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Biology subjects

Rouni, G.

Publications and source records attributed to Rouni, G..

2 recordsLinked to original sources

A neural alternative splicing program controls cellular function and growth in Pancreatic Neuroendocrine tumours

Pancreatic neuroendocrine tumours (PanNETs) are a rare heterogeneous group of neoplasms that arise from pancreatic islet cells. The hormone secreting function of pancreatic neuroendocrine cells is altered in PanNETs, rendering these tumours functional or non-- functional (secreting excessive or lower levels of hormones, respectively). Genome wide approaches have revealed the genomic landscape of PanNETs but have not shed light on this problematic hormone secretion. In the present work, we show that alternative splicing (AS) deregulation is responsible for changes in the secretory ability of PanNET cells. We reveal a group of alternative microexons that are regulated by the RNA binding protein SRRM3 and are preferentially included in mRNAs in PanNET cells, where SRRM3 is also upregulated. These microexons are part of a larger neural program regulated by SRRM3. We show that their inclusion gives rise to protein isoforms that change stimulus-induced secretory vesicles and their trafficking in PanNET cells. Moreover, the increased inclusion of these microexons results in an enhanced neuronal component in PanNET tumours. Using knock-down and splicing switching oligonucleotides in cellular and animal PanNET models, we show that decrease of the SRRM3 levels or even of the inclusion levels of the three most deregulated microexons can significantly alter the PanNET cell characteristics. Collectively, our study links secretory impairment and nerve dependency to alternative splicing deregulation in PanNETs, providing promising therapeutic targets for PanNET treatment.

cancer biology↗

Talin regulates steady-state tensional homeostasis to drive vascular morphodynamics and cancer

The mechanical properties of the extracellular environment emerge as critical regulators of cellular functions. Cell mechanotransduction is mainly studied in vitro at initial stages of cell adhesion and very little is known about the mechanoresponses of cells with established tensional dynamics, resembling cells embedded in tissues. Here, we provide in vivo evidence that talin-dependent cell-matrix adhesions are global regulators of vascular mechanics and establish talin as an essential and required mechanosensor in neovessels and already developed tumours. At the molecular level, we demonstrate that talin exploits alternative mechanisms to dynamically-adjust the mechanical integrity of endothelial cells. Our mutational studies indicate a previously unknown role for the requirement of the talin-head in mechanosensing and demonstrate that the talin-head and the talin-rod alone are sufficient to maintain mechanical stability of endothelial cells. Overall, our results underpin the significance of mechanical signals in regulating vascular morphology in steady-state conditions and ultimately modulate cancer progression. Talin mechanosensing is required to maintain cell morphology and control developmental and tumour angiogenesis.

cell biology↗