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Smith, R. C. L.

Publications and source records attributed to Smith, R. C. L..

2 recordsLinked to original sources

Mammalian PABPC4 is non-essential, but has roles in growth, post-natal survival and haematopoiesis.

Cytoplasmic poly(A)-binding proteins (PABPCs) are multifunctional RNA-binding proteins which play crucial roles in mRNA translation and stability. In mammals, two family members, PABPC1 and PABPC4 appear widely expressed, but the consequences of their loss of function in vivo remain unknown, despite PABPC4 being implicated in a variety of human diseases. We address this knowledge gap using a series of Pabpc4 knock-out mice. Unexpectedly, we reveal that mammalian PABPC4 is not essential for development, contrary to findings in non-mammalian vertebrates. However, its loss affects birth weight, post-natal growth trajectories and survival, although these were not tightly associated. Growth to adulthood was impacted in a sexually dimorphic manner. Viable Pabpc4-deficient mice allowed us to interrogate roles of Pabpc4 that may affect human health. Anaemia represents a large global health burden, and work in a red blood cell (RBC) model suggested a potential role in haemoglobin synthesis. Surprisingly in vivo, we find that Pabpc4 loss did not reduce haemoglobin levels but caused microcytic RBCs and altered RBC distribution width. Moreover, conditional genetic approaches established that this was not a red blood cell intrinsic effect. Taken together, this work provides unprecedented insights into the in vivo functions of mammalian PABPC4, and caution against inferring mammalian PABPC function from work in cell-based models and/or non-mammalian species. The generated mouse lines also form a valuable resource with which to further investigate the roles of PABPC4 in health and disease. Significance StatementRNA-binding protein (RBP)-mediated post-transcriptional regulation is essential for life and life-long health. Cytoplasmic poly(A)-binding proteins are family of RBPs that regulate multiple aspects of cytoplasmic mRNA fate. PABPC4 is an understudied family member, genetically associated with a wide range of human diseases. By creating a series of Pabpc4 knock-out mice, we surprisingly find it is not essential but is required for normal post-natal survival and growth and normal red blood cell development. Our results emphasise the importance of whole organism studies for understanding mammalian PABP function, uncovering differences between function inferred from other vertebrate species and prior cell-based work. The generated mice also provide a valuable resource for exploring its potential broad roles in human disease.

molecular biology↗

eIF4A1 is essential for reprogramming the translational landscape of Wnt-driven colorectal cancers

Dysregulated translation is a hallmark of cancer. Targeting the translational machinery represents a therapeutic avenue which is being actively explored. eIF4A inhibitors target both eIF4A1, which promotes translation as part of the eIF4F complex, and eIF4A2, which can repress translation via the CCR4-NOT complex. While high eIF4A1 expression is associated with poor patient outcome, the role of eIF4A2 in cancer remains unclear. Furthermore, the on-target toxicity of targeting specific eIF4A paralogues in healthy tissue is under-explored. We show that while loss of either paralogue is tolerated in the wild-type intestine, eIF4A1 is specifically required to support the translational demands of oncogenic Wnt signalling. Intestinal tumourigenesis is suppressed in colorectal cancer models following loss of eIF4A1 but accelerated following loss of eIF4A2, while eIF4A inhibition with eFT226 mimics loss of eIF4A1 in these models.

cancer biology↗