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Biology subjects

Papes, F.

Publications and source records attributed to Papes, F..

2 recordsLinked to original sources

Abnormal expression of splicing regulators RBFOX and NOVA is associated with aberrant splicing patterns at the Neurexin-3 gene in a monogenic autism spectrum disorder

Autism spectrum disorders are diseases characterized by a combination of cognitive, behavioral and neurological symptoms. A complex interplay between environmental factors and a multitude of genetic determinants, most of them composed of low-risk variants, impose difficulties in understanding the molecular and cellular underpinnings of these conditions. In some cases, autistic patients have been shown to display alterations in splicing patterns of several genes, but the extent to which this phenomenon is common in the context of these multifactorial disorders is unknown, nor is it known if monogenic cases of autism also display dysregulation of splicing. Moreover, very few studies have investigated the causal links between splicing alterations in specific genes and the phenotypic characteristics of the neural tissue in autism patients. In this study, we have focused on a monogenic type of autism caused by haploinsufficiency of the Transcription Factor 4 gene, known as Pitt-Hopkins Syndrome. We show that neurons and organoids derived from patients with this disease have altered expression of splicing regulators in the NOVA and RBFOX families, accompanied by aberrant splicing patterns in a substantial number of genes involved in neural tissue development and synapse organization. We focused on a gene encoding a member of the Neurexin Family, the splicing of which normally leads to the production of transcript variants coding for both transmembrane and secreted protein isoforms. In Pitt-Hopkins Syndrome neurons, we detected an aberrant splicing pattern that results in lower expression of the secreted isoform and its corresponding transcript, a phenomenon that may explain why the neural tissue in these patients have decreased electrical activity through impaired synapse organization. Our data shed light on the role splicing regulation plays in a monogenic type of autism.

neuroscience↗

Graphene-polymer Nanofibers Enable Optically Induced Electrical Maturation in Stem Cell-Derived Cardiomyocytes and Brain Organoids

Human pluripotent stem cell (hPSC)-derived electrically excitable cells provide a unique window into development, but they remain electrically immature partially due to the lack of chronic stimulation. Here, we fabricated electrospun polymer nanofibers containing light-reactive reduced graphene oxide (rGO) as part of a new classes of on-demand, electrically active biomaterials to enhance cell function. Fiber size, stiffness, and electrical conductivity varied with rGO concentration, which impacted hPSC-derived cardiomyocyte and neuron responses; with acute light stimulation, cardiomyocytes exhibited increased, synchronous calcium handling, and neurons showed more calcium peaks with higher frequency. Chronic, repetitive nanofiber light stimulation caused brain organoids to become increasingly electrically active and to activate photoreceptor pathways. This work outlines a tunable method where electrical cell functions can be titrated with rGO fibers and light stimulation, and it suggests that repetitive light stimulation may provide a novel method for retinal differentiation. HIGHLIGHTSO_LIElectrospun graphene-polymer nanofibers electrically respond to light stimulation C_LIO_LILight reactive graphene nanofibers stimulate electrically excitable cells in real-time C_LIO_LIStem cell-derived cardiomyocytes and neurons on nanofibers functionally improve C_LIO_LILight-training of brain organoids induces retinal and excitable neuron maturation C_LI

bioengineering↗