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Biology subjects

Theiss, S.

Publications and source records attributed to Theiss, S..

3 recordsLinked to original sources

Unravelling the conundrum of nucleolar NR2F1 localization: A comparative analysis of NR2F1 antibody-based approaches in vitro and in vivo.

As a transcription factor, NR2F1 regulates spatiotemporal gene expression during development and in adulthood. Aberrant NR2F1 causes a rare neurodevelopmental disorder known as Bosch-Boonstra- Schaaf Optic Atrophy Syndrome. In addition, altered NR2F1 expression is frequently observed in various cancers and is considered a prognostic marker or potential therapeutic target. In this context, NR2F1 has been shown to localize not only in the nucleus but also in the nucleoli, suggesting a novel non-canonical role in this compartment. Hence, we studied this phenomenon employing various in vitro and in vivo models in different antibody-dependent approaches. Examination of seven commonly used anti-NR2F1 antibodies in different human cancer and stem cells as well as in wild type and null mice revealed that the nucleolar localization of NR2F1 is artificial and does not play a functional role. Our subsequent comparative analysis demonstrated for the first time which anti-NR2F1 antibody best fits which approach. As our data allow for correct data interpretation, making them publicly available may have far-reaching implications for NR2F1 research in health and disease. More generally, the study also underlines the need to optimize any antibody-mediated technique.

cell biology↗

A truncating mutation of Magel2 in the rat modelled for the study of Schaaf-Yang and Prader-Willi syndromes alters select behavioral and physiological outcomes

Truncating mutations of the maternally imprinted, paternally expressed MAGEL2 gene are the predicted genetic cause of several rare neurodevelopmental disorders including Schaaf-Yang (SYS), Chitayat-Hall and Opitz Trigonocephaly C syndromes. MAGEL2 is also deleted or inactivated in Prader-Willi syndrome (PWS). Previous studies in mice have utilized Magel2 gene deletion models to examine the consequences of its absence. In this study, we report the generation, molecular validation, and phenotypic characterization of a novel rat model with a truncating Magel2 mutation generating a mutant peptide sequence more closely modeling variants associated with SYS-causing mutations. Within the hypothalamus, a brain region wherein mouse and human MAGEL2 is paternally-expressed, we demonstrate at the level of transcript and peptide detection that Magel2 in the rat exhibits a paternal, parent-of-origin effect. In the evaluation of behavioral features across several domains, juvenile Magel2 mutant rats display select alterations in anxiety-like behavior and sociability measures. Moreover, the analysis of peripheral organ systems detected alterations in body composition, cardiac structure and function, and breathing irregularities in Magel2 mutant rats. Several of these findings are concordant with reported mouse phenotypes, signifying the conservation of MAGEL2 function across rodent species for specific behavioral outcome measures. We conclude that our comprehensive analysis demonstrating impairments across multiple domains demonstrates the tractability of this model system for the study of truncating MAGEL2 mutations.

neuroscience↗

Ontogeny of oscillatory slow-wave and neuronal population activity in human iPSC-3D cortical circuits

Oscillatory slow-wave activity (0.5--100 Hz) emerges during fetal human cortex development reflecting functional consequences of cellular brain ontogeny. Human induced pluripotent stem cell-derived (iPSC) neural in vitro models recapitulate aspects of in vivo cellular brain ontogeny, while neuronal mesoscale functional ontogeny is largely uncharacterized. We utilized a human iPSC-derived 3D cortical aggregate model to assess properties of emerging oscillatory slow-wave activity and its relation to synchronous neuronal population activity in cortical circuits. We reveal that oscillatory slow-wave activity (< 1 Hz), phased locked to synchronous population bursting, emerges within 14 days in vitro followed by consecutive stages of emerging delta (1--4 Hz), theta (4--11 Hz), beta (11--30 Hz), and gamma (30--55 Hz) oscillatory activity, accompanied by stage-specific changes in neuronal population burst pattern characteristics. We provide a classification of neuronal mesoscale functional ontogeny stages of developing human iPSC-cortical circuits, where each stage is defined by specific oscillatory slow-wave activity and characteristic synchronous neuronal bursting patterns.

neuroscience↗