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Manson, F.

Publications and source records attributed to Manson, F..

2 recordsLinked to original sources

Domain-specific mechanisms of YAP1 variants in ocular coloboma revealed by in-vitro and organoid studies

The conserved transcriptional co-activator YAP1 is a central regulator of organ development and tissue homeostasis, integrating mechanical and biochemical cues to control cell proliferation and survival. YAP1 variants underlie a spectrum of congenital disorders, including autosomal dominant coloboma that can occur alone or with syndromic features. Despite this clinical significance, the functional role of YAP1 in human eye development, as well as the impact of disease-associated missense variants, remains poorly understood. Here we show YAP1 expression at the optic fissure in human embryos, a key structure involved in coloboma pathogenesis. We also identify a novel YAP1 variant in a proband with syndromic coloboma and investigate five previously reported coloboma-associated YAP1 variants. Using in silico prediction, cell-based assays, and fluorescence cross-correlation spectroscopy (FCCS) to directly quantify YAP1-TEAD binding, we demonstrate that the position of YAP1 missense variants dictates their functional changes. TEAD-binding domain mutations most strongly disrupted transcriptional activity in a luciferase assay, whereas all tested variants impaired induction of endogenous YAP1-TEAD target genes. Furthermore, mimicking reduced YAP1-TEAD binding using verteporfin small molecule in retinal organoids led to reduced progenitor proliferation and survival. These findings establish defective YAP1-dependent transcription as a mechanism driving congenital eye malformations and provide a framework for interpreting the pathogenicity of human YAP1 variants. More broadly, this study highlights the need for functional analyses to connect genetic variation with disease.

developmental biology↗

Computational investigation of mechanisms for pH modulation of human chloride channels

Many transmembrane proteins are modulated by intracellular or extracellular pH. Investigation of pH-dependence generally proceeds by mutagenesis of a wide set of amino acids, guided by properties such as amino acid conservation and structure. This study shows how web-based calculation of pKas allows rapid and effective identification of amino acids of interest with respect to pH-dependence. Commencing with the calcium-activated chloride channel bestrophin 1, the carboxylate ligand structure around calcium sites relaxes in the absence of calcium, consistent with a measured lack of pH-dependence. By contrast, less relaxation in the absence of calcium in TMEM16A, and maintenance of elevated carboxylate sidechain pKas, is suggested to give rise to pH-dependent chloride channel activity. This hypothesis, modulation of calcium/proton coupling and pH-dependent activity through extent of structural relaxation, is shown to apply to the well-characterised cytosolic proteins calmodulin (pH-independent) and calbindin D9k (pH-dependent). Further application of destabilised ionisable charge sites, or electrostatic frustration, is made to other human chloride channels (that are not calcium-activated), ClC-2, GABAA, and GlyR. Experimentally-determined sites of pH modulation are readily identified. The structure-based tool is freely available, allowing users to focus mutagenesis studies, construct hypothetical proton pathways, and derive hypotheses such as the model for control of pH-dependent calcium activation through structural flexibility. Predicting altered pH-dependence for mutations in ion channel disorders can support experimentation and, ultimately, clinical intervention.

biophysics↗