Emerging RNA-binding roles in the TRIM family of ubiquitin ligases
BIOLOGICAL CHEMISTRY
Authors: Williams, Felix Preston; Haubrich, Kevin; Perez-Borrajero, Cecilia; Hennig, Janosch
Abstract
TRIM proteins constitute a large, diverse and ancient protein family which play a key role in processes including cellular differentiation, autophagy, apoptosis, DNA repair, and tumour suppression. Mostly known and studied through the lens of their ubiquitination activity as E3 ligases, it has recently emerged that many of these proteins are involved in direct RNA binding through their NHL or PRY/SPRY domains. We summarise the current knowledge concerning the mechanism of RNA binding by TRIM proteins and its biological role. We discuss how RNA-binding relates to their previously described functions such as E3 ubiquitin ligase activity, and we will consider the potential role of enrichment in membrane-less organelles.
The asymmetrically segregating IncRNA cherub is required for transforming stem cells into malignant cells
ELIFE
Authors: Landskron, Lisa; Steinmann, Victoria; Bonney, Francois; Burkard, Thomas R.; Steinmann, Jonas; Reichardt, Ilka; Harzer, Heike; Laurenson, Anne-Sophie; Reichert, Heinrich; Knoblich, Juergen A.
Abstract
Tumor cells display features that are not found in healthy cells. How they become immortal and how their specific features can be exploited to combat tumorigenesis are key questions in tumor biology. Here we describe the long non-coding RNA cherub that is critically required for the development of brain tumors in Drosophila but is dispensable for normal development. In mitotic Drosophila neural stem cells, cherub localizes to the cell periphery and segregates into the differentiating daughter cell. During tumorigenesis, de-differentiation of cherub-high cells leads to the formation of tumorigenic stem cells that accumulate abnormally high cherub levels. We show that cherub establishes a molecular link between the RNA-binding proteins Staufen and Syncrip. As Syncrip is part of the molecular machinery specifying temporal identity in neural stem cells, we propose that tumor cells proliferate indefinitely, because cherub accumulation no longer allows them to complete their temporal neurogenesis program.