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de la Fuente, D. C.

Publications and source records attributed to de la Fuente, D. C..

2 recordsLinked to original sources

Developmental, neuroanatomical and cellular expression of genes causing dystonia

ObjectiveDystonia is one of the most common forms of movement disorder with >50 genes identified as causative. However, an understanding of which developmental stages, brain regions and cell types are most relevant is crucial for developing relevant disease models and therapeutics. One approach is to examine the timing and anatomical expression of dystonia-causing genes, on the assumption that deleterious variants have a greater impact where higher levels of expression are observed. MethodsWe investigated the expression patterns of 44 dystonia-causing genes across two bulk- and two single-nuclei RNA-sequencing datasets, derived from prenatal and postnatal human brain tissue. ResultsDystonia genes were most strongly enriched in those with higher expression in the striatum, cerebral cortex, hippocampus, amygdala and substantia nigra, and for higher postnatal expression. Individual genes exhibiting differences in expression across adult brain regions include SQSTM1, SGCE, KMT2B, PRKRA, YY1, DNAJC12, KCNA1, CACNA1A (highest expression in cerebellum), ADCY5, GNAL, ANO3 (highest expression in striatum), RHOBTB2, FOXG1 (highest expression in cerebral cortex). Single-nuclei RNA-sequencing data analyses from human frontal cortex, striatum and cerebellum indicated that dystonia genes are predominantly expressed in neurons (both glutamatergic and GABAergic), rather than glia. Gene Ontology analysis showed prominent enrichment in biological processes such as dopamine biosynthetic and metabolic processes, and in the cellular components axons, presynapse and neuron projection. InterpretationThese analyses provide important insights into the anatomical, developmental and cellular expression patterns of dystonia-causing genes, potentially guiding the development of disease-relevant models and improving the timing and targeting of future therapeutic interventions.

neuroscience↗

Oxysterol-liver X receptor signaling mediates CYFIP1 regulation of cortical neurogenesis

Dysregulation in neural progenitor proliferation and neuronal differentiation has been increasingly recognised as a common pathology in neural cells harboring genetic risks to neuropsychiatric and neurodevelopmental disorders, yet the underlying molecular mechanisms remains largely unknown. Deletions and duplications of the 15q11.2 region containing the CYFIP1 gene have been associated with autism and schizophrenia. Using patient-derived iPSCs carrying 15q11.2 deletion and genetically manipulated hESCs with CYFIP1 gain- and loss-of-function (GoF and LoF), we show that 15q11.2 deletion and CYFIP1-LoF leads to premature neuronal differentiation while CYFIP1-GoF favours neural progenitor maintenance. We identified cholesterol biosynthesis and metabolism as a biological process disturbed by CYFIP1 dosage change, leading to altered neuro-oxysterol profiles. 24S,25-epoxycholesterol, which was decreased in CYFIP1-GoF and increased in CYFIP1-LoF and 15q11.2del neural cells, can mimic the 15q11.2del and CYFIP1-LoF phenotype by promoting cortical neuronal differentiation and restore the impaired neuronal differentiation of CYFIP1-GoF neural progenitors. Moreover, the neurogenic activity of 24S,25-epoxycholesterol is lost following genetic deletion of the brain expressed isoform of the liver X receptor LXRb while compound deletion of LXRb in CYFIP1-/- background rescued their premature neurogenesis. This work delineates LXR mediated oxysterol regulation of neurogenesis as a novel pathological mechanism in neural cells carrying 15q11.2CNV and provides a potential target for therapeutic strategies for genetic disorders associated with this risk locus.

neuroscience↗