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Biology subjects

Scotlandi, K.

Publications and source records attributed to Scotlandi, K..

3 recordsLinked to original sources

Genomic and phenotypic stability of fusion-driven pediatric Ewing sarcoma cell lines

Human cancer cell lines are the mainstay of cancer research. Recent reports showed that highly mutated adult carcinoma cell lines (mainly HeLa and MCF-7) present striking diversity across laboratories and that long-term continuous culturing results in genomic/transcriptomic heterogeneity with strong phenotypical implications. This highlighted how despite human cell line models being powerful tools for cancer research, the findings derived from their use may present limitations in terms of reproducibility. However, to what extent these conclusions can be generalized to the majority of cancer cell lines remained unexplored. Here, we hypothesized that oligomutated pediatric sarcoma cell lines driven by a chimeric oncogenic transcription factor (COTF), such as Ewing sarcoma (EwS), were genetically and phenotypically more stable than the previously investigated (adult) carcinoma cell lines. A comprehensive molecular and phenotypic characterization of multiple EwS cell line strains in direct comparison to the HeLa and MCF-7 cell lines, together with a simultaneous analysis during 12 months of continuous cell culture showed that COTF-driven pediatric sarcoma cell line strains are genomically more stable than adult carcinoma strains, display remarkably stable and homogenous transcriptomes, and exhibit uniform and stable drug response. The analysis of multiple EwS cell lines subjected to long-term continuous culture conditions revealed that variable degrees of genomic/transcriptomic/phenotypic may be observed among COTF-driven cell lines, further exemplifying that the potential for reproducibility of in vitro scientific results may be rather understood as a spectrum, even within the same tumor entity.

cell biology↗

Endoglin, a novel biomarker and therapeutical target to prevent malignant peripheral nerve sheath tumor growth and metastasis

PurposeMalignant peripheral nerve sheath tumors (MPNSTs) are highly aggressive softtissue sarcomas that lack effective treatments, underscoring the urgent need to uncover novel mediators of MPNST pathogenesis that may serve as potential therapeutic targets. Tumor angiogenesis is considered a critical event in MPNST transformation and progression. Here, we have investigated whether endoglin (ENG), a TGF-{beta} coreceptor with a crucial role in angiogenesis, could be a novel therapeutic target in MPNSTs. Experimental DesignENG expression was evaluated in human peripheral nerve sheath tumor tissues and plasma samples. Effects of tumor cell-specific ENG expression on gene expression, signaling pathways and in vivo MPNST growth and metastasis were investigated. The efficacy of ENG targeting in monotherapy or in combination with MEK inhibition was analyzed in xenograft models. ResultsENG expression was found to be upregulated in both human MPNST tumor tissues and plasma circulating small extracellular vesicles. We demonstrated that ENG modulates Smad1/5 and MAPK/ERK pathway activation and pro-angiogenic and pro-metastatic gene expression in MPNST cells and plays an active role in tumor growth and metastasis in vivo. Targeting with ENG-neutralizing antibodies (TRC105/M1043) decreased MPNST tumor growth and metastasis in xenograft models by reducing tumor cell proliferation and angiogenesis. Importantly, combination of anti-ENG therapy with MEK inhibition reduced more effectively tumor cell growth and angiogenesis. ConclusionsOur data unveil a tumor-promoting function of ENG in MPNSTs and support the combined use of anti-ENG antibodies and MEK inhibitors as a novel potential combination to control MPNSTs growth and metastasis. Statement of translational relevanceMalignant peripheral nerve sheath tumors (MPNSTs) present a poor clinical outcome due to tumor aggressiveness and the absence of effective treatments that underline the need for identifying novel therapeutic approaches. Here, we show that ENG is upregulated in human MPNSTs and we uncover an important role for this coreceptor in MPNST. ENG-neutralizing antibodies (TRC105/M1043) decreased MPNST tumor growth and metastasis in xenograft models, supporting a novel use of anti-ENG therapies for MPNST treatment. Currently, MEK inhibitors are used in the clinic to shrink peripheral nerve sheath tumors (e.g. plexiform neurofibromas). Importantly, we demonstrate that combination of anti ENG antibodies with MEK inhibitors efficiently blocked MPNST growth and metastasis. Our findings provide a rationale for combining anti-ENG and MEK inhibitors as a new strategy for MPNST management.

cancer biology↗

Profilin 1 deficiency drives mitotic defects and impairs genome stability

Profilin 1 -encoded by PFN1- is a small actin-binding protein with a tumour suppressive role in various adenocarcinomas and pagetic osteosarcomas. However, its contribution to tumour development is not fully understood. Using fix and live cell imaging, we report that Profilin 1 inactivation results in multiple mitotic defects, manifested prominently by anaphase bridges, multipolar spindles, misaligned and lagging chromosomes, and cytokinesis failures. Accordingly, next-generation sequencing technologies highlighted that Profilin 1 knock-out cells display extensive copy-number alterations, which are associated with complex genome rearrangements and chromothripsis events in primary pagetic osteosarcomas with Profilin 1 inactivation. Mechanistically, we show that Profilin 1 is recruited to the spindle midzone at anaphase, and its deficiency reduces the supply of actin filaments to the cleavage furrow during cytokinesis. The mitotic defects are also observed in mouse embryonic fibroblasts and mesenchymal cells deriving from a newly generated knock-in mouse model harbouring a Pfn1 loss-of-function mutation. Furthermore, nuclear atypia is also detected in histological sections of mutant femurs. Thus, our results indicate that Profilin 1 has a role in regulating cell division, and its inactivation triggers mitotic defects, one of the major mechanisms through which tumour cells acquire chromosomal instability.

cell biology↗