant implications for EwS treatment.

cancer biology↗

EHD1-dependent traffic of IGF-1 receptor to the cell surface is essential for Ewing sarcoma tumorigenesis and metastasis

Overexpression of EPS15 Homology Domain containing 1 (EHD1) has been linked to tumorigenesis but whether its core function as a regulator of intracellular traffic of cell surface receptors plays a role in oncogenesis remains unknown. We establish that EHD1 is overexpressed in Ewing sarcoma (EWS), with high EHD mRNA expression specifying shorter patient survival. ShRNA and CRISPR-knockout with mouse Ehd1 rescue established a requirement of EHD1 for tumorigenesis and metastasis. RTK antibody arrays identified the IGF-1R as a target of EHD1 regulation in EWS. Mechanistically, we demonstrate a requirement of EHD1 for endocytic recycling and Golgi to plasma membrane traffic of IGF-1R to maintain its surface expression and downstream signaling. Conversely, EHD1 overexpression-dependent exaggerated oncogenic traits require IGF-1R expression and kinase activity. Our findings define the RTK traffic regulation as a proximal mechanism of EHD1 overexpression-dependent oncogenesis that impinges on IGF-1R in EWS, supporting the potential of IGF-1R and EHD1 co-targeting.

cancer biology↗