Search bioRxivSearch

Biology subjects

Beleford, D.

Publications and source records attributed to Beleford, D..

2 recordsLinked to original sources

The YAP/TAZ antagonist, PTPN14, stabilizes SMAD4 through direct interactions in endothelial cells: Implications for Hereditary Hemorrhagic Telangiectasia

Hereditary Hemorrhagic Telangiectasia (HHT) results from germline loss-of-function mutations of ENG, ACVRL1, or SMAD4, encoding TGF{beta}/BMP signaling components. Telangiectasias occur in most patients, and pulmonary, visceral, or cerebral arteriovenous malformations (AVMs) in 20-50% of these. How HHT mutations cause these clinical manifestations and why some patients suffer more serious sequelae than others is unknown. PTPN14 is a genetic modifier of pulmonary AVM incidence, and here we show by gene expression network analysis of a large panel of genetically diverse mouse lung RNA samples, that Ptpn14 is ontologically associated with markers of angiogenesis, vascular remodeling, and BMP/TGF{beta} and Rho kinase signaling. We demonstrate physical interaction between protein tyrosine phosphatase non-receptor, type 14 (PTPN14) and SMAD4 in nucleus and cytoplasm of primary human endothelial cells. PTPN14 suppresses ubiquitination and turnover of SMAD4 to augment tonic SMAD-mediated transcriptional readouts. This is the first report that PTPN14 binds and stabilizes SMAD4, a key component of the HHT signaling pathway. Through this mechanism, and its inhibition of YAP/TAZ signaling, PTPN14 levels may protect against development of AVMs in HHT. We discuss potential druggable targets for HHT within the ENG-ALK1-SMAD4-PTPN14 network. One Sentence SummaryPTPN14 binds and stabilizes SMAD4 to potentiate BMP9 signaling in endothelial cells and components of the PTPN14 network may be drug targets for HHT.

cell biology

Biallelic variants in the RNA exosome gene EXOSC5 are associated with developmental delays, short stature, cerebellar hypoplasia and motor weakness

The RNA exosome is an essential ribonuclease complex involved in the processing and degradation of both coding and noncoding RNAs. We present three patients with biallelic variants in EXOSC5, which encodes a structural subunit of the RNA exosome. The common clinical features of these patients comprise failure to thrive, short stature, feeding difficulties, developmental delays that affect motor skills, hypotonia and esotropia. Brain MRI revealed cerebellar hypoplasia and ventriculomegaly. The first patient had a deletion involving exons 5-6 of EXOSC5 and a missense variant, p.Thr114Ile, that were inherited in trans, the second patient was homozygous for p.Leu206His, and the third patient had paternal isodisomy for chromosome 19 and was homozygous for p.Met148Thr. We employed three complementary approaches to explore the requirement for EXOSC5 in brain development and assess the functional consequences of pathogenic variants in EXOSC5. Loss of function for the zebrafish ortholog results in shortened and curved tails and bodies, reduced eye and head size and edema. We modeled pathogenic EXOSC5 variants in both budding yeast and mammalian cells. Some of these variants show defects in RNA exosome function as well as altered interactions with other RNA exosome subunits. Overall, these findings expand the number of genes encoding RNA exosome components that have been implicated in human disease, while also suggesting that disease mechanism varies depending on the specific pathogenic variant.

genetics