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Biology subjects

Pascual, D. M.

Publications and source records attributed to Pascual, D. M..

2 recordsLinked to original sources

CK2 variant function and disease modelling in Drosophila reveal allelic heterogeneity and Wnt/β-catenin-mediated phenotypes

Heterozygous pathogenic variants in CSNK2A1 or CSNK2B encoding the Casein Kinase 2 (CK2) protein complex, lead to pediatric neurodevelopmental disorders, Okur-Chung Neurodevelopmental Syndrome (OCNDS) and Poirier-Bienvenu Neurodevelopmental Syndrome (POBINDS). OCNDS and POBINDS are characterized by a range of symptoms, including developmental delay, intellectual disability, facial dysmorphism, and seizures. Despite over 250 reported cases of OCNDS and POBINDS, we do not fully understand how specific alterations in CK2 relate to the heterogeneity observed in patients. To investigate this, we used the fruit fly, Drosophila melanogaster, as a model system. To assess variant impact, we co-expressed human CSNK2A1 and CSNK2B reference or disease-causing variants in flies. In parallel, we determined the role of Drosophila CkII in the developing and mature nervous system, specifically in neurons and glia. We found that 12/13 variants tested act as full or partial loss-of-function with one CSNK2A1 variant showing gain-of-function. Phospho-proteomic studies in neurons revealed separate signatures for loss- and gain-of-function variants. We found that neuronal and glial CkII is critical for organismal development. Reduction of neuronal CkII in the adult nervous system causes motor and seizure-like phenotypes. Finally, given the known role of CK2 in potentiating Wnt/{beta}-catenin signalling, we show that Wnt agonists partially rescue phenotypes associated with adult-specific neuronal reduction of CkII. This work generates Drosophila models of CSNK2A1 and CSNK2B expression to functionally assess variant impact, as well as an adult-specific neuronal loss-of-function model for drug screening and mechanistic studies.

genetics↗

The ER Thioredoxin-Related Transmembrane Protein TMX2 Controls Redox-Mediated Tethering of ER-Mitochondria Contacts (ERMCS)

Thioredoxin-related transmembrane proteins (TMX) of the endoplasmic reticulum (ER) have emerged as key regulators of ER membrane properties. Within the ER lumen, TMX proteins and other ER redox enzymes determine oxidative conditions, which control the formation of ER-mitochondria membrane contacts (ERMCS) and determine their function. ERMCS exhibit cytoplasmic redox nanodomains, derived from ER and mitochondrial reactive oxygen species (ROS), whose mechanistic regulation is uncharacterized. Our research has identified the ER protein TMX2, which uses its unique cytosolic thioredoxin domain to prevent cytosolic sulfenylation of mitochondrial outer membrane proteins such as TOM70 through a functional interaction with peroxiredoxin-1 (PRDX1). By doing so, TMX2 interferes with the TOM70 ERMCS tethering function and reduces mitochondrial Ca2+ flux and metabolism. Recently, TMX2 mutations have been identified to cause a neurodevelopmental disorder with microcephaly, cortical malformations, and spasticity (NEDMCMS). Using TMX2-mutated NEDMCMS patient cells, we demonstrate that compromising TMX2 through mutation reproduces mitochondrial defects. In a fly in vivo model, TMX2 knockdown manifests predominantly in glial cells. Our results therefore provide important mechanistic insight into NEDMCMS and mechanistically link TMX2-mediated control of ERMCS to brain development and function. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=150 SRC="FIGDIR/small/589228v2_ufig1.gif" ALT="Figure 1"> View larger version (71K): org.highwire.dtl.DTLVardef@809587org.highwire.dtl.DTLVardef@1d8ef0corg.highwire.dtl.DTLVardef@135fdc6org.highwire.dtl.DTLVardef@1a7f7b6_HPS_FORMAT_FIGEXP M_FIG C_FIG The transmembrane thioredoxin-related TMX2 prevents TOM70 sulfenylation at ERMCS, thus maintaining normal mitochondria metabolism in wild-type cells. TMX2 knockout leads to TOM70 sulfenylation and tight ERMCS formation. This then increases ROS production, unbalances mitochondrial lipids, and relatively shifts OXPHOS electron supply to complex II.

cell biology↗